1. 单抛硅片和双抛硅片有什么区别?
单抛硅片主要有一面经过精密抛光,适合单面镀膜、光刻和表征;双抛硅片两面均经过抛光,更适合双面光刻、透射测试、晶圆键合和背面加工。

提供单面抛光方形硅片、长方形硅片、圆形硅片、双面抛光硅片及4英寸、5英寸、6英寸母片激光划片规格,尺寸覆盖1mm微型片至50mm大尺寸切割片,可用于薄膜沉积、材料表征、光刻、传感器、微电子及微纳器件研究。
硅片切割片以单晶硅片为母片,通过机械切割、精密划片或激光划片获得指定尺寸,可提供方形、长方形和圆形结构。小尺寸硅片适合少量材料沉积和表征实验,大尺寸硅片适合器件加工、光刻、传感器和较大面积薄膜制备。
方片覆盖1×1mm至50×50mm,并提供多种长方形规格。
支持方形片、长方形片、圆形片及母片激光划片。
单抛适合常规实验,双抛适合双面加工、透射和键合。
可按需求评估尺寸、厚度、切割方式、公差和独立包装。
覆盖1×1mm至50×50mm整数边长规格,适合薄膜沉积、材料表征和器件实验。
提供10×15mm、10×20mm、10×40mm和10×50mm,适合长条电极及器件结构。
提供Φ5mm至Φ40mm规格,适合圆形夹具、旋涂设备和光学测试。
提供30×30mm、40×40mm和50×50mm,厚度700μm,适合双面加工与透射测试。
以4英寸、5英寸或6英寸硅片为母片加工,适合批量获得统一规格的小尺寸样片。
可根据尺寸、形状、厚度、公差、晶向、电阻率和包装要求评估定制。
已删除完全重复的规格,并将相同母片、相同尺寸但颜色分类不同的商品合并展示。以下不包含价格。
| 产品类别 | 成品形状 | 成品尺寸 | 母片/来源 | 抛光方式 | 加工方式 | 标称厚度 | 原颜色分类/备注 |
|---|---|---|---|---|---|---|---|
| 母片激光划片 | 方形 | 10×10mm | 4英寸母片 | 单面抛光 | 激光划片 | 按批次确认 | 原颜色标识:深灰色;是否完全分离需确认 |
| 母片激光划片 | 方形 | 10×10mm | 6英寸母片 | 单面抛光 | 激光划片 | 按批次确认 | 原颜色标识:灰色;是否完全分离需确认 |
| 母片激光划片 | 方形 | 3×3mm | 5英寸母片 | 单面抛光 | 激光划片 | 按批次确认 | 原颜色标识:灰色/银色 |
| 母片激光划片 | 方形 | 5×5mm | 5英寸母片 | 单面抛光 | 激光划片 | 按批次确认 | 原颜色标识:浅灰色/黑色 |
| 母片激光划片 | 方形 | 8×8mm | 5英寸母片 | 单面抛光 | 激光划片 | 按批次确认 | 原颜色标识:深灰色/蓝色 |
| 母片激光划片 | 方形 | 10×10mm | 5英寸母片 | 单面抛光 | 激光划片 | 按批次确认 | 原颜色标识:浅灰色 |
| 母片激光划片 | 方形 | 15×15mm | 5英寸母片 | 单面抛光 | 激光划片 | 按批次确认 | 原颜色标识:天蓝色/黑色 |
| 母片激光划片 | 方形 | 20×20mm | 5英寸母片 | 单面抛光 | 激光划片 | 按批次确认 | 原颜色标识:宝蓝色/蓝色 |
| 单抛切割片 | 方形 | 1×1mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 微型样片 |
| 单抛切割片 | 方形 | 2×2mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 微型样片 |
| 单抛切割片 | 方形 | 3×3mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 原清单“3×3m”已修正为3×3mm |
| 单抛切割片 | 方形 | 4×4mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 小尺寸样片 |
| 单抛切割片 | 方形 | 5×5mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 常用小尺寸 |
| 单抛切割片 | 方形 | 6×6mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 小尺寸样片 |
| 单抛切割片 | 方形 | 7×7mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 小尺寸样片 |
| 单抛切割片 | 方形 | 8×8mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 常用小尺寸 |
| 单抛切割片 | 方形 | 9×9mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 小尺寸样片 |
| 单抛切割片 | 方形 | 10×10mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 常用标准尺寸 |
| 单抛切割片 | 方形 | 11×11mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 方形样片 |
| 单抛切割片 | 方形 | 12×12mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 方形样片 |
| 单抛切割片 | 方形 | 13×13mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 方形样片 |
| 单抛切割片 | 方形 | 14×14mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 方形样片 |
| 单抛切割片 | 方形 | 15×15mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 常用中等尺寸 |
| 单抛切割片 | 方形 | 16×16mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 方形样片 |
| 单抛切割片 | 方形 | 17×17mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 方形样片 |
| 单抛切割片 | 方形 | 18×18mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 方形样片 |
| 单抛切割片 | 方形 | 19×19mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 方形样片 |
| 单抛切割片 | 方形 | 20×20mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 常用标准尺寸 |
| 单抛切割片 | 方形 | 21×21mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 方形样片 |
| 单抛切割片 | 方形 | 22×22mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 方形样片 |
| 单抛切割片 | 方形 | 23×23mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 方形样片 |
| 单抛切割片 | 方形 | 24×24mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 方形样片 |
| 单抛切割片 | 方形 | 25×25mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 常用较大尺寸 |
| 单抛切割片 | 方形 | 26×26mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 方形样片 |
| 单抛切割片 | 方形 | 27×27mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 方形样片 |
| 单抛切割片 | 方形 | 28×28mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 方形样片 |
| 单抛切割片 | 方形 | 29×29mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 方形样片 |
| 单抛切割片 | 方形 | 30×30mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 常用较大尺寸 |
| 单抛切割片 | 方形 | 31×31mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 方形样片 |
| 单抛切割片 | 方形 | 32×32mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 方形样片 |
| 单抛切割片 | 方形 | 33×33mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 方形样片 |
| 单抛切割片 | 方形 | 34×34mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 方形样片 |
| 单抛切割片 | 方形 | 35×35mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 方形样片 |
| 单抛切割片 | 方形 | 36×36mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 方形样片 |
| 单抛切割片 | 方形 | 37×37mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 方形样片 |
| 单抛切割片 | 方形 | 38×38mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 方形样片 |
| 单抛切割片 | 方形 | 39×39mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 方形样片 |
| 单抛切割片 | 方形 | 40×40mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 常用大尺寸 |
| 单抛切割片 | 方形 | 41×41mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 方形样片 |
| 单抛切割片 | 方形 | 42×42mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 方形样片 |
| 单抛切割片 | 方形 | 43×43mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 方形样片 |
| 单抛切割片 | 方形 | 44×44mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 方形样片 |
| 单抛切割片 | 方形 | 45×45mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 方形样片 |
| 单抛切割片 | 方形 | 46×46mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 方形样片 |
| 单抛切割片 | 方形 | 47×47mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 方形样片 |
| 单抛切割片 | 方形 | 48×48mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 方形样片 |
| 单抛切割片 | 方形 | 49×49mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 方形样片 |
| 单抛切割片 | 方形 | 50×50mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 最大常规方形规格 |
| 单抛切割片 | 长方形 | 10×15mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 长方形器件及电极结构 |
| 单抛切割片 | 长方形 | 10×20mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 长方形器件及电极结构 |
| 单抛切割片 | 长方形 | 10×40mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 长条电极、测试条及器件结构 |
| 单抛切割片 | 长方形 | 10×50mm | 整片硅片切割 | 单面抛光 | 精密切割 | 按批次确认 | 长条器件及大跨度测试结构 |
| 双抛切割片 | 方形 | 30×30mm | 整片硅片切割 | 双面抛光 | 精密切割 | 700μm | 双面加工、透射及键合 |
| 双抛切割片 | 方形 | 40×40mm | 整片硅片切割 | 双面抛光 | 精密切割 | 700μm | 双面加工、透射及键合 |
| 双抛切割片 | 方形 | 50×50mm | 整片硅片切割 | 双面抛光 | 精密切割 | 700μm | 较大面积双面加工及键合 |
| 单抛圆片 | 圆形 | Φ5mm | 整片硅片切割 | 单面抛光 | 圆形切割 | 按批次确认 | 圆片 |
| 单抛圆片 | 圆形 | Φ8mm | 整片硅片切割 | 单面抛光 | 圆形切割 | 按批次确认 | 圆片 |
| 单抛圆片 | 圆形 | Φ10mm | 整片硅片切割 | 单面抛光 | 圆形切割 | 按批次确认 | 圆片 |
| 单抛圆片 | 圆形 | Φ12mm | 整片硅片切割 | 单面抛光 | 圆形切割 | 按批次确认 | 圆片 |
| 单抛圆片 | 圆形 | Φ15mm | 整片硅片切割 | 单面抛光 | 圆形切割 | 按批次确认 | 圆片 |
| 单抛圆片 | 圆形 | Φ18mm | 整片硅片切割 | 单面抛光 | 圆形切割 | 按批次确认 | 圆片 |
| 单抛圆片 | 圆形 | Φ20mm | 整片硅片切割 | 单面抛光 | 圆形切割 | 按批次确认 | 圆片 |
| 单抛圆片 | 圆形 | Φ22mm | 整片硅片切割 | 单面抛光 | 圆形切割 | 按批次确认 | 圆片 |
| 单抛圆片 | 圆形 | Φ30mm | 整片硅片切割 | 单面抛光 | 圆形切割 | 按批次确认 | 圆片 |
| 单抛圆片 | 圆形 | Φ32mm | 整片硅片切割 | 单面抛光 | 圆形切割 | 按批次确认 | 圆片 |
| 单抛圆片 | 圆形 | Φ35mm | 整片硅片切割 | 单面抛光 | 圆形切割 | 按批次确认 | 圆片 |
| 单抛圆片 | 圆形 | Φ40mm | 整片硅片切割 | 单面抛光 | 圆形切割 | 按批次确认 | 圆片 |
用于金属、氧化物、氮化物、二维材料和高分子薄膜制备。
适用于SEM、AFM、拉曼、XRD、椭偏、接触角及膜厚测试。
用于涂胶、曝光、显影、刻蚀、图形化及微型器件加工。
适用于气体、生物、温度、压力和光电传感器衬底。
用于电极、测试结构、芯片样片、金属接触及器件验证。
可作为电极基底、绝缘基片或后续镀膜与表面修饰载体。
圆形片和双抛片适合圆形夹具、透射、反射及光学结构研究。
用于微结构、微加热器、微流道、晶圆键合及双面加工。
用于实验教学、夹具适配、切割验证和工艺条件开发。
确认尺寸、形状、抛光方式、厚度、晶向和包装标签。
检查是否存在破裂、崩边、划痕、污染或尺寸异常。
佩戴无粉手套,使用真空吸笔或平头镊子夹取边缘。
单抛片以包装标识确认功能面,双抛片两面均需保护。
根据后续光刻、镀膜或表征要求选择合适清洗方式。
根据形状和尺寸选择吸盘、夹具、载片或导电胶固定。
可开展沉积、光刻、刻蚀、表征、键合或器件加工。
使用后放回自吸盒或分格盒,防止碰撞及交叉污染。
切割片边缘相对脆弱,禁止跌落、挤压或使用尖锐工具夹持。
不得用普通纸巾擦拭,也不要将抛光面放在粗糙台面。
1—5mm微型片建议使用透明自吸盒或带编号的分格盒。
使用前确认产品是划槽母片还是已经完全分离的小片。
圆片和小尺寸片装夹时应均匀受力,避免局部压裂。
远离高湿、粉尘及腐蚀性气体,剩余产品应及时密封。
单抛硅片主要有一面经过精密抛光,适合单面镀膜、光刻和表征;双抛硅片两面均经过抛光,更适合双面光刻、透射测试、晶圆键合和背面加工。
激光划片可能只在母片表面形成便于后续分离的划槽,也可能直接完成切割分离。具体交付状态取决于加工方式,下单前应明确是否需要独立小片。
不代表。天蓝色、宝蓝色、灰色、银色和黑色等属于原商品颜色分类标识,仅用于区分商品选项,不能作为硅片颜色、晶向或电学参数的判断依据。
方形片适合通用沉积和器件加工;长方形片适合长条电极、测试条和传输结构;圆形片适合圆形夹具、旋涂设备、光学孔径和圆形样品台。
建议使用细口真空吸笔、软头精密镊子或显微操作工具,并在洁净托盘上操作,避免样片弹飞、丢失或受到局部挤压。
机械切割、激光切割或圆形加工后可能存在轻微崩边、切割纹和颗粒。对有效面积和边缘质量要求较高时,应提前明确尺寸公差及允许崩边范围。
可以根据母片尺寸、目标形状、成品尺寸、厚度、公差、数量及加工可行性进行评估,也可定制异形片、打孔片和特殊长宽比例。
不一定。除双抛30×30mm、40×40mm和50×50mm明确为700μm外,其他规格厚度需按产品批次确认,不能仅根据成品尺寸推断。
可以,但需确认切割片尺寸与匀胶机、曝光机、镀膜夹具和刻蚀载台兼容。小尺寸硅片通常需要使用载片、夹具或临时固定方式。
建议确认形状、尺寸、单抛或双抛、厚度、晶向、导电类型、电阻率、切割方式、尺寸公差、崩边范围、数量及包装方式。
方形/长方形/圆形+成品尺寸+单面抛光/双面抛光+厚度+晶向+导电类型+电阻率+切割方式+尺寸公差+数量+包装要求。
硅片尺寸大全覆盖1×1mm至50×50mm单抛方片、10×15mm至10×50mm长方形片、Φ5mm至Φ40mm圆片、700μm双抛方片及4—6英寸母片激光划片。微型硅片适合微量材料与小型器件实验,10×10mm和20×20mm适合常规科研,30mm以上规格适合较大面积薄膜和器件加工。采购前应完整确认尺寸、抛光方式、厚度、晶向、电阻率、切割公差及交付状态。
🛒 手机淘宝店铺:科学材料站
🔗 淘宝链接:点击进入淘宝网页
☎ 电话:+86 130-0303-8751 / +86 156-0553-2352
💬 微信:SCI-Materials-Hub
📧 Email 报价/对公需求:contact@scimaterials.cn
覆盖单抛方形、矩形、圆形小片,整片批量划片及700 μm双抛方片,可按尺寸、导电类型和晶向快速查询售价。
| 加工类别 | 成品尺寸 | 规格说明 | N型售价 | P型售价 | ||||
|---|---|---|---|---|---|---|---|---|
| 晶向100 | 晶向110 | 晶向111 | 晶向100 | 晶向110 | 晶向111 | |||
| 单抛方形与矩形切片 | ||||||||
单抛切片 单面抛光 · 方形与矩形 覆盖1 × 1 mm至50 × 50 mm,并包含10 × 15、10 × 20、10 × 40及10 × 50 mm矩形规格。 | 1 × 1 mm | 方形切片 | ¥14 | ¥14 | ¥14 | ¥14 | ¥14 | ¥14 |
| 2 × 2 mm | 方形切片 | ¥14 | ¥14 | ¥14 | ¥14 | ¥14 | ¥14 | |
| 3 × 3 mm | 方形切片 | ¥18 | ¥18 | ¥18 | ¥18 | ¥18 | ¥18 | |
| 4 × 4 mm | 方形切片 | ¥20 | ¥20 | ¥20 | ¥20 | ¥20 | ¥20 | |
| 5 × 5 mm | 方形切片 | ¥20 | ¥20 | ¥20 | ¥20 | ¥20 | ¥20 | |
| 6 × 6 mm | 方形切片 | ¥22 | ¥22 | ¥22 | ¥22 | ¥22 | ¥22 | |
| 7 × 7 mm | 方形切片 | ¥24 | ¥24 | ¥24 | ¥24 | ¥24 | ¥24 | |
| 8 × 8 mm | 方形切片 | ¥24 | ¥24 | ¥24 | ¥24 | ¥24 | ¥24 | |
| 9 × 9 mm | 方形切片 | ¥25 | ¥25 | ¥25 | ¥25 | ¥25 | ¥25 | |
| 10 × 10 mm | 方形切片 | ¥26 | ¥26 | ¥26 | ¥26 | ¥26 | ¥26 | |
| 11 × 11 mm | 方形切片 | ¥27 | ¥27 | ¥27 | ¥27 | ¥27 | ¥27 | |
| 12 × 12 mm | 方形切片 | ¥28 | ¥28 | ¥28 | ¥28 | ¥28 | ¥28 | |
| 10 × 15 mm | 矩形切片 | ¥28 | ¥28 | ¥28 | ¥28 | ¥28 | ¥28 | |
| 13 × 13 mm | 方形切片 | ¥29 | ¥29 | ¥29 | ¥29 | ¥29 | ¥29 | |
| 14 × 14 mm | 方形切片 | ¥30 | ¥30 | ¥30 | ¥30 | ¥30 | ¥30 | |
| 10 × 20 mm | 矩形切片 | ¥34 | ¥34 | ¥34 | ¥34 | ¥34 | ¥34 | |
| 15 × 15 mm | 方形切片 | ¥34 | ¥34 | ¥34 | ¥34 | ¥34 | ¥34 | |
| 16 × 16 mm | 方形切片 | ¥35 | ¥35 | ¥35 | ¥35 | ¥35 | ¥35 | |
| 17 × 17 mm | 方形切片 | ¥36 | ¥36 | ¥36 | ¥36 | ¥36 | ¥36 | |
| 18 × 18 mm | 方形切片 | ¥37 | ¥37 | ¥37 | ¥37 | ¥37 | ¥37 | |
| 19 × 19 mm | 方形切片 | ¥38 | ¥38 | ¥38 | ¥38 | ¥38 | ¥38 | |
| 20 × 20 mm | 方形切片 | ¥38 | ¥38 | ¥38 | ¥38 | ¥38 | ¥38 | |
| 10 × 40 mm | 矩形切片 | ¥30 | ¥30 | ¥30 | ¥30 | ¥30 | ¥30 | |
| 21 × 21 mm | 方形切片 | ¥39 | ¥39 | ¥39 | ¥39 | ¥39 | ¥39 | |
| 22 × 22 mm | 方形切片 | ¥40 | ¥40 | ¥40 | ¥40 | ¥40 | ¥40 | |
| 10 × 50 mm | 矩形切片 | ¥40 | ¥40 | ¥40 | ¥40 | ¥40 | ¥40 | |
| 23 × 23 mm | 方形切片 | ¥40 | ¥40 | ¥40 | ¥40 | ¥40 | ¥40 | |
| 24 × 24 mm | 方形切片 | ¥41 | ¥41 | ¥41 | ¥41 | ¥41 | ¥41 | |
| 25 × 25 mm | 方形切片 | ¥42 | ¥42 | ¥42 | ¥42 | ¥42 | ¥42 | |
| 26 × 26 mm | 方形切片 | ¥44 | ¥44 | ¥44 | ¥44 | ¥44 | ¥44 | |
| 27 × 27 mm | 方形切片 | ¥46 | ¥46 | ¥46 | ¥46 | ¥46 | ¥46 | |
| 28 × 28 mm | 方形切片 | ¥48 | ¥48 | ¥48 | ¥48 | ¥48 | ¥48 | |
| 29 × 29 mm | 方形切片 | ¥50 | ¥50 | ¥50 | ¥50 | ¥50 | ¥50 | |
| 30 × 30 mm | 方形切片 | ¥54 | ¥54 | ¥54 | ¥54 | ¥54 | ¥54 | |
| 31 × 31 mm | 方形切片 | ¥56 | ¥56 | ¥56 | ¥56 | ¥56 | ¥56 | |
| 32 × 32 mm | 方形切片 | ¥57 | ¥57 | ¥57 | ¥57 | ¥57 | ¥57 | |
| 33 × 33 mm | 方形切片 | ¥58 | ¥58 | ¥58 | ¥58 | ¥58 | ¥58 | |
| 34 × 34 mm | 方形切片 | ¥59 | ¥59 | ¥59 | ¥59 | ¥59 | ¥59 | |
| 35 × 35 mm | 方形切片 | ¥61 | ¥61 | ¥61 | ¥61 | ¥61 | ¥61 | |
| 36 × 36 mm | 方形切片 | ¥62 | ¥62 | ¥62 | ¥62 | ¥62 | ¥62 | |
| 37 × 37 mm | 方形切片 | ¥63 | ¥63 | ¥63 | ¥63 | ¥63 | ¥63 | |
| 38 × 38 mm | 方形切片 | ¥64 | ¥64 | ¥64 | ¥64 | ¥64 | ¥64 | |
| 39 × 39 mm | 方形切片 | ¥65 | ¥65 | ¥65 | ¥65 | ¥65 | ¥65 | |
| 40 × 40 mm | 方形切片 | ¥66 | ¥66 | ¥66 | ¥66 | ¥66 | ¥66 | |
| 41 × 41 mm | 方形切片 | ¥67 | ¥67 | ¥67 | ¥67 | ¥67 | ¥67 | |
| 42 × 42 mm | 方形切片 | ¥68 | ¥68 | ¥68 | ¥68 | ¥68 | ¥68 | |
| 43 × 43 mm | 方形切片 | ¥69 | ¥69 | ¥69 | ¥69 | ¥69 | ¥69 | |
| 44 × 44 mm | 方形切片 | ¥70 | ¥70 | ¥70 | ¥70 | ¥70 | ¥70 | |
| 45 × 45 mm | 方形切片 | ¥74 | ¥74 | ¥74 | ¥74 | ¥74 | ¥74 | |
| 46 × 46 mm | 方形切片 | ¥76 | ¥76 | ¥76 | ¥76 | ¥76 | ¥76 | |
| 47 × 47 mm | 方形切片 | ¥78 | ¥78 | ¥78 | ¥78 | ¥78 | ¥78 | |
| 48 × 48 mm | 方形切片 | ¥80 | ¥80 | ¥80 | ¥80 | ¥80 | ¥80 | |
| 49 × 49 mm | 方形切片 | ¥84 | ¥84 | ¥84 | ¥84 | ¥84 | ¥84 | |
| 50 × 50 mm | 方形切片 | ¥86 | ¥86 | ¥86 | ¥86 | ¥86 | ¥86 | |
| 整片激光划片 | ||||||||
整片划片 4–6英寸母片 · 批量切割 按母片尺寸和目标小片尺寸展示约产出数量,适合批量科研样片。 | 3 × 3 mm | 5英寸母片 / 约1000片 | ¥494 | ¥494 | ¥494 | ¥494 | ¥494 | ¥494 |
| 5 × 5 mm | 5英寸母片 / 约400片 | ¥304 | ¥304 | ¥304 | ¥304 | ¥304 | ¥304 | |
| 8 × 8 mm | 5英寸母片 / 约160片 | ¥200 | ¥200 | ¥200 | ¥200 | ¥200 | ¥200 | |
| 10 × 10 mm | 4英寸母片 / 约55片 | ¥200 | ¥200 | ¥200 | ¥200 | ¥200 | ¥200 | |
| 10 × 10 mm | 5英寸母片 / 约75片 | ¥146 | ¥146 | ¥146 | ¥146 | ¥146 | ¥146 | |
| 10 × 10 mm | 6英寸母片 / 约145片 | ¥228 | ¥228 | ¥228 | ¥228 | ¥228 | ¥228 | |
| 15 × 15 mm | 5英寸母片 / 约35片 | ¥170 | ¥170 | ¥170 | ¥170 | ¥170 | ¥170 | |
| 20 × 20 mm | 5英寸母片 / 约19片 | ¥150 | ¥150 | ¥150 | ¥150 | ¥150 | ¥150 | |
| 双抛方形切片 | ||||||||
双抛切片 双面抛光 · 厚700 μm 提供30 × 30、40 × 40及50 × 50 mm双面抛光方片。 | 30 × 30 mm | 厚 700 μm | ¥54 | ¥54 | ¥54 | ¥54 | ¥54 | ¥54 |
| 40 × 40 mm | 厚 700 μm | ¥66 | ¥66 | ¥66 | ¥66 | ¥66 | ¥66 | |
| 50 × 50 mm | 厚 700 μm | ¥86 | ¥86 | ¥86 | ¥86 | ¥86 | ¥86 | |
| 单抛圆形切片 | ||||||||
圆形切片 单面抛光 · 圆形激光划片 覆盖Φ5 mm至Φ40 mm常用圆形小片规格。 | Φ5 mm | 单片激光划片 | ¥26 | ¥26 | ¥26 | ¥26 | ¥26 | ¥26 |
| Φ8 mm | 单片激光划片 | ¥28 | ¥28 | ¥28 | ¥28 | ¥28 | ¥28 | |
| Φ10 mm | 单片激光划片 | ¥34 | ¥34 | ¥34 | ¥34 | ¥34 | ¥34 | |
| Φ12 mm | 单片激光划片 | ¥38 | ¥38 | ¥38 | ¥38 | ¥38 | ¥38 | |
| Φ15 mm | 单片激光划片 | ¥42 | ¥42 | ¥42 | ¥42 | ¥42 | ¥42 | |
| Φ18 mm | 单片激光划片 | ¥44 | ¥44 | ¥44 | ¥44 | ¥44 | ¥44 | |
| Φ20 mm | 单片激光划片 | ¥46 | ¥46 | ¥46 | ¥46 | ¥46 | ¥46 | |
| Φ22 mm | 单片激光划片 | ¥48 | ¥48 | ¥48 | ¥48 | ¥48 | ¥48 | |
| Φ30 mm | 单片激光划片 | ¥50 | ¥50 | ¥50 | ¥50 | ¥50 | ¥50 | |
| Φ32 mm | 单片激光划片 | ¥54 | ¥54 | ¥54 | ¥54 | ¥54 | ¥54 | |
| Φ35 mm | 单片激光划片 | ¥60 | ¥60 | ¥60 | ¥60 | ¥60 | ¥60 | |
| Φ40 mm | 单片激光划片 | ¥70 | ¥70 | ¥70 | ¥70 | ¥70 | ¥70 | |
部分使用和引用我们材料的参考文献 (摘自于Google Scholar)

二氧化碳还原
1. ACS Nano Strain Relaxation in Metal Alloy Catalysts Steers the Product Selectivity of Electrocatalytic CO2 Reduction
The bipolar membrane (Fumasep FBM) in this paper was purchased from SCI Materials Hub, which was used in rechargeable Zn-CO2 battery tests. The authors reported a strain relaxation strategy to determine lattice strains in bimetal MNi alloys (M = Pd, Ag, and Au) and realized an outstanding CO2-to-CO Faradaic efficiency of 96.6% with outstanding activity and durability toward a Zn-CO2 battery.
2. Front. Chem. Boosting Electrochemical Carbon Dioxide Reduction on Atomically Dispersed Nickel Catalyst
In this paper, Vulcan XC-72R was purchased from SCI Materials Hub. Vulcan XC 72R carbon is the most common catalyst support used in the anode and cathode electrodes of Polymer Electrolyte Membrane Fuel Cells (PEMFC), Direct Methanol Fuel Cells (DMFC), Alkaline Fuel Cells (AFC), Microbial Fuel Cells (MFC), Phosphoric Acid Fuel Cells (PAFC), and many more!
3. Adv. Mater. Partially Nitrided Ni Nanoclusters Achieve Energy-Efficient Electrocatalytic CO2 Reduction to CO at Ultralow Overpotential
An AEM membrane (Sustainion X37-50 Grade RT), purchased from SCI Materials Hub) was activated in 1 M KOH for 24 h, washed with ultra-purity water prior to use.
4. Adv. Funct. Mater. Nanoconfined Molecular Catalysts in Integrated Gas Diffusion Electrodes for High-Current-Density CO2 Electroreduction
In this paper (Supporting Information), an anion exchanged membrane (Fumasep FAB-PK-130 obtained from SCI Materials Hub (www.scimaterials.cn)) was used to separate the catholyte and anolyte chambers.
SCI Materials Hub: we also recommend our Fumasep FAB-PK-75 for the use in a flow cell.
5. Appl. Catal. B Efficient utilization of nickel single atoms for CO2 electroreduction by constructing 3D interconnected nitrogen-doped carbon tube network
In this paper, the Nafion 117 membrane was obtained from SCI Materials Hub.
In this paper, Proton exchange membrane (Nafion 117), Nafion D520, and Toray 060 carbon paper were purchased from SCI Materials Hub.
7. National Science Review Confinement of ionomer for electrocatalytic CO2 reduction reaction via efficient mass transfer pathways
An anion exchange membrane (PiperION-A15-HCO3) was obtained from SCI Materials Hub.
8. Catalysis Communications Facilitating CO2 electroreduction to C2H4 through facile regulating {100} & {111} grain boundary of Cu2O
Carbon paper (TGPH060), membrane solution (Nafion D520), and ionic membrane (Nafion N117) were obtained from Wuhu Eryi Material Technology Co., Ltd.
Note: Wuhu Eryi Material Technology Co. is a company hold by SCI Materials Hub.
9. Advanced Energy Materials Interatomic Electronegativity Offset Dictates Selectivity When Catalyzing the CO2 Reduction Reaction
The bipolar membrane (Fumasep FBM), carbon paper (SIGRACET 29BC, Freudenberg paper H23C2), ion exchange membrane (Nafion N117), and anion exchange membrane (Fumasep, FAA-3-PK-130) were all obtained from SCI Materials Hub.
10. Separation and Purification Technology *CO spillover induced by bimetallic xZnO@yCuO active centers for enhancing C–C coupling over electrochemical CO2 reduction
5 % Nafion solution was obtained through SCI Materials Hub.
11. National Science Review Confinement of ionomer for electrocatalytic CO2 reduction reaction via efficient mass transfer pathways
In this paper, PiperION-A5-HCO3 anion exchange resin, Fumion FAA anion exchange resin, PiperION-A15-HCO3 and FAA-3-50 were purchased from SCI Materials Hub.
12. Vacuum Controllable dual Cu–Cu2O sites derived from CuxAl-LDH for CO2 electroreduction to hydrocarbons
Nafion and carbon paper (TGPH060) were supplied through SCI Materials Hub.
13. Chemical Engineering Journal Coupling electrocatalytic CO2 reduction with glucose oxidation for concurrent production of formate with high efficiency
An AEM membrane (PiperION, purchased from SCI Materials Hub) was activated in 1 M KOH for 24 h, washed with ultra-purity water prior to use.
In this paper, Sustainion X37-50 Grade RT membrane and the MEA electrolyzer (CRRMEA1a, Figure S34) with 1cm2 active area were obtained from SCI Materials Hub.
微信公众号中文报道:Chem:基于热力学驱动的混合策略形成Cu0/Cu+/Cu0界面用于中性条件CO2电还原C2+
15. Surfaces and Interfaces Modulating surface microenvironment based on Ag-adorned CuO flower-liked nanospheres for strengthening C-C coupling during CO2RR
5 wt.% of Nafion solution, and N115 proton exchange membrane were procured with the help of SCI Materials Hub
16. ACS Appl. Energy Mater. Nanoporous Bismuth Induced by Surfactant-Modified Dealloying for Efficient Electrocatalytic Reduction of CO2 to Formic Acid
The anion exchange membrane (AEM, PiperION A20) and cation exchange membrane (CEM, Nafion 117) were obtained from SCI Materials Hub.
17. Adv. Energy Mater. Tailoring Microenvironments and In Situ Transformations of Cu Catalysts for Selective and Stable Electrosynthesis of Multicarbon Products
For GDE-based CO₂ electrolysis, the MEA reactor (CRRMEA5a, Sci-Materials Hub) consists of a titanium anode plate and a cathode plate with flow fields, along with insulating gaskets, integrated into a compression cell. The geometric area of each flow field is 5 cm² An anion exchange membrane (PiperION, A40-HCO3, Versogen) was used to separate the anode and the cathode.
18. Journal of Environmental Chemical Engineering Evaluation of electromethanogenesis in a microbial electrolysis cell using nylon cloth as a separator: reactor performance and metagenomic analysis
A commercial Nafion PEM (SCI Materials Hub) was used as the control to compare the electromethanogenesis performance.
CRRMEA1a 1cm2 MEA electrolyzer (Figure 4d) was obtained from SCI Materials Hub.
微信公众号中文报道:安徽师范大学最新Angew!全pH范围内铋基催化剂用于安培级电流密度电催化CO2还原
20. Separation and Purification Technology Coupling regulation of boron doping and morphology in nano-floral CuO using one pot method for electrocatalytic CO2 reduction
Carbon paper (TGPH060), Dupont Nafion solution (D520), and proton exchange membrane (N117) were acquired by SCI Materials Hub.
21. Chemical Engineering Journal Manipulating dual effects of morphology and oxygen vacancies through the incorporation of CuO onto CeO2 nanospheres for electrochemical CO2 reduction
Carbon paper (TGPH060), Dupont Nafion solution (D520), and proton exchange membrane (N117) were acquired by SCI Materials Station Hub (SCI Materials Hub, the same author as Ref. 20).
22. Advanced Materials Universal Formation of Single Atoms from Molten Salt for Facilitating Selective CO2 Reduction
The Nafion D520 dispersion and gas diffusion electrode (GDE, Sigracet, 39BB) were obtained from SCI Materials Hub (www.scimaterials.cn).
23. Science Bulletin Compressive strain in Cu catalysts: Enhancing generation of C2+ products in electrochemical CO2 reduction
CRRMEA1a 1cm2 MEA electrolyzer (Figure 3a) was obtained from SCI Materials Hub.
微信公众号中文报道:Science Bulletin:优化水覆盖度促进安培级电流密度下CO2还原C2+
Carbon paper (SGL CARBON, SGL36BB, purchased from SCI Materials Hub)
25. Chemical Engineering Journal In-situ reconstruction of active bismuth for enhanced CO2 electroreduction to formate
Anion-exchange membrane (Fumasep FAA-3–50) was purchased from SCI Materials Hub.
26. Nature Communications Bromide-mediated membraneless electrosynthesis of ethylene carbonate from CO2 and ethylene
Nafion D520 polymer binder solution (5 wt%) was purchased from SCI Materials Hub.
27. Ionics Sulfur-modified promoting the electrochemical CO2 reduction into formate performance of BiOI
Carbon black (Vulcan XC- 72, Cabot), teflon-treated carbon paper (TGP-H- 060, Toray), and proton exchange membrane (Nafion- 117) were purchased from SCI Materials Hub.
28. Nature Communications Continuous decoupled redox electrochemical CO2 capture
The anion exchange membrane (FAA-3-PK-75) with a thickness of 75 ± 5 μm was purchased from SCI Materials Hub.
29. Journal of Energy Chemistry Construction of efficient electrodes for CO2RR through microenvironment regulation of hydrophobic ionomer
An anion exchange membrane (PiperION-A15-HCO3, SCI Materials Hub) was used to separate the anode and cathode chambers.
30. Journal of Energy Chemistry The insights into ionomer-catalyst interactions enabling high-efficiency CO2 electroreduction in pure water
Methylimidazolium ionomer powder (Sustainion XA-9, dispersed in ethanol at 5 wt%), and piperidinium ionomer solution (PiperION A5, dispersed in ethanol at 5 wt%) were purchased from SCI Materials Hub (
31. ChemElectroChem Scaling CO Electrolyzers for Carbon-Neutral Chemical Synthesis
Specifically, the PTFE-CB ink was prepared by mixing 0.1 g of CB (Vulcan XC-72R, SCI Materials Hub) with PTFE (25 % of the CB mass) in 50 mL of methanol. After ultrasonication for 2 hours, the ink was air-sprayed onto the gas diffusion layer (GDL) (Sigracet 28 BC, SCI Materials Hub) at 60 °C. The anion exchange membrane (AEM) was Fumasep FAA-3-50 (SCI Materials Hub)
32. American Institute of Chemical Engineers Porous carbon-supported Ag catalysts enablehigh-current-density CO2 electroreductionto CO with enhanced mass transport
Carbon paper (SGL Sigracet 39 BB SGL Carbon), anion exchange membrane (Sustainion X37-50 Grade T, Dioxide Materials), Ni foam was obtained from SCI Materials Hub.
33. Applied Catalysis B: Environment and Energy Microenvironmental hydrophobicity-regulated evolution of reaction sites for boosting electrochemical CO2 reduction
A gas diffusion layer AvCarb GDS2240 was obtained from SCI MATERIALS HUB.
34. Applied Catalysis B: Environment and Energy Boosting seawater desalination driven by electroreduction of CO2 to formate on bimetallic Sn/Cu polyphthalocyanine frameworks
Gas diffusion layers (GDLs) consisting of Sigracet 36BB substrates (SCI Materials Hub) were utilized.
35. Catalysis Today Efficient and cost-effective electrocatalysts for coproduction of formate through electrocatalytic oxidation of PET-derived ethylene glycol coupled with CO2 reduction
Cation exchange membrane ((Nafion 117, DuPont) was purchased from SCI Materials Hub, China.
电池
1. J. Mater. Chem. A Blocking polysulfides with a Janus Fe3C/N-CNF@RGO electrode via physiochemical confinement and catalytic conversion for high-performance lithium–sulfur batteries
Graphene oxide (GO) in this paper was obtained from SCI Materials Hub. The authors introduced a Janus Fe3C/N-CNF@RGO electrode consisting of 1D Fe3C decorated N-doped carbon nanofibers (Fe3C/N-CNFs) side and 2D reduced graphene oxide (RGO) side as the free-standing carrier of Li2S6 catholyte to improve the overall electrochemical performance of Li-S batteries.
This paper used more than 10 kinds of materials from SCI Materials Hub and the authors gave detailed properity comparsion.
The commercial IEMs of Fumasep FAB-PK-130 and Nafion N117 were obtained from SCI Materials Hub.
Gas diffusion layers of GDL340 (CeTech) and SGL39BC (Sigracet) and Nafion dispersion (Nafion D520) were obtained from SCI Materials Hub.
Zn foil (100 mm thickness) and Zn powder were obtained from the SCI Materials Hub.
Commercial 20% Pt/C, 40% Pt/C and IrO2 catalysts were also obtained from SCI Materials Hub.
3. Journal of Energy Chemistry Vanadium oxide nanospheres encapsulated in N-doped carbon nanofibers with morphology and defect dual-engineering toward advanced aqueous zinc-ion batteries
In this paper, carbon cloth (W0S1011) was obtained from SCI Materials Hub. The flexible carbon cloth matrix guaranteed the stabilization of the electrode and improved the conductivity of the cathode.
4. Energy Storage Materials Defect-abundant commercializable 3D carbon papers for fabricating composite Li anode with high loading and long life
The 3D carbon paper (TGPH060 raw paper) were purchased from SCI Materials Hub.
5. Nanomaterials A Stable Rechargeable Aqueous Zn–Air Battery Enabled by Heterogeneous MoS2 Cathode Catalysts
Nafion D520 (5 wt%), and carbon paper (GDL340) were received from SCI-Materials-Hub.
Carbon cloth (W0S1011) and other electrochemical consumables required for air cathode were provided by SCI Materials Hub.
The Zn sheet (99.99%) was purchased from SCI Materials Hub.
8. Nature Communications Atomic-scale regulation of anionic and cationic migration in alkali metal batteries
The lithium metal disk (purity: 99.9%, diameter: 16 mm, thickness: 0.6 mm) was obtained from SCI Materials Hub.
9. Chemical Engineering Journal Zinc-based energy storage with functionalized carbon nanotube/polyaniline nanocomposite cathodes
CNTs were purchased from SCI Materials Hub.
10. ACS Nano Interfacial Chemistry Modulation via Amphoteric Glycine for a Highly Reversible Zinc Anode
Zn foil (>99.99%, 100 μm) was purchased from SCI Materials Hub.
11. ACS Nano High-Energy and Long-Lived Zn–MnO2 Battery Enabled by a Hydrophobic-Ion-Conducting Membrane
Zn foil (99.9%), carbon paper, and carbon felt were obtained from SCI Materials Hub.
12. Nature Communications Unravelling rechargeable zinc-copper batteries by a chloride shuttle in a biphasic electrolyte
Carbon cloth (CeTech W0S1011), PP membrane (Celgard 2300), Glass fiber (Whatman GF/A), anion exchange membrane (Fumasep FAB-PK-130), and cation exchange membrane (Nafion N-117) were purchased from sci materials hub.
13. PROCEEDINGS OF SPIE A dendrite-free and corrosion-suppressive metallic Zn anode regulated by the hybrid aqueous/organic electrolyte
Zn foil (99.9%, 100 μm thickness) was obtained from the SCI Materials Hub.
14. Journal of Alloys and Compounds Cr-induced enhancement of structural stability in δ-MnO2 for aqueous Zn-ion batteries
The Zn sheet (99.99%) and Whatman GF/D paper were available for purchase on on the SCI Materials Hub.
Carbon coating aluminum foils with a thickness of 16 µm were acquired from SCI Materials Hub.
16. Journal of Industrial and Engineering Chemistry Investigation into electrochemical catalytic properties and electronic structure of Mn doped SrCoO3 perovskite catalysts
KB-EC600JD superconducting carbon black was obtained from SCI Materials Hub.
17. Journal of Alloys and Compounds Inhibiting polysulfide shuttle and enhancing polysulfide redox: Conductive 2D metal-organic framework coated separators for lithium-sulfur batteries
Ketjen black was obtained from SCI Materials Hub
18. Chemical Engineering Journal Regulating N-doped biochar with Fe-Mo heterojunctions as cathode in long-life zinc-air battery
Conductive carbon black (Vulcan XC-72R) was purchased from SCI Materials Hub (Wuhu, Anhui).
19. Nature Portfolio Fast-kinetics and high-compatibility aqueous cadmium-metal battery for next-generation energy storage infrastructures (Under review.)
Cd foil (99.9%), Zn foil (99.9%) and polytetrafluoroethylene (PTFE) aqueous dispersion solution were obtained from the supplier of SCI Materials Hub.
All cells were assembled using two-electrode Swagelok-type configurations, supported by SCI Materials Hub.
Celgard 2400 separator (polypropylene (PP), 25 μm) was sourced from SCI Materials Hub.
21. ACS Applied Energy Materials 3D Graphene Nanoflake/Vertically Aligned Carbon Nanotube/CoAl Layered Double Oxide Composites for High-Performance Lithium-Ion Batteries
Carbon-coated aluminum foil was procured from SCI Materials Hub.
22. Chemistry A European Jouranl Regulating the Interfacial Charge Density by Constructing a Novel Zn Anode-Electrolyte Interface for Highly Reversible Zn Anode
Ketjenblack (KB) was purchased from SCI Materials Hub
23. Advanced Functional Materials A Biphasic Membraneless Zinc-Iodine Battery with High Volumetric Capacity
Graphite felt (GF, G650A) was purchased from SCI Materials Hub.
24. Science Advances Alcohol molecule coupling: A universal approach to modulating amorphousness in vanadium-based cathodes for high-rate and durable aqueous zinc-ion batteries
Fueiceel® BM03 Battery test hardware in Figure 6F was obtained from SCI Materials Hub. The Fueiceel® BM03 scale-up battery powering an LED panel.
25. Nature Communications Cooperative Jahn-Teller effect and engineered long-range strain in manganese oxide/graphene superlattice for aqueous zinc-ion batteries
The Zn||MnO2 coin cells were assembled by Zn foil (thickness of 0.1 mm, 99.99%, SCI Materials Hub) counter electrodes
26. Adv. Funct. Mater. Construction of Ionic Conductive Electrode/ Electrolyte Interphases via Li+ Coordination Regulator for 4.7 V Li/ LiNi0.9Co0.05Mn0.05O2 Batteries
The CR2032 coin cells were assembled with a Celgard 2400 separator (SCI Materials Hub.) in a glove box.
27. Journal of Energy Storage Bacterial cellulose mixed with glass fiber as a separator to achieve long cycle life of aqueous zinc-ion batteries
304 stainless steel foil (99.99 % purity, purchased from SCI Materials Hub)
28. Nature Communications Dual-structure-breaking electrolyte enables practical cadmium-metal battery
Two-electrode (Swagelok2E002) and three-electrode (Swagelok3E2e) Swagelok-type configurations were supported by SCI Materials Hub (Supplementary Figs. 102, 103)
The stacked configuration (BM03) for the scaled-up cell was supported by SCI Materials Hub.
Cd foil (99.9%), Zn foil (99.9%), and polytetrafluoroethylene (PTFE) aqueous dispersion solution (D-210C, solid content: 60 w%, size: ~0.25 μm size) were obtained from the supplier of SCI Materials Hub.
29. Nature Nanotechnology A nanoengineered lithium-hosting carbon/zinc oxide composite electrode material for efficient non-aqueous lithium metal batteries
The operando battery pressure sensing equipment (BS01) was purchased from SCI Materials Hub (www.scimaterials.cn).
Nafion 115 membrane (N115) was purchased from SCI Materials Hub.
电解水
1. International Journal of Hydrogen Energy Gold as an efficient hydrogen isotope separation catalyst in proton exchange membrane water electrolysis
The cathodic catalysts of Pt/C (20 wt%, 2–3 nm) and Au/C (20 wt%, 4–5 nm) were purchased from SCI Materials Hub.
2. Small Science Silver Compositing Boosts Water Electrolysis Activity and Durability of RuO2 in a Proton-Exchange-Membrane Water Electrolyzer
Two fiber felts (0.35 mm thickness, SCI Materials Hub) were used as the porous transport layers at both the cathode and the anode.
3. Advanced Functional Materials Hierarchical Crystalline/Amorphous Heterostructure MoNi/NiMoOx for Electrochemical Hydrogen Evolution with Industry-Level Activity and Stability
Anion-exchange membrane (FAA-3-PK-130) was obtained from SCI Materials Hub.
4. Chemical Engineering Journal Electronic configuration of single ruthenium atom immobilized in urchin-like tungsten trioxide towards hydrazine oxidation-assisted hydrogen evolution under wide pH media
The non-reinforced anion exchange membrane (AEM) of the coupled system was obtained from SCI Materials Hub (Fumasep FAA-3-50).
5. Cell Reports Physical Science Non-layered dysprosium oxysulfide as an electron-withdrawing chainmail for promoting electrocatalytic oxygen evolution
Nickel foam (NF) was offered by SCI Materials Hub (Wuhu, China), and was ultrasonicated in HCl solution, ethanol, and acetone in proper order before being used in electrochemical measurements.
6. Materials Today Catalysis Valence engineering via double exchange interaction in spinel oxides for enhanced oxygen evolution catalysis
Commercial Cu foam was purchased from SCI Materials Hub.
7. Advanced Functional Materials Elucidating the Critical Role of Ruthenium Single Atom Sites in Water Dissociation and Dehydrogenation Behaviors for Robust Hydrazine Oxidation-Boosted Alkaline Hydrogen Evolution
The nonreinforced anion exchange membrane (AEM) of the HzOR-assisted OWS system was purchased from SCI Materials Hub (Fumasep FAA-3-50).
8. ACS Omega Boosting Hydrogen Evolution through the Interface Effects of Amorphous NiMoO4–MoO2 and Crystalline Cu
Pt/C (20 wt %) was purchased from SCI Materials Hub.
9. Journal of Colloid and Interface Science The Dual Active Sites Reconstruction on Gelatin In-Situ Derived 3d Porous N-Doped Carbon for Efficient and Stable Water Splitting
Nafion D521 was purchased from SCI Materials Hub.
10. Molecules Interfacial Interaction in NiFe LDH/NiS2/VS2 for Enhanced Electrocatalytic Water Splitting
Carbon cloth (SCI Materials Hub) were employed as substrates for the in-situ formation of VS2 and NiS2/VS2 on its surface via hydrothermal synthesis.
11. Chemical Engineering Journal Mapping hydrogen evolution activity trends of V-based A15 superconducting alloys
Carbon fiber paper (GDS250) was obtained from the SCI materials Hub.
12. Advanced Science A Dual-Cation Exchange Membrane Electrolyzer for Continuous H2 Production from Seawater
The CEMs include GORE-SELECT Gore M788.12 (W. L. Gore & Associates, America) and FUMA Fumasep FKB-PK-130 (FuMa Tech., Co., Ltd., Germany) were provided by SCI Materials Hub.
13. Ind. Eng. Chem. Res. Electrolysis of Tertiary Water Effluents - a Pathway to Green Hydrogen
The PEM electrolyzer stack PSC2000 was purchased from the SCI Materials Hub with a maximum hydrogen production capability of 2000 mL/min. The stack had 8 electrolysis cells with a maximum recommended operation current of 36 A and a voltage of 24 V. Its membrane electrode assembly had an effective area of 56 cm2 per layer and a catalyst loading of 4.0 mg/cm2 on Nafion 117 for Ir black as anode and Pt/C as cathode, respectively. The catalysts were deposited on the Nafion membrane to form a catalyst-coated membrane. Titanium bipolar plates were used to construct the electrolyzer. Water is supplied to the anode side of the electrolyzer stack during operation.
14. Adv. Energy Mater. High-Efficiency Iridium-Yttrium Alloy Catalyst for Acidic Water Electrolysis
Carbon paper (Toray TGP-H-060) was purchased from the SCI Materials Hub.
15. Journal of Alloys and Compounds Amorphous/Crystalline Nife Ldh Hierarchical Nanostructure for Large-Current-Density Electrocatalytic Water Oxidation
The commercial NiFe foam (NFF) was offered by SCI Materials Hub.
W0S1009 Carbon cloth (CC, SCI Materials Hub) were employed as substrate for the in-situ formation of Ru-VS2 and VS2 on its surface via hydrothermal synthesis.
17. Journal of Colloid and Interface Science The dual active sites reconstruction on gelatin in-situ derived 3D porous N-doped carbon for efficient and stable overall water splitting
Nafion D521 was purchased from SCI Materials Hub.
18. Journal of Physics and Chemistry of Solids AgCo bimetallic cocatalyst modified g-C3N4 for improving photocatalytic hydrogen evolution
Nafion D520 dispersion (5 wt%) was purchased from SCI Materials Hub.
19. Separation and Purification Technology NiP2 as an efficient non-noble metal cathode catalyst for enhanced hydrogen isotope separation in proton exchange membrane water electrolysis
Ni supported on Vulcan XC-72, obtained from SCI materials Hub.
20. ACS Appl. Nano Mater. Rapid Electrical-Field-Enhanced Corrosion Endows Ni3Fe/NiFe Layered Double Hydroxide Nanosheets with High-Rate Oxygen Evolution Activity
The Ni3Fe substrate obtained directly from a commercial NiFe foam (nominal Ni 70% at. % + Fe 30 at. %, thickness: 2 mm, porosity: 100 PPI, SCI Materials Hub) was cleaned with acetone, ultrapure water, and ethanol successively and was dried with compressed air.
The proposed thin V-Zirfon separator samples were evaluated at first by water electrolysis at 60 °C using a two-compartment zero-gap electrolyzer (LSCF Alkaline Water Electrolyzer stack [1 cell], purchased from SCI Materials Hub).
22. ACS Materials Lett. Promoting Nonacid Hydrogen Evolution over Ni4Mo/Cu by D-Band Regulation
Commercial Pt/C (20%) from Wuhu Eryi Material Technology Co., Ltd.
Note: Wuhu Eryi Material Technology Co. is a company hold by SCI Materials Hub.
23. Molecules Interfacial Interaction in NiFe LDH/NiS2/VS2 for Enhanced Electrocatalytic Water Splitting
Carbon cloth (CC, SCI Materials Hub) were employed as substrates for the in-situ formation of VS2 and NiS2/VS2 on its surface via hydrothermal synthesis.
24. Nat. Commun. Flexible tungsten disulfide superstructure engineering for efficient alkaline hydrogen evolution in anion exchange membrane water electrolysers
Commercial IrO2, Pt/C (40 wt%), anion exchange membrane (Sustainion X37-50 Grade 60) and carbon fiber cloth (CFC) were obtained from SCI Materials Hub.
25. International Journal of Hydrogen Energy Enhancing performance of anion exchange membrane electrolyzer through modification of carbon paper liquid-gas diffusion layer
The anode is made of Ni–Fe foam (60% Fe + 40% Ni, SCI Materials Hub, China), while the cathode is made of carbon paper electrode. AEM employed is the highly stable PiperION™-A40-HCO3 (with a thickness of 40 μm).
26. Nature Communications Rationally designed Ru catalysts supported on TiN for highly efficient and stable hydrogen evolution in alkaline conditions
Fumasep FAAM-20 anion exchange membrane was purchased from SCI Materials Hub.
27. Nature Communications Redox-mediated decoupled seawater direct splitting for H2 production
Nickel foam (Ni Foam, aperture: 110 ppi, area density: 380 ± 20 g cm−2), platinum carbon (Pt/C, 20 wt%), anion exchange membranes (FAA-3-PK-75), graphite felt (thickness: ~2 mm), and commercial alkaline water electrolyzers were purchased from SCI Materials Hub.
28. ACS Applied Materials & Interface Promoting Reaction Kinetics of the Air Cathode for Neutral Zinc–Air Batteries by the Photothermal Effect
Carbon paper (SGL Carbon Sigracet 22BB) was purchased from SCI Materials Hub.
29. International Journal of Hydrogen Energy Efficient and stable formaldehyde-polyoxometalate battery for dual-decoupled hydrogen production
Firstly, the surface of the Cu foam (1 × 1 cm2, Sci Materials Hub Co.) was oxidized into Cu(OH)2 nanowires (denoted as sample Cu(OH)2 NWs/Cu foam) by (NH4)2S2O8 (0.13 M) in 2.67 M NaOH aqueous solution for 30 min at room temperature.
30. International Journal of Hydrogen Energy Controlled deposition of trimetallic Fe–Ni–V oxides on nickel foam as high-performance electrocatalysts for oxygen evolution reaction
Nickel foam (95–98% porosity, 40 pores/cm), manufactured by SCI Materials Hub, was employed for catalyst fabrication.
31. Journal of Alloys and Compounds Cobalt-doping mediated low-valence Rh centers in rhodium sulfide superconductor for improved electrocatalytic hydrogen evolution
Carbon fiber paper (Spectracarb 2050 A, thickness of 10μm, density of 0.50 g cm−3) was purchased from SCI Materials Hub.
32. J. Mater. Chem. A Promoted surface reconstruction of amorphous nickel boride electrocatalysts by boron dissolution for boosting oxygen evolution reaction
The ink was also sprayed onto a 1.5 mm-thick Ni foam substrate (SCI Materials Hub, China).
33. Advanced Energy Materials Surface Reconstruction Activates Non-Noble Metal Cathode for Proton Exchange Membrane Water Electrolyzer
34. J. Mater. Chem. A Multimetallic layered double hydroxides as efficient and durable oxygen evolution catalysts for anion exchange membrane water electrolysis at high current densities
35. Nano Research Hierarchical NiFe LDH/N-doped Co/nickel foam as highly active oxygen evolution reaction electrode for anion exchange membrane water electrolysis
Commercial PtRu/C and RuO2 were purchased from SCI Materials Hub.
36. J. Mater. Chem. A Ga doping Enhances Oxygen Evolution Reaction Performance and stability of NiFe layered double hydroxides
Nickel foam (NF) was purchased from SCI Materials Hub (99.9%,bore diameter 200-250um, thickness 0.3mm).
37. Journal of Industrial and Engineering Chemistry Optimizing CoFe2O4 coatings on nickel foam via Aerosol-Assisted CVD for superior electrochemical oxygen evolution Catalysis
To fabricate the catalyst, we used nickel foam (95–98 % porosity, with 40 pores/cm) produced by SCI Materials Hub
38. International Journal of Hydrogen Energy Experimental and simulation study of H2 crossover in PEM water electrolysis for high-pressure hydrogen production up to 20 MPa
The high-pressure PEMWE cell used a PFSA membrane (Nafion® 117, DUPONT) coated with 0.75 mg cm−2 of Pt/C (40 %, JOHNSON MATTHEY) on the cathode and 1 mg cm−2 of IrO2 (Accelerate®, SCI-MATERIALS HUB) on the anode.
39. Journal of Alloys and Compounds Ruthenium-mediated synthesis of ultrafine FePtCoNiRu high-entropy alloy nanoparticles for enhanced hydrogen evolution catalysis
Vulcan XC-72R (Ketjen Black) was purchased from SCI Materials Hub.
40. Nano-Micro Letters A Strongly Coupled Cluster Heterostructure with Pt–N-Mo Bonding for Durable and Efficient H2 Evolution in Anion-Exchange Membrane Water Electrolyzers
Carbon paper and anion-exchange membrane (PiperION A40) were obtained from SCI Materials Hub.
41. Journal of Alloys and Compounds N, P-doped coconut shell activated carbon supported Mo2C catalysts for alkaline water electrolysis hydrogen evolution
Nafion solution (D520, 5 wt%) was obtained from SCI Materials Hub.
42. Nature Communications Lanthanum-assisted lattice anchoring of iridium in Co3O4 for efficient oxygen evolution reaction in low-iridium water electrolysis
Carbon paper was obtained from SCI Materials Hub.
43. Nanoscale Two-dimensional 1T-phase MnxIr1−xO2 for high-performance acidic oxygen evolution reaction
Commercial Nafion NR212 films were purchased from SCI Materials Hub.
44. Journal of Physics: Conference Series Stability and durability of nickel-molybdenum foam electrodes in electrocatalytic seawater splitting
The Materials used in the present investigation were prepared by SCI Materials Hub.
电 催 化
1. Nature Communications Electrochemical epoxidation enhanced by C2H4 activation and hydroxyl generation at the Ag/SnO2 interface
Fumion FAA anion exchange resin and FAA-3-50 membranes with a thickness of 50 µm were purchased from SCI Materials Hub.
燃料电池
1. Polymer Sub-two-micron ultrathin proton exchange membrane with reinforced mechanical strength
Gas diffusion electrode (60% Pt/C, Carbon paper) was purchased from SCI Materials Hub.
Fumion FAA-3-solut-10 was obtained from SCI Materials Hub.
3. Journal of Power Sources Boosting the power density of the H3PO4/polybenzimidazole high-temperature proton exchange membrane fuel cell to >1.2 W cm-2 via the deposition of acid-based polymer layers on the catalyst layers
PBI resin (molecular weight: 60000, SCI Materials Hub), carbon paper 39BB (SGL Carbon), 70 wt% Pt/C (TANAKA) were obtained from SCI Materials Hub.
Fumasep FAA-3-20 was obtained from SCI Materials Hub.
5. ACS Sustainable Chem. Eng. Vanadium-Mediated High Areal Capacity Zinc–Manganese Redox Flow Battery
Zinc plate (thickness 1 mm), copper foam (thickness 1.5 mm), and Ketjenblack (KB) EC-600JD were procured from SCI materials hub.
6. ACS Appl. Energy Mater. Investigation of Pd2B- and NiB-Doped Pd–Ni/C Electrocatalysts with High Activity for Methanol Oxidation
Nafion solution (5 wt %, DuPont) was purchased from SCI Materials Hub.
7. Chemical Engineering Journal Loosened Hydrophobic Microphase to Facilitate Ion Channel Formation in Anion Exchange Membrane for Fuel Cell Applications
Fumasep FAA-3-20 was obtained from SCI Materials Hub.
8. Energy Conversion and Management: X Amplified impact of contact uniformity on the performance of low-catalyst-loading fuel cells
Commercial Pt/C (weight ratio of Pt, 5 %), commercial Pt/C (weight ratio of Pt, 10 %), carbon black (Ketjenblack EC-300 J), the expanded polytetrafluoroethylene (ePTFE) reinforced proton exchange membranes (PEM) (manufactured by GORE), and GDL were purchased from SCI Materials Hub.
9. ACS Sustainable Chemistry & Engineering Lignin-Derived Sustainable Cationic Polymers for Efficient High-Temperature Proton Exchange Membrane Fuel Cells
Poly-2,2′-(m-phenylene)-5,5′-bibenzimidazole (PBI, Figure 1a) [(MW)RU ∼ 308 g/mol, Mw ∼ 60,000 g/mol, Tg ∼ 427 °C] was purchased from SCI Materials Hub (China).
10. Journal of Energy StorageAnion-type solvation structure enables stable zinc‑iodine flow batteries
The Nafion 115 produced by Dupont was purchased from SCI Materials Hub and pretreated by the standard acid boiling procedure.
11. Chemical Engineering Journal A novel biofuel cell based on galactose oxidase and bilirubin oxidase for efficient glycerol conversion and electricity generation
W1S1011 carbon cloth (CC) with PTFE&MPL (CeTech) was purchased from SCI Materials Hub (China).
12. ACS Nano Improving Fuel Cell Performance of FeNx-Based Catalysts by Introducing Graphitic Microdomains in the Carbon Matrix
13. Science Advances Manipulating the coordination dice: Alkali metals directed synthesis of Co-N-C catalysts with CoN4 sites
A Nafion D521 dispersion (5 wt %, equivalent weight = 1100), PtRu-C (60% PtRu on high–surface area carbon, Pt:Ru = 1:1, SCI Materials Hub), an alkaline ionomer dispersion (PiperION-A5-HCO3-EtOH, 5 wt %, Versogen Inc.), and anion exchange membrane (PiperION-A type-HCO3, Versogen Inc.) were obtained from SCI Materials Hub.
催化-ORR
1. J. Chem. Eng. Superior Efficiency Hydrogen Peroxide Production in Acidic Media through Epoxy Group Adjacent to Co-O/C Active Centers on Carbon Black
In this paper, Vulcan XC 72 carbon black, ion membrane (Nafion N115, 127 μL), Nafion solution (Nafion D520, 5 wt%), and carbon paper (AvCarb GDS 2230 and Spectracarb 2050A-1050) were purchased from SCI Materials Hub.
2. Journal of Colloid and Interface Science Gaining insight into the impact of electronic property and interface electrostatic field on ORR kinetics in alloy engineering via theoretical prognostication and experimental validation
The 20 wt% Pt3M (M = Cr, Co, Cu, Pd, Sn, and Ir) were purchased from SCI Materials Hub. This work places emphasis on the kinetics of the ORR concerning Pt3M (M = Cr, Co, Cu, Pd, Sn, and Ir) catalysts, and integrates theoretical prognostication and experimental validation to illuminate the fundamental principles of alloy engineering.
3. Catalysis Solution-Phase Synthesis of Co-N-C Catalysts Using Alkali Metals-Induced N-C Templates with Metal Vacancy-Nx sites
In this paper, PtRu-C (60 % PtRu (3.5nm) on High Surface Area Carbon, Pt:Ru = 1:1, SCI Materials Hub), an alkaline dispersion (PiperION-A5-HCO3-EtOH, 5 wt.%, SCI Materials Hub), anion exchange membrane (PiperION-A type-HCO3, SCI Materials Hub) were used as received.
4. Green Chemistry Low Cell Voltage Electrosynthesis of Hydrogen Peroxide
The proton exchange membranes (Nafion-117, 211, and 212) were from SCI Materials Hub. They were pre-treated by 5 v/v% H2O2 solution for 1 h at 80°C and then treated by 10 v/v% H2SO4 aqueous solution for 1 h at 80°C before assembling to flow cell reactor.
5. Chemosphere Sustainable H2O2 production in a floating dual-cathode electro-Fenton system for efficient decontamination of organic pollutants
Ketogen black (EC-600JD) was purchased from SCI Materials Hub.
6. Journal of Materials Science Carbon dot intercalated MXene with an excellent oxygen reduction reaction electrocatalytic performance
Nafion (5 wt%) was purchased from SCI Materials Hub (Nafion D520).
7. Nature Commuinications Precisely designing asymmetrical selenium-based dual-atom sites for efficient oxygen reduction
Vulcan XC-72R carbon black (CAS No.: 1333-86-4, SCI Materials Hub).
8. ChemElectroChem Balancing the Aggregation of Cobalt Phthalocyanine on Carbon Nanohorn for Efficient H2O2 electrosynthesis in Neutral Electrolyte
AvCarb GDS 2230 substrates and Nafion 1110 membranes were purchased from Sci Materials hub.
Nafion solution (D520, 5 wt%) and proton exchange membrane (PEM, Nafion N117) were purchased from Sci Materials Hub.
Carbon cloth (W0S1011) was purchased from SCI Materials Hub.
11. Nature Portfolio Carbon defects enhanced TEMPO redox cycles for high-efficiency urotropine electrosynthesis
TGPH060H hydrophilic carbon paper (CP), VXC-72 carbon black (CB), nickel foam, Nafion D520 dispersion, Nafion N117, and Fumasep FAA-3-PK-75 were gained from SCI Materials Hub.
12. American Institute of Chemical Engineers A tandem electro-thermocatalysis platform for practical hydrogen peroxide-mediated oxygenation reactions at high rates
Sustainion ionomerbinder solution and anion-exchange membrane (AEM, SustainionX37-50 grade 60) was purchased from SCI Materials Hub.
13. Journal of Environmental Chemical Engineering Metal-free heterogeneous electro-Fenton with solid polymer electrolytes: A novel self-supporting system for PPCPs decontamination
Industrial-grade graphite felt (GF) and solid polymer electrolytes (Nafion®N324, N438, N117, and N115) were procured from SCI Materials Hub.
14. Physical Chemistry Chemical Physics Tailoring LaBO3 (B = Mn, Fe, Co, Ni) perovskite oxides for methanol-tolerant oxygen reduction reaction electrocatalysts
Nafion D520 dispersion (5 wt%) was obtained from SCI Materials Hub.
15. Nano Research Surface diffusion-Limited dealloying: A strategy for porosityconstruction in small-sized alloy nanoparticle electrocatalysts
Commercial 20%Pt/C (TKK-TEC-10E20E) was obtained from SCl MaterialsHub.
电容器
1. Journal of Energy Storage Unraveling the detrimental crosstalk between cathode and anode in the aqueous asymmetric capacitor of activated carbon /copper oxide
In this paper, Fumasep FAA-3-50 anion exchange membrane (Thickness 50 μm, surface resistance 0.6–1.5 Ω cm−2, transference number 92–96 %) was bought from SCI Materials Hub.
2. Composites Science and Technology High modulus carbon fiber based composite structural supercapacitors towards reducing internal resistance and improving multifunctional performance
The aluminium tape (Wuhu Eryi Materials Co. LTD) were used as the current collectors.
Note: Wuhu Eryi Material Technology Co. is a company hold by SCI Materials Hub.
Carbon cloth (CeTech W0S1011) was sourced from SCI Materials Hub.
4. ACS Applied Materials & Interfaces Green Polymer Derived Multifunctional Layer Achieving Oriented Diffusion and Controllable Deposition of Zn2+ for Ultra-Durable Zinc-Ion Hybrid Supercapacitors
Zn foil (99.99%) and Copper foil (99.99%) was purchased from SCI Materials Hub.
5. Journal of Water Process Engineering Enhanced electrodialysis by electric double-layer capacitors to minimize membrane use in digestate ammonia recovery: mechanisms and effects
Carbon cloth (W0S1011, >98 %), cation-exchange membrane (FKB-PK-130, with a thickness of 130 μm) were purchased from SCI Materials Hub.
6. ACS Applied Materials & Interfaces Mechano-Electrochemical Synergy of Lignin Cross-Linked PVA Gel Polymer Electrolytes for Wide-Temperature Flexible Supercapacitors
Raw carbon cloth (CeTech W0S1009) was acquired from SCI Materials Hub
催化加氢
1. Nature Communications Electrosynthesis of polymer-grade ethylene via acetylene semihydrogenation over undercoordinated Cu nanodots
In this paper, activated carbon (Vulcan XC-72) was obtained from SCI Materials Hub.
2. Applied Catalysis B: Environment and Energy Spatial-confined effect of CuOx microneedles bundles on TiO2 nanotubes: Reinforcing the adsorption and enrichment of ultralow concentration nitrate for efficient NH3 electrosynthesis
Ion membrane (Nafion N115, 127 μL) was purchased form Sci Materials Hub.
3. Nature Communications Electrosynthesis of NH3 from NO with ampere-level current density in a pressurized electrolyzer
The anion exchange membrane (Fumasep FAB-PK-130, 130 μm) was purchased from SCI Materials Hub.
4. Sustainable Energy Fuels Dibenzyl ether-guided microstructural regulation of PtIrZn catalysts for ammonia electrocatalysis
5. Chemical Engineering Journal Enhanced electrocatalytic nitrate reduction to ammonia via boron-doped copper foam
Ni foam was purchased from the Sci Materials Hub Co., Ltd. (Anhui, China).
6. Nature Communications Modulating Ru-Co bond lengths in Ru1Co single-atom alloys through crystal phase engineering for electrocatalytic nitrate-to-ammonia conversion
Nafion 211 membrane (diameter: 3 cm, thickness: 25.4 μm) was purchased from SCI Materials Hub.
7. Nature Communications Revealing and modulating catalyst reconstruction for highly efficient electrosynthesis of ammonia
Toray Carbon Paper (CP, TGP-H-060), Nafion 211 membrane, Nafion N117 membrane, and membrane electrode device were obtained from the Sci materials hu
Hydrophilic carbon paper and carbon black, carbon rod electrode was purchased from SCI Materials HUB
9. Separation and Purification Technology A novel membrane-free ion enrichment electrolyzer recovers ammonia from digestate
Carbon cloth (W0S1011, >98 %), cation-exchange membrane (FKB-PK-130, with a thickness of 130 μm), and anion-exchange membrane (FAS-PET-130, with a thickness of 130 μm) were purchased from SCI Materials Hub.
水处理
1. Water Research Electro-peroxone with solid polymer electrolytes: A novel system for degradation of plasticizers in natural effluents
In this paper, Nafion® N324 (SCI Materials Hub), between a 15 cm2 (3 cm × 5 cm) graphite plate anode and a graphite felt cathode (EP-SPE system)
表征
1. Chemical Engineering Journal Electrochemical reconstitution of Prussian blue analogue for coupling furfural electro-oxidation with photo-assisted hydrogen evolution reaction
An Au nanoparticle film was deposited on the total reflecting plane of a single reflection ATR crystal (SCI Materials Hub, Wuhu, China) via sputter coater.
理论计算
1. Sustainable Energy & Fuels A desulfurization fuel cell with alkali and sulfuric acid byproducts: a prototype and a model
A Fumasep®FKD-PK-75 membrane was used as the cation exchange membrane, in which the the oxygen permeability of membrane was about 1 cm3(STP)/(s cm2 cm Hg) [Ref. SCI Materials Hub]
器件
1. Journal of Materials Science: Materials in Electronics Preparation and application of electrical conductive composites with skin temperature-triggered attachable and on-demand detachable adhesion
Carbon black (CB, Ketjenblack EC 600JD) was purchased from SCI Materials Hub.
2. Chemosphere Highly Sensitive Electrochemical Sensor for Lead Ion Based on Bi-Mof/Conducting Polymer Composites
Nafion D520 Dispersion (Alcohol based 1000 EW at 5wt%) was purchased from SCI Materials Hub.
3. ACS Nano High-Performance Graphdiyne Oxide/Au Nanoparticle Electrode for Electrochemical Non-enzymatic Glucose Sensor
Carbon cloth was purchased from SCI Materials Hub (CeTech W0S1011).
材料合成
1. Acta Materialia In situ epitaxial thickening of wafer-scale, highly oriented nanotwinned Ag on tailored polycrystalline Cu substrates
Single-crystal Cu (1 cm × 1 cm) substrates with a (111) orientation were purchased from SCI Materials Hub.
2. Journal of The Electrochemical Society One-Pot Electrodeposition of a PANI:PSS/MWCNT Nanocomposite on Carbon Paper for Scalable Determination of Ascorbic Acid
Raw carbon paper was purchased from SCI Materials Hub
3. Polymer Composites Constructing High-Performance Composite Bipolar Plates via Multidimensional Carbon Networks
KB (EC-600JD), Acetylene black (CB11), and Carbon black (XC-72) were purchased from SCI Materials Hub
催化降解
1. Journal of Environmental Chemical Engineering Conversion of CoNiFe-LDH to CoNiFe-MOF/LDH as catalyst for efficient heterogeneous electro-Fenton degradation of sulfonamide antibiotics
The hydrophobic microporous laminated carbon paper (HML-CP) (2 cm × 2.5 cm) was chosen as a cathode and fabricated by Wuhu Eryi Material Technology Co. (Anhui, China).
Note: Wuhu Eryi Material Technology Co. is a company hold by SCI Materials Hub.
2. Nature Communications Scale-up upcycling of waste polyethylene terephthalate plastics to biodegradable polyglycolic acid plastics
Nickle foam (NF) and Nafion N117 were obtained from SCI Materials Hub.
催化电解
1. Chemical Engineering Journal Modulation of energy barrier of reaction steps over S-doped Ni(OH)2/Cu composites to achieve high-performance urea electrolysis catalysts
Commercial Pt/C (20 wt%) was purchased from Wuhu Eryi Material Technology Co., LTD.
Note: Wuhu Eryi Material Technology Co. is a company hold by SCI Materials Hub.
2. Chemical Engineering Journal Efficient Catalysis for Acidic Methanol Oxidation: Exploration of a Low-Platinum Quaternary Alloy Catalyst Via a Two-Step Method
Nafion (5%) was purchased from SCI Materials Hub.
环 境
1. Journal of Materials Research and TechnologyTribocorrosion performance of TC4 anodized/carbon fiber composite in marine environment
Carbon fiber cloth WOS1011H(M) purchased from Wuhu Eryi Materials Technology Co.
Note: Wuhu Eryi Material Technology Co. is a company hold by SCI Materials Hub.
2. Adv. Funct. Mater. Modulating NFO@N-MWCNTs/CC Interfaces to Construct Multilevel Synergistic Sites (Ni/Fe-O-N-C) for Multi-Heavy Metal Ions Sensing
Carbon cloth (W0S1011) was acquired from SCI Materials Hub (www.scimaterials.cn).
热 电
1. Chemical Engineering Journal High power density charging-free thermally regenerative electrochemical flow cycle for low-temperature thermoelectric conversion
The heat exchangers are composed of 20 μm thick titanium foil (SCI Materials Hub), 1 mm thick rubber gasket and 2 cm thick organic glass from the inside to the outside.
其 它
1. Ceramics International Superhydrophobic carbon fiber composite coatings based on TC4 titanium alloy for improving corrosion resistance
Carbon fiber cloth was purchased from SCI Materials Hub.
2. Electrochimica Acta Integrated electrochemically assisted absorbers for the removal of Carbon dioxide
39 BB carbon paper was obtained from SCI Materials Hub.
3. Journal of Hazardous Materials Chain assembly of Rhodococcus bacteria with O-doped g-C3N4 for photocatalysis mediated high-performance partial nitrification: From nitrite resource evolution to device application
Fumasep FAA-3-PK-130, diameter 30 mm, was purchased from SCI Materials Hub.
4. Nature Communications High selectivity framework polymer membranes chemically tuned towards fast anion conduction
Sustainion® X37-50 Grade RT membrane was purchased from SCI Materials Hub, and was pretreated by soaking in 1 M KOH for 24 h according to a reported procedure.
5. Polymer Composites Constructing High-Performance Composite Bipolar Plates via Multidimensional Carbon Networks
KB (EC-600JD), Acetylene black (CB11), and Carbon black (XC-72) were purchased from SCI Materials Hub Co. Ltd. China.
|
为科学研究提供来源广泛的材料 材料合成仪器装置及材料解决方案 备案号:皖ICP备2021011042号-1 |
关于我们 |


