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CoP Nanoframes as Bifunctional Electrocatalysts for Efficient Overall Water Splitting

机译:COP纳米射灯作为双功能电催化剂,用于高效的整体水分裂

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Transition-metal phosphides have been shown to be promising electrocatalysts in water for both hydrogen evolution reaction (HER) and oxygen evolution reaction (OER). To maximize reactivity toward both entails limiting the catalyst size while maintaining reactivity and avoiding aggregation. Frame-like hollow nanostructures (nanoframes) provide the required open structure with sufficient channels into the interior volume. We demonstrate here the design and synthesis of CoP nanoframes (CoP NFs) by a strategy involving precipitation, chemical etching, and low-temperature phosphidation steps. It results in impressive bifunctional catalytic activities for both HER and OER and consequently enables a highly efficient water electrolyzer with a current density of 10 mA cm(-2) driven by a cell voltage of only 1.65 V. The strategy has been generalized for the preparation of nanoframe Co dichalcogenides CoX2 NFs, with X = S, Se, and Te. The results of electrochemical measurements, supported by density functional theory calculations, show that HER catalytic activities for the series follow the sequence: CoP NFs > CoSe2 NFs > CoS2 NFs > CoTe2 NFs.
机译:过渡金属磷酸已被证明在水中有前途的电催化剂,用于氢进化反应(她)和氧气进化反应(oer)。最大化对两者的反应性限制在保持催化剂大小的同时保持反应性和避免聚集。框架状中空纳米结构(纳米rames)提供具有足够通道的所需的开放结构进入内部体积。我们展示了涉及沉淀,化学蚀刻和低温磷化步骤的策略的Cop纳米克拉姆(Cop NFS)的设计和合成。它导致她和伊尔的令人印象深刻的双功能催化活性,因此通过电池电压驱动的电池电压驱动的电流密度为1.65V的电池电压的高效水电解槽。该策略已经推广了制剂纳米克拉族二均致原酯COX2 NFS,用X = S,SE和TE。通过密度官能理论计算支持的电化学测量结果表明,她对该系列的催化活性遵循序列:COP NFS> COSE2 NFS> COT2 NFS> COTE2 NFS。

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