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Stringing Bimetallic Metal–Organic Framework‐Derived Cobalt Phosphide Composite for High‐Efficiency Overall Water Splitting

机译:将双金属金属-有机骨架衍生的磷化钴复合材料拉丝以实现高效的总水分解

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摘要

Water electrolysis is an emerging energy conversion technology, which is significant for efficient hydrogen (H ) production. Based on the high‐activity transition metal ions and metal alloys of ultrastable bifunctional catalyst, the hydrogen evolution reaction (HER) and oxygen evolution reaction (OER) are the key to achieving the energy conversion method by overall water splitting (OWS). This study reports that the Co‐based coordination polymer (ZIF‐67) anchoring on an indium–organic framework (InOF‐1) composite (InOF‐1@ZIF‐67) is treated followed by carbonization and phosphorization to successfully obtain CoP nanoparticles–embedded carbon nanotubes and nitrogen‐doped carbon materials (CoP‐InNC@CNT). As HER and OER electrocatalysts, it is demonstrated that CoP‐InNC@CNT simultaneously exhibit high HER performance (overpotential of 153 mV in 0.5 H SO and 159 mV in 1.0 KOH) and OER performance (overpotential of 270 mV in 1.0 KOH) activities to reach the current density of 10 mA cm . In addition, these CoP‐InNC@CNT rods, as a cathode and an anode, can display an excellent OWS performance with η = 1.58 V and better stability, which shows the satisfying electrocatalyst for the OWS compared to control materials. This method ensures the tight and uniform growth of the fast nucleating and stable materials on substrate and can be further applied for practical electrochemical reactions.
机译:水电解是一种新兴的能量转换技术,对于有效生产氢(H)具有重要意义。基于超稳定双功能催化剂的高活性过渡金属离子和金属合金,氢分解反应(HER)和氧分解反应(OER)是通过整体水分解(OWS)实现能量转换方法的关键。这项研究报告称,对锚固在铟-有机骨架(InOF-1)复合材料(InOF-1 @ ZIF-67)上的Co基配位聚合物(ZIF-67)进行了碳化和磷化处理,从而成功获得了CoP纳米颗粒–嵌入式碳纳米管和氮掺杂碳材料(CoP-InNC @ CNT)。作为HER和OER电催化剂,已证明CoP-InNC @ CNT同时具有较高的HER性能(0.5 H SO中153 mV的超电势和1.0 KOH中159 mV的超电势)和OER性能(1.0 KOH中270 mV的超电势)的活性。达到10 mA cm的电流密度。此外,这些CoP-InNC @ CNT棒(作为阴极和阳极)可以显示出出色的OWS性能,η= 1.58 V和更好的稳定性,与对照材料相比,它显示出令人满意的OWS电催化剂。该方法确保了快速成核且稳定的材料在基底上的紧密而均匀的生长,并且可以进一步应用于实际的电化学反应。

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