首页> 美国卫生研究院文献>Advanced Science >Immobilization of Ni3Co Nanoparticles into N‐Doped Carbon Nanotube/Nanofiber Integrated Hierarchically Branched Architectures toward Efficient Overall Water Splitting
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Immobilization of Ni3Co Nanoparticles into N‐Doped Carbon Nanotube/Nanofiber Integrated Hierarchically Branched Architectures toward Efficient Overall Water Splitting

机译:将Ni3Co纳米粒子固定到N掺杂碳纳米管/纳米纤维集成的分层分支架构中以实现有效的总水分解

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摘要

Exploring cost‐effective and high‐performance bifunctional electrocatalysts for both hydrogen evolution reaction (HER) and oxygen evolution reaction (OER) is of paramount importance for the advancement of H production technology, yet remains a huge challenge. Herein, a simple electrospinning–pyrolysis strategy is developed to directly immobilize uniform Ni Co nanoparticles into a hierarchical branched architecture constructed by in situ formed N‐doped carbon‐nanotube‐grafted carbon nanofibers. The elaborate construction of such hybrid hierarchical architecture can effectively modulate the electronic structure of the active sites, enlarge the exposure of active sites, and facilitate the electron transfer and mass diffusion, favoring both the HER and OER. As a result, the optimized catalyst requires relatively low overpotentials of 114 and 243 mV for HER and OER, respectively, to deliver a current density of 10 mA cm in 0.1 KOH electrolyte. When employed as a bifunctional catalyst for overall water splitting, the resultant catalyst shows a low cell voltage of 1.57 V to achieve a current density of 10 mA cm , along with an impressive stability without noticeable attenuation even after 27 h. This work presents a successful demonstration in optimizing the electrocatalytic performance of Ni‐based bifunctional electrocatalysts by simultaneously considering modulation of electronic structure, hybridization with carbon substrate, and nanostructuring through a facile synthetic strategy, which provides a new avenue to the design of a rich variety of robust transition‐metal‐based electrocatalysts for large‐scale water electrolysis.
机译:对于制氢反应(HER)和制氧反应(OER)而言,探索具有成本效益和高性能的双功能电催化剂对制氢技术的发展至关重要,但仍然是巨大的挑战。本文中,开发了一种简单的静电纺丝-热解策略,将均匀的Ni Co纳米颗粒直接固定到由原位形成的N掺杂碳纳米管接枝碳纳米纤维构成的分层分支体系中。这种混合分层体系结构的精心构建可以有效地调节活性位点的电子结构,扩大活性位点的暴露范围,并促进电子转移和质量扩散,从而有利于HER和OER。结果,优化的催化剂对于HER和OER分别需要114和243 mV的较低电势,以在0.1 KOH电解液中提供10 mA cm的电流密度。当用作整体水分解的双官能催化剂时,所得的催化剂显示出1.57 V的低电池电压,以实现10 mA cm的电流密度,以及令人印象深刻的稳定性,即使经过27 h也没有明显的衰减。通过同时考虑电子结构的调节,与碳底物的杂交以及通过简便的合成策略进行纳米结构化,该工作展示了在优化镍基双功能电催化剂的电催化性能方面的成功演示,这为丰富的品种设计提供了新途径用于大型水电解的强大的过渡金属基电催化剂的制造。

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