利用原位生产的质子受体快速重构氰氨化镍铁氢,实现高效氧气进化

Muhammad Ajmal, Shishi Zhang, Xiaolei Guo, Xiaokang Liu, Chengxiang Shi, Ruijie Gao, Zhen-Feng Huang, Lun Pan, Xiangwen Zhang, Ji-Jun Zou
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引用次数: 0

摘要

由过渡金属化合物通过不可逆重构制造而成的金属氢氧化物(MOOH)是一种高效的氧进化反应(OER)电催化剂,但却面临着吸附能缩放关系和缓慢的去质子化动力学的限制。在此,我们提出了掺杂铁的氰氨化镍氢(NiFe-HC),它在 OER 后可迅速表面重构为 NiFe(OOH)-HC。原位拉曼光谱和密度泛函理论(DFT)计算显示,在 OER 条件下,-HNCN- 转化为 -NCN- 配体,并在活性位点上均匀分布。DFT 计算进一步表明,铁主要充当活性位点,而 -NCN- 配体则通过在速率决定步骤(RDS)中促进 *OH 的去质子化,有效地充当质子接受体,从而促进 OER。铁和-NCN-配体之间的集合效应是 NiFe(OOH)-HC(20 mA-cm 时电压为 190 mV)卓越电催化性能的基础。这一发现为设计创新的 MOOH 预催化剂以提高 OER 效率提供了启示。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Rapid reconstruction of nickel iron hydrogen cyanamide with in-situ produced proton acceptor for efficient oxygen evolution
Metal oxyhydroxide (MOOH) through irreversible reconstructed fabrication from transition metal compounds are highly efficient oxygen evolution reaction (OER) electrocatalysts but face limits from adsorption energy scaling relationship and sluggish deprotonation kinetics. Herein, we present Fe-doped nickel hydrogen cyanamide (NiFe-HC), which is rapidly surface reconstructed into NiFe(OOH)-HC after OER. In-situ Raman spectroscopy and density functional theory (DFT) calculations, revealed that under OER conditions, -HNCN- converts into -NCN- ligand incorporating its abundant and uniform distribution across the active sites. DFT calculations further indicate that Fe predominantly acts as the active site, with -NCN- ligands contribute to the OER by facilitating the deprotonation of *OH in the rate-determining step (RDS), acting effectively as proton acceptor. The ensemble effect between Fe and -NCN- ligand forms the foundation of the exceptional electrocatalytic performance of NiFe(OOH)-HC (190 mV at 20 mA·cm). This discovery offers insights for designing innovative MOOH pre-catalysts to enhance OER efficiency.
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