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两步脱合金普鲁士蓝类似物纳米立方体中的不对称铁-氧-镍对位点富集线性吸附中间体以实现高效析氧

Asymmetric Fe-O-Ni Pair Sites in Two-Step Dealloyed Prussian Blue Analogue Nanocubes Enrich Linear-Adsorbed Intermediates for Efficient Oxygen Evolution.

作者信息

Cai Chao, Huang Xiaomin, Han Shaobo, Xie Chenlong, Yang Fei, Wu Xu, Ye Siyu, Huang Limin, Zheng Liyao, Yang Xuming, Zhong Ruyi, Jiang Ming, Gu M Danny

机构信息

Eastern Institute for Advanced Study, Eastern Institute of Technology, Ningbo, Zhejiang 315200, P. R. China.

Ningbo Institute of Digital Twin, Ningbo 315200, P. R. China.

出版信息

ACS Nano. 2025 Sep 9. doi: 10.1021/acsnano.5c07899.

DOI:10.1021/acsnano.5c07899
PMID:40925013
Abstract

Ni-Fe (oxy)hydroxides are among the most active oxygen evolution reaction (OER) catalysts in alkaline media. However, achieving precise control over local asymmetric Fe-O-Ni active sites in Ni-Fe oxyhydroxides for key oxygenated intermediates' adsorption steric configuration regulation of the OER is still challenging. Herein, we report a two-step dealloying strategy to fabricate asymmetric Fe-O-Ni pair sites in the shell of NiOOH@FeOOH/NiOOH heterostructures from NiFe Prussian blue analogue (PBA) nanocubes, involving anion exchange and structure reconstruction. Initially, ammonium sulfide forms a Ni-S surface layer on NiFe-PBA (partial sulfidation), followed by anodic polarization to convert the sulfide shell to amorphous NiOOH while triggering Fe exsolution and redeposition. The combinations of ex/in situ characterizations and theoretical calculations reveal that, compared to the symmetric Ni-O-Ni, the asymmetric Fe-O-Ni structure shortens Ni-O bonds and upshifts the d-band center. This preferentially enriching linear-adsorbed oxygenated intermediates (LAOs) over bridging-adsorbed oxygenated intermediates (BAOs), lowering the energy barrier of the rate-determining step of OH deprotonation to O from 1.70 eV (BAO pathway) to 1.54 eV (LAO pathway). The optimized catalyst achieves an ultralow overpotential of 232 mV at 10 mA cm and a Tafel slope of 46 mV dec on a glassy carbon electrode, along with a high durability (>48 h). Furthermore, the catalyst can achieve a high current density of 1 A cm at 1.69 V in a laboratory-scale electrolyzer for 600 h, demonstrating its potential for practical application. This work elucidates the vital role of asymmetric sites in reshaping intermediate adsorption steric configurations, offering deep insights into designing high-efficiency OER catalysts.

摘要

镍铁(羟基)氧化物是碱性介质中最具活性的析氧反应(OER)催化剂之一。然而,要精确控制镍铁羟基氧化物中局部不对称的Fe-O-Ni活性位点,以调节OER关键含氧中间体的吸附空间构型,仍然具有挑战性。在此,我们报道了一种两步脱合金策略,用于从镍铁普鲁士蓝类似物(PBA)纳米立方体在NiOOH@FeOOH/NiOOH异质结构的壳层中制备不对称的Fe-O-Ni对位点,该策略涉及阴离子交换和结构重建。首先,硫化铵在NiFe-PBA上形成Ni-S表面层(部分硫化),然后进行阳极极化,将硫化物壳层转化为非晶态NiOOH,同时触发铁的析出和再沉积。原位/非原位表征与理论计算相结合表明,与对称的Ni-O-Ni相比,不对称的Fe-O-Ni结构缩短了Ni-O键并使d带中心上移。这优先富集线性吸附的含氧中间体(LAOs)而非桥连吸附的含氧中间体(BAOs),将OH去质子化生成O的速率决定步骤的能垒从1.70 eV(BAO途径)降低到1.54 eV(LAO途径)。优化后的催化剂在玻碳电极上于10 mA cm时实现了232 mV的超低过电位和46 mV dec的塔菲尔斜率,同时具有高耐久性(>48 h)。此外,该催化剂在实验室规模的电解槽中于1.69 V时可实现1 A cm的高电流密度,持续600 h,证明了其实际应用潜力。这项工作阐明了不对称位点在重塑中间体吸附空间构型中的关键作用,为设计高效OER催化剂提供了深刻见解。

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