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用于高效析氢的密堆积多晶型界面亚稳过渡金属

Closest Packing Polymorphism Interfaced Metastable Transition Metal for Efficient Hydrogen Evolution.

作者信息

Tan Xinyue, Geng Shize, Ji Yujin, Shao Qi, Zhu Ting, Wang Pengtang, Li Youyong, Huang Xiaoqing

机构信息

College of Chemistry, Chemical Engineering and Materials Science, Soochow University, Jiangsu, 215123, China.

Institute of Functional Nano & Soft Materials (FUNSOM), Soochow University, Jiangsu, 215123, China.

出版信息

Adv Mater. 2020 Oct;32(40):e2002857. doi: 10.1002/adma.202002857. Epub 2020 Aug 31.

Abstract

Metastable materials are promising because of their catalytic properties, high-energy structure, and unique electronic environment. However, the unstable nature inherited from the metastability hinders further performance improvement and practical applications of these materials. Herein, this limitation is successfully addressed by constructing an in situ polymorphism interface (inf) between the metastable hexagonal-close-packed (hcp) phase and its stable counterpart (face-centered cubic, fcc) in cobalt-nickel (CoNi) alloy. Calculations reveal that the interfacial synergism derived from the hcp and fcc phases lowers the formation energy and enhances stability. Consequently, the optimized CoNi-inf exhibits an exceptionally low potential of 72 mV at 10 mA cm and a Tafel slope of 57 mV dec for the hydrogen evolution reaction (HER) in 1.0 m KOH. Furthermore, it is superior to most state-of-the-art non-noble-metal-based HER catalysts. No noticeable activity decay or structural changes are observed even over 14 h of catalysis. The computational simulation further rationalizes that the interface of CoNi-inf with a suitable d-band center provides uniform sites for hydrogen adsorption, leading to a distinguished HER catalytic activity. This work, therefore, presents a new route for designing metastable catalysts for potential energy conversion.

摘要

亚稳材料因其催化性能、高能结构和独特的电子环境而颇具前景。然而,亚稳性所带来的不稳定特性阻碍了这些材料进一步提升性能及实际应用。在此,通过在钴镍(CoNi)合金的亚稳六方密堆积(hcp)相与其稳定对应相(面心立方,fcc)之间构建原位多晶型界面(inf),成功解决了这一限制。计算结果表明,hcp相和fcc相产生的界面协同作用降低了形成能并提高了稳定性。因此,优化后的CoNi-inf在1.0 m KOH中对于析氢反应(HER)在10 mA cm时表现出72 mV的极低过电位以及57 mV dec的塔菲尔斜率。此外,它优于大多数最先进的非贵金属基HER催化剂。即使经过14小时的催化,也未观察到明显的活性衰减或结构变化。计算模拟进一步表明,具有合适d带中心的CoNi-inf界面为氢吸附提供了均匀的位点,从而产生卓越的HER催化活性。因此,这项工作为设计用于潜在能量转换的亚稳催化剂提供了一条新途径。

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