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一种高效的原子级薄弯曲钯铱双金属烯电催化剂。

A highly efficient atomically thin curved PdIr bimetallene electrocatalyst.

作者信息

Lv Fan, Huang Bolong, Feng Jianrui, Zhang Weiyu, Wang Kai, Li Na, Zhou Jinhui, Zhou Peng, Yang Wenxiu, Du Yaping, Su Dong, Guo Shaojun

机构信息

School of Materials Science and Engineering, Peking University, Beijing 100871, China.

Department of Applied Biology and Chemical Technology, Hong Kong Polytechnic University, Hong Kong, China.

出版信息

Natl Sci Rev. 2021 Feb 2;8(9):nwab019. doi: 10.1093/nsr/nwab019. eCollection 2021 Sep.

Abstract

The multi-metallene with an ultrahigh surface area has great potential in precise tuning of surface heterogeneous d-electronic correlation by surface strain effect for the distinctive surface electronic structure, which is a brand new class of promising 2D electrocatalyst for sustainable energy device application. However, achieving such an atomically thin multi-metallene still presents a great challenge. Herein, we present a new synthetic method for an atomic-level palladium-iridium (PdIr) bimetallene with an average thickness of only ∼1.0 nm for achieving superior catalysis in the hydrogen evolution reaction (HER) and the formic acid oxidation reaction (FAOR). The curved PdIr bimetallene presents a top-ranked high electrochemical active area of 127.5 ± 10.8 m g in the reported noble alloy materials, and exhibits a very low overpotential, ultrahigh activity and improved stability for HER and FAOR. DFT calculation reveals that the PdIr bimetallene herein has a unique lattice tangential strain, which can induce surface distortion while concurrently creating a variety of concave-convex featured micro-active regions formed by variously coordinated Pd sites agglomeration. Such a strong strain effect correlates the abnormal on-site active 4d-t-orbital Coulomb correlation potential and directly elevates orbital-electronegativity exposure within these active regions, resulting in a preeminent barrier-free energetic path for significant enhancement of FAOR and HER catalytic performance.

摘要

具有超高表面积的多金属烯通过表面应变效应精确调节表面非均相d电子相关性以获得独特的表面电子结构方面具有巨大潜力,这是一类全新的、有望用于可持续能源装置应用的二维电催化剂。然而,制备这种原子级薄的多金属烯仍然面临巨大挑战。在此,我们提出了一种新的合成方法,用于制备平均厚度仅约1.0 nm的原子级钯 - 铱(PdIr)双金属烯,以在析氢反应(HER)和甲酸氧化反应(FAOR)中实现优异的催化性能。弯曲的PdIr双金属烯在已报道的贵金属合金材料中呈现出排名靠前的高电化学活性面积,为127.5±10.8 m g ,并且在HER和FAOR中表现出非常低的过电位、超高活性和改善的稳定性。密度泛函理论计算表明,本文中的PdIr双金属烯具有独特的晶格切向应变,这可以诱导表面畸变,同时产生由各种配位的Pd位点团聚形成的各种凹凸特征的微活性区域。这种强应变效应使异常的原位活性4d - t轨道库仑相关势相关联,并直接提高这些活性区域内的轨道电负性暴露,从而为显著提高FAOR和HER催化性能产生卓越的无势垒能量路径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b024/8433090/8a96d56e49a6/nwab019fig1.jpg

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