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用于电催化CO还原的二维单晶六方铋烯纳米片的夹心外延生长

Sandwiched Epitaxy Growth of 2D Single-Crystalline Hexagonal Bismuthene Nanoflakes for Electrocatalytic CO Reduction.

作者信息

Hu Yi, Liang Junchuan, Gu Yuming, Yang Songyuan, Zhang Wenjun, Tie Zuoxiu, Ma Jing, Jin Zhong

机构信息

State Key Laboratory of Coordination Chemistry, MOE Key Laboratory of Mesoscopic Chemistry, MOE Key Laboratory of High Performance Polymer Materials and Technology, Jiangsu Key Laboratory of Advanced Organic Materials, School of Chemistry and Chemical Engineering, Nanjing University, Nanjing, Jiangsu 210023, P. R. China.

Jiangsu BTR Nano Technology Co., Ltd., Changzhou, Jiangsu 213200, P. R. China.

出版信息

Nano Lett. 2023 Nov 22;23(22):10512-10521. doi: 10.1021/acs.nanolett.3c03310. Epub 2023 Nov 6.

Abstract

Two-dimensional (2D) bismuthene is predicted to possess intriguing physical properties, but its preparation remains challenging due to the high surface energy constraint. Herein, we report a sandwiched epitaxy growth strategy for the controllable preparation of 2D bismuthene between a Cu foil substrate and a -BN covering layer. The top -BN layer plays a crucial role in suppressing the structural transformation of bismuthene and compensating for the charge transfer from the bismuthene to the Cu(111) surface. The bismuthene nanoflakes present a superior thermal stability up to 500 °C in air, attributed to the passivation effect of the -BN layer. Moreover, the bismuthene nanoflakes demonstrate an ultrahigh faradaic efficiency of 96.3% for formate production in the electrochemical CO reduction reaction, which is among the highest reported for Bi-based electrocatalysts. This study offers a promising approach to simultaneously synthesize and protect 2D bismuthene nanoflakes, which can be extended to other 2D materials with a high surface energy.

摘要

二维(2D)铋烯预计具有引人入胜的物理性质,但由于高表面能限制,其制备仍然具有挑战性。在此,我们报告了一种夹心外延生长策略,用于在铜箔衬底和 -BN覆盖层之间可控地制备二维铋烯。顶部的 -BN层在抑制铋烯的结构转变以及补偿从铋烯到Cu(111)表面的电荷转移方面起着关键作用。铋烯纳米片在空气中高达500°C时表现出优异的热稳定性,这归因于 -BN层的钝化作用。此外,铋烯纳米片在电化学CO还原反应中对甲酸盐生成表现出96.3%的超高法拉第效率,这是报道的铋基电催化剂中最高的之一。这项研究提供了一种有前景的方法来同时合成和保护二维铋烯纳米片,该方法可扩展到其他具有高表面能的二维材料。

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