Hong Yu-Rim, Dutta Soumen, Jang Sun Woo, Ngome Okello Odongo Francis, Im Hyeonae, Choi Si-Young, Han Jeong Woo, Lee In Su
Creative Research Initiative Center for Nanospace-confined Chemical Reactions (NCCR) and Department of Chemistry, Pohang University of Science and Technology (POSTECH), Pohang 37673, Korea.
Department of Materials Science & Engineering, Pohang University of Science and Technology (POSTECH), Pohang 37673, Korea.
J Am Chem Soc. 2022 May 25;144(20):9033-9043. doi: 10.1021/jacs.2c01589. Epub 2022 Apr 29.
Despite the Pt-catalyzed alkaline hydrogen evolution reaction (HER) progressing via oxophilic metal-hydroxide surface hybridization, maximizing Pt reactivity alongside operational stability is still unsatisfactory due to the lack of well-designed and optimized interface structures. Producing atomically flat two-dimensional Pt nanodendrites () through our 2D nanospace-confined synthesis strategy, this study tackles the insufficient interfacial contact effect during HER catalysis by realizing an area-maximized and firmly bound lateral heterointerface with NiFe-layered double hydroxide (LDH). The well-oriented {110} crystal surface exposure of Pt promotes electronic interplay that bestows strong LDH binding. The charge-relocated interfacial bond in accelerates the hydrogen generation steps and achieves nearly the highest reported Pt mass activity enhancement (∼11.2 times greater than 20 wt % Pt/C) and significantly improved long-term operational stability. This work uncovers the importance of the shape and facet of Pt to create heterointerfaces that provide catalytic synergy for efficient hydrogen production.
尽管铂催化的碱性析氢反应(HER)通过亲氧金属氢氧化物表面杂化进行,但由于缺乏精心设计和优化的界面结构,在最大化铂反应活性以及操作稳定性方面仍不尽人意。通过我们的二维纳米空间受限合成策略制备出原子级平整的二维铂纳米枝晶,本研究通过实现与镍铁层状双氢氧化物(LDH)面积最大化且牢固结合的横向异质界面,解决了HER催化过程中界面接触效应不足的问题。铂的择优取向{110}晶体表面暴露促进了电子相互作用,从而实现了与LDH的强结合。[此处原文似乎有缺失内容]中的电荷重定位界面键加速了产氢步骤,实现了近乎已报道的最高铂质量活性增强(比20 wt% Pt/C高约11.2倍),并显著提高了长期操作稳定性。这项工作揭示了铂的形状和晶面对于创建提供高效产氢催化协同作用的异质界面的重要性。