Gu Jialun, Li Lanxi, Xie Youneng, Chen Bo, Tian Fubo, Wang Yanju, Zhong Jing, Shen Junda, Lu Jian
Centre for Advanced Structural Materials, City University of Hong Kong Shenzhen Research Institute, Greater Bay Joint Division, Shenyang National Laboratory for Materials Science, Shenzhen, China.
Department of Mechanical Engineering, City University of Hong Kong, Hong Kong, China.
Nat Commun. 2023 Sep 4;14(1):5389. doi: 10.1038/s41467-023-40972-w.
Low-dimensional nanocrystals with controllable defects or strain modifications are newly emerging active electrocatalysts for hydrogen-energy conversion and utilization; however, a crucial challenge remains in insufficient stability due to spontaneous structural degradation and strain relaxation. Here we report a Turing structuring strategy to activate and stabilize superthin metal nanosheets by incorporating high-density nanotwins. Turing configuration, realized by constrained orientation attachment of nanograins, yields intrinsically stable nanotwin network and straining effects, which synergistically reduce the energy barrier of water dissociation and optimize the hydrogen adsorption free energy for hydrogen evolution reaction. Turing PtNiNb nanocatalyst achieves 23.5 and 3.1 times increase in mass activity and stability index, respectively, compared against commercial 20% Pt/C. The Turing PtNiNb-based anion-exchange-membrane water electrolyser with a low Pt mass loading of 0.05 mg cm demonstrates at least 500 h stability at 1000 mA cm, disclosing the stable catalysis. Besides, this new paradigm can be extended to Ir/Pd/Ag-based nanocatalysts, illustrating the universality of Turing-type catalysts.
具有可控缺陷或应变修饰的低维纳米晶体是新兴的用于氢能转换和利用的活性电催化剂;然而,由于自发的结构降解和应变弛豫,稳定性不足仍然是一个关键挑战。在此,我们报告一种图灵结构化策略,通过引入高密度纳米孪晶来激活和稳定超薄金属纳米片。通过纳米晶粒的受限取向附着实现的图灵构型产生了本质上稳定的纳米孪晶网络和应变效应,它们协同降低了水离解的能垒,并优化了析氢反应的氢吸附自由能。与商用20% Pt/C相比,图灵PtNiNb纳米催化剂的质量活性和稳定性指数分别提高了23.5倍和3.1倍。基于图灵PtNiNb的阴离子交换膜水电解槽在Pt质量负载低至0.05 mg cm的情况下,在1000 mA cm下表现出至少500 h的稳定性,揭示了其稳定的催化性能。此外,这种新范式可以扩展到基于Ir/Pd/Ag的纳米催化剂,说明了图灵型催化剂的通用性。