Wang Yaoxing, Zhang Yang, Xing Pengyu, Li Xueqi, Du Qiuyu, Fan Xueqin, Cai Zhibin, Yin Ran, Yao Yonggang, Gan Wentao
Key Laboratory of Bio-based Material Science & Technology (Ministry of Education), Northeast Forestry University, Harbin, 150040, China.
College of Home and Art Design, Northeast Forestry University, Harbin, 150040, China.
Adv Mater. 2024 Jul;36(28):e2402391. doi: 10.1002/adma.202402391. Epub 2024 May 6.
High-entropy alloy nanoparticles (HEAs) show great potential in emerging electrocatalysis due to their combination and optimization of multiple elements. However, synthesized HEAs often exhibit a weak interface with the conductive substrate, hindering their applications in long-term catalysis and energy conversion. Herein, a highly active and durable electrocatalyst composed of quinary HEAs (PtNiCoFeCu) encapsulated inside the activated carbonized wood (ACW) is reported. The self-encapsulation of HEAs is achieved during Joule heating synthesis (2060 K, 2 s) where HEAs naturally nucleate at the defect sites. In the meantime, HEAs catalyze the deposition of mobile carbon atoms to form a protective few-layer carbon shell during the rapid quenching process, thus remarkably strengthening the interface stability between HEAs and ACW. As a result, the HEAs@ACW shows not only favorable activity with an overpotential of 7 mV at 10 mA cm for hydrogen evolution but also negligible attenuation during a 500 h stability test, which is superior to most reported electrocatalysts. The design of self-encapsulated HEAs inside ACW provides a critical strategy to enhance both activity and stability, which is also applicable to many other energy conversion technologies.
高熵合金纳米颗粒(HEAs)由于多种元素的组合与优化,在新兴的电催化领域展现出巨大潜力。然而,合成的高熵合金通常与导电基底的界面较弱,这阻碍了它们在长期催化和能量转换中的应用。在此,报道了一种由封装在活性炭化木材(ACW)内部的五元高熵合金(PtNiCoFeCu)组成的高活性且耐用的电催化剂。高熵合金的自封装在焦耳热合成过程(2060 K,2 s)中实现,在此过程中高熵合金在缺陷部位自然成核。与此同时,高熵合金在快速淬火过程中催化可移动碳原子的沉积,形成一层保护性的几层碳壳,从而显著增强了高熵合金与ACW之间的界面稳定性。结果,HEAs@ACW不仅在析氢时具有良好的活性,在10 mA cm时过电位为7 mV,而且在500小时的稳定性测试中衰减可忽略不计,这优于大多数已报道的电催化剂。在ACW内部自封装高熵合金的设计提供了一种增强活性和稳定性的关键策略,这也适用于许多其他能量转换技术。