Zeng Ping, Meng Yang, Liu Zhan, Sun Guo-Qi, Li Xiao-Yun, Yang Xiao-Yu, Ye Cui-Fang, Li Yu, Liu Jin-Ping, Chen Li-Hua, Su Bao-Lian, Wang Yi-Long
School of Chemistry, Chemical Engineering and Life Science, Wuhan University of Technology, Wuhan, Hubei, 430070, China.
State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, Wuhan University of Technology, Wuhan, Hubei, 430070, China.
Small. 2023 Aug;19(33):e2301279. doi: 10.1002/smll.202301279. Epub 2023 Apr 22.
The combination of hetero-elemental doping and vacancy engineering will be developed as one of the most efficient strategies to design excellent electrocatalysts for hydrogen evolution reaction (HER). Herein, a novel strategy for N-doping coupled with Co-vacancies is demonstrated to precisely activate inert S atoms adjacent to Co-vacancies and significantly improve charge transfer for CoS toward accelerating HER. In this strategy, N-doping favors the presence of Co-vacancies, due to greatly decreasing their formation energy. The as-developed strategy realizes the upshift of S 3p orbitals followed by more overlapping between S 3p and H 1s orbitals, which results in the favorable hydrogen atom adsorption free energy change (ΔG ) to activate inert S atoms as newborn catalytical sites. Besides, this strategy synergistically decreases the bandgap of CoS, thereby achieving satisfactory electrical conductivity and low charge-transfer resistance for the as-obtained electrocatalysts. With an excellent HER activity of -89.0 mV at 10.0 mA cm in alkaline environments, this work provides a new approach to unlocking inert sites and significantly improving charge transfer toward cobalt-based materials for highly efficient HER.
杂元素掺杂和空位工程的结合将被发展成为设计用于析氢反应(HER)的优异电催化剂的最有效策略之一。在此,一种氮掺杂与钴空位耦合的新策略被证明能够精确激活钴空位附近的惰性硫原子,并显著改善硫化钴的电荷转移以加速析氢反应。在该策略中,氮掺杂有利于钴空位的存在,因为其大大降低了空位的形成能。所开发的策略实现了硫3p轨道的上移,进而使硫3p和氢1s轨道之间有更多重叠,这导致了有利的氢原子吸附自由能变化(ΔG),从而激活惰性硫原子作为新生的催化位点。此外,该策略协同降低了硫化钴的带隙,从而使所制备的电催化剂具有令人满意的电导率和低电荷转移电阻。在碱性环境中,该催化剂在10.0 mA cm²时具有-89.0 mV的优异析氢活性,这项工作为解锁惰性位点并显著改善钴基材料用于高效析氢反应的电荷转移提供了一种新方法。