Gao Yong, Li Zhenglong, Wang Pan, Cui Wen-Gang, Wang Xiaowei, Yang Yaxiong, Gao Fan, Zhang Mingchang, Gan Jiantuo, Li Chenchen, Liu Yanxia, Wang Xinqiang, Qi Fulai, Zhang Jing, Han Xiao, Du Wubin, Chen Jian, Xia Zhenhai, Pan Hongge
Institute of Science and Technology for New Energy Xi'an Technological University, Xi'an, 710021, China.
School of Materials Science and Engineering, Northwestern Polytechnical University, Xi'an, 710072, China.
Nat Commun. 2024 Jan 31;15(1):928. doi: 10.1038/s41467-024-45082-9.
Non-dissociative chemisorption solid-state storage of hydrogen molecules in host materials is promising to achieve both high hydrogen capacity and uptake rate, but there is the lack of non-dissociative hydrogen storage theories that can guide the rational design of the materials. Herein, we establish generalized design principle to design such materials via the first-principles calculations, theoretical analysis and focused experimental verifications of a series of heteroatom-doped-graphene-supported Ca single-atom carbon nanomaterials as efficient non-dissociative solid-state hydrogen storage materials. An intrinsic descriptor has been proposed to correlate the inherent properties of dopants with the hydrogen storage capability of the carbon-based host materials. The generalized design principle and the intrinsic descriptor have the predictive ability to screen out the best dual-doped-graphene-supported Ca single-atom hydrogen storage materials. The dual-doped materials have much higher hydrogen storage capability than the sole-doped ones, and exceed the current best carbon-based hydrogen storage materials.
在主体材料中通过非解离化学吸附实现氢分子的固态存储有望实现高储氢容量和高吸附速率,但目前缺乏能够指导材料合理设计的非解离储氢理论。在此,我们通过第一性原理计算、理论分析以及对一系列杂原子掺杂石墨烯负载钙单原子碳纳米材料作为高效非解离固态储氢材料的重点实验验证,建立了用于设计此类材料的通用设计原则。我们提出了一个本征描述符,将掺杂剂的固有性质与碳基主体材料的储氢能力相关联。该通用设计原则和本征描述符具有筛选出最佳双掺杂石墨烯负载钙单原子储氢材料的预测能力。双掺杂材料的储氢能力远高于单掺杂材料,并且超过了目前最好的碳基储氢材料。