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.
Experimentally validated design principles of heteroatom-doped-graphene-supported calcium single-atom materials for non-dissociative chemisorption solid-state hydrogen storage.
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作者: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
| 期刊: | Nature Communications | 影响因子: | 15.700 |
| 时间: | 2024 | 起止号: | 2024 Jan 31; 15(1):928 |
| doi: | 10.1038/s41467-024-45082-9 | ||
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