Li-doped 2D aza-fused covalent organic framework: a promising avenue for hydrogen storage†

IF 4.1 3区 材料科学 Q2 CHEMISTRY, PHYSICAL Sustainable Energy & Fuels Pub Date : 2025-01-20 DOI:10.1039/D4SE01808G
Preeti Beniwal and T. J. Dhilip Kumar
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Abstract

Designing an efficient high-capacity hydrogen storage material is a critical challenge for advancing clean energy storage. Through detailed density functional theory calculations and ab initio molecular dynamics simulations, we found that the recently synthesized two-dimensional (2D) aza-fused covalent organic framework (aza-COF) doped with Li exhibits considerable promise for hydrogen storage applications. Despite a H2 storage capacity of 10.3 wt%, pristine aza-COF adsorbs H2 molecules via weak van der Waals interactions, limiting its viability under ambient conditions. The strategy relies on increasing more active sites for H2 adsorption, thereby improving the interactions between H2 and positively charged Li atoms. Li-doped aza-COF adsorbs H2 molecules with a combined effect of electrostatic and van der Waals interactions, resulting in enhanced H2 adsorption energy, ranging from −0.22 to −0.33 eV. The H2 storage capacity reaches 13.9 wt%, higher than that of the pristine aza-COF and the 5.5 wt% target of the U. S. Department of Energy. With appropriate structural stability, H2 adsorption energy, desorption temperature, hydrogen occupation number and high H2 storage ability, Li-doped 2D aza-COF exhibits great potential as a hydrogen storage material.

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锂掺杂的二维氮杂熔合共价有机框架:一种前景广阔的储氢途径†。
设计一种高效的高容量储氢材料是推进清洁能源储存的关键挑战。通过详细的密度泛函理论计算和从头算分子动力学模拟,我们发现最近合成的掺杂Li的二维(2D) aza-COF共价有机骨架(aza-COF)具有相当大的储氢应用前景。尽管储氢容量为10.3%,但原始的aza-COF通过弱范德华相互作用吸附H2分子,限制了其在环境条件下的生存能力。该策略依赖于增加H2吸附的活性位点,从而改善H2与带正电的Li原子之间的相互作用。锂掺杂的aza-COF在静电和范德华相互作用的共同作用下吸附H2分子,H2的吸附能在−0.22 ~−0.33 eV之间。氢气储存容量达到13.9 wt%,高于原始aza-COF和美国能源部5.5% wt%的目标。由于具有合适的结构稳定性、H2吸附能、解吸温度、占氢数和较高的储氢能力,掺锂的2D aza-COF作为储氢材料具有很大的潜力。
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来源期刊
Sustainable Energy & Fuels
Sustainable Energy & Fuels Energy-Energy Engineering and Power Technology
CiteScore
10.00
自引率
3.60%
发文量
394
期刊介绍: Sustainable Energy & Fuels will publish research that contributes to the development of sustainable energy technologies with a particular emphasis on new and next-generation technologies.
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