Applying design principles to improve hydrogen storage capacity in nanoporous materials

被引:0
作者
N. Scott Bobbitt
Eric Li
Randall Q. Snurr
机构
[1] Sandia National Laboratories,Material, Physical, and Chemical Sciences Center
[2] Northwestern University,Department of Chemical and Biological Engineering
来源
Brazilian Journal of Chemical Engineering | 2022年 / 39卷
关键词
Metal–organic frameworks; Hydrogen storage; Porous aromatic frameworks; Molecular simulation;
D O I
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中图分类号
学科分类号
摘要
Hydrogen is an attractive option for energy storage because it can be produced from renewable sources and produces environmentally benign byproducts. However, the volumetric energy density of molecular hydrogen at ambient conditions is low compared to other storage methods like batteries, so it must be compressed to attain a viable energy density for applications such as transportation. Nanoporous materials have attracted significant interest for gas storage because they can attain high storage density at lower pressure than conventional compression. In this work, we examine how to improve the cryogenic hydrogen storage capacity of a series of porous aromatic frameworks (PAFs) by controlling the pore size and increasing the surface area by adding functional groups. We also explore tradeoffs in gravimetric and volumetric measures of the hydrogen storage capacity and the effects of temperature swings using grand canonical Monte Carlo simulations. We also consider the effects of adding functional groups to the metal–organic framework NU-1000 to improve its hydrogen storage capacity. We find that highly flexible alkane chains do not improve the hydrogen storage capacity in NU-1000 because they do not extend into the pores; however, rigid chains containing alkyne groups do increase the surface area and hydrogen storage capacity. Finally, we demonstrate that the deliverable capacity of hydrogen in NU-1000 can be increased from 40.0 to 45.3 g/L (at storage conditions of 100 bar and 77 K and desorption conditions of 5 bar and 160 K) by adding long, rigid alkyne chains into the pores.
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页码:919 / 931
页数:12
相关论文
共 225 条
[1]  
Ben T(2013)Porous aromatic frameworks: synthesis, structure and functions CrystEngComm 15 17-26
[2]  
Qiu S(2009)Targeted synthesis of a porous aromatic framework with high stability and exceptionally high surface area Angew Chem 121 9621-9624
[3]  
Ben T(2011)Gas storage in porous aromatic frameworks (PAFs) Energy Environ Sci 4 3991-3999
[4]  
Ren H(2016)High-throughput screening of metal-organic frameworks for hydrogen storage at cryogenic temperature J Phys Chem C 120 27328-27341
[5]  
Ma S(2019)Energy-based descriptors to rapidly predict hydrogen storage in metal–organic frameworks Mol Syst Des Eng 4 162-174
[6]  
Cao D(2014)Computation-ready, experimental metal–organic frameworks: a tool to enable high-throughput screening of nanoporous crystals Chem Mater 26 6185-6192
[7]  
Lan J(2014)High-throughput computational screening of metal–organic frameworks Chem Soc Rev 43 5735-5749
[8]  
Jing X(2017)Topologically guided, automated construction of metal–organic frameworks and their evaluation for energy-related applications Cryst Growth Des 17 5801-5810
[9]  
Wang W(1998)Monte Carlo simulations of hydrogen adsorption in single-walled carbon nanotubes J Chem Phys 109 4981-4984
[10]  
Xu J(2016)RASPA: molecular simulation software for adsorption and diffusion in flexible nanoporous materials Mol Simul 42 81-101