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| Title: | Hydrogen Storage Capacities in Nanoporous M2(m-dobdc) Metal-Organic Frameworks at Near Ambient Temperatures |
| Authors: | Joshi, Himani Pakhira, Srimanta |
| Keywords: | Grand Canonical Monte Carlo (GCMC);gravimetric uptake;heat of adsorption;metal−organic frameworks (MOFs);nanoporous;open metal sites;volumetric uptake |
| Issue Date: | 2025 |
| Publisher: | American Chemical Society |
| Citation: | Joshi, H., & Pakhira, S. (2025). Hydrogen Storage Capacities in Nanoporous M2(m-dobdc) Metal-Organic Frameworks at Near Ambient Temperatures. ACS Applied Nano Materials, 8(40), 19167–19178. https://doi.org/10.1021/acsanm.5c02933 |
| Abstract: | Green hydrogen presents a cleaner alternative to petroleum-based energy, with onboard storage challenges addressed by metal-organic frameworks (MOFs). This study evaluates M<inf>2</inf>(m-dobdc) MOFs (M = Mn, Fe, Co, and Ni) for H<inf>2</inf>-storage using Grand Canonical Monte Carlo simulations (GCMC) at five distinct temperatures (77, 160, 198, 233, and 298 K) and pressures of 1-100 bar. The Fe<inf>2</inf>(m-dobdc) MOF achieves a promising volumetric H<inf>2</inf>storage capacity of 51.2 g/L under cryogenic conditions, meeting the target of the Department of Energy, United States of America (USDOE), while the calculated value of the gravimetric uptake is 4.2 wt %, which approaches the USDOE 2025 target of 5.5 wt %. M<inf>2</inf>(m-dobdc) MOF series reflect exceptional volumetric uptake capacities at room temperature, ranging from 11.0 to 12.3 g/L, while gravimetric capacities are moderate, indicating key challenges in physisorption-based nanoporous materials when operating at ambient conditions. Density functional theory (DFT) calculations reveal the heat of H<inf>2</inf>adsorption (Q<inf>st</inf>) ranging from −15 to −18 kJ/mol in this M<inf>2</inf>(m-dobdc) MOF series, confirming the reversible physisorption phenomenon. Our results highlight the potential of M<inf>2</inf>(m-dobdc) MOFs for mobile H<inf>2</inf>-storage applications, with deliverable volumetric capacities ranging from 36.3 to 40.8 g/L and gravimetric uptake ranging from 2.7 to 3.4 wt % under a temperature-pressure swing range (77 K/100 bar to 160 K/5 bar). The present investigation indicates that the M<inf>2</inf>(m-dobdc) MOFs have shown advances of the USDOE target and promise to meet the practical onboard hydrogen-storage requirements in automobile applications. Their balanced gravimetric-volumetric capacities make them promising candidates for near-future implementation in green energy systems. © 2025 Elsevier B.V., All rights reserved. |
| URI: | https://dx.doi.org/10.1021/acsanm.5c02933 https://dspace.iiti.ac.in:8080/jspui/handle/123456789/17057 |
| ISSN: | 2574-0970 |
| Type of Material: | Journal Article |
| Appears in Collections: | Department of Physics |
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