MOF Linker Extension Strategy for Enhanced Atmospheric Water Harvesting
Article 2023 en
Authors
NH
Nikita Hanikel
DK
Daria Kurandina
SC
Saumil Chheda
Abstract
1 min read
A linker extension strategy for generating metal-organic frameworks (MOFs) with superior moisture-capturing properties is presented. Applying this design approach involving experiment and computation results in MOF-LA2-1 {[Al(OH)(PZVDC)], where PZVDC<sup>2-</sup> is (<i>E</i>)-5-(2-carboxylatovinyl)-1<i>H</i>-pyrazole-3-carboxylate}, which exhibits an approximately 50% water capacity increase compared to the state-of-the-art water-harvesting material MOF-303. The power of this approach is the increase in pore volume while retaining the ability of the MOF to harvest water in arid environments under long-term uptake and release cycling, as well as affording a reduction in regeneration heat and temperature. Density functional theory calculations and Monte Carlo simulations give detailed insight pertaining to framework structure, water interactions within its pores, and the resulting water sorption isotherm.
Zhiling Zheng, Ali H. Alawadhi, Saumil Chheda, Silvio Neumann, Nakul Rampal, Shengchao Liu, Ha L. Nguyen, Yen-hsu Lin, Zichao Rong, J. Ilja Siepmann, Laura Gagliardi, Anima Anandkumar, Christian Borgs, Jennifer Chayes, Omar M Yaghi
Ali H. Alawadhi, Saumil Chheda, Gautam D. Stroscio, Zichao Rong, Daria Kurandina, Ha L. Nguyen, Nakul Rampal, Zhiling Zheng, Laura Gagliardi, Omar M Yaghi
Ali H. Alawadhi, Saumil Chheda, Gautam D. Stroscio, Zichao Rong, Daria Kurandina, Ha L. Nguyen, Nakul Rampal, Zhiling Zheng, Laura Gagliardi, Omar M Yaghi
Discussion(0)
No comments yet. Be the first to comment.