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Regulation on CH/CO adsorption and separation by molecular rotors in metal-organic frameworks

The introduction of molecular rotors with distinct kinetic characteristics into metal-organic frameworks (MOFs) imparts these materials with heightened responsiveness, facilitating precise control over gas molecule recognition, adsorption as well as separation. This enhancement translates into impro...

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Published in:Journal of materials chemistry. A, Materials for energy and sustainability Materials for energy and sustainability, 2024-07, Vol.12 (27), p.16427-16437
Main Authors: Yang, Li-Qiu, Yu, Jia, Fan, Shu-Cong, Wang, Ying, Yuan, Wen-Yu, Zhai, Quan-Guo
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container_issue 27
container_start_page 16427
container_title Journal of materials chemistry. A, Materials for energy and sustainability
container_volume 12
creator Yang, Li-Qiu
Yu, Jia
Fan, Shu-Cong
Wang, Ying
Yuan, Wen-Yu
Zhai, Quan-Guo
description The introduction of molecular rotors with distinct kinetic characteristics into metal-organic frameworks (MOFs) imparts these materials with heightened responsiveness, facilitating precise control over gas molecule recognition, adsorption as well as separation. This enhancement translates into improved performance in separating light hydrocarbons. In this investigation, three MOF materials (In-NDC, SNNU-118, and SNNU-128) were synthesized with two molecular rotor-containing ligands, 1,4-naphthalenedicarboxylic acid (1,4-NDC) and 9,10-anthracenedicarboxylic acid (9,10-ADC). Among these materials, In-NDC and SNNU-118 exist as supramolecular isomers. Through meticulous adjustment of synthesis conditions, successful structural transformations were achieved. Unlike In-NDC, the rotational flexibility of the molecular rotor 1,4-NDC endows SNNU-118 with distinctive adsorption behavior, manifesting as a gate-opening effect induced by the rotation of the molecular rotor. This phenomenon is facilitated by electrostatic repulsion between 1,4-NDC and CO 2 during the adsorption process. Additionally, the electrostatic attraction between the framework and C 2 H 2 molecules significantly enhances C 2 H 2 adsorption at low pressure, thereby improving selectivity for C 2 H 2 . Compared to In-NDC, the IAST selectivity values increased from 4.55 to 17.05. Dynamic breakthrough experiments demonstrate the effective separation capabilities of both In-NDC and SNNU-118 in separating C 2 H 2 /CO 2 mixed gases. The molecular rotors in metal-organic frameworks enhance the low-pressure C 2 H 2 adsorption, trigger a gate-opening for CO 2 , and thus promote the C 2 H 2 /CO 2 separation.
doi_str_mv 10.1039/d4ta03374d
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title Regulation on CH/CO adsorption and separation by molecular rotors in metal-organic frameworks
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