TY - JOUR
T1 - Discrimination of xylene isomers in a stacked coordination polymer
AU - Li, Liangying
AU - Guo, Lidong
AU - Olson, David H.
AU - Xian, Shikai
AU - Zhang, Zhiguo
AU - Yang, Qiwei
AU - Wu, Kaiyi
AU - Yang, Yiwen
AU - Bao, Zongbi
AU - Ren, Qilong
AU - Li, Jing
N1 - Publisher Copyright:
Copyright © 2022 The Authors, some rights reserved
PY - 2022/7/15
Y1 - 2022/7/15
N2 - The separation and purification of xylene isomers is an industrially important but challenging process. Developing highly efficient adsorbents is crucial for the implementation of simulated moving bed technology for industrial separation of these isomers. Herein, we report a stacked one-dimensional coordination polymer {[Mn(dhbq)(H2O)2], H2dhbq = 2,5-dihydroxy-1,4-benzoquinone} that exhibits an ideal molecular recognition and sieving of xylene isomers. Its distinct temperature-adsorbate–dependent adsorption behavior enables full separation of p-, m-, and o-xylene isomers in both vapor and liquid phases. The delicate stimuli-responsive swelling of the structure imparts this porous material with exceptionally high flexibility and stability, well-balanced adsorption capacity, high selectivity, and fast kinetics at conditions mimicking industrial settings. This study may offer an alternative approach for energy-efficient and adsorption-based industrial xylene separation and purification processes.
AB - The separation and purification of xylene isomers is an industrially important but challenging process. Developing highly efficient adsorbents is crucial for the implementation of simulated moving bed technology for industrial separation of these isomers. Herein, we report a stacked one-dimensional coordination polymer {[Mn(dhbq)(H2O)2], H2dhbq = 2,5-dihydroxy-1,4-benzoquinone} that exhibits an ideal molecular recognition and sieving of xylene isomers. Its distinct temperature-adsorbate–dependent adsorption behavior enables full separation of p-, m-, and o-xylene isomers in both vapor and liquid phases. The delicate stimuli-responsive swelling of the structure imparts this porous material with exceptionally high flexibility and stability, well-balanced adsorption capacity, high selectivity, and fast kinetics at conditions mimicking industrial settings. This study may offer an alternative approach for energy-efficient and adsorption-based industrial xylene separation and purification processes.
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U2 - 10.1126/science.abj7659
DO - 10.1126/science.abj7659
M3 - Article
C2 - 35857587
AN - SCOPUS:85134704161
SN - 0036-8075
VL - 377
SP - 335
EP - 339
JO - Science
JF - Science
IS - 6603
ER -