TY - JOUR
T1 - Porous liquid zeolites
T2 - Hydrogen bonding-stabilized H-ZSM-5 in branched ionic liquids
AU - Li, Peipei
AU - Chen, Hao
AU - Schott, Jennifer A.
AU - Li, Bo
AU - Zheng, Yaping
AU - Mahurin, Shannon M.
AU - Jiang, De En
AU - Cui, Guokai
AU - Hu, Xunxiang
AU - Wang, Yangyang
AU - Li, Lengwan
AU - Dai, Sheng
N1 - Publisher Copyright:
© The Royal Society of Chemistry.
PY - 2019/1/28
Y1 - 2019/1/28
N2 - Porous liquids, as a newly emerging type of porous material, have great potential in gas separation and storage. However, the examples and synthetic strategies reported so far likely represent only the tip of the iceberg due to the great difficulty and challenge in engineering permanent porosity in liquid matrices. Here, by taking advantage of the hydrogen bonding interaction between the alkane chains of branched ionic liquids and the Brønsted sites in H-form zeolites, as well as the mechanical bond of the long alkyl chain of the cation penetrated into the zeolite channel at the interface, the H-form zeolites can be uniformly stabilized in branched ionic liquids to form porous liquid zeolites, which not only significantly improve their gas sorption performance, but also change the gas sorption-desorption behavior because of the preserved permanent porosity. Furthermore, such a facile synthetic strategy can be extended to fabricate other types of H-form zeolite-based porous liquids by taking advantage of the tunability of the counter-anion (e.g., NTf 2 - , BF 4 - , EtSO 4 - , etc.) in branched ionic liquids, thus opening up new opportunities for porous liquids for specific applications in energy and environment.
AB - Porous liquids, as a newly emerging type of porous material, have great potential in gas separation and storage. However, the examples and synthetic strategies reported so far likely represent only the tip of the iceberg due to the great difficulty and challenge in engineering permanent porosity in liquid matrices. Here, by taking advantage of the hydrogen bonding interaction between the alkane chains of branched ionic liquids and the Brønsted sites in H-form zeolites, as well as the mechanical bond of the long alkyl chain of the cation penetrated into the zeolite channel at the interface, the H-form zeolites can be uniformly stabilized in branched ionic liquids to form porous liquid zeolites, which not only significantly improve their gas sorption performance, but also change the gas sorption-desorption behavior because of the preserved permanent porosity. Furthermore, such a facile synthetic strategy can be extended to fabricate other types of H-form zeolite-based porous liquids by taking advantage of the tunability of the counter-anion (e.g., NTf 2 - , BF 4 - , EtSO 4 - , etc.) in branched ionic liquids, thus opening up new opportunities for porous liquids for specific applications in energy and environment.
UR - http://www.scopus.com/inward/record.url?scp=85060388066&partnerID=8YFLogxK
U2 - 10.1039/c8nr07337f
DO - 10.1039/c8nr07337f
M3 - 文章
C2 - 30648721
AN - SCOPUS:85060388066
SN - 2040-3364
VL - 11
SP - 1515
EP - 1519
JO - Nanoscale
JF - Nanoscale
IS - 4
ER -