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Ultrastable Carboxyl-Functionalized Pore-Space-Partitioned Metal-Organic Frameworks for Gas Separation
被引:14
|作者:
Ajayan, Pooja
[1
]
Wang, Wei
[1
]
Chen, Yichong
[1
]
Bu, Xianhui
[2
]
Feng, Pingyun
[1
]
机构:
[1] Univ Calif Riverside, Dept Chem, Riverside, CA 92521 USA
[2] Calif State Univ Long Beach, Dept Chem & Biochem, Long Beach, CA 90840 USA
关键词:
carboxyl functionalization;
gas separation;
multi-module MOF;
pore space partition;
ultrastability;
MOFS;
ADSORPTION;
ETHYLENE;
DESIGN;
CO2;
STABILITY;
STRATEGY;
DIOXIDE;
ETHANE;
D O I:
10.1002/adma.202408042
中图分类号:
O6 [化学];
学科分类号:
0703 ;
摘要:
Isoreticular chemistry, which enables property optimization by changing compositions without changing topology, is a powerful synthetic strategy. One of the biggest challenges facing isoreticular chemistry is to extend it to ligands with strongly coordinating substituent groups such as unbound -COOH, because competitive interactions between such groups and metal ions can derail isoreticular chemistry. It is even more challenging to have an isoreticular series of carboxyl-functionalized MOFs capable of encompassing chemically disparate metal ions. Here, with the simultaneous introduction of carboxyl functionalization and pore space partition, a family of carboxyl-functionalized materials is developed in diverse compositions from homometallic Cr3+ and Ni2+ to heterometallic Co2+/V3+, Ni2+/V3+, Co2+/In3+, Co2+/Ni2+. Cr-MOFs remain highly crystalline in boiling water. Unprecedentedly, one Cr-MOF can withstand the treatment cycle with 10m NaOH and 12m HCl, allowing reversible inter-conversion between unbound -COOH acid form and -COO- base form. These materials exhibit excellent sorption properties such as high uptake capacity for CO2 (100.2 cm(3) g(-1)) and hydrocarbon gases (e.g., 142.1 cm(3) g(-1) for C2H2, 110.5 cm(3) g(-1) for C2H4) at 1 bar and 298K, high benzene/cyclohexane selectivity (up to approximate to 40), and promising separation performance for gas mixtures such as C2H2/CO2 and C2H2/C2H4.
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页数:12
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