新型锌金属-有机骨架在无溶剂和温和条件下催化CO2转化为环碳酸盐

IF 3.4 2区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Wangfu Xu, Xiaohan Qin, Gui Xiong, Qiu-Hong Cheng, Xiang-Yu Zhang and Kun Huang*, 
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引用次数: 0

摘要

金属有机骨架在催化二氧化碳转化为高附加值化学品方面有着广泛的应用。本文利用4,7-双(1h -咪唑-1-基)苯并[2,1,3]噻二唑(Bibt)、5-(1,8-萘酰亚胺)-异苯二甲酸(H2nia)和Zn(NO3)2·6H2O在水热条件下自组装制备了新型MOF {Zn(Bibt)(nia2 -)}n,即Zn- bn。Zn-BN表现为具有{86}点符号的4连接多孔框架,具有良好的热稳定性和溶剂稳定性以及广泛的pH耐受性。然后,用Zn-BN催化CO2与多种环氧化物的偶联反应。结果表明:在大气CO2压力、60℃温度、18 h反应时间下,Zn- bn可以作为一种多相高效催化剂,促进CO2转化为环状碳酸盐,收率为48 ~ 98%,这主要是由于骨架中Zn节点与Br -阴离子的协同活化作用所致。此外,Zn-BN可重复使用5次,具有良好的可回收性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Novel Zinc Metal–Organic Framework for Catalytic CO2 Conversion to Cyclic Carbonates under Solvent-free and Mild Conditions

Novel Zinc Metal–Organic Framework for Catalytic CO2 Conversion to Cyclic Carbonates under Solvent-free and Mild Conditions

Metal–organic frameworks (MOFs) exhibit wide applications in catalytic CO2 conversion to high-value-added chemicals. In this work, we prepared a new MOF {Zn(Bibt)(nia2–)}n, namely Zn-BN, based on the self-assembly of 4,7-bis(1H-imidazol-1-yl) benzo-[2,1,3]thiadiazole (Bibt), 5-(1,8-naphthalimido)-isophthalic acid (H2nia), and Zn(NO3)2·6H2O under hydrothermal conditions. Zn-BN presents as a 4-connected porous framework with an {86} point symbol, exhibiting good thermal and solvent stability as well as a broad range of pH durability. Then, Zn-BN is applied to catalyze the coupling reaction of CO2 with various epoxides. The results show that Zn-BN can serve as a heterogeneous and efficient catalyst to promote the conversion of CO2 to cyclic carbonates in yields of 48–98% at atmospheric CO2 pressure, 60 °C temperature, and 18 h reaction time, which can be mainly attributed to the synergistic activation effect by Zn nodes in the framework and Br anions. Additionally, the Zn-BN can be reused up to 5 times, demonstrating good recyclability.

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来源期刊
Crystal Growth & Design
Crystal Growth & Design 化学-材料科学:综合
CiteScore
6.30
自引率
10.50%
发文量
650
审稿时长
1.9 months
期刊介绍: The aim of Crystal Growth & Design is to stimulate crossfertilization of knowledge among scientists and engineers working in the fields of crystal growth, crystal engineering, and the industrial application of crystalline materials. Crystal Growth & Design publishes theoretical and experimental studies of the physical, chemical, and biological phenomena and processes related to the design, growth, and application of crystalline materials. Synergistic approaches originating from different disciplines and technologies and integrating the fields of crystal growth, crystal engineering, intermolecular interactions, and industrial application are encouraged.
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