Cobalt phthalocyanine-based conjugated polymer as efficient and exclusive electrocatalyst for CO2 reduction to ethanol

Dong Jiang , Ran Bu , Wei Xia , Yichen Hu , Mengchen Zhou , Enqing Gao , Toru Asahi , Yusuke Yamauchi , Jing Tang
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引用次数: 3

Abstract

Electrocatalytic conversion of carbon dioxide to high value-added chemicals is a promising method for solving the energy crisis and global warming. Electrochemical active metal-containing conjugated polymers have been widely studied for heterogeneous carbon dioxide reduction. In the present contribution, we designed and synthesized a stable cobalt phthalocyanine-based conjugated polymer, named CoPPc-TFPPy-CP, and also explored its electrocatalytic application in carbon dioxide reduction to liquid products in an aqueous solution. In the catalyst, cobalt phthalocyanine acts as building blocks connected with 1,3,6,8-tetrakis(4-formyl phenyl)pyrenes via imine-linkages, leading to mesoporous formation polymers with the pore size centered at 4.1 nm. And the central cobalt atoms shifted to a higher oxidation state after condensation. With these chemical and structural natures, the catalyst displayed a remarkable electrocatalytic CO2 reduction performance with an ethanol Faradaic efficiency of 43.25% at −1.0 V vs RHE. While at the same time, the electrochemical reduction process catalyzed by cobalt phthalocyanine produced only carbon monoxide and hydrogen. To the best of our knowledge, CoPPc-TFPPy-CP is the first example among organic polymers and metal-organic frameworks that produces ethanol from CO2 with a remarkable selectivity.

Abstract Image

酞菁钴基共轭聚合物作为CO2还原乙醇的高效专用电催化剂
电催化二氧化碳转化为高附加值化学品是解决能源危机和全球变暖的一种很有前途的方法。电化学活性含金属共轭聚合物在非均相二氧化碳还原方面得到了广泛的研究。在本论文中,我们设计并合成了一种稳定的酞菁钴基共轭聚合物,命名为CoPPc-TFPPy-CP,并探索了其在水溶液中电催化还原二氧化碳为液体产物的应用。在催化剂中,酞菁钴作为构建块通过亚胺键与1,3,6,8-四(4-甲酰基苯基)芘连接,形成孔径为4.1 nm的介孔聚合物。中心的钴原子在凝结后变成了更高的氧化态。在- 1.0 V / RHE条件下,该催化剂的乙醇法拉第效率为43.25%,具有良好的电催化CO2还原性能。与此同时,酞菁钴催化的电化学还原过程只产生一氧化碳和氢气。据我们所知,CoPPc-TFPPy-CP是有机聚合物和金属-有机框架中第一个以显著的选择性从二氧化碳中产生乙醇的例子。
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来源期刊
材料导报:能源(英文)
材料导报:能源(英文) Renewable Energy, Sustainability and the Environment, Nanotechnology
CiteScore
13.00
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