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Single Metal Site and Versatile Transfer Channel Merged into Covalent Organic Frameworks Facilitate High-Performance Li-CO2 Batteries.


ABSTRACT: The sluggish kinetics and unclear mechanism have significantly hindered the development of Li-CO2 batteries. Here, a Li-CO2 battery cathode catalyst based on a porphyrin-based covalent organic framework (TTCOF-Mn) with single metal sites is reported to reveal intrinsic catalytic sites of aprotic CO2 conversion from the molecular level. The battery with TTCOF-Mn exhibits a low overpotential of 1.07 V at 100 mA/g as well as excellent stability at 300 mA/g, which is one of the best Li-CO2 battery cathode catalysts to date. The unique features of TTCOF-Mn including uniform single-Mn(II)-sites, fast Li+ transfer pathways, and high electron transfer efficiency contribute to effective CO2 reduction and Li2CO3 decomposition in the Li-CO2 system. Density functional theory calculations reveal that different metalloporphyrin sites lead to different reaction pathways. The single-Mn(II) sites in TTCOF-Mn can activate CO2 and achieve an efficient four-electron CO2 conversion pathway. It is the first example to reveal the catalytic active sites and clear reaction pathways in aprotic Li-CO2 batteries.

SUBMITTER: Zhang Y 

PROVIDER: S-EPMC7845012 | biostudies-literature | 2021 Jan

REPOSITORIES: biostudies-literature

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Single Metal Site and Versatile Transfer Channel Merged into Covalent Organic Frameworks Facilitate High-Performance Li-CO<sub>2</sub> Batteries.

Zhang Yu Y   Zhong Rong-Lin RL   Lu Meng M   Wang Jian-Hui JH   Jiang Cheng C   Gao Guang-Kuo GK   Dong Long-Zhang LZ   Chen Yifa Y   Li Shun-Li SL   Lan Ya-Qian YQ  

ACS central science 20201229 1


The sluggish kinetics and unclear mechanism have significantly hindered the development of Li-CO<sub>2</sub> batteries. Here, a Li-CO<sub>2</sub> battery cathode catalyst based on a porphyrin-based covalent organic framework (TTCOF-Mn) with single metal sites is reported to reveal intrinsic catalytic sites of aprotic CO<sub>2</sub> conversion from the molecular level. The battery with TTCOF-Mn exhibits a low overpotential of 1.07 V at 100 mA/g as well as excellent stability at 300 mA/g, which is  ...[more]

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