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通过构建三维互连的K掺杂MnO纳米线网络提升锂-钴电池性能

Promoting the Performance of Li-CO Batteries via Constructing Three-Dimensional Interconnected K Doped MnO Nanowires Networks.

作者信息

Tang Zhuolin, Yuan Mengming, Zhu Huali, Zeng Guang, Liu Jun, Duan Junfei, Chen Zhaoyong

机构信息

College of Materials Science and Engineering, Changsha University of Science and Technology, Changsha, China.

School of Physics and Electronic Science, Changsha University of Science and Technology, Changsha, China.

出版信息

Front Chem. 2021 Apr 15;9:670612. doi: 10.3389/fchem.2021.670612. eCollection 2021.

Abstract

Nowadays, Li-CO batteries have attracted enormous interests due to their high energy density for integrated energy storage and conversion devices, superiorities of capturing and converting CO. Nevertheless, the actual application of Li-CO batteries is hindered attributed to excessive overpotential and poor lifespan. In the past decades, catalysts have been employed in the Li-CO batteries and been demonstrated to reduce the decomposition potential of the as-formed LiCO during charge process with high efficiency. However, as a representative of promising catalysts, the high costs of noble metals limit the further development, which gives rise to the exploration of catalysts with high efficiency and low cost. In this work, we prepared a K doped MnO nanowires networks with three-dimensional interconnections (3D KMO NWs) catalyst through a simple hydrothermal method. The interconnected 3D nanowires network catalysts could accelerate the Li ions diffusion, CO transfer and the decomposition of discharge products LiCO. It is found that high content of K doping can promote the diffusion of ions, electrons and CO in the MnO air cathode, and promote the octahedral effect of MnO, stabilize the structure of MnO hosts, and improve the catalytic activity of CO. Therefore, it shows a high total discharge capacity of 9,043 mAh g, a low overpotential of 1.25 V, and a longer cycle performance.

摘要

如今,锂-二氧化碳电池因其在集成储能和转换装置方面的高能量密度以及捕获和转化二氧化碳的优势而备受关注。然而,锂-二氧化碳电池的实际应用因过电位过高和寿命较短而受到阻碍。在过去几十年中,催化剂已被应用于锂-二氧化碳电池,并被证明能在充电过程中高效降低所形成的碳酸锂的分解电位。然而,作为有前景的催化剂的代表,贵金属的高成本限制了其进一步发展,这促使人们探索高效且低成本的催化剂。在这项工作中,我们通过一种简单的水热法制备了具有三维互连结构的钾掺杂二氧化锰纳米线网络(3D KMO NWs)催化剂。相互连接的三维纳米线网络催化剂可以加速锂离子扩散、二氧化碳传输以及放电产物碳酸锂的分解。研究发现,高含量的钾掺杂可以促进二氧化锰空气阴极中离子、电子和二氧化碳的扩散,促进二氧化锰的八面体效应,稳定二氧化锰主体结构,并提高二氧化碳的催化活性。因此,它表现出9043 mAh g的高总放电容量、1.25 V的低过电位以及更长的循环性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3e8d/8082424/bd674537300f/fchem-09-670612-g0007.jpg

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