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用于增强赝电容性能的钴掺杂二氧化锰分级纳米结构

Cobalt-Doped Manganese Dioxide Hierarchical Nanostructures for Enhancing Pseudocapacitive Properties.

作者信息

Jadhav Sarika M, Kalubarme Ramchandra S, Suzuki Norihiro, Terashima Chiaki, Mun Junyoung, Kale Bharat Bhanudas, Gosavi Suresh W, Fujishima Akira

机构信息

Department of Physics, Savitribai Phule Pune University, Ganeshkhind, Pune 411007, India.

Nanocrystalline Materials, Centre for Materials for Electronic Technology, Panchavati, Opp. Dr. Homi Bhabha Road, Pashan, Pune 411008, India.

出版信息

ACS Omega. 2021 Feb 16;6(8):5717-5729. doi: 10.1021/acsomega.0c06150. eCollection 2021 Mar 2.

Abstract

Herein, overall improvement in the electrochemical performance of manganese dioxide is achieved through fine-tuning the microstructure of partially Co-doped manganese dioxide nanomaterial using facile hydrothermal method with precise control of preparative parameters. The structural investigation exhibits formation of a multiphase compound accompanied by controlled reflections of α-MnO as well as γ-MnO crystalline phases. The morphological examination manifests the presence of MnO nanowires having a width of 70-80 nm and a length of several microns. The Co-doped manganese dioxide electrode displayed a particular capacitive behavior along with a rising order of capacitance concerning with increased cobalt ion concentration suitable for certain limits. The value of specific capacitance achieved by a 5% Co-doped manganese dioxide sample was 1050 F g at 0.5 A g, which was nearly threefold greater than that achieved by a bare manganese dioxide electrode. Furthermore, Co-doped manganese dioxide nanocomposite electrode exhibits exceptional capacitance retention (92.7%) till 10,000 cycles. It shows the good cyclability as well as stability of the material. Furthermore, we have demonstrated the solid-state supercapacitor with good energy and power density.

摘要

在此,通过采用简便的水热法并精确控制制备参数,对部分钴掺杂的二氧化锰纳米材料的微观结构进行微调,实现了二氧化锰电化学性能的整体提升。结构研究表明形成了一种多相化合物,同时伴有α-MnO以及γ-MnO晶相的可控反射。形态学检查表明存在宽度为70-80nm、长度为几微米的MnO纳米线。钴掺杂的二氧化锰电极表现出特定的电容行为,并且在钴离子浓度增加到一定限度时,电容呈上升趋势。5%钴掺杂的二氧化锰样品在0.5A g时的比电容值为1050F g,几乎是裸二氧化锰电极的三倍。此外,钴掺杂的二氧化锰纳米复合电极在10000次循环之前表现出优异的电容保持率(92.7%)。它显示出该材料良好的循环性和稳定性。此外,我们还展示了具有良好能量和功率密度的固态超级电容器。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3dad/7931399/86f0d58410f7/ao0c06150_0002.jpg

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