Porous SnO-Cu O nanocomposite thin film on carbon nanotubes as electrodes for high performance supercapacitors.

Nanotechnology

Polymer Technology Centre, Department of Materials Science and Engineering, Texas A&M University, College Station, TX 77843, United States of America.

Published: January 2019

Metal oxides are promising materials for supercapacitors due to their high theoretical capacitance. However, their poor electrical conductivity is a major challenge. Hybridization with conductive nanostructured carbon-based materials such as carbon nanotubes (CNTs) has been proposed to improve the conductivity and increase the surface area. In this work, CNTs are used as a template for synthesizing porous thin films of SnO-CuO-CuO (SnO-Cu O) via an electroless deposition technique. Tin, with its high wettability and electrical conductivity, acts as an intermediate layer between copper and the CNTs and provides a strong interaction between them. We also observed that by controlling the interfacial characteristics of CNTs and varying the composition of the electroless bath, the SnO-Cu O thin film morphology can be easily manipulated. Electrochemical characterizations show that CNT/SnO-Cu O nanocomposite possesses pseudocapacitive behavior that reaches a specific capacitance of 662 F g and the retention is 94% after 5000 cycles, which outperforms any known copper and tin-based supercapacitors in the literature. This excellent performance is mainly attributed to high specific surface area, small particle size, the synergistic effect of Sn, and conductivity improvement by using CNTs. The combination of CNTs and metal oxides holds promise for supercapacitors with improved performance.

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Source
http://dx.doi.org/10.1088/1361-6528/aae5c6DOI Listing

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