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Size Engineering of TiCT Nanosheets for Enhanced Supercapacitance Performance

Overview
Journal Molecules
Publisher MDPI
Date 2025 Jan 25
PMID 39860112
Authors
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Abstract

In this research, we synthesized a series of TiCT nanosheets with varying lateral dimensions and conducted a thorough investigation into the profound relationship between the electrochemical performance of TiCT materials and their lateral sizes. This study innovatively incorporates a clever combination of small-sized and large-sized TiCT nanosheets in the electrode preparation process. This strategy yields excellent results at low scan rates, with the fabricated electrode achieving a high volumetric capacitance of approximately 658 F/g. Even more remarkable is the fact that, even under extreme testing conditions where the scan rate surges to 10 V s, the electrode retains its capacitive characteristics robustly without any significant performance degradation. These outstanding characteristics underscore the exceptional ability of TiCT electrode materials to maintain high energy storage capacity during rapid charge-discharge cycles, holding significant importance for advancing the development of electrochemical energy storage devices with fast response times and high power densities.

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