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Updated: Oct 3, 2026

Functionalization and Dispersion of Carbon Nanomaterials Using an Environmentally Friendly Ultrasonicated Ozonolysis Process
Published on: May 30, 2017
Dispersion-Controlled Carbon Nanotube Networks Enable Tunable Structure-Performance-Stability Relationships in RuO x
Wilson Hou-Sheng Huang1,2, Yuli Lin2, Wen-Jin Li3
1Center for Continuing Education, National Tsing Hua University, No.101, Section 2, Kuang-Fu Rd., Hsinchu City 300044, Taiwan R.O.C.
Abstract:
The electrochemical performance of pseudocapacitive electrodes is closely related to their nanoscale structure and conductive network formation. In this study, hydrous RuO x ·nH2O electrodes with controlled carbon nanotube (CNT) dispersion were fabricated via a cathodic deposition method to investigate structure-performance relationships. Dispersed CNT form interconnected conductive networks that improve electron transport and active material utilization, resulting in a high specific capacitance of 718 F g-1. Long-term cycling over 100,000 cycles reveals a clear trade-off between performance and stability, with nearly 100% capacitance retention for CNT-free electrodes and approximately 40% for dispersed CNT systems. This behavior is associated with the formation of more distributed RuO x ·nH2O coatings on CNT frameworks, which influence structural stability during repeated cycling. These results demonstrate that CNT dispersion plays an important role in determining electrode structure and electrochemical performance, providing useful insights for the design of pseudocapacitive materials.
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