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October 9, 2025Advanced Materials10 citations

Graphene–Vanadium Oxide Heterojunction Boosting Electron–Ion Coupling for Ultrahigh Energy Density Carbon Fiber Structural Supercapacitors

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HZHeng ZhouJWJing WangLSLaifa Shen

Key Points

  • The device shows an exceptional energy density of 502.1 mWh kg−1 alongside 964 mF g−1 capacitance, marking a significant achievement.
  • After 5,000 cycles at 3 A g−1, the supercapacitor retains 88% capacitance under load, demonstrating superior load-bearing stability.
  • A one-step hydrothermal method synthesizes H2V3O8/rGO, highlighting a novel approach in developing high-performance supercapacitors.
  • The device achieves high mechanical properties with a tensile strength of 127.2 MPa and a tensile modulus of 6.95 GPa, ensuring durability.

Abstract

Abstract The rapid advancement of drone logistics and electric aviation has created a growing demand for carbon fiber structural supercapacitors (CF–SSCs) that combine energy storage with lightweight and structural functionality. However, achieving high energy density remains challenging due to the chemical inertness of carbon fiber. In this work, it is demonstrated that H 2 V 3 O 8 /rGO is a promising and high‐performance electrode coating for carbon fiber structural supercapacitors that possess both ultrahigh energy density and load‐bearing functionality. Herein, a simple and efficient one‐step high‐temperature mixing hydrothermal method is developed to synthesize H 2 V 3 O 8 /rGO. Density functional theory calculations reveal that strong interfacial synergy between rGO and H 2 V 3 O 8 promotes electron transport and Li + diffusion, boosting efficient electron–ion coupling. The device exhibits high capacitance (964 mF g −1 ) and exceptional energy density (502.1 mWh kg −1 ), exceeding previously reported values. Remarkably, it maintains 88% capacitance retention after 5 000 cycles at 3 A g −1 under a compressive load of 120 kPa, exceeding the 83% retention without load, demonstrating excellent electrochemical load‐bearing stability. In addition, the device shows robust mechanical properties (127.2 MPa tensile strength, 6.95 GPa tensile modulus) and high safety, offering strong potential for practical application. This study proposes a promising strategy for designing CF–SSCs with high energy density.

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Cite This Study

Zhou et al. (2025) studied this question.

synapsesocial.com/papers/68e70db290569dd607ee6192https://doi.org/10.1002/adma.202514323
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