In situ grown Na+-doped NH4V4O10 nano-arrays on carbon cloth with ultra-high specific capacity for high-performance aqueous ammonium ion hybrid supercapacitors

Abstract

Aqueous ammonium ion hybrid supercapacitors (A-HSCs) have sparked significant interest due to their safety, sustainability, and low cost. However, the quest for superior electrode materials for storing ammonium ions still encounters many challenges. Since layered vanadium-based materials usually have a high theoretical capacity and open crystal structure, and the introduction of sodium ions can enhance ionic bonds and cycle stability, this work reports a Na+-doped NH4V4O10 nano-array grown in situ on carbon cloth through a hydrothermal approach (NaNVO@CC), which serves as a novel cathode material for A-HSCs. The irreversible deammoniation reaction of NH4V4O10 was effectively inhibited due to the growth on the carbon cloth and the synergistic effect of Na+. Thanks to these advantages, the NaNVO@CC cathode demonstrates outstanding electrochemical performance, achieving an ultra-high specific capacity of 712 F g−1 at 0.50 A g−1 and exceptional cycle stability, retaining 71.1% of its capacitance at 5.00 A g−1 over 20 000 cycles. The built A-HSC exhibits significant power density (8556.6 W kg−1), energy density (77.7 W h kg−1) and superior cycle life. This work proves the enormous potential of doping in enhancing electrode performance, which will offer insights for the creation of high-performance A-HSCs.

Graphical abstract: In situ grown Na+-doped NH4V4O10 nano-arrays on carbon cloth with ultra-high specific capacity for high-performance aqueous ammonium ion hybrid supercapacitors

Supplementary files

Article information

Article type
Paper
Submitted
05 Sept. 2024
Accepted
20 Nov. 2024
First published
03 Dec. 2024

J. Mater. Chem. A, 2025, Advance Article

In situ grown Na+-doped NH4V4O10 nano-arrays on carbon cloth with ultra-high specific capacity for high-performance aqueous ammonium ion hybrid supercapacitors

Y. Zhou, F. Long, Y. Hou, X. Lin, L. Sun, S. Mo, F. Long and Y. Gao, J. Mater. Chem. A, 2025, Advance Article , DOI: 10.1039/D4TA06326K

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