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Boosting energy density in asymmetric aqueous supercapacitors with multi-hierarchical NiCo-based cathode and sulfate-engineered FeOOH anode

  • Muhammad Tahir
  • , Sheeza Musarrat
  • , Yuanfeng Sun
  • , Mizna Naseem*
  • , Fazal Ul Nisa
  • , Waheed Ahmad
  • , Hui Tang
  • , Dan Lu
  • , Maria Ahmed
  • , Qasim Qasim
  • , Abdul Haseeb Bhatti
  • , Shameem Ramzan
  • , Zeyu Ma
  • , Yixin Wang
  • , Liang He*
  • , Jun Dai*
  • *Corresponding author for this work
  • Beijing Institute of Technology
  • Sichuan University
  • University of Electronic Science and Technology of China
  • National University of Sciences and Technology Pakistan

Research output: Contribution to journalArticlepeer-review

Abstract

Combining faradaic and pseudocapacitive electrode materials to construct hybrid supercapacitors (HSCs) has become an effective strategy for simultaneously achieving high energy density and fast charge-discharge capability. However, one of the main challenges in developing advanced HSCs lies in overcoming the mismatch in electrochemical kinetics and charge-storage capacity between the cathode and anode. In this work, a high-performance HSC is successfully assembled using a hierarchical nickel-cobalt double hydroxide/nickel oxyhydroxide/cobalt molybdate (NiCo-DH/NiOOH/CoMoO4, denoted as NCNCM) cathode and a sulfate-textured iron oxyhydroxide (ST-FeOOH) anode. The multi-component and hierarchical architecture of the NCNCM cathode provides abundant electroactive sites, improved electrical conductivity, and enhanced redox activity. Meanwhile, the low-crystalline ST-FeOOH anode promotes rapid ion diffusion, efficient charge transfer, and excellent electrochemical reversibility. The synergistic integration of these two electrodes effectively broadens the operating potential window and improves overall charge-storage efficiency. As a result, the assembled HSC delivers a high areal capacitance of 707.2 mF cm−2, an energy density of 0.284 mWh cm−2, and a power density of 1.48 mW cm−2. In addition, the device retains 83.33% of its capacitance after 10,000 cycles, demonstrating excellent structural stability and long-term durability, and showing promise for next-generation aqueous energy-storage systems.

Original languageEnglish
Article number241007
JournalJournal of Power Sources
Volume692
DOIs
Publication statusPublished - 15 Nov 2026
Externally publishedYes

Keywords

  • Aqueous electrolyte
  • Asymmetric supercapacitor
  • Energy density
  • Hierarchical NiCo-DH
  • Sulfate-textured FeOOH

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