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Confined Space Dual-Type Quantum Dots for High-Rate Electrochemical Energy Storage.

Qingjun YangKingYan ChungXinlong LiuLin SunJing HanYujue YangTiandi ChenWeidong ShiBingang Xu
Published in: Advanced materials (Deerfield Beach, Fla.) (2024)
Owing to quantum size effect and high redox activity, quantum dots (QDs) play very essential roles toward electrochemical energy storage. However, it is very difficult to obtain different-type and uniformly dispersed high-active QDs in a stable conductive microenvironment, because QDs prepared by traditional methods are mostly dissolved in solution or loaded on the surface of other semiconductors. Herein, dual-type semiconductor QDs (Co 9 S 8 and CdS) are skillfully constructed within the interlayer of ultrathin layered double hydroxides (LDH). In particular, the expandable interlayer provides a very suitable confined space for the growth and uniform dispersion of QDs, where Co 9 S 8 originates from in-situ transformation of cobalt atoms in laminate and CdS is generated from interlayer pre-embedding Cd 2+ . Meanwhile, XAFS and GGA+U calculations are employed to explore and prove the mechanism of QDs formation and energy storage characteristics as compared to surface loading QDs. Significantly, the hybrid supercapacitors achieve high energy density of 329.2 μWh cm -2 , capacitance retention of 99.1% and coulomb efficiency of 96.9% after 22,000 cycles, which is superior to the reported QDs-based supercapacitors. These findings provide unique insights for designing and developing stable, ordered, and highly active QDs. This article is protected by copyright. All rights reserved.
Keyphrases
  • quantum dots
  • reduced graphene oxide
  • sensitive detection
  • molecular dynamics
  • ionic liquid
  • molecularly imprinted
  • density functional theory
  • carbon nanotubes
  • visible light