The electrochromic/capacitive dual-functional materials based on the synergistic effect between LixNiOy nanosheet arrays and aqueous Zn2+/K+ composite electrolyte ions
编号:38 访问权限:仅限参会人 更新:2026-10-09 18:01:17 浏览:0次 口头报告

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摘要
NiO Nickel oxide (NiO) normally functions in alkaline electrolyte, which conflicts with WO3’s acidic or organic operating environments. Most WO3-NiO complementary devices use Li+-containing organic solutions as the electrolytes, which lead to low NiO electrochromic activity and safety hazards. Herein, Li-doped NiO (LixNiOy) nanosheet arrays were hydrothermally grown on FTO glass, and their electrochromic and pseudocapacitive behaviors were investigated in Zn2+/K+ aqueous electrolyte (Figures a–c.). LixNiOy delivers optical modulations of 39.01% at 600 nm and 21.62% at 1200 nm, outperforming pure NiO. It reversibly switches between colouring and bleaching states, with preferential visible-light absorption and partial near-infrared transmittance, offering spectral complementarity to WO3. After 500 coloration/bleaching cycles, LixNiOy retains 68.39% optical modulation, far exceeding the 33.82% retention of pure NiO. The material exhibits areal specific capacitance of 5.16 mF/cm2 at 0.01 mA/cm2. In addition, the material showed a high coulombic efficiency (>95%) and good stability (62.0% capacitance retention after 1000 cycles) (Figures d–i.). Despite inferior optical modulation compared with alkaline/organic systems originating from the large hydrated radius and strong electrostatic interaction of Zn2+, the warm-mode spectral regulation and WO3-compatible characteristics enable a promising strategy for all-aqueous, low-cost, safe dual-band smart windows.
 
关键词
Li-doped NiO;electrochromism;aqueous electrolyte;WO3;nanosheet arrays;dual-band smart window;pseudocapacitance
报告人
Zhongyi Wang
学生 University of Science and Technology Beijing

稿件作者
Zhongyi Wang University of Science and Technology Beijing
Xiangtao Huo University of Science and Technology Beijing
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重要日期
  • 会议日期

    10月26日

    2026

    至

    10月30日

    2026

  • 10月07日 2026

    初稿截稿日期

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杭州市北京航空航天大学国际创新研究院(北京航空航天大学国际创新学院)
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