Alkaline-compatible Nb18W16O93/NiHPO4 complementary electrochromic devices for solar heat regulation
编号:81 访问权限:仅限参会人 更新:2026-10-09 19:05:58 浏览:3次 张贴报告

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摘要
Electrochromic (EC) smart windows are promising for dynamic solar energy management, and aqueous alkaline electrolytes offer advantages such as low cost, safety, and environmental compatibility. However, their application is limited by the chemical instability of conventional tungsten-based materials such as WO3 under hydroxide-rich conditions. Here, we report an alkaline-compatible complementary EC system based on Nb18W16O93/NiHPO4 electrodes that operate via a K+/OH- co-intercalation mechanism in an aqueous KOH electrolyte. Nb18W16O93 enables reversible tungsten-based electrochromism under alkaline conditions, overcoming the intrinsic limitation of WO3, while NiHPO4 provides a high-efficiency anodic counterpart with complementary electrochemical kinetics. The assembled device exhibits broadband modulation across the visible and near-infrared regions, achieving transmittance modulation of 43.7% at 630 nm and 20.4% at 1200 nm with coloration efficiencies of 74.6 and 79.1 cm2/C. This broadband optical response enables effective solar thermal regulation, attenuating 75.2% of incident solar energy (350-1200 nm) and reducing the surface temperature by approximately 14 °C under AM 1.5G illumination. Furthermore, the device maintains uniform EC performance upon scaling to 25 cm2, demonstrating the feasibility of the K+/OH- co-intercalation configuration for large-area alkaline EC devices. These results establish Nb18W16O93 as a viable alkaline-compatible cathodic EC material and provide a practical strategy for complementary EC smart windows capable of broadband solar modulation and dynamic heat regulation in aqueous alkaline electrolytes.
Electrochromic (EC) smart windows are promising for dynamic solar energy management, and aqueous alkaline electrolytes offer advantages such as low cost, safety, and environmental compatibility. However, their application is limited by the chemical instability of conventional tungsten-based materials such as WO3 under hydroxide-rich conditions. Here, we report an alkaline-compatible complementary EC system based on Nb18W16O93/NiHPO4 electrodes that operate via a K+/OH- co-intercalation mechanism in an aqueous KOH electrolyte. Nb18W16O93 enables reversible tungsten-based electrochromism under alkaline conditions, overcoming the intrinsic limitation of WO3, while NiHPO4 provides a high-efficiency anodic counterpart with complementary electrochemical kinetics. The assembled device exhibits broadband modulation across the visible and near-infrared regions, achieving transmittance modulation of 43.7% at 630 nm and 20.4% at 1200 nm with coloration efficiencies of 74.6 and 79.1 cm2/C. This broadband optical response enables effective solar thermal regulation, attenuating 75.2% of incident solar energy (350-1200 nm) and reducing the surface temperature by approximately 14 °C under AM 1.5G illumination. Furthermore, the device maintains uniform EC performance upon scaling to 25 cm2, demonstrating the feasibility of the K+/OH- co-intercalation configuration for large-area alkaline EC devices. These results establish Nb18W16O93 as a viable alkaline-compatible cathodic EC material and provide a practical strategy for complementary EC smart windows capable of broadband solar modulation and dynamic heat regulation in aqueous alkaline electrolytes.
关键词
Electrochromic device,Niobium tungsten oxide,Nickel hydrogen phosphate,Alkaline electrolyte,Solar heat regulation
报告人
Kwang-Mo Kang
Mr Korea University of Technology and Education

稿件作者
Kwang-Mo Kang Korea University of Technology and Education
Young-Hun Kim Korea University of Technology and Education
Jihyeong Lee Korea University of Technology and Education
woo seok Choi Korea University of Technology and Education
Mina Ryu Korea University of Technology and Education
Seong-Jong Hwang Korea University of Technology and Education
Yoon-Chae Nah Korea University of Technology and Education
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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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