Amorphous Hydrated Tungsten Oxides with Enhanced Pseudocapacitive Contribution for Aqueous Zinc‐Ion Electrochromic Energy Storage

Author:

Zhuang Dongsheng1234,Zhang Zhixuan1,Weng Jingbo1,Wang Junyi1,Zhang Hongliang56,Cheng Wei1234ORCID

Affiliation:

1. Fujian Key Laboratory of Surface and Interface Engineering for High Performance Materials College of Materials Xiamen University 422 Siming South Road Xiamen 361005 China

2. Shenzhen Research Institute of Xiamen University Shenzhen 518057 China

3. Innovation Laboratory for Sciences and Technologies of Energy Materials of Fujian Province (IKKEM) Xiamen 361005 China

4. Key Laboratory of High Performance Ceramic Fibers, Xiamen University Ministry of Education Xiamen 361005 China

5. Laboratory of Advanced Nano Materials and Devices Ningbo Institute of Materials Technology and Engineering Chinese Academy of Sciences Ningbo 315201 China

6. Center of Materials Science and Optoelectronics Engineering University of Chinese Academy of Sciences Beijing 100049 China

Abstract

AbstractTungsten oxides suffer from sluggish ion diffusion kinetics, limited ion storage capacity, and inadequate stability within the aqueous zinc ion electrolyte, thereby constraining their applicability in electrochromic energy storage devices (EESDs). Here, the amorphous hydrated tungsten oxide films with large optical modulation, fast response speed, large capacity, and high cycling stability are reported, enabled by tuning the contents of structural water and adjusting the pH value of aqueous zinc ion electrolyte. The enhancement of the electrochromic and ion storage performance is mainly due to the introduction of structural water which triggers pseudocapacitive behavior dominated by surface redox reaction, resulting in high electrochemical activity and fast electrochemical kinetics. Meanwhile, the relatively low pH value ensures the chemical stability of the hydrated tungsten oxide film, in synergy with surface redox that avoids ion trapping, leading to extraordinary cycling stability of up to 13000 cycles, marking the state‐of‐the‐art stability for tungsten oxide‐based materials in aqueous electrolyte. Based on the hydrated tungsten oxide films, high‐capacity and stable large‐size EESDs are constructed with the capability of visually monitoring energy status, recovering energy, and regulating light. This work provides a simple yet effective strategy for enhancing the performance of tungsten oxide‐based aqueous zinc ion EESDs.

Funder

Fundamental Research Funds for the Central Universities

International Cooperation Project of Ningbo City

Basic and Applied Basic Research Foundation of Guangdong Province

Natural Science Foundation of Fujian Province

Publisher

Wiley

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