4.8 Article

Remarkable Near-Infrared Electrochromism in Tungsten Oxide Driven by Interlayer Water-Induced Battery-to-Pseudocapacitor Transition

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 12, Issue 30, Pages 33917-33925

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.0c08270

Keywords

electrochromism; near-infrared; interlayer water; capacitive charging; free electron concentration

Funding

  1. National Natural Science Foundation of China [51772319, 51772320, 51972331]
  2. Natural Science Foundation of Jiangxi Province [20181ACB20011]
  3. External Cooperation Program of the Chinese Academy of Sciences [121E32KYSB20190008]
  4. Six Talent Peaks Project of Jiangsu Province [XCL-170]
  5. Science and Technology Project of Nanchang [2017-SJSYS-008]
  6. Youth Innovation Promotion Association, CAS [2018356]
  7. Outstanding Youth Fund of Jiangxi Province [20192BCBL23027]
  8. Suzhou Industrial Science and Technology Program [SYG201737]
  9. Natural Science Foundation of Jiangsu Province [BK20190228]
  10. Guangdong Basic and Applied Basic Research Foundation [2019A1515110859]

Ask authors/readers for more resources

Near-infrared (NIR) electrochromism is of academic and technological interest for a variety of applications in advanced solar heat regulation, photodynamic therapy, optical telecommunications, and military camouflage. However, inorganic materials with outstanding NIR modulation capability are quite few. Herein, we propose a promising strategy for achieving strong NIR electrochromism in tungsten oxide that is closely related to its electrochemical transformation from battery-type behavior to pseudocapacitance, induced by introducing an interlayer space with water molecules within tungsten oxide. Further evidence demonstrates that the interlayer water molecules significantly reduced the energy barrier to ion diffusion and increased the ion flux in tungsten oxide. As a result, compared with anhydrous WO3, the as-synthesized WO3 center dot 2H(2)O nanoplates exhibited remarkably improved NIR electrochromic properties, including a large transmittance modulation (90.4%), high coloration efficiency (322.6 cm(2) C-1), and high cyclic stability (maintaining 93.7% after 500 cycles), which were comparable to those of the best reported NIR electrochromic materials. Moreover, the application of the WO3 center dot 2H(2)O nanoplate-based electrochromic device resulted in a temperature difference of 11.9 degrees C, indicating good solar thermal regulation ability.

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