Engineering Proton Injection and Phase Separation in Phosphate Glass For Low-Barrier Transport in All-Solid-State Electrochromic Devices

When compared to electrochromic devices (ECDs) that use other forms of ion transport, those that use small-sized protons as transport Ions have faster response rates. However, integrating high-concentration protons into robust all-inorganic solid-state ECDs is difficult. This work employed solid-state electrochemical techniques to replace sodium ions in phosphate glass with hydrogen ions, obtaining a proton conductor with a high proton concentration. Furthermore, under controlled heating conditions, a conductive reinforcing phase with low proton activation energy was induced to precipitate within the material, achieving room-temperature proton conduction. Based on this proton conductor as an electrolyte, a device with an "ITO/WO3/Proton conductor/NiO/ITO" structure was constructed by pulsed laser deposition, realizing the effective integration of protons in all-inorganic solid-state ECDs. The application restrictions of all-solid-state devices, which usually have slow response times, are overcome by this proton-transporting solid-state device's fast electrochromic effect (switching time close to 1s). This study presents a new strategy integrating fast switching for inorganic solid ECDs.

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Publication Details

Journal
ACS Applied Materials & Interfaces
Published
2026-09-28
DOI
https://doi.org/10.1021/acsami.6c13906
Primary Topic
Transition Metal Oxide Nanomaterials
Type
article
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article

Engineering Proton Injection and Phase Separation in Phosphate Glass For Low-Barrier Transport in All-Solid-State Electrochromic Devices

Yutong Song, Gaoyang Zhao, Zexuan Luo, Yang Ren et al.
ACS Applied Materials & Interfaces
Transition Metal Oxide Nanomaterials
article

Engineering Proton Injection and Phase Separation in Phosphate Glass For Low-Barrier Transport in All-Solid-State Electrochromic Devices

Yutong Song, Gaoyang Zhao, Zexuan Luo, Yang Ren, Yue Gui, Ying Zhai, Junxiang Li, Yuhe Gao
article en

Abstract

When compared to electrochromic devices (ECDs) that use other forms of ion transport, those that use small-sized protons as transport Ions have faster response rates. However, integrating high-concentration protons into robust all-inorganic solid-state ECDs is difficult. This work employed solid-state electrochemical techniques to replace sodium ions in phosphate glass with hydrogen ions, obtaining a proton conductor with a high proton concentration. Furthermore, under controlled heating conditions, a conductive reinforcing phase with low proton activation energy was induced to precipitate within the material, achieving room-temperature proton conduction. Based on this proton conductor as an electrolyte, a device with an "ITO/WO3/Proton conductor/NiO/ITO" structure was constructed by pulsed laser deposition, realizing the effective integration of protons in all-inorganic solid-state ECDs. The application restrictions of all-solid-state devices, which usually have slow response times, are overcome by this proton-transporting solid-state device's fast electrochromic effect (switching time close to 1s). This study presents a new strategy integrating fast switching for inorganic solid ECDs.

ACS Applied Materials & Interfaces
Xi'an University of Technology (CN)
Openalex Percentile: Top 24%
Transition Metal Oxide Nanomaterials
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Engineering Proton Injection and Phase Separation in Phosphate Glass For Low-Barrier Transport in All-Solid-State Electrochromic Devices — Yutong Song, Gaoyang Zhao, et al. · ACS Applied Materials & Interfaces (2026) | TGRS Research Map | TGRS