4.8 Article

Fabrication of Large-Area, Affordable Dual-Function Electrochromic Smart Windows by Using a Hybrid Electrode Coated with an Oxygen-Deficient Tungsten Oxide Ultrathin Porous Film

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 15, Issue 15, Pages 19111-19120

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.2c22638

Keywords

electrochromic; energy storage; sputtering; tungsten oxide (WO3); hybrid; transparent electrode

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Electrochromic (EC) devices are not widely commercialized due to their high cost. The best large-area devices in the market do not achieve a distinct dark-colored state and instead appear more like blue tinted glass. This study reports on the development of a high-performing porous WO3 thin film achieved by optimizing the sputtering process, resulting in an affordable dual-function EC energy-storage device. By using a hybrid electrode and multivalent electrolytes, the need for expensive components such as ITO electrodes and Li+ ion-based electrolytes can be eliminated while maintaining device performance.
Electrochromic (EC) devices are not commercialized extensively owing to their high cost. The best large-area devices in the market suffer from not reaching a distinct dark-colored state. These devices appear more like a blue tinted glass. While a better performance demands the use of appropriate components, the cost-effectiveness of such components is crucial for commercialization. Specifically, the utilization of cost-effective electrodes, thin WO3 coatings, and inexpensive electrolytes are essential for reducing the cost of EC devices. Here, we report a high-performing porous WO3 thin film (similar to 130 nm) achieved by optimizing the DC sputtering process parameters. This way, an affordable dual-function EC energy-storage device was fabricated, showing 84% transmittance modulation and a high power density of 3036 mW/m2, thus functioning simultaneously as a transparency switching energy-storage device. With a large-area (900 cm2) device, we have demonstrated that the need for expensive ITO electrodes and Li+ ion-based electrolytes can be eliminated by using a hybrid electrode (ITO/Al-mesh) and multivalent Al3+ ion-based electrolytes while not compromising the device performance. The findings of this study may revolutionize the EC device industry and their commercialization owing to inexpensive ingredients and scalable processing.

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