Two-Dimensional WO<sub>3</sub> Nanosheets Chemically Converted from Layered WS<sub>2</sub> for High-Performance Electrochromic Devices.

Azam, Ashraful; Kim, Jungmo; Park, Junyong; Novak, Travis G; Tiwari, Anand P; Song, Sung Ho; Kim, Bumsoo; Jeon, Seokwoo · Nano Lett · 2018

basic_science · Level V

Where this comes from

Abstract

Two-dimensional (2D) transitional metal oxides (TMOs) are an attractive class of materials due to the combined advantages of high active surface area, enhanced electrochemical properties, and stability. Among the 2D TMOs, 2D tungsten oxide (WO<sub>3</sub>) nanosheets possess great potential in electrochemical applications, particularly in electrochromic (EC) devices. However, feasible production of 2D WO<sub>3</sub> nanosheets is challenging due to the innate 3D crystallographic structure of WO<sub>3</sub>. Here we report a novel solution-phase synthesis of 2D WO<sub>3</sub> nanosheets through simple oxidation from 2D tungsten disulfide (WS<sub>2</sub>) nanosheets exfoliated from bulk WS<sub>2</sub> powder. The complete conversion from WS<sub>2</sub> into WO<sub>3</sub> was confirmed through crystallographic and elemental analyses, followed by validation of the 2D WO<sub>3</sub> nanosheets applied in the EC device. The EC device showed color modulation of 62.57% at 700 nm wavelength, which is 3.43 times higher than the value of the conventional device using bulk WO<sub>3</sub> powder, while also showing enhancement of ∼46.62% and ∼62.71% in switching response-time (coloration and bleaching). The mechanism of enhancement was rationalized through comparative analysis based on the thickness of the WO<sub>3</sub> components. In the future, 2D WO<sub>3</sub> nanosheets could also be used for other promising applications such as sensors, catalysis, thermoelectric, and energy conversion.