电致变色
氧化钨
材料科学
钨
相(物质)
氧化物
纳米技术
混合氧化物
化学工程
冶金
电极
有机化学
工程类
物理化学
化学
作者
H. Nath,Alok Kumar,Shivam Singh,Giridhar U. Kulkarni,Ritu Gupta
标识
DOI:10.1021/acsami.4c15176
摘要
Electrochromic devices based on mixed-phase WO3 can potentially outperform their pure-phase counterparts due to the optimized distribution of optically active sites that facilitate cation intercalation. In this work, we synthesized WO3 containing orthorhombic and hexagonal phases, with precise phase ratio control accomplished through a meticulously designed experimental strategy of optimizing the reaction time at low temperatures in a closed system under a hydrogen atmosphere. A detailed XRD analysis shows an optimal phase ratio (orthorhombic/hexagonal = 0.59), corresponding to a hexagonal content of 62.7% that demonstrated superior electrochromic performance. A fast Li+ ion diffusion (diffusion coefficient of 3.105 × 10-10 cm2/s) indicated more optically active sites for ion intercalation, enabling high transmission modulation of 52%, excellent coloration efficiency of 133 cm2/C, and fast switching in less than 2.7 s. The presence of phase junctions significantly enhanced the structural stability up to 5000 cycles. The mixed-phase configuration stabilized the structural deformation during Li-ion interaction and intercalation, likely contributing to improved reversibility and, consequently, increased stability of the electrode. The multifunctional characteristics were elucidated by establishing the relationship between optical modulation, the charge storage capability, and the heat-blocking ability of the best-performing electrochromic device. Additionally, the material's synthesis and device fabrication protocol employed in this work yields a scalable, cost-effective, and stable dual-functional device suitable for the construction of smart windows.
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