Xu Bing, Chen Jingwei, Li Ping, Ouyang Yujia, Ma Yu, Wang Huanlei, Li Haizeng
School of Materials Science and Engineering, Ocean University of China, Qingdao 266100, China.
Institute of Frontier & Interdisciplinary Science, Shandong University, Qingdao 266237, China.
Nanoscale. 2023 Dec 14;15(48):19629-19637. doi: 10.1039/d3nr04902g.
Growing energy and environmental challenges have imposed higher requirements for the development of novel multifunctional energy storage and energy-saving devices. Electrochromic devices having similar configurations and working mechanisms with secondary batteries exhibit promising applications in dual-functional electrochromic-energy storage (ECES) devices. Electrochromic Prussian blue (PB) as typical battery cathodes are of great interest for ECES devices although they suffer from poor stability and limited capacity. In this study, a transparent metal oxide (NiO nanosheets) interlayer was incorporated to enhance the structural stability and capacity of PB while offering enlarged optical modulation (Δ) and accelerated switching kinetics in the NiO/PB film. Impressively, the NiO/PB nanocomposite film exhibited a high areal capacity of 50 mA h m and excellent electrochemical stability, simultaneously manifesting a large Δ (73.2% at 632.8 nm), fast switching time ( = 1.4 s, = 2.6 s) and higher coloration efficiency (CE = 54.9 cm C), surpassing those of the bare PB film (Δ = 69.1% at 632.8 nm, = 1.6 s, = 4.1 s, CE = 50.9 cm C). Finally, a prototype zinc anode-based electrochromic device assembled with NiO/PB nanocomposite film exhibited a self-bleaching function and Δ retention of up to 92% after 1000 cycles, and a 100 cm large area device was also demonstrated for high performance. Such a transparent metal oxide interlayer has enabled the construction of durable and fast-switching dual-functional zinc anode-based electrochromic devices and will inspire more efforts in designing novel multifunctional ECES devices.
日益增长的能源和环境挑战对新型多功能储能和节能设备的发展提出了更高要求。与二次电池具有相似结构和工作机制的电致变色器件在双功能电致变色-储能(ECES)设备中展现出了广阔的应用前景。电致变色普鲁士蓝(PB)作为典型的电池阴极,尽管存在稳定性差和容量有限的问题,但在ECES设备中仍备受关注。在本研究中,引入了一种透明金属氧化物(NiO纳米片)中间层,以增强PB的结构稳定性和容量,同时在NiO/PB薄膜中提供更大的光学调制(Δ)和更快的开关动力学。令人印象深刻的是,NiO/PB纳米复合薄膜表现出50 mA h m的高面积容量和优异的电化学稳定性,同时展现出较大的Δ(在632.8 nm处为73.2%)、快速的开关时间(上升时间=1.4 s,下降时间=2.6 s)和更高的着色效率(CE = 54.9 cm C),超过了裸PB薄膜(在632.8 nm处Δ = 69.1%,上升时间=1.6 s,下降时间=4.1 s,CE = 50.9 cm C)。最后,采用NiO/PB纳米复合薄膜组装的基于锌阳极的电致变色器件原型具有自漂白功能,在1000次循环后Δ保留率高达92%,还展示了用于高性能的100 cm大面积器件。这种透明金属氧化物中间层使得耐用且快速切换的基于锌阳极的双功能电致变色器件得以构建,并将激发在设计新型多功能ECES设备方面做出更多努力。