Li Pan, Liu Xiaoxin, Lv Ying, You Xin, Li Xiaotian, Guo Xiaoyang, Wang Tienan, Liu Xingyuan
Key Laboratory of Luminescence Science and Technology, Chinese Academy of Sciences & State Key Laboratory of Luminescence Science and Applications, Changchun Institute of Optics, Fine Mechanics and Physics, Chinese Academy of Sciences, Changchun 130033, China.
University of Chinese Academy of Sciences, Beijing 100049, China.
Nano Lett. 2025 Feb 12;25(6):2342-2349. doi: 10.1021/acs.nanolett.4c05696. Epub 2025 Jan 31.
Electrochromic (EC) technology can adjust optical properties under electrical stimulation with broad applications in smart windows, displays, and camouflage. However, significant challenges remain in developing inorganic EC films with high durability, rapid response, and mechanical flexibility due to intrinsic brittleness and dense microstructure. Herein, a nanostructured quasiplanar heterointerface (Q-PHI) is first introduced into the electrode/EC interlayer to realize a robust, ultrafast switching tungsten trioxide (WO) EC film. The 200 nm-thick Q-PHI WO film exhibits remarkable EC performance, including large optical contrast (81.8% and 83.4% at 700 and 1500 nm), ultrafast switching of 2.4 and 1.8 s, and excellent stability (10,000 cycles with 21.3% optical-contrast loss). A large-area (20 × 15 cm) flexible EC smart window is also successfully achieved. The mechanism lies in the intense built-in electric field and strong interfacial bonding induced by the Q-PHI with unique longitudinal gradient distribution, greatly enhancing the electron/ion transport kinetics, surface ion adsorption, and durability.
电致变色(EC)技术可在电刺激下调节光学性能,在智能窗户、显示器和伪装等领域有广泛应用。然而,由于其固有的脆性和致密的微观结构,在开发具有高耐久性、快速响应和机械柔韧性的无机EC薄膜方面仍存在重大挑战。在此,首次将纳米结构的准平面异质界面(Q-PHI)引入电极/EC中间层,以实现坚固、超快切换的三氧化钨(WO)EC薄膜。200纳米厚的Q-PHI WO薄膜表现出卓越的EC性能,包括在700和1500纳米处的大光学对比度(分别为81.8%和83.4%)、2.4秒和1.8秒的超快切换速度以及出色的稳定性(10000次循环,光学对比度损失21.3%)。还成功制备了大面积(20×15厘米)的柔性EC智能窗户。其机制在于由具有独特纵向梯度分布的Q-PHI诱导产生的强内建电场和强界面结合,极大地增强了电子/离子传输动力学、表面离子吸附和耐久性。