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用于增强电致变色性能的纳米多孔 NiO/ZnO 纳米阵列薄膜的三维结构。

Three-Dimensional Structures of Nanoporous NiO/ZnO Nanoarray Films for Enhanced Electrochromic Performance.

机构信息

Key Laboratory for Organic Electronics and Information, Displays & Institute of Advanced Materials (IAM), Jiangsu National Synergetic Innovation Center for Advanced, Materials (SICAM), Jiangsu Key Laboratory for Biosensors, Nanjing University of Posts & Telecommunications, 9 Wenyuan Road, Nanjing, 210023, P.R. China.

School of Computer Science and Information Engineering, Guangzhou Martime University, P.R. China.

出版信息

Chem Asian J. 2019 Feb 1;14(3):431-437. doi: 10.1002/asia.201801685. Epub 2019 Jan 11.

Abstract

An electrochromic device with the as-obtained nanoporous NiO /ZnO nanoarray as a working electrode was constructed and assembled. The nanoporous NiO/ZnO nanoarray film with a three-dimensional structure was prepared on indium tin oxide (ITO) glass substrate through a two-step route that combined chemical bath deposition method with a hydrothermal method. The nanoporous NiO/ZnO nanoarray electrode reveals a noticeable improvement in electrochromism compared with that of nanoporous NiO alone, including higher optical modulation (81 %), higher coloration efficiency (78.5 cm  C ), faster response times (2.6 and 9.7 s for coloring and bleaching, respectively), and favorable durability performance. Such enhancements are mainly attributed to the three-dimensional structures of nanoporous NiO coated on ZnO nanoarray, namely, 1) the uniform hexagonal ZnO nanoarray loads more nanoporous NiO, 2) nanoporous NiO cross-linked with ZnO nanorods provides a loose interspace morphology, 3) stronger adhesion between ZnO nanorods and ITO covered with ZnO seed, 4) core-shell and cross-linked structures promote electrolyte infiltration, and 5) appropriate band gaps improve charge transfer.

摘要

构建并组装了以所获得的纳米多孔 NiO/ZnO 纳米阵列作为工作电极的电致变色器件。通过化学浴沉积法与水热法相结合的两步法,在氧化铟锡(ITO)玻璃基底上制备了具有三维结构的纳米多孔 NiO/ZnO 纳米阵列薄膜。与单独的纳米多孔 NiO 相比,纳米多孔 NiO/ZnO 纳米阵列电极在电致变色方面有明显的改善,包括更高的光学调制(81%)、更高的着色效率(78.5 cm  C)、更快的响应时间(着色和褪色分别为 2.6 和 9.7 s)和良好的耐久性。这些增强主要归因于涂覆在 ZnO 纳米阵列上的纳米多孔 NiO 的三维结构,即:1)均匀的六方 ZnO 纳米阵列负载更多的纳米多孔 NiO;2)纳米多孔 NiO 与 ZnO 纳米棒交联提供了疏松的间隔形态;3)具有 ZnO 种子的 ITO 上的 ZnO 纳米棒具有更强的附着力;4)核壳和交联结构促进电解质渗透;5)适当的能带隙提高了电荷转移。

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