Continuous Solar Energy Conversion Windows Integrating Zinc Anode‐Based Electrochromic Device and IoT System

Author:

Zhao Feifei123,Li Changyu3,Li Shaohui4,Wang Bin3,Huang Bingkun3,Hu Kun3,Liu Linhua3,Yu William W.12,Li Haizeng35ORCID

Affiliation:

1. School of Chemistry and Chemical Engineering Ministry of Education Key Laboratory of Special Functional Aggregated Materials Shandong Key Laboratory of Advanced Organosilicon Materials and Technologies Shandong University Jinan 250100 China

2. Shandong Provincial Key Laboratory for Science of Material Creation and Energy Conversion Science Center for Material Creation and Energy Conversion Shandong University Qingdao 266237 China

3. Institute of Frontier and Interdisciplinary Science Shandong University Qingdao 266237 China

4. School of Materials Science and Engineering Zhengzhou University Zhengzhou 450001 China

5. Shenzhen Research Institute of Shandong University Shenzhen 518057 China

Abstract

AbstractIntegration of solar cells and electrochromic windows offers crucial contributions to green buildings. Solar‐charging zinc anode‐based electrochromic devices (ZECDs) present opportunities for addressing the solar intermittency issue. However, the limited energy storage capacity of ZECDs results in wasted harnessing of solar energy as well as overcharging. Herein, spectral‐selective dual‐band ZECDs that continuously transport solar energy to indoor appliances by remotely controlling the repeated bleached‐tinted cycles during the daytime, are reported. Hexagonal phase cesium‐doped tungsten bronze (h‐Cs0.32WO3, CWO) nanocrystals are adopted for dual‐band ZECDs due to their independent control ability of near‐infrared (NIR) and visible (VIS) light transmittance (∆T = 73.0%, 700 nm; ∆T = 83.7%, 1200 nm) and excellent cycling stability (0.8% optical contrast decay at 1200 nm after 10 000 cycles). The prototype device (i.e., CWO//Zn//CWO) delivers extraordinary thermal insulation capability, displaying a 10 °C difference between “bright” and “dark” modes. Furthermore, an Internet of Things (IoT) controller to control the NIR and VIS lights of the CWO//Zn//CWO window wirelessly with a smartphone, empowering the continuous discharging of the solar‐charged window during the daytime remotely, is developed. Such windows represent an intriguing potential technology whose future impact on green buildings may be substantial.

Funder

National Natural Science Foundation of China

Basic and Applied Basic Research Foundation of Guangdong Province

Publisher

Wiley

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