Thermochromic Ni(II) Organometallics With High Optical Transparency and Low Phase‐Transition Temperature for Energy‐Saving Smart Windows

Author:

Yu Danxia1,Zhuo Sheng1,Wang Jia1,Liu Zheng1,Ye Jianyong2,Wang Yue3,Chen Long1,Ouyang Xingxing1,Zhang Ke‐Qin4,Zhou Xiao‐Qing1,Guan Jinping4,Liu Yue15,Chen Weifan125,Liao Liang‐Sheng6,Zhuo Ming‐Peng46ORCID

Affiliation:

1. School of Physics and Materials Science Nanchang University Nanchang 330031 China

2. Jiangxi Sun‐Nano Advanced Materials Technology Co. Ltd.  Ganzhou 341000 China

3. School of Aerospace Mechanical and Mechatronic Engineering The University of Sydney Sydney New South Wales 2006 Australia

4. National Engineering Laboratory for Modern Silk College of Textile and Clothing Engineering Soochow University Suzhou 215123 China

5. Rare Earth Research Institute Nanchang University Nanchang 330031 China

6. Institute of Functional Nano & Soft Materials (FUNSOM) Jiangsu Key Laboratory for Carbon‐Based Functional Materials & Devices Soochow University Suzhou 215123 China

Abstract

AbstractThermochromic smart windows with rational modulation in indoor temperature and brightness draw considerable interest in reducing building energy consumption, which remains a huge challenge to meet the comfortable responsive temperature and the wide transmittance modulation range from visible to near‐infrared (NIR) light for their practical application. Herein, a novel thermochromic Ni(II) organometallic of [(C2H5)2NH2]2NiCl4for smart windows is rationally designed and synthesized via an inexpensive mechanochemistry method, which processes a low phase‐transition temperature of 46.3 °C for the reversible color evolution from transparent to blue with a tunable visible transmittance from 90.5% to 72.1%. Furthermore, cesium tungsten bronze (CWO) and antimony tin oxide (ATO) with excellent NIR absorption in 750–1500 and 1500–2600 nm are introduced in the [(C2H5)2NH2]2NiCl4‐based smart windows, realizing a broadband sunlight modulation of a 27% visible light modulation and more than 90% of NIR shielding ability. Impressively, these smart windows demonstrate stable and reversible thermochromic cycles at room temperature. Compared with the conventional windows in the field tests, these smart windows can significantly reduce the indoor temperature by 16.1 °C, which is promising for next‐generation energy‐saving buildings.

Funder

National Natural Science Foundation of China

Soochow University

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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