Xie Long, Wang Xuechuan, Zou Xiaoliang, Bai Zhongxue, Liang Shuang, Wei Chao, Zha Siyu, Zheng Manhui, Zhou Yi, Yue Ouyang, Liu Xinhua
College of Chemistry and Chemical Engineering, Institute of Biomass & Functional Materials, Shaanxi University of Science & Technology, Xi'an, Shaanxi, 710021, China.
College of Bioresources Chemical and Materials Engineering, Institute of Biomass & Functional Materials, Shaanxi University of Science & Technology, Xi'an, Shaanxi, 710021, China.
Small. 2023 Dec;19(52):e2304321. doi: 10.1002/smll.202304321. Epub 2023 Sep 1.
Buildings account for ≈40% of the total energy consumption. In addition, it is challenging to control the indoor temperature in extreme weather. Therefore, energy-saving smart windows with light regulation have gained increasing attention. However, most emerging base materials for smart windows have disadvantages, including low transparency at low temperatures, ultra-high phase transition temperature, and scarce applications. Herein, a self-adaptive multi-response thermochromic hydrogel (PHC-Gel) with dual temperature and pH response is engineered through "one-pot" integration tactics. The PHC-Gel exhibits excellent mechanical, adhesion, and electrical conductivity properties. Notably, the low critical solubility temperature (LCST) of PHC-Gel can be regulated over a wide temperature range (20-35 °C). The outdoor practical testing reveals that PHC-Gel has excellent light transmittance at low temperatures and radiation cooling performances at high temperatures, indicating that PHC-Gel can be used for developing energy-saving windows. Actually, PHC-Gel-based thermochromic windows show remarkable visible light transparency (T ≈ 95.2%) and solar modulation (△T ≈ 57.2%). Interestingly, PHC-Gel has superior electrical conductivity, suggesting that PHC-Gel can be utilized to fabricate wearable signal-response and temperature sensors. In summary, PHC-Gel has broad application prospects in energy-saving smart windows, smart wearable sensors, temperature monitors, infant temperature detection, and thermal management.
建筑物能耗约占总能耗的40%。此外,在极端天气下控制室内温度具有挑战性。因此,具有光调节功能的节能智能窗越来越受到关注。然而,大多数新兴的智能窗基础材料都存在缺点,包括低温下透明度低、相变温度超高以及应用稀少等问题。在此,通过“一锅法”集成策略设计了一种具有双温度和pH响应的自适应多响应热致变色水凝胶(PHC-Gel)。PHC-Gel具有优异的机械性能、粘附性和导电性。值得注意的是,PHC-Gel的低临界溶解温度(LCST)可在较宽温度范围(20-35°C)内调节。户外实际测试表明,PHC-Gel在低温下具有优异的透光率,在高温下具有辐射冷却性能,这表明PHC-Gel可用于开发节能窗户。实际上,基于PHC-Gel的热致变色窗户具有显著的可见光透明度(T≈95.2%)和太阳调制率(△T≈57.2%)。有趣的是,PHC-Gel具有优异的导电性,这表明PHC-Gel可用于制造可穿戴信号响应和温度传感器。总之,PHC-Gel在节能智能窗、智能可穿戴传感器、温度监测、婴儿体温检测和热管理等方面具有广阔的应用前景。