Zhang Zuowei, Yu Meina, Ma Cong, He Longxiang, He Xian, Yuan Baohua, Zhang Luoning, Zou Cheng, Gao Yanzi, Yang Huai
Institute for Advanced Materials and Technology, University of Science and Technology, Beijing, 100083, People's Republic of China.
School of Materials Science and Engineering, Peking University, Beijing, 100871, People's Republic of China.
Nanomicro Lett. 2025 Apr 27;17(1):233. doi: 10.1007/s40820-025-01740-1.
The advancement of sophisticated smart windows exhibiting superior thermoregulation capabilities in both solar spectrum and long-wave infrared range maintains a prominent objective for researchers in this field. In this study, a Janus window is proposed and prepared based on polymer-stabilized liquid-crystal films/thermochromic materials. It can achieve switchable front long-wave infrared emissivity (ε) and solar modulation ability (ΔT) through dynamic flipping, making it suitable for different seasonal energy-saving requirements. Outdoor experiments show that under daytime illumination, the indoor temperature decreases by 8 °C, and the nighttime temperature drops by 5 °C. MATLAB simulation calculations indicate that the daytime cooling power is 93 W m, while the nighttime cooling power reaches 142 W m. Interestingly, by modifying the conductive layer, it can effectively shield electromagnetic radiation (within the X-band frequency range (8.2-12.4) GHz). Energy simulation reveals the substantial superiority of this device in energy savings compared with single-layer polymer-stabilized liquid crystal, poly(N-isopropyl acrylamide), and normal glass when applied in different climate zones. This research presents a compelling opportunity for the development of sophisticated smart windows characterized by exceptional thermoregulation capabilities.
开发在太阳光谱和长波红外范围内均具有卓越温度调节能力的先进智能窗,一直是该领域研究人员的一个重要目标。在本研究中,基于聚合物稳定液晶薄膜/热致变色材料制备了一种双面窗。它可以通过动态翻转实现可切换的前侧长波红外发射率(ε)和太阳调制能力(ΔT),适用于不同季节的节能需求。户外实验表明,在白天光照下,室内温度降低8℃,夜间温度下降5℃。MATLAB模拟计算表明,白天的制冷功率为93W/m,而夜间的制冷功率达到142W/m。有趣的是,通过修改导电层,它可以有效屏蔽电磁辐射(在X波段频率范围(8.2 - 12.4)GHz内)。能源模拟显示,与单层聚合物稳定液晶窗、聚(N-异丙基丙烯酰胺)窗和普通玻璃相比,该装置在不同气候区应用时在节能方面具有显著优势。这项研究为开发具有卓越温度调节能力的先进智能窗提供了一个极具吸引力的机会。