Zhang Ruicong, Song Zicheng, Cao Wenxin, Gao Gang, Yang Lei, He Yurong, Han Jiecai, Zhang Zhibo, Wang Tianyu, Zhu Jiaqi
Center for Composite Materials and Structures, Harbin Institute of Technology, Harbin, 150080, China.
Zhengzhou Research Institute, Harbin Institute of Technology, Zhengzhou, 450018, China.
Light Sci Appl. 2024 Aug 30;13(1):223. doi: 10.1038/s41377-024-01541-y.
A novel multispectral smart window has been proposed, which features dynamic modulation of light transmittance and effective shielding against electromagnetic microwave radiation. This design integrates liquid crystal dynamic scattering and dye doping techniques, enabling the dual regulation of transmittance and scattering within a single-layer smart window. Additionally, the precise control of conductive film thickness ensures the attainment of robust microwave signal shielding. We present a theoretical model for ion movement in the presence of an alternating electric field, along with a novel approach to manipulate negative dielectric constant. The proposed model successfully enables a rapid transition between light transparent, absorbing and haze states, with an optimum drive frequency adjustable to approximately 300 Hz. Furthermore, the resistive design of the conductive layer effectively mitigates microwave radiation within the 2-18 GHz range. These findings offer an innovative perspective for future advancements in environmental construction.
一种新型的多光谱智能窗被提出,其特点是能够动态调制光透射率并有效屏蔽电磁微波辐射。该设计集成了液晶动态散射和染料掺杂技术,可在单层智能窗内实现透射率和散射的双重调节。此外,对导电膜厚度的精确控制确保了强大的微波信号屏蔽效果。我们提出了一种在交变电场存在下离子运动的理论模型,以及一种操纵负介电常数的新方法。所提出的模型成功实现了在光透明、吸收和雾度状态之间的快速转换,最佳驱动频率可调节至约300赫兹。此外,导电层的电阻设计有效减轻了2-18吉赫兹范围内的微波辐射。这些发现为未来环境建设的发展提供了创新视角。