Hao Yijun, Niu Zihao, Yang Jiayi, Wang Meiqi, Liu Haopeng, Qin Yong, Su Wei, Zhang Hongke, Zhang Chuguo, Li Xiuhan
School of Electronic and Information Engineering, Beijing Jiaotong University, Beijing 100044, P. R. China.
State Key Laboratory of Rail Traffic Control and Safety, Beijing Jiaotong University, Beijing 100044, P. R. China.
ACS Appl Mater Interfaces. 2024 Jun 26;16(25):32249-32258. doi: 10.1021/acsami.4c04251. Epub 2024 Jun 13.
6G communication mainly occurs in the THz band (0.1-10 THz), which can achieve excellent performance. Self-powered THz modulators are essential for achieving better conduction, modulation, and manipulation of THz waves. Herein, a self-powered terahertz modulator, which is based on metamaterials, liquid crystals (LCs), and rotary triboelectric nanogenerators (R-TENGs), is proposed to realize the driving of different array elements. The corresponding designs can achieve an integrated design and preparation method for dynamic spectrum-reconfigurable liquid crystal metamaterials. In addition, for the type of cross-structure metamaterial liquid crystal box, a phase modulation of 1 GHz is achieved at frequencies of 0.117 and 0.161 THz with modulation depths of 13 and 11%, respectively. Because the R-TENG with a multifan blade and circular electrodes can generate 18 peaks of electric output in every rotation, it can successfully provide sufficient frequency alternating-current electric energy to drive the terahertz modulator and achieve a self-powered function. Our findings lay a solid theoretical foundation for further building self-powered THz communication systems and promote the development of a theoretical system for LC-driving spectrum-reconfigurable devices in the THz domain.
6G通信主要发生在太赫兹频段(0.1 - 10太赫兹),该频段能实现卓越性能。自供电太赫兹调制器对于实现太赫兹波更好的传导、调制及操控至关重要。在此,提出一种基于超材料、液晶(LC)和旋转摩擦纳米发电机(R - TENG)的自供电太赫兹调制器,以实现对不同阵列元件的驱动。相应设计可实现动态频谱可重构液晶超材料的集成设计与制备方法。此外,对于交叉结构超材料液晶盒类型,在0.117太赫兹和0.161太赫兹频率下分别实现了1吉赫兹的相位调制,调制深度分别为13%和11%。由于具有多扇叶叶片和圆形电极的R - TENG在每次旋转时可产生18个电输出峰值,它能够成功提供足够的频率交变电能来驱动太赫兹调制器并实现自供电功能。我们的研究结果为进一步构建自供电太赫兹通信系统奠定了坚实的理论基础,并推动了太赫兹领域中液晶驱动频谱可重构器件理论体系的发展。