Simultaneous wireless information and power transfer (SWIPT) has been envisioned as an enabling technology for future 6G by providing high-efficiency power transfer and high-rate data transmissions concurrently. In this paper, we propose a resonant beam charging and communication (RBCC) system utilizing the telescope internal modulator (TIM) and the semiconductor gain medium. TIM can concentrate the diverged beam into a small-size gain module, thus the propagation loss is reduced and the transmission efficiency is enhanced. Since the semiconductor gain medium has better energy absorption capacity compared with the traditional solid-state one, the overall energy conversion efficiency can be improved. We establish an analytical model of this RBCC system for SWIPT and evaluate its stability, output energy, and spectral efficiency. Numerical analysis shows that the proposed RBCC system can realize stable SWIPT over 10 meters, whose energy conversion efficiency is increased by 14 times compared with the traditional system using the solid-state gain medium without TIM, and the spectrum efficiency can be above 15 bit/s/Hz.
翻译:同时的无线信息和电源传输(SWIPT)被设想为对未来6G的赋能技术,方法是同时提供高效电力传输和高率数据传输。在本文中,我们提议利用望远镜内部调制器和半导体增益介质,建立一个共振波束充电和通信系统(RBCC)。TIM可以将不同的光束集中到一个小型增益模块,从而减少传播损失,提高传输效率。由于半导体增益介质比传统的固态中继器拥有更好的吸收能量能力,因此总体的能源转换效率可以提高。我们为SWIPT建立了RCC系统的分析模型,并评价其稳定性、输出能量和光谱效率。数字分析表明,拟议的RBCC系统可以在10米以上实现稳定的SWIPT,其能源转换效率比使用没有TIM的固态增益介质介质的传统系统提高了14倍,频谱效率可以超过15位/秒/秒/秒/秒。