Jiang Laiming, Yang Yang, Chen Yong, Zhou Qifa
Roski Eye Institute, Keck School of Medicine, University of Southern California, Los Angeles, CA 90033 USA.
Epstein Department of Industrial and Systems Engineering, Department of Aerospace and Mechanical Engineering, Viterbi School of Engineering, University of Southern California, Los Angeles, CA 90089 USA.
Nano Energy. 2020 Nov;77. doi: 10.1016/j.nanoen.2020.105131. Epub 2020 Jul 22.
Wireless energy harvesting represents an emerging technology that can be integrated into a variety of systems for biomedical, physical, and chemical functions. The miniaturization and ease of implementation are the main challenges for the development of wireless energy harvesting systems. Unlike most reported wireless energy harvesting technologies represented by electromagnetic coupling, the new generation of ultrasound-induced wireless energy harvesting (UWEH) that use propagating ultrasound waves to carry the available energy provides a strategy with higher resolution, deeper penetration, and more security, especially in nanodevices and implantable medical systems where a long-term stable power is required. Recently, advances in nanotechnologies, microelectronics, and biomedical systems are revolutionizing UWEH. In this article, an overview of recent developments in UWEH technologies that use a variety of material strategies and system designs based on the piezoelectric and capacitive energy harvesting mechanisms is provided. Practical applications are also presented, including wireless power for bio-implantable devices, direct cell/tissue electrical stimulations, wireless recording and communication in nervous systems, ultrasonic modulated drug delivery, self-powered acoustic sensors, and ultrasound-induced piezoelectric catalysis. Finally, perspectives and opportunities are also highlighted.
无线能量采集是一项新兴技术,可集成到各种用于生物医学、物理和化学功能的系统中。小型化和易于实施是无线能量采集系统发展的主要挑战。与大多数以电磁耦合为代表的已报道无线能量采集技术不同,新一代利用传播超声波来携带可用能量的超声诱导无线能量采集(UWEH)提供了一种具有更高分辨率、更深穿透深度和更高安全性的策略,特别是在需要长期稳定电源的纳米器件和可植入医疗系统中。最近,纳米技术、微电子学和生物医学系统的进展正在彻底改变UWEH。本文概述了基于压电和电容能量采集机制、采用各种材料策略和系统设计的UWEH技术的最新进展。还介绍了实际应用,包括生物可植入设备的无线供电、直接细胞/组织电刺激、神经系统中的无线记录和通信、超声调制药物递送、自供电声学传感器以及超声诱导的压电催化。最后,还强调了前景和机遇。