Wireless technologies in stretchable bioelectronics

IF 5.1 2区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Miaoyun Feng, Guixuan Lu, Zihao Wang and Ying Jiang
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Abstract

Stretchable bioelectronic devices can intimately interface with the human body, but their potential is often constrained by the need for wired connections or rigid power sources. The integration of wireless power transfer and communication technologies addresses these limitations, enabling fully untethered and conformal operation of bioelectronics on skin, implanted inside the body, or even ingested. This article provides a comprehensive review of the wireless techniques applicable to stretchable bioelectronics and the unique considerations that arise at the intersection of these fields. We outline the principles of wireless power delivery – including inductive, capacitive, radio-frequency, ultrasonic, and optical methods – and wireless data communication strategies suitable for stretchable/deformable devices, such as RFID, NFC, Bluetooth/Wi-Fi/ZigBee and also optical/ultrasonic technologies. Key material selections and fabrication approaches for realizing stretchable circuits with wireless functionality are discussed, with an emphasis on recent advances in stretchable substrates, conductors, and system integration techniques. We then survey a range of application examples in wearable health monitoring, implantable medical devices, and ingestible sensors, highlighting how wireless capabilities enhance the performance and usability of stretchable systems. Finally, we consider the remaining challenges (such as ensuring long-term biointegration, device robustness, and safe energy operation) and present an outlook on future developments in this emerging multidisciplinary field.

Abstract Image

可伸缩生物电子学中的无线技术
可拉伸的生物电子设备可以与人体紧密结合,但它们的潜力往往受到有线连接或刚性电源的限制。无线电力传输和通信技术的集成解决了这些限制,使生物电子设备在皮肤上、植入体内甚至被摄入时完全不受束缚和适形操作成为可能。本文提供了适用于可拉伸生物电子学的无线技术的全面回顾,以及在这些领域交叉出现的独特考虑因素。我们概述了无线电力传输的原理-包括电感,电容,射频,超声波和光学方法-以及适用于可拉伸/可变形设备的无线数据通信策略,例如RFID, NFC,蓝牙/Wi-Fi/ZigBee以及光学/超声波技术。讨论了实现具有无线功能的可拉伸电路的关键材料选择和制造方法,重点介绍了可拉伸基板,导体和系统集成技术的最新进展。然后,我们调查了一系列可穿戴健康监测、植入式医疗设备和可摄取传感器的应用示例,重点介绍了无线功能如何提高可拉伸系统的性能和可用性。最后,我们考虑了剩余的挑战(如确保长期生物整合,设备稳健性和安全的能源操作),并对这一新兴多学科领域的未来发展进行了展望。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Materials Chemistry C
Journal of Materials Chemistry C MATERIALS SCIENCE, MULTIDISCIPLINARY-PHYSICS, APPLIED
CiteScore
10.80
自引率
6.20%
发文量
1468
期刊介绍: The Journal of Materials Chemistry is divided into three distinct sections, A, B, and C, each catering to specific applications of the materials under study: Journal of Materials Chemistry A focuses primarily on materials intended for applications in energy and sustainability. Journal of Materials Chemistry B specializes in materials designed for applications in biology and medicine. Journal of Materials Chemistry C is dedicated to materials suitable for applications in optical, magnetic, and electronic devices. Example topic areas within the scope of Journal of Materials Chemistry C are listed below. This list is neither exhaustive nor exclusive. Bioelectronics Conductors Detectors Dielectrics Displays Ferroelectrics Lasers LEDs Lighting Liquid crystals Memory Metamaterials Multiferroics Photonics Photovoltaics Semiconductors Sensors Single molecule conductors Spintronics Superconductors Thermoelectrics Topological insulators Transistors
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