Carbon-based implantable bioelectronics

IF 11.9 1区 物理与天体物理 Q1 PHYSICS, APPLIED Applied physics reviews Pub Date : 2024-07-19 DOI:10.1063/5.0160168
Shan Liu, Xue Li, Li Gan, Sutong Liu, Hongzhi Luo, Xiaoxin Du, Samah A. Loutfy, Hong Tan, Jinhong Guo, Chenzhong Li
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Abstract

Real-time health monitoring and precision treatment are important in the biomedical field. Researchers have focused on unique gadgets with peculiar functions, which have emerged from the merging of electronic components with biological systems. Because implantable bioelectronics can sense bodily information or elicit bodily reactions in living creatures from sites outside the body, they are becoming helpful and promising remedies for a variety of ailments. Carbon materials are more suitable than other materials for the manufacture of implantable medical electronics due to their excellent biocompatibility, fatigue resistance, and low specific gravity. Therefore, carbon materials can apply to a wide range of implantable drug delivery devices, biosensors, therapeutic stimulators, and energy storage and play irreplaceable roles in neurological, cardiovascular, gastrointestinal, and locomotor systems, among others. This review aims to offer researchers insight into carbon-based implantable bioelectronics in the biomedical field. Initially, various types of carbon materials were introduced. Subsequently, it delves into carbon-based implantable bioelectronics from four perspectives: implantable actuators, biosensors, drug delivery systems, and power supplies. Furthermore, we anticipate the future direction and potential applications of carbon-based implantable bioelectronics. Given the evolving field of nanotechnology and bioelectronics, we are optimistic that these devices will foster significant breakthroughs and innovations in the biomedical sector. Ultimately, this review aims to assist researchers in navigating the choices and directions of carbon-based implantable bioelectronics, thereby promoting the advancement of the biomedical field and contributing positively to the health and welfare of humankind.
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碳基植入式生物电子学
实时健康监测和精确治疗在生物医学领域非常重要。研究人员重点研究了电子元件与生物系统融合后产生的具有独特功能的小工具。由于植入式生物电子元件可以从体外感知生物体内的信息或引起生物体内的反应,因此正在成为治疗各种疾病的有用且有前景的疗法。碳材料具有良好的生物相容性、抗疲劳性和低比重,因此比其他材料更适合制造植入式医疗电子设备。因此,碳材料可广泛应用于植入式给药装置、生物传感器、治疗刺激器和能量存储,在神经系统、心血管系统、肠胃系统和运动系统等方面发挥着不可替代的作用。本综述旨在让研究人员深入了解生物医学领域的碳基植入式生物电子学。首先介绍了各种类型的碳材料。随后,文章从四个方面深入探讨了碳基植入式生物电子学:植入式致动器、生物传感器、给药系统和电源。此外,我们还展望了碳基植入式生物电子学的未来发展方向和潜在应用。鉴于纳米技术和生物电子学领域的不断发展,我们乐观地认为,这些设备将促进生物医学领域的重大突破和创新。最终,本综述旨在帮助研究人员把握碳基植入式生物电子学的选择和发展方向,从而促进生物医学领域的进步,为人类的健康和福祉做出积极贡献。
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来源期刊
Applied physics reviews
Applied physics reviews PHYSICS, APPLIED-
CiteScore
22.50
自引率
2.00%
发文量
113
审稿时长
2 months
期刊介绍: Applied Physics Reviews (APR) is a journal featuring articles on critical topics in experimental or theoretical research in applied physics and applications of physics to other scientific and engineering branches. The publication includes two main types of articles: Original Research: These articles report on high-quality, novel research studies that are of significant interest to the applied physics community. Reviews: Review articles in APR can either be authoritative and comprehensive assessments of established areas of applied physics or short, timely reviews of recent advances in established fields or emerging areas of applied physics.
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