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用于组织愈合的纳米级发电机:一个视角。

Nanoscale Generators for Tissue Healing: A Perspective.

机构信息

Biomaterials and Tissue Regeneration Laboratory, Centre of Excellence, Siksha 'O' Anusandhan (Deemed to be University), Bhubaneswar, Odisha, India.

Metallurgical, Materials and Biomedical Engineering Department, The University of Texas at El Paso, El Paso, Texas, 79968, USA.

出版信息

Int J Nanomedicine. 2024 Nov 14;19:11859-11882. doi: 10.2147/IJN.S480938. eCollection 2024.

Abstract

Electroactive components can promote tissue healing and control neuronal activity with the support of the tissue environment and offer electrical impulses and biocompatible material habitats. Due to the increasing growth of portable electronics, it is imperative to generate tiny, lightweight power supply appliances with outstanding performance and sustainable energy conversion ability. In order to deal with the energy deficiency of electronic devices, self-powered systems based nanogenerators are committed to capturing ambient energy for electronic device consumption. Nanogenerator assemblies provide a range of benefits, including adjustable shape, flexibility, affordability, and transportability. As such, they represent a novel and intriguing area for biomedical investigation. In living organisms, bioelectrical mechanisms play an integral part in regulating the functions of cells and tissues. An essential component of electroactive assemblies includes self-powered nanogenerators. In conjunction with nanogenerators, biomedicine has contributed to the invention of medical devices based on self-powered system. Currently, one of the most significant energy-based technologies to guarantee the long-term functioning of implanted biomedical devices is the accumulation of biomechanical energy in vivo. This review covers the development of nanogenerators for biomedical applications. Piezoelectric and triboelectric materials, which could foster the evolution of potential applications in the field of bone regeneration and tissue engineering, are the primary focus of this review. These materials are electrically self-sustaining generators that encourage tissue repair involving osteogenic proliferation, differentiation, and microbial sterilization. Eventually, the discussion highlights the potential future scope and challenges related to the nanogenerators.

摘要

电活性组件可以在组织环境的支持下促进组织愈合和控制神经元活动,提供电脉冲和生物相容性材料栖息地。由于便携式电子产品的不断增长,迫切需要生成具有出色性能和可持续能量转换能力的微小、轻便的电源设备。为了解决电子设备的能量不足问题,基于自供电系统的纳米发电机致力于捕获环境能量以供电子设备消耗。纳米发电机组件提供了一系列的好处,包括可调节的形状、灵活性、可负担性和可运输性。因此,它们代表了生物医学研究的一个新颖而有趣的领域。在生物体中,生物电机制在调节细胞和组织的功能方面起着至关重要的作用。电活性组件的一个重要组成部分包括自供电纳米发电机。与纳米发电机结合使用,生物医学已经促成了基于自供电系统的医疗设备的发明。目前,保证植入式生物医学设备长期运行的最重要的基于能量的技术之一是在体内积累生物力学能量。本综述涵盖了用于生物医学应用的纳米发电机的发展。压电和摩擦电材料是本综述的主要重点,它们可以促进在骨再生和组织工程领域的潜在应用的发展。这些材料是自供电的发电机,它们可以促进涉及成骨增殖、分化和微生物灭菌的组织修复。最后,讨论强调了纳米发电机相关的潜在未来范围和挑战。

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