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用于生物电子医学的刺激响应材料和软机器人致动器的最新进展

Recent Advances in Stimuli-Responsive Materials and Soft Robotic Actuators for Bioelectronic Medicine.

作者信息

Dong Chaoqun, Malliaras George G

机构信息

Electrical Engineering Division, Department of Engineering, University of Cambridge, Cambridge, CB3 0FA, United Kingdom.

出版信息

Adv Mater. 2025 Jul;37(27):e2417325. doi: 10.1002/adma.202417325. Epub 2025 Apr 15.

Abstract

Bioelectronic medicine uses implantable electronic devices to interface with electrically active tissues and transform the way disease is diagnosed and treated. One of the biggest challenges is the development of minimally invasive devices that can be deployed to patients at scale. Responsive materials and soft robotic actuators offer unique opportunities to make bioelectronic devices with shape actuation, promising to address the limitations of existing rigid and passive systems, including difficult deployment, mechanical mismatch with soft tissues, and limited adaptability in minimally invasive settings. In this review, an overview is provided of smart materials and soft robotic technologies that show promises for implantable use, discussing advantages and limitations of underlying actuation mechanisms. Examples are then presented where soft actuating mechanisms are combined with microelectrodes to create shape actuating bioelectronic devices. Opportunities and challenges for next-generation intelligent bioelectronic devices assisted by responsive materials and soft robotic actuators are then discussed. These innovations may allow electronic implants to safely navigate to target areas inside the body and establish large area and spatiotemporally controlled interfaces for diagnostic or therapeutic procedures that are minimally invasive.

摘要

生物电子医学利用可植入电子设备与电活性组织相互作用,改变疾病的诊断和治疗方式。最大的挑战之一是开发能够大规模应用于患者的微创设备。响应材料和软机器人致动器为制造具有形状驱动功能的生物电子设备提供了独特机遇,有望解决现有刚性和被动系统的局限性,包括难以部署、与软组织的机械不匹配以及在微创环境中适应性有限等问题。在本综述中,概述了有望用于植入的智能材料和软机器人技术,讨论了潜在驱动机制的优缺点。接着给出了软驱动机制与微电极相结合以制造形状驱动生物电子设备的示例。随后讨论了由响应材料和软机器人致动器辅助的下一代智能生物电子设备的机遇和挑战。这些创新可能使电子植入物能够安全地导航至体内目标区域,并为微创诊断或治疗程序建立大面积且时空可控的界面。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/52b6/12243729/399813f22a18/ADMA-37-2417325-g009.jpg

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