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亚毫米多功能铁磁纤维机器人用于导航、传感和调制。

Submillimeter Multifunctional Ferromagnetic Fiber Robots for Navigation, Sensing, and Modulation.

机构信息

Bradley Department of Electrical and Computer Engineering, Virginia Tech, Blacksburg, VA, 24061, USA.

Translational Biology, Medicine, and Health Graduate Program, Virginia Tech, Roanoke, VA, 24016, USA.

出版信息

Adv Healthc Mater. 2023 Nov;12(28):e2300964. doi: 10.1002/adhm.202300964. Epub 2023 Jul 27.

Abstract

Small-scale robots capable of remote active steering and navigation offer great potential for biomedical applications. However, the current design and manufacturing procedure impede their miniaturization and integration of various diagnostic and therapeutic functionalities. Herein, submillimeter fiber robots that can integrate navigation, sensing, and modulation functions are presented. These fiber robots are fabricated through a scalable thermal drawing process at a speed of 4 meters per minute, which enables the integration of ferromagnetic, electrical, optical, and microfluidic composite with an overall diameter of as small as 250 µm and a length of as long as 150 m. The fiber tip deflection angle can reach up to 54 under a uniform magnetic field of 45 mT. These fiber robots can navigate through complex and constrained environments, such as artificial vessels and brain phantoms. Moreover, Langendorff mouse hearts model, glioblastoma micro platforms, and in vivo mouse models are utilized to demonstrate the capabilities of sensing electrophysiology signals and performing a localized treatment. Additionally, it is demonstrated that the fiber robots can serve as endoscopes with embedded waveguides. These fiber robots provide a versatile platform for targeted multimodal detection and treatment at hard-to-reach locations in a minimally invasive and remotely controllable manner.

摘要

能够远程主动转向和导航的小型机器人在生物医学应用中具有巨大的潜力。然而,当前的设计和制造程序阻碍了它们的小型化和各种诊断及治疗功能的集成。在此,提出了能够集成导航、传感和调制功能的亚毫米纤维机器人。这些纤维机器人是通过每分钟 4 米的可扩展热拉伸工艺制造的,能够将铁磁、电气、光学和微流控复合材料集成在一起,整体直径小至 250µm,长度长达 150m。在 45 mT 的均匀磁场下,纤维尖端的偏转角可达 54°。这些纤维机器人可以在复杂和受限的环境中导航,例如人工血管和脑模型。此外,利用 Langendorff 小鼠心脏模型、神经胶质瘤微平台和体内小鼠模型,证明了它们能够感应电生理信号并进行局部治疗的能力。此外,还证明了纤维机器人可以用作嵌入式波导的内窥镜。这些纤维机器人为在微创和远程可控的方式下,在难以到达的位置进行靶向多模态检测和治疗提供了一个多功能平台。

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