机器人
计算机科学
可扩展性
小型化
光纤
微流控
材料科学
电子工程
纳米技术
人工智能
工程类
电信
数据库
作者
Yujing Zhang,Xiaobo Wu,Ram Anand Vadlamani,Youngmin Lim,Jongwoon Kim,Kailee David,Earl T. Gilbert,You Li,Ruixuan Wang,Shan Jiang,Anbo Wang,Harald Sontheimer,Daniel F. English,Satoru Emori,Rafael V. Davalos,Steven Poelzing,Xiaoting Jia
标识
DOI:10.1002/adhm.202300964
摘要
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 o 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.
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