State Key Laboratory of Advanced Electromagnetic Engineering and Technology, School of, Electrical and Electronic Engineering, Huazhong University of Science and Technology, Wuhan, Hubei, 430074, China.
State Key Laboratory of Material Processing and Die & Mould Technology, School of Materials, Science and Engineering, Huazhong University of Science and Technology, Wuhan, Hubei, 430074, China.
Adv Mater. 2024 Nov;36(46):e2409142. doi: 10.1002/adma.202409142. Epub 2024 Sep 23.
Thrombosis is a significant threat to human health. However, the existing clinical treatment methods have limitations. Magnetic soft matter is used in the biomedical field for years, and ferromagnetic liquids exhibit tunable stiffness and on-demand movement advantages under magnetic fields. In this study, a ferromagnetic liquid robot (FMLR) is developed and applied it to thrombus removal in complex blood vessels. The FMLR consisted of FeO magnetic nanoparticles and dimethyl silicone oil. The FMLR can pass through a narrow complex maze through shape deformation by tailoring the intensity and direction of the external magnetic field. Finite element simulation analysis is used to validate the mechanism of controllable FMLR movements. Importantly, the storage modulus of FMLR can be tuned from 0.1 to 2018 Pa by varying the external magnetic intensity, ensuring its effectiveness in removing rigid and stubborn thrombi present on the vascular walls. Toward medical robotic applications, FMLR can be used in telerobotic neurointerventional. Experiments demonstrating the capability of FMLR to remove thrombi in the ear veins of rabbits are conducted. This study introduces an efficient approach for thrombus elimination, broadening the utilization of FMLRs within the realm of clinical medicine.
血栓是对人类健康的重大威胁。然而,现有的临床治疗方法存在局限性。磁性软物质在生物医学领域已经使用多年,铁磁液体在磁场下表现出可调刚度和按需运动的优势。本研究开发了一种铁磁液体机器人(FMLR),并将其应用于复杂血管中的血栓清除。FMLR 由 FeO 磁性纳米粒子和二甲基硅油组成。通过调整外部磁场的强度和方向,FMLR 可以通过形状变形穿过狭窄复杂的迷宫。使用有限元模拟分析验证了可控 FMLR 运动的机制。重要的是,通过改变外部磁场强度,FMLR 的储能模量可以从 0.1 到 2018 Pa 进行调节,确保其有效去除血管壁上存在的刚性和顽固血栓。在医疗机器人应用方面,FMLR 可用于远程神经介入机器人。进行了 FMLR 去除兔耳静脉血栓的实验,验证了其性能。本研究为血栓消除提供了一种有效的方法,拓宽了 FMLR 在临床医学领域的应用。