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首页> 外文期刊>Biomedical Microdevices >Fabrication of self-expandable NiTi thin film devices with micro-electrode array for bioelectric sensing, stimulation and ablation
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Fabrication of self-expandable NiTi thin film devices with micro-electrode array for bioelectric sensing, stimulation and ablation

机译:具有用于生物电感测,刺激和消融的微电极阵列的自膨胀NiTi薄膜器件的制造

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摘要

Self-expandable medical devices provide mechanical functionality at a specific location of the human body and are viable for minimal invasive procedures. Besides radiopaque markers and drug-eluting coatings, next generation self-expandable devices can be equipped with additional functionality, such as conductive and flexible electrodes, which enables chronic recording of bioelectrical signals, stimulating or ablating tissue. This promises new therapeutic options in various medical fields, among them in particular neuromodulation (e.g. deep brain stimulation), BioMEMS, radio frequency ablation, mapping or denervation. However, the fabrication of such multi-functional devices is challenging. For this study we have realized a 35 mu m thick, superelastic NiTi thin film stent structure with six isolated electrodes on the outer circumference, each electrode connected to a contact pad at the end of the stent structure, using magnetron sputtering, UV lithography and wet chemical etching. Mechanical and electrical properties of the device during typical loading conditions, i.e. crimping, simulated pulsatile and electrochemical testing, were characterized and reveal promising results. For the fabrication of future multifunctional, minimal invasive medical devices, such as electroceuticals or other intelligent implants, NiTi thin film technology is therefore a versatile alternative to conventional fabrication routes.
机译:自膨胀医疗设备在人体的特定位置提供机械功能,并且对于最小的侵入性手术是可行的。除了不透射线的标记物和药物洗脱涂层外,下一代自膨胀式设备还可配备其他功能,例如导电和柔性电极,可长期记录生物电信号,刺激或消融组织。这有望在各种医学领域中提供新的治疗选择,其中特别是神经调节(例如深部脑刺激),BioMEMS,射频消融,标测或去神经支配。然而,这种多功能装置的制造具有挑战性。在这项研究中,我们实现了35微米厚的超弹性NiTi薄膜支架结构,在外周上具有六个隔离电极,每个电极都通过磁控溅射,UV光刻和湿法连接到支架结构末端的接触垫。化学蚀刻。在典型的负载条件下,即压接,模拟脉动和电化学测试期间,该设备的机械和电气性能得到了表征,并显示出令人鼓舞的结果。因此,对于未来的多功能,微创医疗设备的制造,例如电疗法或其他智能植入物,NiTi薄膜技术是常规制造路线的一种通用替代品。

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