Institute for Materials Science, Kiel University, Germany; Acquandas GmbH, Kiel, Germany.
Institute for Materials Science, Kiel University, Germany.
Biosens Bioelectron. 2020 Apr 1;153:112034. doi: 10.1016/j.bios.2020.112034. Epub 2020 Jan 20.
State of the art minimally invasive treatments and diagnostics of neurological and cardiovascular diseases demand for flexible instruments and implants that enable sensing and stimulation of bioelectric signals. Besides medical applications, implantable bioelectronic brain-computer interfaces are envisioned as the next step in communication and data transfer. Conventional microelectrode arrays used for these types of applications are based on polymer substrates that are not suitable for biostable, rigid and self-expanding devices. Here, we present fully integrated bioelectrodes on superelastic NiTi carriers fabricated by microsystem technology processes. The insulation between the metallic NiTi structure and the Pt electrode layer is realized by different oxide layers (SiO, TaO and Yttrium stabilized Zirconia YSZ). Key properties of bioelectronic implants such as dissolution in body fluids, biocompatibility, mechanical properties and bioelectrical sensing/stimulation capabilities have been investigated by in vitro methods. Particular devices with YSZ are biostable and biocompatible, enabling sensing and stimulation. The major advantage of this system is the combination of medically approved materials and novel fabrication technology that enables miniaturization and integration beyond the state-of-the-art processes. The results demonstrate that this functionalization of superelastic NiTi is an enabling technology for the development of new kinds of bioelectronic devices.
先进的微创治疗和诊断神经和心血管疾病需要灵活的器械和植入物,这些器械和植入物能够感应和刺激生物电信号。除了医学应用外,可植入的脑机接口被认为是在通信和数据传输方面的下一步。用于此类应用的传统微电极阵列基于聚合物衬底,这些衬底不适合用于生物稳定、刚性和自扩张的器件。在这里,我们展示了通过微系统技术工艺在超弹性 NiTi 载体上制造的完全集成的生物电极。金属 NiTi 结构和 Pt 电极层之间的绝缘是通过不同的氧化物层(SiO、TaO 和钇稳定氧化锆 YSZ)实现的。生物电子植入物的关键特性,如在体液中的溶解、生物相容性、机械性能和生物电感应/刺激能力,已经通过体外方法进行了研究。具有 YSZ 的特殊器件具有生物稳定性和生物相容性,能够进行感应和刺激。该系统的主要优势在于将经过医学批准的材料与新型制造技术相结合,从而能够实现超越现有技术的小型化和集成。研究结果表明,这种超弹性 NiTi 的功能化是开发新型生物电子设备的一项使能技术。