Intrinsically Soft Implantable Electronics for Long-term Biosensing Applications

Su Hyeon Lee, Hyo Jin Lee, Sohye Lee, Dae-Hyeong Kim, Hye Jin Kim, Sung-Hyuk Sunwoo
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Abstract

Implantable biosensors play a critical role in healthcare and medical research by enabling real-time monitoring of physiological signals with high precion. Compared to non-invasive biosensors, implantable biosensors offer superior fidelity by minimizing external noise and ensuring direct contact with target tissues. However, conventional implantable biosensors, often composed of intrinsically rigid materials such as silicon and metals, suffer from mechanical mismatches with soft biological tissues, leading to inflammatory responses, fibrotic encapsulation, and long-term instability. To address these challenges, recent advances have focused on the development of intrinsically soft materials, which leverage soft and stretchable materials to achieve long-term biocompatibility and seamless tissue integreation. These materials have shown significant promise in neural interfaces, cardiac monitoring, and soft bioelectrodes for cronic sensing and stimulation. This review provides a comprehensive overview of these emerging biosensors, starting with a discussion of the limitations of conventional implantable biosensors. It then examines key intrinsically soft materials, including encapsulation matrices and stretchable conductors, and explores strategies for minimally invasive implantation, chronic fixation, and biocompatibility enhancement. Additionally, specific application cases are highlighted to demonstrate their practical utility. Finally, remaining challenges and future research opportunities are discussed to guide the next generation of intrinsically soft implantable biosensors toward clinical translation.

Abstract Image

本质软植入电子长期生物传感应用
植入式生物传感器通过实现对生理信号的高精度实时监测,在医疗保健和医学研究中发挥着关键作用。与非侵入性生物传感器相比,植入式生物传感器通过最小化外部噪声和确保与目标组织的直接接触,提供了更高的保真度。然而,传统的植入式生物传感器通常由硅和金属等固有刚性材料组成,与柔软的生物组织存在机械不匹配,导致炎症反应、纤维化封装和长期不稳定。为了应对这些挑战,最近的进展集中在本质软材料的开发上,这些材料利用柔软和可拉伸的材料来实现长期的生物相容性和无缝的组织整合。这些材料在神经接口、心脏监测和用于慢性传感和刺激的软生物电极方面显示出巨大的前景。这篇综述提供了这些新兴生物传感器的全面概述,首先讨论了传统植入式生物传感器的局限性。然后研究了关键的内在软材料,包括封装基质和可拉伸导体,并探讨了微创植入、慢性固定和生物相容性增强的策略。此外,还强调了具体的应用案例,以展示它们的实际用途。最后,讨论了仍存在的挑战和未来的研究机会,以指导下一代内在软性植入式生物传感器走向临床转化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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