Querrey-Simpson Institute for Bioelectronics, Northwestern University, Evanston, IL, 60208, USA.
State Key Laboratory of Molecular Engineering of Polymers, Department of Materials Science, Fudan University, Shanghai, 200433, China.
Adv Mater. 2024 Apr;36(15):e2307782. doi: 10.1002/adma.202307782. Epub 2024 Feb 11.
Bio/ecoresorbable electronic systems create unique opportunities in implantable medical devices that serve a need over a finite time period and then disappear naturally to eliminate the need for extraction surgeries. A critical challenge in the development of this type of technology is in materials that can serve as thin, stable barriers to surrounding ground water or biofluids, yet ultimately dissolve completely to benign end products. This paper describes a class of inorganic material (silicon oxynitride, SiON) that can be formed in thin films by plasma-enhanced chemical vapor deposition for this purpose. In vitro studies suggest that SiON and its dissolution products are biocompatible, indicating the potential for its use in implantable devices. A facile process to fabricate flexible, wafer-scale multilayer films bypasses limitations associated with the mechanical fragility of inorganic thin films. Systematic computational, analytical, and experimental studies highlight the essential materials aspects. Demonstrations in wireless light-emitting diodes both in vitro and in vivo illustrate the practical use of these materials strategies. The ability to select degradation rates and water permeability through fine tuning of chemical compositions and thicknesses provides the opportunity to obtain a range of functional lifetimes to meet different application requirements.
生物/生态可吸收电子系统为可在有限时间内满足需求、然后自然消失以消除提取手术需求的植入式医疗设备创造了独特的机会。开发此类技术的一个关键挑战是开发可作为周围地下水或生物流体的薄而稳定屏障的材料,但最终会完全溶解为良性终产物。本文介绍了一类无机材料(硅氧氮化物,SiON),可通过等离子体增强化学气相沉积在薄膜中形成,用于此目的。体外研究表明,SiON 及其溶解产物具有生物相容性,表明其在植入式设备中的应用潜力。一种简便的制造柔性、晶圆级多层薄膜的工艺绕过了与无机薄膜的机械脆性相关的限制。系统的计算、分析和实验研究突出了关键的材料方面。在体外和体内无线发光二极管中的演示说明了这些材料策略的实际用途。通过精细调整化学成分和厚度来选择降解速率和透水性的能力提供了获得满足不同应用要求的一系列功能寿命的机会。