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用于应变弹性和多模式多孔生物电子学的可持续纳米纤维界面。

Sustainable Nanofibril Interfaces for Strain-Resilient and Multimodal Porous Bioelectronics.

机构信息

Department of Mechanical & Aerospace Engineering, University of Missouri, Columbia, MO, 65201, USA.

Department of Chemical and Biomedical Engineering, University of Missouri, Columbia, MO, 65201, USA.

出版信息

Adv Mater. 2024 Nov;36(46):e2411587. doi: 10.1002/adma.202411587. Epub 2024 Sep 28.

Abstract

Porous soft bioelectronics have attracted significant attention due to their high breathability, long-term biocompatibility, and other unique features inaccessible in nonporous counterparts. However, fabricating high-quality multimodal bioelectronic components that operate stably under strain on porous substrates, along with integrating microfluidics for sweat management, remains challenging. In this study, cellulose nanofibrils (CNF) are explored, biomass-derived sustainable biomaterials, as nanofibril interfaces with unprecedented interfacial robustness to enable high-quality printing of strain-resilient bioelectronics on porous substrates by reducing surface roughness and creating mechanical heterogeneity. Also, CNF-based microfluidics can provide continuous sweat collection and refreshment, crucial for accurate biochemical sensing. Building upon these advancements, a multimodal porous wearable bioelectronic system is further developed capable of simultaneously detecting electrocardiograms and glucose and beta-hydroxybutyrate in sweat for monitoring energy metabolism and consumption. This work introduces novel strategies for fabricating high-quality, strain-resilient porous bioelectronics with customizable multimodalities to meet arising personalized healthcare needs.

摘要

多孔软电子因其高透气性、长期生物相容性和非多孔对应物无法实现的其他独特功能而引起了极大的关注。然而,在多孔衬底上制造高质量的多模式生物电子组件,使其在应变下稳定运行,并集成微流控技术以进行汗液管理,仍然具有挑战性。在这项研究中,我们探索了纤维素纳米纤维(CNF),这是一种源自生物质的可持续生物材料,作为纳米纤维界面,具有前所未有的界面坚固性,可通过降低表面粗糙度和创建机械异质性来实现对多孔衬底上应变弹性生物电子器件的高质量打印。此外,基于 CNF 的微流控技术可以提供连续的汗液收集和更新,这对于准确的生化传感至关重要。在此基础上,进一步开发了一种多模式多孔可穿戴生物电子系统,能够同时检测心电图和汗液中的葡萄糖和β-羟基丁酸,以监测能量代谢和消耗。这项工作为制造高质量、应变弹性的多孔生物电子学引入了新的策略,具有可定制的多模式功能,以满足不断出现的个性化医疗保健需求。

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