丝素
丝绸
数码产品
纳米技术
可伸缩电子设备
共形映射
材料科学
曲线坐标
计算机科学
工程类
电气工程
物理
复合材料
数学
量子力学
数学分析
作者
Dae‐Hyeong Kim,Jonathan Viventi,Jason J. Amsden,Jianliang Xiao,Leif Vigeland,Yun‐Soung Kim,Justin A. Blanco,Bruce Panilaitis,Éric Fréchette,Diego Contreras,David L. Kaplan,Fiorenzo G. Omenetto,Yonggang Huang,Ao Wang,M. R. Zakin,Brian Litt,John A. Rogers
出处
期刊:Nature Materials
[Nature Portfolio]
日期:2010-04-18
卷期号:9 (6): 511-517
被引量:1567
摘要
Electronics that are capable of intimate, non-invasive integration with the soft, curvilinear surfaces of biological tissues offer important opportunities for diagnosing and treating disease and for improving brain/machine interfaces. This article describes a material strategy for a type of bio-interfaced system that relies on ultrathin electronics supported by bioresorbable substrates of silk fibroin. Mounting such devices on tissue and then allowing the silk to dissolve and resorb initiates a spontaneous, conformal wrapping process driven by capillary forces at the biotic/abiotic interface. Specialized mesh designs and ultrathin forms for the electronics ensure minimal stresses on the tissue and highly conformal coverage, even for complex curvilinear surfaces, as confirmed by experimental and theoretical studies. In vivo, neural mapping experiments on feline animal models illustrate one mode of use for this class of technology. These concepts provide new capabilities for implantable and surgical devices. Electronics that are capable of intimate integration with the surfaces of biological tissues create opportunities for improving animal/machine interfaces. A bio-interfaced system of ultrathin electronics supported by bioresorbable silk-fibroin substrates is now presented. Mounting such devices on tissue and then allowing the silk to dissolve initiates a conformal wrapping process that is driven by capillary forces.
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