生物力学
计算机科学
仿形(计算机编程)
生物医学工程
表征(材料科学)
人工智能
工程类
纳米技术
材料科学
医学
解剖
操作系统
作者
John A. Rogers,Enming Song,Zhaoqian Xie,Wubin Bai,Haiwen Luan,Bowen Ji,Xin Ning,Yu Xia,Janice Mihyun Baek,Yujin Lee,Raudel Avila,Huang-Yu Chen,Jae-Hwan Kim,Surabhi Madhvapathi,Kuanming Yao,Sang Min Won,Xinyuan Zhang,Daniel J. Myers,Yongfeng Mei,Xu Guo
出处
期刊:Research Square - Research Square
日期:2020-12-31
被引量:3
标识
DOI:10.21203/rs.3.rs-134565/v1
摘要
Abstract Compact electronic systems that perform rapid, precise mechanical characterization of living biological tissues have important potential uses in monitoring and diagnosing various types of human-health disorders. Active devices that perform high-precision, real-time evaluations of deep tissue structures (millimeter-scale) in a precise, digital and non-invasive fashion could complement capabilities of recently-reported approaches for sensing tissue biomechanics at superficial depths (typically micrometer-scale). This paper introduces a miniature electromagnetic platform that combines a vibratory actuator with a soft strain-sensing sheet for determining the Young’s modulus of soft biological tissues, with specific focus on skin. Experimental and computational studies establish the operational principles and performance attributes through evaluations of synthetic and biological materials, including human skin at various body locations across healthy subject volunteers. The results demonstrate dynamic monitoring of elastic modulus at characteristic depths between ~1 and ~8 mm, depending on the sensor designs. Arrays of such devices support capabilities in both depth profiling and spatial mapping. Clinical studies on patients with skin disorders highlight potential for accurate targeting of lesions associated with psoriasis, as examples of practical medical utility.
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