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使用热传感器和致动器的超薄共形阵列在体内测量人体皮肤的热传输特性。

Thermal transport characteristics of human skin measured in vivo using ultrathin conformal arrays of thermal sensors and actuators.

作者信息

Webb R Chad, Pielak Rafal M, Bastien Philippe, Ayers Joshua, Niittynen Juha, Kurniawan Jonas, Manco Megan, Lin Athena, Cho Nam Heon, Malyrchuk Viktor, Balooch Guive, Rogers John A

机构信息

Frederick Seitz Materials Research Laboratory, Department of Materials Science and Engineering, University of Illinois at Urbana-Champaign, Urbana, Illinois, United States of America.

L'Oréal California Research Center, San Francisco, California, United States of America.

出版信息

PLoS One. 2015 Feb 6;10(2):e0118131. doi: 10.1371/journal.pone.0118131. eCollection 2015.

Abstract

Measurements of the thermal transport properties of the skin can reveal changes in physical and chemical states of relevance to dermatological health, skin structure and activity, thermoregulation and other aspects of human physiology. Existing methods for in vivo evaluations demand complex systems for laser heating and infrared thermography, or they require rigid, invasive probes; neither can apply to arbitrary regions of the body, offers modes for rapid spatial mapping, or enables continuous monitoring outside of laboratory settings. Here we describe human clinical studies using mechanically soft arrays of thermal actuators and sensors that laminate onto the skin to provide rapid, quantitative in vivo determination of both the thermal conductivity and thermal diffusivity, in a completely non-invasive manner. Comprehensive analysis of measurements on six different body locations of each of twenty-five human subjects reveal systematic variations and directional anisotropies in the characteristics, with correlations to the thicknesses of the epidermis (EP) and stratum corneum (SC) determined by optical coherence tomography, and to the water content assessed by electrical impedance based measurements. Multivariate statistical analysis establishes four distinct locations across the body that exhibit different physical properties: heel, cheek, palm, and wrist/volar forearm/dorsal forearm. The data also demonstrate that thermal transport correlates negatively with SC and EP thickness and positively with water content, with a strength of correlation that varies from region to region, e.g., stronger in the palmar than in the follicular regions.

摘要

对皮肤热传输特性的测量可以揭示与皮肤健康、皮肤结构和活性、体温调节以及人体生理学其他方面相关的物理和化学状态变化。现有的体内评估方法需要用于激光加热和红外热成像的复杂系统,或者需要刚性的侵入性探头;它们都不能应用于身体的任意部位,无法提供快速空间映射模式,也不能在实验室环境之外进行连续监测。在此,我们描述了使用机械柔软的热致动器和传感器阵列进行的人体临床研究,这些阵列贴合在皮肤上,以完全非侵入的方式快速、定量地在体内测定热导率和热扩散率。对25名人类受试者每人六个不同身体部位的测量进行综合分析,揭示了这些特性的系统变化和方向各向异性,与通过光学相干断层扫描确定的表皮(EP)和角质层(SC)厚度以及通过基于电阻抗的测量评估的含水量相关。多变量统计分析确定了身体上四个不同的部位,它们表现出不同的物理特性:脚跟、脸颊、手掌以及手腕/掌侧前臂/背侧前臂。数据还表明,热传输与SC和EP厚度呈负相关,与含水量呈正相关,相关强度因区域而异,例如,在手掌部位比在毛囊区域更强。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/00b7/4319855/26bff5c22fec/pone.0118131.g001.jpg

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