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双层弹性体薄片器件。

Double-Framed Thin Elastomer Devices.

机构信息

Department of Electronic Engineering, University of Rome Tor Vergata, Via del Politecnico 1, Roma 00133, Italy.

Center for Advanced Biomaterial for Health Care, Istituto Italiano di Tecnologia, Largo Barsanti e Matteucci 53, Naples 80125, Italy.

出版信息

ACS Appl Mater Interfaces. 2020 Dec 9;12(49):55255-55261. doi: 10.1021/acsami.0c16312. Epub 2020 Nov 30.

Abstract

Elastomers and, in particular, polydimethylsiloxane (PDMS) are widely adopted as biocompatible mechanically compliant substrates for soft and flexible micro-nanosystems in medicine, biology, and engineering. However, several applications require such low thicknesses (., <100 μm) that make peeling-off critical because very thin elastomers become delicate and tend to exhibit strong adhesion with carriers. Moreover, microfabrication techniques such as photolithography use solvents which swell PDMS, introducing complexity and possible contamination, thus limiting industrial scalability and preventing many biomedical applications. Here, we combine low-adhesion and rectangular carrier substrates, adhesive Kapton frames, micromilling-defined shadow masks, and adhesive-neutralizing paper frames for enabling fast, easy, green, contaminant-free, and scalable manufacturing of thin elastomer devices, with both simplified peeling and handling. The accurate alignment between the frame and shadow masks can be further facilitated by micromilled marking lines on the back side of the low-adhesion carrier. As a proof of concept, we show epidermal sensors on a 50 μm-thick PDMS substrate for measuring strain, the skin bioimpedance and the heart rate. The proposed approach paves the way to a straightforward, green, and scalable fabrication of contaminant-free thin devices on elastomers for a wide variety of applications.

摘要

弹性体,特别是聚二甲基硅氧烷(PDMS),被广泛应用于医学、生物学和工程领域中的软、柔性微纳系统的生物相容性机械顺应性衬底。然而,一些应用需要如此薄的厚度(例如,<100μm),这使得剥离成为关键问题,因为非常薄的弹性体会变得脆弱,并容易表现出与载体的强附着力。此外,光刻等微制造技术使用会使 PDMS 溶胀的溶剂,这引入了复杂性和潜在的污染,从而限制了工业的可扩展性,并阻止了许多生物医学应用。在这里,我们结合低粘附力和矩形载体衬底、带粘性的 Kapton 框架、微铣削定义的阴影掩模以及粘性中和的纸张框架,用于实现快速、简便、绿色、无污染且可扩展的薄弹性体器件制造,同时简化了剥离和处理过程。低粘附力载体背面的微铣削标记线可以进一步促进框架和阴影掩模之间的精确对准。作为概念验证,我们展示了厚度为 50μm 的 PDMS 衬底上的表皮传感器,用于测量应变、皮肤生物阻抗和心率。所提出的方法为各种应用的弹性体上无污染的薄器件的直接、绿色和可扩展制造铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b57b/7735669/73e09606b1e9/am0c16312_0002.jpg

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