4.7 Article

Skin-interfaced soft microfluidic systems with modular and reusable electronics for in situ capacitive sensing of sweat loss, rate and conductivity

期刊

LAB ON A CHIP
卷 20, 期 23, 页码 4391-4403

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/d0lc00705f

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资金

  1. Soft and Hybrid Nanotechnology Experimental (SHyNE) Resource (NSF) [ECCS-1542205]
  2. Materials Research Science and Engineering Center [DMR-1720139]
  3. State of Illinois
  4. Northwestern University
  5. Querrey-Simpson Institute for Bioelectronics at Northwestern University
  6. National Institute on Aging of the National Institutes of Health (NIH) [R43AG067835]
  7. National Science Foundation Graduate Research Fellowship (NSF) [1842165]
  8. Ford Foundation Predoctoral Fellowship
  9. Division Of Graduate Education
  10. Direct For Education and Human Resources [1842165] Funding Source: National Science Foundation

向作者/读者索取更多资源

Important insights into human health can be obtained through the non-invasive collection and detailed analysis of sweat, a biofluid that contains a wide range of essential biomarkers. Skin-interfaced microfluidic platforms, characterized by soft materials and thin geometries, offer a collection of capabilities for in situ capture, storage, and analysis of sweat and its constituents. In ambulatory uses cases, the ability to provide real-time feedback on sweat loss, rate and content, without visual inspection of the device, can be important. This paper introduces a low-profile skin-interfaced system that couples disposable microfluidic sampling devices with reusable 'stick-on' electrodes and wireless readout electronics that remain isolated from the sweat. An ultra-thin capping layer on the microfluidic platform permits high-sensitivity, contactless capacitive measurements of both sweat loss and sweat conductivity. This architecture avoids the potential for corrosion of the sensing components and eliminates the need for cleaning/sterilizing the electronics, thereby resulting in a cost-effective platform that is simple to use. Optimized electrode designs follow from a combination of extensive benchtop testing, analytical calculations and FEA simulations for two sensing configurations: (1) sweat rate and loss, and (2) sweat conductivity, which contains information about electrolyte content. Both configurations couple to a flexible, wireless electronics platform that digitizes and transmits information to Bluetooth-enabled devices. On-body field testing during physical exercise validates the performance of the system in scenarios of practical relevance to human health and performance.

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