Principles of long-term fluids handling in paper-based wearables with capillary-evaporative transport

被引:35
作者
Shay, Timothy [1 ]
Saha, Tamoghna [1 ]
Dickey, Michael D. [1 ]
Velev, Orlin D. [1 ]
机构
[1] North Carolina State Univ, Dept Chem & Biomol Engn, Raleigh, NC 27695 USA
关键词
MICROFLUIDIC DEVICES; FLOW; GLUCOSE; DRIVEN; ANALYTES; VOLUME; LAB;
D O I
10.1063/5.0010417
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
We construct and investigate paper-based microfluidic devices, which model long-term fluid harvesting, transport, sensing, and analysis in new wearables for sweat analysis. Such devices can continuously wick fluid mimicking sweat and dispose of it on evaporation pads. We characterize and analyze how the action of capillarity and evaporation can cooperatively be used to transport and process sweat mimics containing dissolved salts and model analytes. The results point out that non-invasive osmotic extraction combined with paper microfluidics and evaporative disposal can enable sweat collection and monitoring for durations longer than 10 days. We model the fluid flow in the new capillary-evaporative devices and identify the parameters enabling their long-term operation. We show that the transport rates are sufficiently large to handle natural sweat rates, while we envision that such handling can be interfaced with osmotic harvesting of sweat, a concept that we demonstrated recently. Finally, we illustrate that the salt film deposited at the evaporation pad would eventually lead to cessation of the process but at the same time will preserve a record of analytes that may be used for long-term biomarker monitoring in sweat. These principles can be implemented in future platforms for wearable skin-interfacing assays or electronic biomarker monitors.
引用
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页数:9
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  • [1] Inkjet-printed microfluidic multianalyte chemical sensing paper
    Abe, Koji
    Suzuki, Koji
    Citterio, Daniel
    [J]. ANALYTICAL CHEMISTRY, 2008, 80 (18) : 6928 - 6934
  • [2] A wearable patch for continuous monitoring of sweat electrolytes during exertion
    Alizadeh, Azar
    Burns, Andrew
    Lenigk, Ralf
    Gettings, Rachel
    Ashe, Jeffrey
    Porter, Adam
    McCaul, Margaret
    Barrett, Ruairi
    Diamond, Dermot
    White, Paddy
    Skeath, Perry
    Tomczak, Melanie
    [J]. LAB ON A CHIP, 2018, 18 (17) : 2632 - 2641
  • [3] A Microfluidic Pump/Valve Inspired by Xylem Embolism and Transpiration in Plants
    Li Jingmin
    Liu Chong
    Xu Zheng
    Zhang Kaiping
    Ke Xue
    Wang Liding
    [J]. PLOS ONE, 2012, 7 (11):
  • [4] Lab-on-Paper with Dual Electrochemical/Colorimetric Detection for Simultaneous Determination of Gold and Iron
    Apilux, Amara
    Dungchai, Wijitar
    Siangproh, Weena
    Praphairaksit, Narong
    Henry, Charles S.
    Chailapakul, Orawon
    [J]. ANALYTICAL CHEMISTRY, 2010, 82 (05) : 1727 - 1732
  • [5] Battery-free, skin-interfaced microfluidic/electronic systems for simultaneous electrochemical, colorimetric, and volumetric analysis of sweat
    Bandodkar, Amay J.
    Gutruf, Philipp
    Choi, Jungil
    Lee, KunHyuck
    Sekine, Yurina
    Reeder, Jonathan T.
    Jeang, William J.
    Aranyosi, Alexander J.
    Lee, Stephen P.
    Model, Jeffrey B.
    Ghaffari, Roozbeh
    Su, Chun-Ju
    Leshock, John P.
    Ray, Tyler
    Verrillo, Anthony
    Thomas, Kyle
    Krishnamurthi, Vaishnavi
    Han, Seungyong
    Kim, Jeonghyun
    Krishnan, Siddharth
    Hang, Tao
    Rogers, John A.
    [J]. SCIENCE ADVANCES, 2019, 5 (01):
  • [6] Three-dimensional paper-based microfluidic electrochemical integrated devices (3D-PMED) for wearable electrochemical glucose detection
    Cao, Qingpeng
    Liang, Bo
    Tu, Tingting
    Wei, Jinwei
    Fang, Lu
    Ye, Xuesong
    [J]. RSC ADVANCES, 2019, 9 (10): : 5674 - 5681
  • [7] Understanding Wax Printing: A Simple Micropatterning Process for Paper-Based Microfluidics
    Carrilho, Emanuel
    Martinez, Andres W.
    Whitesides, George M.
    [J]. ANALYTICAL CHEMISTRY, 2009, 81 (16) : 7091 - 7095
  • [8] Soft, Skin-Integrated Multifunctional Microfluidic Systems for Accurate Colorimetric Analysis of Sweat Biomarkers and Temperature
    Choi, Jungil
    Bandodkar, Amay J.
    Reeder, Jonathan T.
    Ray, Tyler R.
    Turnquist, Amelia
    Kim, Sung Bong
    Nyberg, Nathaniel
    Hourlier-Fargette, Aurelie
    Model, Jeffrey B.
    Aranyosi, Alexander J.
    Xu, Shuai
    Ghaffari, Roozbeh
    Rogers, John A.
    [J]. ACS SENSORS, 2019, 4 (02): : 379 - 388
  • [9] Thin, Soft, Skin-Mounted Microfluidic Networks with Capillary Bursting Valves for Chrono-Sampling of Sweat
    Choi, Jungil
    Kang, Daeshik
    Han, Seungyong
    Kim, Sung Bong
    Rogers, John A.
    [J]. ADVANCED HEALTHCARE MATERIALS, 2017, 6 (05)
  • [10] Paper-based 3D microfluidic device for multiple bioassays
    Choi, Samjin
    Kim, Su-Kang
    Lee, Gi-Ja
    Park, Hun-Kuk
    [J]. SENSORS AND ACTUATORS B-CHEMICAL, 2015, 219 : 245 - 250