Micropatterned Polymer Nanoarrays with Distinct Superwettability for a Highly Efficient Sweat Collection and Sensing Patch

Author:

Jin Minghui1,Su Peipei1,Huang Xiaocheng1,Zhang Ruhao1,Xu He1,Wang Zhenbo1,Su Cuicui1,Katona Jaroslav M.2,Ye Yumin1ORCID

Affiliation:

1. Department of Materials Science and Engineering Faculty of Materials Science and Chemical Engineering Ningbo University Ningbo 315211 China

2. Faculty of Technology University of Novi Sad Novi Sad, Bul. Cara Lazara 1 Novi Sad 21000 Serbia

Abstract

AbstractWearable sweat sensor offers a promising means for noninvasive real‐time health monitoring, but the efficient collection and accurate analysis of sweat remains challenging. One of the obstacles is to precisely modulate the surface wettability of the microfluidics to achieve efficient sweat collection. Here a facile initiated chemical vapor deposition (iCVD) method is presented to grow and pattern polymer nanocone arrays with distinct superwettability on polydimethylsiloxane microfluidics, which facilitate highly efficient sweat transportation and collection. The nanoarray is synthesized by manipulating monomer supersaturation during iCVD to induce controlled nucleation and preferential vertical growth of fluorinated polymer. Subsequent selective vapor deposition of a conformal hydrogel nanolayer results in superhydrophilic nanoarray floor and walls within the microchannel that provide a large capillary force and a superhydrophobic ceiling that drastically reduces flow friction, enabling rapid sweat transport along varied flow directions. A carbon/hydrogel/enzyme nanocomposite electrode is then fabricated by sequential deposition of highly porous carbon nanoparticles and hydrogel nanocoating to achieve sensitive and stable sweat detection. Further encapsulation of the assembled sweatsensing patch with superhydrophobic nanoarray imparts self‐cleaning and water‐proof capability. Finally, the sweat sensing patch demonstrates selective and sensitive glucose and lactate detection during the on‐body test.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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