| Literature DB >> 29924589 |
Mallika Bariya1,2,3, Ziba Shahpar1,2,3, Hyejin Park4, Junfeng Sun4, Younsu Jung4, Wei Gao1,2,3, Hnin Yin Yin Nyein1,2,3, Tiffany Sun Liaw1,2,3, Li-Chia Tai1,2,3, Quynh P Ngo1,2,3, Minghan Chao1,2,3, Yingbo Zhao1,2,3, Mark Hettick1,2,3, Gyoujin Cho4, Ali Javey1,2,3.
Abstract
As recent developments in noninvasive biosensors spearhead the thrust toward personalized health and fitness monitoring, there is a need for high throughput, cost-effective fabrication of flexible sensing components. Toward this goal, we present roll-to-roll (R2R) gravure printed electrodes that are robust under a range of electrochemical sensing applications. We use inks and electrode morphologies designed for electrochemical and mechanical stability, achieving devices with uniform redox kinetics printed on 150 m flexible substrate rolls. We show that these electrodes can be functionalized into consistently high performing sensors for detecting ions, metabolites, heavy metals, and other small molecules in noninvasively accessed biofluids, including sensors for real-time, in situ perspiration monitoring during exercise. This development of robust and versatile R2R gravure printed electrodes represents a key translational step in enabling large-scale, low-cost fabrication of disposable wearable sensors for personalized health monitoring applications.Keywords: flexible electronics; gravure printing; in situ analysis; multiplexed sensing; roll-to-roll processing; wearable biosensors
Mesh:
Year: 2018 PMID: 29924589 DOI: 10.1021/acsnano.8b02505
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881