| Literature DB >> 29096360 |
Rupesh K Mishra1, Aida Martín1, Tatsuo Nakagawa1, Abbas Barfidokht1, Xialong Lu1, Juliane R Sempionatto1, Kay Mengjia Lyu1, Aleksandar Karajic1, Mustafa M Musameh2, Ilias L Kyratzis2, Joseph Wang3.
Abstract
Flexible epidermal tattoo and textile-based electrochemical biosensors have been developed for vapor-phase detection of organophosphorus (OP) nerve agents. These new wearable sensors, based on stretchable organophosphorus hydrolase (OPH) enzyme electrodes, are coupled with a fully integrated conformal flexible electronic interface that offers rapid and selective square-wave voltammetric detection of OP vapor threats and wireless data transmission to a mobile device. The epidermal tattoo and textile sensors display a good reproducibility (with RSD of 2.5% and 4.2%, respectively), along with good discrimination against potential interferences and linearity over the 90-300mg/L range, with a sensitivity of 10.7µA∙cm3∙mg-1 (R2 = 0.983) and detection limit of 12mg/L in terms of OP air density. Stress-enduring inks, used for printing the electrode transducers, ensure resilience against mechanical deformations associated with textile and skin-based on-body sensing operations. Theoretical simulations are used to estimate the OP air density over the sensor surface. These fully integrated wearable wireless tattoo and textile-based nerve-agent vapor biosensor systems offer considerable promise for rapid warning regarding personal exposure to OP nerve-agent vapors in variety of decentralized security applications.Entities:
Keywords: Integrated flexible electronics; Nerve agent; OPH-biosensor; Organophosphate; Vapor phase detection; Wearable sensor
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Year: 2017 PMID: 29096360 DOI: 10.1016/j.bios.2017.10.044
Source DB: PubMed Journal: Biosens Bioelectron ISSN: 0956-5663 Impact factor: 10.618