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Extremely Sensitive and Selective NO Probe Based on Villi-like WO3 Nanostructures for Application to Exhaled Breath Analyzers

Authors
Moon, Hi GyuChoi, You RimShim, Young-SeokChoi, Kwon-IlLee, Jong-HeunKim, Jin-SangYoon, Seok-JinPark, Hyung-HoKang, Chong-YunJang, Ho Won
Issue Date
13-11월-2013
Publisher
AMER CHEMICAL SOC
Keywords
semiconducting metal oxide gas sensor; WO3 nanostructures; glancing angle deposition; NO probe; exhaled breath analyzer
Citation
ACS APPLIED MATERIALS & INTERFACES, v.5, no.21, pp.10591 - 10596
Indexed
SCIE
SCOPUS
Journal Title
ACS APPLIED MATERIALS & INTERFACES
Volume
5
Number
21
Start Page
10591
End Page
10596
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/101612
DOI
10.1021/am402456s
ISSN
1944-8244
Abstract
Self-assembled WO3 thin film nanostructures with 1-dimensional villi-like nanofingers (VLNF) have been synthesized on the SiO2/Si substrate with Pt interdigitated electrodes using glancing angle deposition (GAD). Room-temperature deposition of WO3 by GAD resulted in anisotropic nanostructures with large aspect ratio and porosity having a relative surface area, which is about 32 times larger than that of a plain WO3 film. A WO3 VLNF sensor shows extremely high response to nitric oxide (NO) at 200 degrees C in Time (s) 80% of relative humidity atmosphere, while responses of the sensor to ethanol, acetone, ammonia, and carbon monoxide are negligible. Such high sensitivity and selectivity to NO are attributed to the highly efficient modualtion of potential barriers at narrow necks between individual WO3 VLNF and the intrinsically high sensitivity of WO3 to NO. The theoretical detection limit of the sensor for NO is expected to be as low as 88 parts per trillion (ppt). Since NO is an approved biomarker of chronic airway inflammation in asthma, unprecedentedly high response and selectivity, and ppt-level detection limit to NO under highly humid environment demonstrate the great potential of the WO3 VLNF for use in high performance breath analyzers.
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College of Engineering > Department of Materials Science and Engineering > 1. Journal Articles
Graduate School > KU-KIST Graduate School of Converging Science and Technology > 1. Journal Articles

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