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VOC sensors based on a metal oxide nanofibrous membrane/QCM system prepared by electrospinning

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Date

2014

Journal Title

Journal ISSN

Volume Title

Publisher

Royal Soc Chemistry

Open Access Color

Bronze

Green Open Access

Yes

OpenAIRE Downloads

105

OpenAIRE Views

67

Publicly Funded

No
Impulse
Top 10%
Influence
Average
Popularity
Average

Research Projects

Journal Issue

Abstract

We report a simple synthetic route to fabricate crystalline ZnO and CeO2/ZnO nanofibrous mats and their sensing characteristics against volatile organic compounds (VOCs) such as benzene, propanol, ethanol, and dichloromethane. Precursor fibers were fabricated by electrospinning of poly(vinyl alcohol) and metal salt(s) at 2.5 kV cm(-1) in aqueous solution. The fibers were directly deposited on the crystal surface of a quartz crystal microbalance (QCM). The crystal, which was coated by nanostructured PVA/metal precursor(s) fibers, was subjected to calcination in air at 500 degrees C for 5 h. The formation of an oxide based nanofiber mat was revealed by scanning electron microscopy and X-ray diffraction. Upon exposure of the nanofiber mats to the VOCs, the compounds adsorbed onto the surface of oxidic fibers. The physisorption of the compounds was confirmed by FTIR and QCM. Both systems showed sensitivity to the VOCs and they hold a broad promise particularly for sensing applications of volatile alcoholic compounds. The introduction of CeO2 into the ZnO structure reduced the sensitivity of ZnO most probably due to the decrement of oxygen vacancies.

Description

Demir, Mustafa M/0000-0003-1309-3990; Horzum, Nesrin/0000-0002-2782-0581; Okur, Salih/0000-0001-5159-7191

Keywords

[No Keyword Available], Crystal structure, Surface property, Aqueous solution, Infrared spectroscopy, Metal nanoparticle

Fields of Science

01040201 Electrochemistry/Electrolysis, 02 engineering and technology, 02100101 Nanoparticles/Emerging technologies, 010402 general chemistry, 021001 nanoscience & nanotechnology, 0210 nano-technology, 01 natural sciences, 0104 chemical sciences

Citation

41

WoS Q

Q2

Scopus Q

Q2
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OpenCitations Citation Count
42

Source

New J. Chem.

Volume

38

Issue

12

Start Page

End Page

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Citations

CrossRef : 44

Scopus : 45

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Mendeley Readers : 47

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