Please use this identifier to cite or link to this item: https://dspace.iiti.ac.in/handle/123456789/5465
Title: Electrically Controlled Nanophotonic Slot Structure Based on Photocatalytic Nanocomposite for Optical Detection of Foodborne Pathogens
Authors: Srivastava, Sulabh
Singh, Lalit
Kaushik, Vishal
Rajput, Swati
Jain, Sourabh P.
Kumar, Mukesh
Keywords: Biosensors;Cost effectiveness;II-VI semiconductors;Nanocomposites;Photocurrents;Photonic devices;Sol-gel process;Zinc oxide;E. coli;E. coli detection;Food-borne pathogens;Luria-Bertani broths;Nanophotonic structures;Optical bio-sensors;Optical detection;Photocatalytic nanocomposites;Slot waveguide;Structure-based;Escherichia coli
Issue Date: 2021
Publisher: Institute of Electrical and Electronics Engineers Inc.
Citation: Srivastava, S., Singh, L., Kaushik, V., Rajput, S., Jain, S., Pal, M. K., & Kumar, M. (2021). Electrically controlled nanophotonic slot structure based on photocatalytic nanocomposite for optical detection of foodborne pathogens. Journal of Lightwave Technology, 39(20), 6670-6677. doi:10.1109/JLT.2021.3104409
Abstract: A nanophotonic structure with electric control based photocatalytic nanocomposite is proposed to realize label-free optical detection of foodborne pathogens. The photocatalytic response of Cu-ZnO/TiO2 (CZT) nanocomposite, in terms of the photocurrent, is utilized to detect E. coli in the surrounding media of Luria Bertani broth (LB) solution. An engineered nanophotonic structure based on an optical slot waveguide is presented to provide a two-fold benefit - enhanced light-matter interaction and flexibility to accommodate bio-sample. CZT nanocomposite is synthesised and prepared by a cost-effective sol-gel process, acting as an active layer in the structure, is responsible for the generation of photo-excited carriers which provide photocurrent on the application of a voltage. The fabricated structure with a synthesised nanocomposite slot waveguide exhibits a measured photocurrent of 22 μA with LB media, decreasing to a value of 13 μA in the presence of E. coli. The fabricated biosensor is capable of detecting E. coli bacteria concentrations of 5000 CFU/ml. Altogether a change in photocurrent of 9 μA is obtained with E. coli on applying a low voltage of 3.5 volts. The combination of photocatalytic nanocomposite with engineered optical waveguide carries great potential for applications in biochemical detection and in realizing other integrated photonic devices with slotted nanocomposites. © 1983-2012 IEEE.
URI: https://doi.org/10.1109/JLT.2021.3104409
https://dspace.iiti.ac.in/handle/123456789/5465
ISSN: 0733-8724
Type of Material: Journal Article
Appears in Collections:Department of Electrical Engineering

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