Fabrication of Ultrasensitive Bio-Nanosensor Based on Polypyrrole/Graphene Nanocomposite

Hypothesis: Accurate temperature measurement is of particular importance in various medical and industrial fields. Researchers have recently developed heat-sensitive sensors with the development of nanotechnology. The goal of the present research is the fabrication of an ultra-sensitive thermal nano...

Full description

Bibliographic Details
Main Authors: Sakkineh Bahari Ardashiri, Gholamreza Kiani, Ayub Karimzad Ghavidel, Mahsa Mahdavinia
Format: Article
Language:fas
Published: Iran Polymer and Petrochemical Institute 2022-02-01
Series:علوم و تکنولوژی پلیمر
Subjects:
Online Access:http://jips.ippi.ac.ir/article_1886_0fa6cbb456d906827a77cfdee16ee663.pdf
_version_ 1828397402216726528
author Sakkineh Bahari Ardashiri
Gholamreza Kiani
Ayub Karimzad Ghavidel
Mahsa Mahdavinia
author_facet Sakkineh Bahari Ardashiri
Gholamreza Kiani
Ayub Karimzad Ghavidel
Mahsa Mahdavinia
author_sort Sakkineh Bahari Ardashiri
collection DOAJ
description Hypothesis: Accurate temperature measurement is of particular importance in various medical and industrial fields. Researchers have recently developed heat-sensitive sensors with the development of nanotechnology. The goal of the present research is the fabrication of an ultra-sensitive thermal nanosensor that can be applied to monitor human body temperature and industrial tasks. Methods: For this purpose, polypyrrole and graphene nanocomposites were synthesized with different percentages. The structural characteristics of the obtained nanocomposites were assessed by electron scanning microscopy and X-ray diffraction spectroscopy (XRD). Findings: The results showed that synthetic graphene and polypyrrole are in the shape of sheets and fiber with a thickness less than 100 nm and diameter of 150 nm, respectively. The XRD spectrum of the 0.5% (by wt) nanocomposite also indicated a suitable combination of graphene and polypyrrole. The thermal biosensor evaluations of samples disclosed that pure polypyrrole allocated the first rank compared to other samples in the temperature range of 25-80°C, with a sensitivity of 218 kΩ/°C, but its nonlinear behavior limited its applicability. In this temperature range, 0.5% (by wt) nanocomposite sensor showed the highest optimal performance with the sensitivity, temperature coefficient resistance (TCR), response and recovery time of 197 kΩ/°C, -1.17 %°C-1, 78 and 170 s, respectively. In the temperature range of 35-40°C, to control the human body temperature, the nanocomposite sensor with the concentration of 0.5% (by wt) has the best linear performance with a sensitivity of 20.5 kΩ/˚C, TCR of -2.26% per°C and response and recovery times of 21 and 34 s. In  comparison to similar samples, this nanocomposite has improved by 23.9 and 1.8 times, with respective to the above recovery time. In the final conclusion, the nanocomposite sensor with a concentration of 0.5% (by wt) was designated as the most ideal nanosensor that can be utilized in industrial as well as medical fields.
first_indexed 2024-12-10T08:47:08Z
format Article
id doaj.art-5668e31fa4b64df8b0ea853c12cbc647
institution Directory Open Access Journal
issn 1016-3255
2008-0883
language fas
last_indexed 2024-12-10T08:47:08Z
publishDate 2022-02-01
publisher Iran Polymer and Petrochemical Institute
record_format Article
series علوم و تکنولوژی پلیمر
spelling doaj.art-5668e31fa4b64df8b0ea853c12cbc6472022-12-22T01:55:42ZfasIran Polymer and Petrochemical Instituteعلوم و تکنولوژی پلیمر1016-32552008-08832022-02-0134657959510.22063/jipst.2022.3089.21291886Fabrication of Ultrasensitive Bio-Nanosensor Based on Polypyrrole/Graphene NanocompositeSakkineh Bahari Ardashiri0Gholamreza Kiani1Ayub Karimzad Ghavidel2Mahsa Mahdavinia3Department of Nanotechnology Engineering, Faculty of Electrical and Computer Engineering,University of Tabriz, Postal Code 5166616471, Tabriz, IranDepartment of Organic Chemistry and Biochemistry, Faculty of Chemistry; University of Tabriz, Postal Code 5166616471, Tabriz, IranDepartment of Mechanical Engineering, Technical and Vocational University, Postal Code 1435761137, Tehran, IranDepartment of Organic Chemistry and Biochemistry, Faculty of Chemistry; University of Tabriz, Postal Code 5166616471, Tabriz, IranHypothesis: Accurate temperature measurement is of particular importance in various medical and industrial fields. Researchers have recently developed heat-sensitive sensors with the development of nanotechnology. The goal of the present research is the fabrication of an ultra-sensitive thermal nanosensor that can be applied to monitor human body temperature and industrial tasks. Methods: For this purpose, polypyrrole and graphene nanocomposites were synthesized with different percentages. The structural characteristics of the obtained nanocomposites were assessed by electron scanning microscopy and X-ray diffraction spectroscopy (XRD). Findings: The results showed that synthetic graphene and polypyrrole are in the shape of sheets and fiber with a thickness less than 100 nm and diameter of 150 nm, respectively. The XRD spectrum of the 0.5% (by wt) nanocomposite also indicated a suitable combination of graphene and polypyrrole. The thermal biosensor evaluations of samples disclosed that pure polypyrrole allocated the first rank compared to other samples in the temperature range of 25-80°C, with a sensitivity of 218 kΩ/°C, but its nonlinear behavior limited its applicability. In this temperature range, 0.5% (by wt) nanocomposite sensor showed the highest optimal performance with the sensitivity, temperature coefficient resistance (TCR), response and recovery time of 197 kΩ/°C, -1.17 %°C-1, 78 and 170 s, respectively. In the temperature range of 35-40°C, to control the human body temperature, the nanocomposite sensor with the concentration of 0.5% (by wt) has the best linear performance with a sensitivity of 20.5 kΩ/˚C, TCR of -2.26% per°C and response and recovery times of 21 and 34 s. In  comparison to similar samples, this nanocomposite has improved by 23.9 and 1.8 times, with respective to the above recovery time. In the final conclusion, the nanocomposite sensor with a concentration of 0.5% (by wt) was designated as the most ideal nanosensor that can be utilized in industrial as well as medical fields.http://jips.ippi.ac.ir/article_1886_0fa6cbb456d906827a77cfdee16ee663.pdfthermal bio-nanosensorgraphenepolypyrroleconductive polymernanocomposite
spellingShingle Sakkineh Bahari Ardashiri
Gholamreza Kiani
Ayub Karimzad Ghavidel
Mahsa Mahdavinia
Fabrication of Ultrasensitive Bio-Nanosensor Based on Polypyrrole/Graphene Nanocomposite
علوم و تکنولوژی پلیمر
thermal bio-nanosensor
graphene
polypyrrole
conductive polymer
nanocomposite
title Fabrication of Ultrasensitive Bio-Nanosensor Based on Polypyrrole/Graphene Nanocomposite
title_full Fabrication of Ultrasensitive Bio-Nanosensor Based on Polypyrrole/Graphene Nanocomposite
title_fullStr Fabrication of Ultrasensitive Bio-Nanosensor Based on Polypyrrole/Graphene Nanocomposite
title_full_unstemmed Fabrication of Ultrasensitive Bio-Nanosensor Based on Polypyrrole/Graphene Nanocomposite
title_short Fabrication of Ultrasensitive Bio-Nanosensor Based on Polypyrrole/Graphene Nanocomposite
title_sort fabrication of ultrasensitive bio nanosensor based on polypyrrole graphene nanocomposite
topic thermal bio-nanosensor
graphene
polypyrrole
conductive polymer
nanocomposite
url http://jips.ippi.ac.ir/article_1886_0fa6cbb456d906827a77cfdee16ee663.pdf
work_keys_str_mv AT sakkinehbahariardashiri fabricationofultrasensitivebionanosensorbasedonpolypyrrolegraphenenanocomposite
AT gholamrezakiani fabricationofultrasensitivebionanosensorbasedonpolypyrrolegraphenenanocomposite
AT ayubkarimzadghavidel fabricationofultrasensitivebionanosensorbasedonpolypyrrolegraphenenanocomposite
AT mahsamahdavinia fabricationofultrasensitivebionanosensorbasedonpolypyrrolegraphenenanocomposite