Cargando…

Nanoelectromechanical Temperature Sensor Based on Piezoresistive Properties of Suspended Graphene Film

The substrate impurities scattering will lead to unstable temperature-sensitive behavior and poor linearity in graphene temperature sensors. And this can be weakened by suspending the graphene structure. Herein, we report a graphene temperature sensing structure, with suspended graphene membranes fa...

Descripción completa

Detalles Bibliográficos
Autores principales: Han, Shuqi, Zhou, Siyuan, Mei, Linyu, Guo, Miaoli, Zhang, Huiyi, Li, Qiannan, Zhang, Shuai, Niu, Yaokai, Zhuang, Yan, Geng, Wenping, Bi, Kaixi, Chou, Xiujian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10058838/
https://www.ncbi.nlm.nih.gov/pubmed/36985997
http://dx.doi.org/10.3390/nano13061103
_version_ 1785016730988314624
author Han, Shuqi
Zhou, Siyuan
Mei, Linyu
Guo, Miaoli
Zhang, Huiyi
Li, Qiannan
Zhang, Shuai
Niu, Yaokai
Zhuang, Yan
Geng, Wenping
Bi, Kaixi
Chou, Xiujian
author_facet Han, Shuqi
Zhou, Siyuan
Mei, Linyu
Guo, Miaoli
Zhang, Huiyi
Li, Qiannan
Zhang, Shuai
Niu, Yaokai
Zhuang, Yan
Geng, Wenping
Bi, Kaixi
Chou, Xiujian
author_sort Han, Shuqi
collection PubMed
description The substrate impurities scattering will lead to unstable temperature-sensitive behavior and poor linearity in graphene temperature sensors. And this can be weakened by suspending the graphene structure. Herein, we report a graphene temperature sensing structure, with suspended graphene membranes fabricated on the cavity and non-cavity SiO(2)/Si substrate, using monolayer, few-layer, and multilayer graphene. The results show that the sensor provides direct electrical readout from temperature to resistance transduction by the nano piezoresistive effect in graphene. And the cavity structure can weaken the substrate impurity scattering and thermal resistance effect, which results in better sensitivity and wide-range temperature sensing. In addition, monolayer graphene is almost no temperature sensitivity. And the few-layer graphene temperature sensitivity, lower than that of the multilayer graphene cavity structure (3.50%/°C), is 1.07%/°C. This work demonstrates that piezoresistive in suspended graphene membranes can effectively enhance the sensitivity and widen the temperature sensor range in NEMS temperature sensors.
format Online
Article
Text
id pubmed-10058838
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-100588382023-03-30 Nanoelectromechanical Temperature Sensor Based on Piezoresistive Properties of Suspended Graphene Film Han, Shuqi Zhou, Siyuan Mei, Linyu Guo, Miaoli Zhang, Huiyi Li, Qiannan Zhang, Shuai Niu, Yaokai Zhuang, Yan Geng, Wenping Bi, Kaixi Chou, Xiujian Nanomaterials (Basel) Article The substrate impurities scattering will lead to unstable temperature-sensitive behavior and poor linearity in graphene temperature sensors. And this can be weakened by suspending the graphene structure. Herein, we report a graphene temperature sensing structure, with suspended graphene membranes fabricated on the cavity and non-cavity SiO(2)/Si substrate, using monolayer, few-layer, and multilayer graphene. The results show that the sensor provides direct electrical readout from temperature to resistance transduction by the nano piezoresistive effect in graphene. And the cavity structure can weaken the substrate impurity scattering and thermal resistance effect, which results in better sensitivity and wide-range temperature sensing. In addition, monolayer graphene is almost no temperature sensitivity. And the few-layer graphene temperature sensitivity, lower than that of the multilayer graphene cavity structure (3.50%/°C), is 1.07%/°C. This work demonstrates that piezoresistive in suspended graphene membranes can effectively enhance the sensitivity and widen the temperature sensor range in NEMS temperature sensors. MDPI 2023-03-19 /pmc/articles/PMC10058838/ /pubmed/36985997 http://dx.doi.org/10.3390/nano13061103 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Han, Shuqi
Zhou, Siyuan
Mei, Linyu
Guo, Miaoli
Zhang, Huiyi
Li, Qiannan
Zhang, Shuai
Niu, Yaokai
Zhuang, Yan
Geng, Wenping
Bi, Kaixi
Chou, Xiujian
Nanoelectromechanical Temperature Sensor Based on Piezoresistive Properties of Suspended Graphene Film
title Nanoelectromechanical Temperature Sensor Based on Piezoresistive Properties of Suspended Graphene Film
title_full Nanoelectromechanical Temperature Sensor Based on Piezoresistive Properties of Suspended Graphene Film
title_fullStr Nanoelectromechanical Temperature Sensor Based on Piezoresistive Properties of Suspended Graphene Film
title_full_unstemmed Nanoelectromechanical Temperature Sensor Based on Piezoresistive Properties of Suspended Graphene Film
title_short Nanoelectromechanical Temperature Sensor Based on Piezoresistive Properties of Suspended Graphene Film
title_sort nanoelectromechanical temperature sensor based on piezoresistive properties of suspended graphene film
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10058838/
https://www.ncbi.nlm.nih.gov/pubmed/36985997
http://dx.doi.org/10.3390/nano13061103
work_keys_str_mv AT hanshuqi nanoelectromechanicaltemperaturesensorbasedonpiezoresistivepropertiesofsuspendedgraphenefilm
AT zhousiyuan nanoelectromechanicaltemperaturesensorbasedonpiezoresistivepropertiesofsuspendedgraphenefilm
AT meilinyu nanoelectromechanicaltemperaturesensorbasedonpiezoresistivepropertiesofsuspendedgraphenefilm
AT guomiaoli nanoelectromechanicaltemperaturesensorbasedonpiezoresistivepropertiesofsuspendedgraphenefilm
AT zhanghuiyi nanoelectromechanicaltemperaturesensorbasedonpiezoresistivepropertiesofsuspendedgraphenefilm
AT liqiannan nanoelectromechanicaltemperaturesensorbasedonpiezoresistivepropertiesofsuspendedgraphenefilm
AT zhangshuai nanoelectromechanicaltemperaturesensorbasedonpiezoresistivepropertiesofsuspendedgraphenefilm
AT niuyaokai nanoelectromechanicaltemperaturesensorbasedonpiezoresistivepropertiesofsuspendedgraphenefilm
AT zhuangyan nanoelectromechanicaltemperaturesensorbasedonpiezoresistivepropertiesofsuspendedgraphenefilm
AT gengwenping nanoelectromechanicaltemperaturesensorbasedonpiezoresistivepropertiesofsuspendedgraphenefilm
AT bikaixi nanoelectromechanicaltemperaturesensorbasedonpiezoresistivepropertiesofsuspendedgraphenefilm
AT chouxiujian nanoelectromechanicaltemperaturesensorbasedonpiezoresistivepropertiesofsuspendedgraphenefilm