Title :
Thermo-flow and temperature sensing behaviour of graphene based on surface heat convection
Author :
Al-Mumen, Haider ; Fubo Rao ; Lixin Dong ; Wen Li
Author_Institution :
Dept. of Electr. & Comput. Eng., Michigan State Univ., East Lansing, MI, USA
Abstract :
This letter studies the surface heat convection of thin graphene sheets and the application of graphene wires as nanoscale flow and temperature sensors. Graphene wires with relatively large length-to-width ratios were designed and fabricated using bi- and few-layer graphene sheets. Prior to testing, the devices were packaged in a microfluidic chamber with capillary tubes as upstream and downstream connections to minimise environmental interference. The thermal inertia of the graphene wire was studied at 70°C and the flow sensing behaviour of the device was characterised by monitoring normalised resistance changes at different flow rates. The authors experimental results demonstrated the negative temperature coefficients of the bi- and few-layer graphene films. Moreover, the flow sensing resolutions of ~ 0.07 l/min and 0.1 l/min were achieved from the bi- and few-layer graphene hot wires, respectively. The temperature sensing behaviour of the graphene thermistor was studied in a small temperature range from room temperature to 80°C. The larger negative temperature coefficient of the bi-layer graphene resulted in a higher sensing response than the few-layer one.
Keywords :
capillarity; convection; electric resistance; flow sensors; graphene; microfluidics; microsensors; nanosensors; nanowires; packaging; sheet materials; temperature sensors; thermistors; thin film sensors; C; bilayer graphene film; bilayer graphene hot wire; bilayer graphene sheet; capillary tubes; downstream connection; few-layer graphene film; few-layer graphene hot wire; few-layer graphene sheet; flow rates; graphene thermistor; length-to-width ratios; microfluidic chamber; minimised environmental interference; nanoscale flow sensor; nanoscale temperature sensor; negative temperature coefficients; normalised resistance; sensing response; surface heat convection; temperature 293 K to 353.15 K; temperature 70 degC; temperature sensing behaviour; thermal inertia; thermo-flow sensing behaviour; thin graphene sheets; upstream connection;
Journal_Title :
Micro & Nano Letters, IET
DOI :
10.1049/mnl.2013.0326