Publication | Open Access
Quantitative Thermal Imaging of Single-Walled Carbon Nanotube Devices by Scanning Joule Expansion Microscopy
27
Citations
48
References
2012
Year
EngineeringJoule Expansion MicroscopyMicroscopyThermal ConductivityElectronic DevicesCarbon-based MaterialNanoelectronicsNanometrologyThermal ConductionIndividual SwntsCarbon NanotubesNanomechanicsMaterials ScienceElectrical EngineeringNanotechnologyThermal TransportThermal PropertyHeat TransferHorizontal ArraysNanophysicsOne-dimensional MaterialElectrical GenerationElectronic MaterialsThermal EngineeringNanomaterialsApplied PhysicsNanotubesQuantitative Thermal Imaging
Electrical generation of heat in single-walled carbon nanotubes (SWNTs) and subsequent thermal transport into the surroundings can critically affect the design, operation, and reliability of electronic and optoelectronic devices based on these materials. Here we investigate such heat generation and transport characteristics in perfectly aligned, horizontal arrays of SWNTs integrated into transistor structures. We present quantitative assessments of local thermometry at individual SWNTs in these arrays, evaluated using scanning Joule expansion microscopy. Measurements at different applied voltages reveal electronic behaviors, including metallic and semiconducting responses, spatial variations in diameter or chirality, and localized defect sites. Analytical models, validated by measurements performed on different device structures at various conditions, enable accurate, quantitative extraction of temperature distributions at the level of individual SWNTs. Using current equipment, the spatial resolution and temperature precision are as good as ∼100 nm and ∼0.7 K, respectively.
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