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High Throughput Nanoimaging of Thermal Conductivity and Interfacial Thermal Conductance

Mingkang Wang, Georg Ramer, Diego J. Perez-Morelo, Georges Pavlidis, Jeffrey J. Schwartz, Liya E. Yu, B. Ilic, Vladimir Aksyuk, Andrea Centrone

2022Nano Letters30 citationsDOI

Abstract

Thermal properties of materials are often determined by measuring thermalization processes; however, such measurements at the nanoscale are challenging because they require high sensitivity concurrently with high temporal and spatial resolutions. Here, we develop an optomechanical cantilever probe and customize an atomic force microscope with low detection noise ≈1 fm/Hz1/2 over a wide (>100 MHz) bandwidth that measures thermalization dynamics with ≈10 ns temporal resolution, ≈35 nm spatial resolution, and high sensitivity. This setup enables fast nanoimaging of thermal conductivity (η) and interfacial thermal conductance (G) with measurement throughputs ≈6000× faster than conventional macroscale-resolution time-domain thermoreflectance acquiring the full sample thermalization. As a proof-of-principle demonstration, 100 × 100 pixel maps of η and G of a polymer particle are obtained in 200 s with a small relative uncertainty (<10%). This work paves the way to study fast thermal dynamics in materials and devices at the nanoscale.

Topics & Concepts

Thermal conductivityThermalisationMaterials scienceScanning thermal microscopyCantileverNanoscopic scaleImage resolutionTemporal resolutionThermalNanotechnologyOptoelectronicsMicroscopeOpticsPhysicsComposite materialMeteorologyThermodynamicsThermal properties of materialsThermal Radiation and Cooling TechnologiesAdvanced Thermodynamics and Statistical Mechanics
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