TY - JOUR KW - Multidisciplinary AU - Hossein Honarvar AU - Joshua Knobloch AU - Travis Frazer AU - Begoña Abad AU - Brendan McBennett AU - Mahmoud Hussein AU - Henry Kapteyn AU - Margaret Murnane AU - Jorge Hernandez-Charpak AB -

Understanding nanoscale thermal transport is critical for nano-engineered devices such as quantum sensors, thermoelectrics, and nanoelectronics. However, despite overwhelming experimental evidence for nondiffusive heat dissipation from nanoscale heat sources, the underlying mechanisms are still not understood. In this work, we show that for nanoscale heat source spacings that are below the mean free path of the dominant phonons in a substrate, close packing of the heat sources increases in-plane scattering and enhances cross-plane thermal conduction. This leads to directional channeling of thermal transport—a novel phenomenon. By using advanced atomic-level simulations to accurately access the lattice temperature and the phonon scattering and transport properties, we finally explain the counterintuitive experimental observations of enhanced cooling for close-packed heat sources. This represents a distinct fundamental behavior in materials science with far-reaching implications for electronics and future quantum devices.

BT - Proceedings of the National Academy of Sciences DA - 2021-10 DO - 10.1073/pnas.2109056118 IS - 40 N2 -

Understanding nanoscale thermal transport is critical for nano-engineered devices such as quantum sensors, thermoelectrics, and nanoelectronics. However, despite overwhelming experimental evidence for nondiffusive heat dissipation from nanoscale heat sources, the underlying mechanisms are still not understood. In this work, we show that for nanoscale heat source spacings that are below the mean free path of the dominant phonons in a substrate, close packing of the heat sources increases in-plane scattering and enhances cross-plane thermal conduction. This leads to directional channeling of thermal transport—a novel phenomenon. By using advanced atomic-level simulations to accurately access the lattice temperature and the phonon scattering and transport properties, we finally explain the counterintuitive experimental observations of enhanced cooling for close-packed heat sources. This represents a distinct fundamental behavior in materials science with far-reaching implications for electronics and future quantum devices.

PB - Proceedings of the National Academy of Sciences PY - 2021 EP - e2109056118 T2 - Proceedings of the National Academy of Sciences TI - Directional thermal channeling: A phenomenon triggered by tight packing of heat sources VL - 118 SN - 0027-8424, 1091-6490 ER -