4.6 Article

Effective Approximation Method for Nanogratings-induced Near-Field Radiative Heat Transfer

Journal

MATERIALS
Volume 15, Issue 3, Pages -

Publisher

MDPI
DOI: 10.3390/ma15030998

Keywords

near-field radiative heat transfer; effective approximation NFRHT method; effective medium theory; nanostructures

Funding

  1. National Science Foundation [CBET-1941743]

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This work studies the radiative thermal transport between a pair of metamaterial gratings at the nanoscale. The effective medium theory (EMT) is a traditional method used to calculate the near-field radiative heat transfer (NFRHT) between nanograting structures, but it does not consider the surface pattern effects of nanostructures. In this study, an effective approximation NFRHT method that considers the effects of surface patterns is introduced. Numerical calculations show that this method is more suitable for analyzing the NFRHT between relatively displaced nanogratings compared to the EMT method. It is also demonstrated that the NFRHT between the side faces of gratings greatly affects the NFRHT between a pair of nanogratings.
Nanoscale radiative thermal transport between a pair of metamaterial gratings is studied within this work. The effective medium theory (EMT), a traditional method to calculate the near-field radiative heat transfer (NFRHT) between nanograting structures, does not account for the surface pattern effects of nanostructures. Here, we introduce the effective approximation NFRHT method that considers the effects of surface patterns on the NFRHT. Meanwhile, we calculate the heat flux between a pair of silica (SiO2) nanogratings with various separation distances, lateral displacements, and grating heights with respect to one another. Numerical calculations show that when compared with the EMT method, here the effective approximation method is more suitable for analyzing the NFRHT between a pair of relatively displaced nanogratings. Furthermore, it is demonstrated that compared with the result based on the EMT method, it is possible to realize an inverse heat flux trend with respect to the nanograting height between nanogratings without modifying the vacuum gap calculated by this effective approximation NFRHT method, which verifies that the NFRHT between the side faces of gratings greatly affects the NFRHT between a pair of nanogratings. By taking advantage of this effective approximation NFRHT method, the NFRHT in complex micro/nano-electromechanical devices can be accurately predicted and analyzed.

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