Phononic thermal resistance due to a finite periodic array of nano-scatterers
Author(s) -
T. T. Trang Nghiêm,
PierreOlivier Chapuis
Publication year - 2016
Publication title -
journal of applied physics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.699
H-Index - 319
eISSN - 1089-7550
pISSN - 0021-8979
DOI - 10.1063/1.4959803
Subject(s) - phonon , reciprocity (cultural anthropology) , fourier transform , periodic boundary conditions , scattering , thermal , polarization (electrochemistry) , materials science , condensed matter physics , optics , boundary value problem , thermal conductivity , thermal resistance , diffraction , physics , computational physics , quantum mechanics , psychology , social psychology , chemistry , meteorology
The wave property of phonons is employed to explore the thermal transport across a finite periodic array of nano-scatterers such as circular and triangular holes. As thermal phonons are generated in all directions, we study their transmission through a single array for both normal and oblique incidences, using a linear dispersionless time-dependent acoustic frame in a two-dimensional system. Roughness effects can be directly considered within the computations without relying on approximate analytical formulae. Analysis by spatio-temporal Fourier transform allows us to observe the diffraction effects and the conversion of polarization. Frequency-dependent energy transmission coefficients are computed for symmetric and asymmetric objects that are both subject to reciprocity. We demonstrate that the phononic array acts as an efficient thermal barrier by applying the theory of thermal boundary (Kapitza) resistances to arrays of smooth scattering holes in silicon for an exemplifying periodicity of 10 nm in the...
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