Related Experiment Video
Updated: Jan 15, 2026

Fabrication and Characterization of Disordered Polymer Optical Fibers for Transverse Anderson Localization of Light
Published on: July 29, 2013
Promoting Anderson Localization for Low-Frequency Phonons in SiGe Alloyed Nanowires with Long-Range Correlated
Wei Zhang1,2, Shiyun Xiong3, Yangyu Guo1
1School of Energy Science and Engineering, Harbin Institute of Technology, Harbin 150001, China.
Abstract:
Elucidating design principles for structures that enable phonon Anderson localization at low frequencies is crucial for applications in heat management, in thermoelectric energy harvesting, and heat-based computing technologies. Using the nonequilibrium Green's function (NEGF) method, we demonstrate that the spatial distribution of Ge with long-range correlations in SiGe nanowires significantly suppresses the transmission of low-frequency phonons (below 2 THz), breaking the Rayleigh scattering law that governs the low-frequency phonon transport in materials with point disorder, leading to a reduction in thermal conductivity by up to 60%. Importantly, these long-range spatial correlations induce phonon Anderson localization with frequencies down to 0.6 THz, with the strength being more pronounced than in randomly distributed systems. Moreover, ballistic phonons below 0.6 THz in uncorrelated structures transition to diffusive transport when spatial correlations are introduced. Our findings elucidate the heat transfer mechanisms in low-dimensional disordered systems and demonstrate possible approaches to achieving phonon Anderson localization at low frequencies.
More Related Videos
08:55Methods of Ex Situ and In Situ Investigations of Structural Transformations: The Case of Crystallization of Metallic Glasses
Published on: June 7, 2018
06:54Characterization of Nanocrystal Size Distribution using Raman Spectroscopy with a Multi-particle Phonon Confinement Model
Published on: August 22, 2015
Related Concept Videos
Theory of Metallic Conduction
In this theory, Newton's second law of motion is used to determine the acceleration of an electron in the presence of an applied electric field. Then, its velocity is expressed via this acceleration.
An electron moves through the crystal, containing positive ions,...
Trends in Lattice Energy: Ion Size and Charge