Phonon localization in binary alloys with diagonal and off-diagonal disorder: A cluster Green's function approach

Wasim Raja Mondal, T. Berlijn, M. Jarrell, and N. S. Vidhyadhiraja
Phys. Rev. B 99, 134203 – Published 10 April 2019

Abstract

We report the development and application of a method for carrying out computational investigations of the effects of mass and force-constant (FC) disorder on phonon spectra. The method is based on the recently developed typical medium dynamical cluster approach, which is a Green's function approach. Excellent quantitative agreement with previous exact diagonalization results establishes the veracity of the method. Application of the method to a model system of binary mass and an FC-disordered system leads to several findings. A narrow resonance, significantly below the van Hove singularity, that has been termed the boson peak, is seen to emerge for low soft particle concentrations. We show, using the typical phonon spectrum, that the states constituting the boson peak cross over from being completely localized to being extended as a function of increasing soft particle concentration. In general, an interplay of mass and FC disorder is found to be cooperative in nature, enhancing phonon localization over all frequencies. However, for a certain range of frequencies, and depending on material parameters, FC disorder can delocalize the states that were localized by mass disorder, and vice versa. Modeling vacancies as weakly bonded sites with vanishing mass, we find that vacancies, even at very low concentrations, are extremely effective in localizing phonons. Thus, inducing vacancies is proposed as a promising route for efficient thermoelectrics. Finally, we use model parameters corresponding to the alloy system, Ni1xPtx, and we show that mass disorder alone is insufficient to explain the pseudogap in the phonon spectrum; the concomitant presence of FC disorder is necessary.

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  • Received 18 December 2018

DOI:https://doi.org/10.1103/PhysRevB.99.134203

©2019 American Physical Society

Physics Subject Headings (PhySH)

Condensed Matter, Materials & Applied Physics

Authors & Affiliations

Wasim Raja Mondal1, T. Berlijn2,3, M. Jarrell4, and N. S. Vidhyadhiraja1,*

  • 1Jawaharlal Nehru Centre for Advanced Scientific Research, Bangalore 560 064, India
  • 2Center for Nanophase Materials Sciences, Oak Ridge National Laboratory, Oak Ridge, Tennessee 37831, USA
  • 3Computational Sciences and Engineering Division, Oak Ridge National Laboratory, Oak Ridge, Tennessee 37831, USA
  • 4Louisiana State University, Baton Rouge, Louisiana 70803, USA

  • *raja@jncasr.ac.in

See Also

Auxiliary coherent medium theory for lattice vibrations in random binary alloys with mass and force-constant disorders

Zihan Cheng, Jianxiong Zhai, Qingyun Zhang, and Youqi Ke
Phys. Rev. B 99, 134202 (2019)

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Vol. 99, Iss. 13 — 1 April 2019

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