Geometrically Frustrated Phonons in a Topological Kagome Metal
ORAL
Abstract
Geometric frustration on the kagome lattice results in localized real space modes with flat bands in reciprocal space. Because the ratio of potential energy to kinetic energy of these modes is so high, they are promising platforms for studying the effects of strong interactions. Here, we investigate the consequences of localized phonon modes in a topological kagome lattice metal. We use inelastic neutron scattering (INS) to find unambiguous evidence of the flat kagome phonon bands in reciprocal space with low bandwidth across the Brillouin zone, and explore the impact these localized phonons have on bulk thermodynamic properties including heat capacity, thermal conductivity and thermoelectricity. By using an extensive suite of experimental probes along with INS and DFT calculations, we find that the localized kagome phonons interact strongly with the electrons in this system, inducing a novel phase transition. We highlight how engineering flat phonon bands generates phases of fundamental intrest and can be promising for applications in thermal energy management.
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Presenters
Nathan C Drucker
Harvard University
Authors
Nathan C Drucker
Harvard University
Thanh Nguyen
Massachusetts Institute of Technology MI
Yujie Quan
University of California, Santa Barbara
Robert Kealhofer
University of California Santa Barbara, University of California, Santa Barbara
Kunyan Zhang
Pennsylvania State University
Songxue Chi
Oak Ridge National Lab
Douglas L Abernathy
Oak Ridge National Lab
Shengxi Huang
The Pennsylvania State University, Pennsylvania State University, Department of Electrical Engineering, The Pennsylvania State University, University Park, Pennsylvania 16802, United States
Susanne Stemmer
University of California, Santa Barbara
Bolin Liao
University of California, Santa Barbara
Mingda Li
Massachusetts Institute of Technology, Massachusetts Institute of Technology MI