| Literature DB >> 34706939 |
Cheng-Long Zhang1, Tian Liang1,2, M S Bahramy3, Naoki Ogawa4,5,6, Vilmos Kocsis4, Kentaro Ueda5, Yoshio Kaneko4, Markus Kriener4, Yoshinori Tokura4,5,7.
Abstract
The quest for nonmagnetic Weyl semimetals with high tunability of phase has remained a demanding challenge. As the symmetry-breaking control parameter, the ferroelectric order can be steered to turn on/off the Weyl semimetals phase, adjust the band structures around the Fermi level, and enlarge/shrink the momentum separation of Weyl nodes which generate the Berry curvature as the emergent magnetic field. Here, we report the realization of a ferroelectric nonmagnetic Weyl semimetal based on indium-doped Pb1- x Sn x Te alloy in which the underlying inversion symmetry as well as mirror symmetry are broken with the strength of ferroelectricity adjustable via tuning the indium doping level and Sn/Pb ratio. The transverse thermoelectric effect (i.e., Nernst effect), both for out-of-plane and in-plane magnetic field geometry, is exploited as a Berry curvature-sensitive experimental probe to manifest the generation of Berry curvature via the redistribution of Weyl nodes under magnetic fields. The results demonstrate a clean, nonmagnetic Weyl semimetal coupled with highly tunable ferroelectric order, providing an ideal platform for manipulating the Weyl fermions in nonmagnetic systems.Entities:
Keywords: Berry curvature; Nernst effect; Weyl semimetals; ferroelectric order
Year: 2021 PMID: 34706939 PMCID: PMC8612229 DOI: 10.1073/pnas.2111855118
Source DB: PubMed Journal: Proc Natl Acad Sci U S A ISSN: 0027-8424 Impact factor: 11.205