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  4. Quasiparticle interference in ZrSiS: Strongly band-selective scattering depending on impurity lattice site
 
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Quasiparticle interference in ZrSiS: Strongly band-selective scattering depending on impurity lattice site

Journal
Physical Review B
Journal Volume
96
Journal Issue
19
Pages
195125-1 - 195125-9
Date Issued
2017
Author(s)
Butler, C.J.
Wu, Y.-M.
Hsing, C.-R.
Tseng, Y.
Sankar, R.
Wei, C.-M.
MINN-TSONG LIN  
Chou, F. C.  
DOI
10.1103/PhysRevB.96.195125
URI
https://scholars.lib.ntu.edu.tw/handle/123456789/443516
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85039165571&doi=10.1103%2fPhysRevB.96.195125&partnerID=40&md5=536ffb1c04721d5e91c95651a11d13a8
URL
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85039165571&doi=10.1103%2fPhysRevB.96.195125&partnerID=40&md5=536ffb1c04721d5e91c95651a11d13a8
Abstract
Scanning tunneling microscopy visualizations of quasiparticle interference (QPI) enable powerful insights into the k-space properties of superconducting, topological, Rashba, and other exotic electronic phases, but their reliance on impurities acting as scattering centers is rarely scrutinized. Here, we investigate QPI at the vacuum-cleaved (001) surface of the Dirac semimetal ZrSiS. We find that interference patterns around impurities located on the Zr and S lattice sites appear very different, and can be ascribed to selective scattering of different subsets of the predominantly Zr 4d-derived band structure, namely, the m=0 and ±1 components. We show that the selectivity of scattering channels requires an explanation beyond the different bands' orbital characteristics and their respective charge density distributions over Zr and S lattice sites. Importantly, this result shows that the usual assumption of generic scattering centers allowing observations of quasiparticle interference to shed light indiscriminately and isotropically upon the q space of scattering events does not hold, and that the scope and interpretation of QPI observations can therefore be be strongly contingent on the material defect chemistry. This finding promises to spur new investigations into the quasiparticle scattering process itself, to inform future interpretations of quasiparticle interference observations, and ultimately to aid the understanding and engineering of quantum electronic transport properties. © 2017 American Physical Society.
Type
journal article

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