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Chiu, Y. -C. (no date). De Haas-Van Alphen and Magneto-Transport Properties on Topological Nodal-Line Semimetals ZrXT (X=Si, Ge; M=Se, Te). Retrieved from https://purl.lib.fsu.edu/diginole/2020_Spring_Chiu_fsu_0071E_15652
We report a study on the magnetotransport properties and on the Fermi surfaces (FS) of the ZrSi(Se,Te) semimetals. Density Functional Theory (DFT) calculations, in absence of spin orbit coupling (SOC), reveal that both the Se and the Te compounds display Dirac nodal lines (DNL) close to the Fermi level Ef at symmorphic and non-symmorphic positions, respectively. We find that the geometry of their FSs agrees well with DFT predictions. ZrSiSe displays low residual resistivities, pronounced magnetoresistivity, high carrier mobilities, and a butterfly-like angle-dependent magnetoresistivity (AMR), although its DNL is not protected against gap opening. As in Cd3As2, its transport lifetime is found to be100 to 1000 times larger than its quantum one. ZrSiTe, which possesses a protected DNL, displays conventional transport properties. Our evaluation indicates that both compounds most likely are topologically trivial. Nearly angle-independent effective masses with strong angle dependent quantum lifetimes lead to the butterfly AMR in ZrSiSe
A Dissertation submitted to the Department of Physics in partial fulfillment of the requirements for the degree of Doctor of Philosophy.
Bibliography Note
Includes bibliographical references.
Advisory Committee
Luis Molinuevo Balicas, Professor Co-Directing Dissertation; Efstratios Manousakis, Professor Co-Directing Dissertation; Kenneth Hanson, University Representative; Horst Wahl, Committee Member; Ryan Baumbach, Committee Member; Irinel Chiorescu, Committee Member.
Publisher
Florida State University
Identifier
2020_Spring_Chiu_fsu_0071E_15652
Chiu, Y. -C. (no date). De Haas-Van Alphen and Magneto-Transport Properties on Topological Nodal-Line Semimetals ZrXT (X=Si, Ge; M=Se, Te). Retrieved from https://purl.lib.fsu.edu/diginole/2020_Spring_Chiu_fsu_0071E_15652