Three-dimensional Dirac fermions in quasicrystals as seen via optical conductivity

被引:171
作者
Timusk, T. [1 ,2 ]
Carbotte, J. P. [1 ,2 ]
Homes, C. C. [3 ]
Basov, D. N. [4 ]
Sharapov, S. G. [5 ,6 ]
机构
[1] McMaster Univ, Dept Phys & Astron, Hamilton, ON L8S 4M1, Canada
[2] Canadian Inst Adv Res, Toronto, ON M5G 1Z8, Canada
[3] Brookhaven Natl Lab, Condensed Matter Phys & Mat Sci Dept, Upton, NY 11973 USA
[4] Univ Calif San Diego, Dept Phys, La Jolla, CA 92093 USA
[5] Natl Acad Sci Ukraine, Bogolyubov Inst Theoret Phys, UA-03680 Kiev, Ukraine
[6] Taras Shevchenko Natl Kiev Univ, Dept Phys, UA-03680 Kiev, Ukraine
关键词
TRANSPORT-PROPERTIES; ALLOYS; BANDS;
D O I
10.1103/PhysRevB.87.235121
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The optical conductivity of quasicrystals is characterized by two features not seen in ordinary metallic systems. There is an absence of the Drude peak and the interband conductivity rises linearly from a very low value up to normal metallic levels over a wide range of frequencies. The absence of a Drude peak has been attributed to a pseudogap at the Fermi surface but a detailed explanation of the linear behavior has not been found. Here we show that the linear conductivity, which seems to be universal in all Al based icosahedral quasicrystal families, as well as their periodic approximants, follows from a simple model that assumes that the entire Fermi surface is gapped except at a finite set of Dirac points. There is no evidence of a semiconducting gap in any of the materials suggesting that the Dirac spectrum is massless, protected by topology leading to a Weyl semimetal. This model gives rise to a linear conductivity with only one parameter, the Fermi velocity. This picture suggests that decagonal quasicrystals should, like graphene, have a frequency independent conductivity, without a Drude peak. This is in accord with the experimental data as well.
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页数:6
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