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Directional ballistic transport in the two-dimensional metal PdCoO2

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arxiv 2103.01332 v1 pith:UFOPTDSI submitted 2021-03-01 cond-mat.mes-hall cond-mat.mtrl-sci

Directional ballistic transport in the two-dimensional metal PdCoO2

classification cond-mat.mes-hall cond-mat.mtrl-sci
keywords symmetryballistictransportanisotropyappearchannelcrystalfermi
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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In an idealized infinite crystal, the material properties are constrained by the symmetries of its unit cell. Naturally, the point-group symmetry is broken by the sample shape of any finite crystal, yet this is commonly unobservable in macroscopic metals. To sense the shape-induced symmetry lowering in such metals, long-lived bulk states originating from anisotropic Fermi surfaces are needed. Here we show how strongly facetted Fermi surfaces and long quasiparticle mean free paths present in microstructures of PdCoO2 yield an in-plane resistivity anisotropy that is forbidden by symmetry on an infinite hexagonal lattice. Bar shaped transport devices narrower than the mean free path are carved from single crystals using focused ion beam (FIB) milling, such that the ballistic charge carriers at low temperatures frequently collide with both sidewalls defining a channel. Two symmetry-forbidden transport signatures appear: the in-plane resistivity anisotropy exceeds a factor of 2, and transverse voltages appear in zero magnetic field. We robustly identify the channel direction as the source of symmetry breaking via ballistic Monte- Carlo simulations and numerical solution of the Boltzmann equation.

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