Toward 1D Transport in 3D Materials: SOC‐Induced Charge‐Transport Anisotropy in Sm3ZrBi5

Author:

Khoury Jason F.1,Han Bingzheng2,Jovanovic Milena1,Queiroz Raquel3,Yang Xiao2,Singha Ratnadwip1,Salters Tyger H.1,Pollak Connor J.1,Lee Scott B.1,Ong N. P.2,Schoop Leslie M.1ORCID

Affiliation:

1. Department of Chemistry Princeton University Princeton New Jersey 08544 United States

2. Department of Physics Princeton University Princeton New Jersey 08544 United States

3. Department of Physics Columbia University New York New York 10027 United States

Abstract

Abstract1D charge transport offers great insight into strongly correlated physics, such as Luttinger liquids, electronic instabilities, and superconductivity. Although 1D charge transport is observed in nanomaterials and quantum wires, examples in bulk crystalline solids remain elusive. In this work, it is demonstrated that spin‐orbit coupling (SOC) can act as a mechanism to induce quasi‐1D charge transport in the Ln3MPn5 (Ln = lanthanide; M = transition metal; Pn = Pnictide) family. From three example compounds, La3ZrSb5, La3ZrBi5, and Sm3ZrBi5, density functional theory calculations with SOC included show a quasi‐1D Fermi surface in the bismuthide compounds, but an anisotropic 3D Fermi surface in the antimonide structure. By performing anisotropic charge transport measurements on La3ZrSb5, La3ZrBi5, and Sm3ZrBi5, it is demonstrated that SOC starkly affects their anisotropic resistivity ratios (ARR) at low temperatures, with an ARR of ≈4 in the antimonide compared to ≈9.5 and ≈22 (≈32 after magnetic ordering) in La3ZrBi5 and Sm3ZrBi5, respectively. This report demonstrates the utility of spin‐orbit coupling to induce quasi‐low‐dimensional Fermi surfaces in anisotropic crystal structures, and provides a template for examining other systems.

Funder

Division of Materials Research

Gordon and Betty Moore Foundation

David and Lucile Packard Foundation

Arnold and Mabel Beckman Foundation

National Science Foundation Graduate Research Fellowship Program

Publisher

Wiley

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