TY - JOUR
T1 - Two-carrier magnetoresistance
T2 - Applications to Ca3Ru2O7
AU - Das, Lakshmi
AU - Xu, Yang
AU - Shang, Tian
AU - Steppke, Alexander
AU - Horio, Masafumi
AU - Choi, Jaewon
AU - Jöhr, Simon
AU - Von Arx, Karin
AU - Mueller, Jasmin
AU - Biscette, Dominik
AU - Zhang, Xiaofu
AU - Schilling, Andreas
AU - Granata, Veronica
AU - Fittipaldi, Rosalba
AU - Vecchione, Antonio
AU - Chang, Johan
N1 - Publisher Copyright:
© 2021 The Physical Society of Japan.
PY - 2021/5/15
Y1 - 2021/5/15
N2 - Ambipolar transport is a commonly occurring theme in semimetals and semiconductors. Here we present an analytical formulation of the conductivity for a two-band system. Electron and hole carrier densities and their respective conductivities are mapped into a two-dimensional unit-less phase space. Provided that one of the carrier densities is known, the dimensionless phase space can be probed through magnetoresistance measurements. This formulation of the two-band model for conductivity is applied to magnetoresistance experiments on Ca3Ru2O7. While previous such measurements focused on the low-temperature limit, we cover a broad temperature range and find negative magnetoresistance in an intermediate interval below the electronic transition at 48 K. The low-temperature magnetoresistance in Ca3Ru2O7 is consistent with a two-band structure. However, the model fails to describe the full temperature and magnetic field dependence. Negative magnetoresistance found in an intermediate temperature range is, for example, not captured by this model. We thus conclude that the electronic and magnetic structure in this intermediate temperature range render the system beyond the most simple two-band model.
AB - Ambipolar transport is a commonly occurring theme in semimetals and semiconductors. Here we present an analytical formulation of the conductivity for a two-band system. Electron and hole carrier densities and their respective conductivities are mapped into a two-dimensional unit-less phase space. Provided that one of the carrier densities is known, the dimensionless phase space can be probed through magnetoresistance measurements. This formulation of the two-band model for conductivity is applied to magnetoresistance experiments on Ca3Ru2O7. While previous such measurements focused on the low-temperature limit, we cover a broad temperature range and find negative magnetoresistance in an intermediate interval below the electronic transition at 48 K. The low-temperature magnetoresistance in Ca3Ru2O7 is consistent with a two-band structure. However, the model fails to describe the full temperature and magnetic field dependence. Negative magnetoresistance found in an intermediate temperature range is, for example, not captured by this model. We thus conclude that the electronic and magnetic structure in this intermediate temperature range render the system beyond the most simple two-band model.
UR - https://www.scopus.com/pages/publications/85105142228
U2 - 10.7566/JPSJ.90.054702
DO - 10.7566/JPSJ.90.054702
M3 - 文章
AN - SCOPUS:85105142228
SN - 0031-9015
VL - 90
JO - Journal of the Physical Society of Japan
JF - Journal of the Physical Society of Japan
IS - 5
M1 - 054702
ER -