The Lorenz ratio as a guide to scattering contributions to transport in strongly correlated metals
Sun F, Mishra S, Stockert U, Daou R, Kikugawa N, Perry RS, Hassinger E, Hartnoll SA, Mackenzie AP, Sunko V. 2024. The Lorenz ratio as a guide to scattering contributions to transport in strongly correlated metals. Proceedings of the National Academy of Sciences. 121(35).
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Author
Sun, Fei;
Mishra, Simli;
Stockert, Ulrike;
Daou, Ramzy;
Kikugawa, Naoki;
Perry, Robin S.;
Hassinger, Elena;
Hartnoll, Sean A.;
Mackenzie, Andrew P.;
Sunko, VeronikaISTA 

Abstract
In many physical situations in which many-body assemblies exist at temperature T, a characteristic quantum-mechanical time scale of approximately h/kbT can be identified in both theory and experiment, leading to speculation that it may be the shortest meaningful time in such circumstances. This behavior can be investigated by probing the scattering rate of electrons in a broad class of materials often referred to as “strongly correlated metals”. It is clear that in some cases only electron–electron scattering can be its cause, while in others it arises from high-temperature scattering of electrons from quantized lattice vibrations, i.e., phonons. In metallic oxides, which are among the most studied materials, analysis of electrical transport does not satisfactorily identify the relevant scattering mechanism at “high” temperatures near room temperature. We therefore employ a contactless optical method to measure thermal diffusivity in two Ru-based layered perovskites, Sr3Ru2O7 and Sr2RuO4, and use the measurements to extract the dimensionless Lorenz ratio. By comparing our results to the literature data on both conventional and unconventional metals, we show how the analysis of high-temperature thermal transport can both give important insight into dominant scattering mechanisms and be offered as a stringent test of theories attempting to explain anomalous scattering.
Publishing Year
Date Published
2024-08-27
Journal Title
Proceedings of the National Academy of Sciences
Publisher
National Academy of Sciences
Volume
121
Issue
35
ISSN
eISSN
IST-REx-ID
Cite this
Sun F, Mishra S, Stockert U, et al. The Lorenz ratio as a guide to scattering contributions to transport in strongly correlated metals. Proceedings of the National Academy of Sciences. 2024;121(35). doi:10.1073/pnas.2318159121
Sun, F., Mishra, S., Stockert, U., Daou, R., Kikugawa, N., Perry, R. S., … Sunko, V. (2024). The Lorenz ratio as a guide to scattering contributions to transport in strongly correlated metals. Proceedings of the National Academy of Sciences. National Academy of Sciences. https://doi.org/10.1073/pnas.2318159121
Sun, Fei, Simli Mishra, Ulrike Stockert, Ramzy Daou, Naoki Kikugawa, Robin S. Perry, Elena Hassinger, Sean A. Hartnoll, Andrew P. Mackenzie, and Veronika Sunko. “The Lorenz Ratio as a Guide to Scattering Contributions to Transport in Strongly Correlated Metals.” Proceedings of the National Academy of Sciences. National Academy of Sciences, 2024. https://doi.org/10.1073/pnas.2318159121.
F. Sun et al., “The Lorenz ratio as a guide to scattering contributions to transport in strongly correlated metals,” Proceedings of the National Academy of Sciences, vol. 121, no. 35. National Academy of Sciences, 2024.
Sun F, Mishra S, Stockert U, Daou R, Kikugawa N, Perry RS, Hassinger E, Hartnoll SA, Mackenzie AP, Sunko V. 2024. The Lorenz ratio as a guide to scattering contributions to transport in strongly correlated metals. Proceedings of the National Academy of Sciences. 121(35).
Sun, Fei, et al. “The Lorenz Ratio as a Guide to Scattering Contributions to Transport in Strongly Correlated Metals.” Proceedings of the National Academy of Sciences, vol. 121, no. 35, National Academy of Sciences, 2024, doi:10.1073/pnas.2318159121.
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