arXiv · 1809.04582
Elastoresistive and Elastocaloric Anomalies at Magnetic and Electronic-Nematic Critical Points
Abstract
Using Ba(Fe$_{0.975}$Co$_{0.025}$)$_2$As$_{2}$ as an exemplar material exhibiting second order electronic-nematic and antiferromagnetic transitions, we present measurements that reveal anomalies in the elastoresistance $\left(\frac{\partial ρ_{ij}}{\partial\varepsilon_{kl}}\right)$ and elastocaloric effect $\left(\frac{\partial T}{\partial\varepsilon_{kl}}\right)$ at both phase transitions. Both effects are understood to arise from the effect of strain on the transition temperatures; in the region close to the phase transitions this leads to (1) similarity between the strain and temperature derivatives of the resistivity and (2) similarity between the elastocaloric effect and the singular part of the specific heat. These mechanisms for elastoresistance and elastocaloric effect should be anticipated for any material in which mechanical deformation changes the transition temperature. Furthermore, these measurements provide evidence that the Fisher-Langer relation $ρ^{(c)} \propto U^{(c)}$ between the scattering from critical degrees of freedom and their energy-density, respectively, holds near each of the Neél and electronic nematic transitions in the material studied.
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Alexander T. Hristov, Matthias S. Ikeda, Johanna C. Palmstrom, Philip Walmsley, Ian R. Fisher. 2018-09-12. Elastoresistive and Elastocaloric Anomalies at Magnetic and Electronic-Nematic Critical Points. https://doi.org/10.1103/physrevb.99.100101
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