- Letter
Speed of electronic phase propagation in revealed by dilatometry
Phys. Rev. Applied 21, L041003 – Published 26 April, 2024
DOI: https://doi.org/10.1103/PhysRevApplied.21.L041003
Abstract
Thermal expansion offers deep insights into phase transitions in condensed-matter physics. Utilizing an advanced ac temperature dilatometer with picometer resolution, this study clearly resolves the antiferromagnetic and structural transition in . The implementation of temperature oscillation reveals a hysteresis near the transition temperature, , with unprecedented resolution. Unexpectedly, we find that the hysteretic width exhibits a universal dependence on the parameters of temperature oscillation and the sample’s longitudinal dimension, which, in turn, reveals a finite transition speed. Our quantitative analysis shows that this phase boundary propagates at a mere 188 s—a speed 7 orders of magnitude slower than acoustic waves. It suggests a hidden thermodynamic constraint imposed by the electronic degrees of freedom. Our research not only sheds light on the dynamics of phase transitions between different correlated phases, but also establishes high-precision dilatometry as a powerful tool for material studies. This measurement technique, when properly modified, can be extended to studies of other material properties, such as piezoelectric, magnetostriction, and elastic modulus.