Gr\"{u}neisen Parameter and Thermal Expansion by the Self-Consistent Renormalization Theory of Spin Fluctuations
Abstract
The thermal expansion coefficient and the Gr\"{u}neisen parameter near the magnetic quantum critical point (QCP) are derived on the basis of the self-consistent renormalization (SCR) theory of spin fluctuation. From the SCR entropy, the specific heat , , and are shown to be expressed in a simple form as , , and , respectively, where , , and are related with each other. As the temperature decreases, , , and become dominant in , , and , respectively. The inverse susceptibility of spin fluctuation coupled to the volume in is found to give rise to the divergence of at the QCP for each class of ferromagnetism and antiferromagnetism (AFM) in spatial dimensions and . This -dependent inverse susceptibility in and contributes to the dependences of and , and even affects their criticality in the case of the AFM QCP in . is expressed as with being the characteristic temperature of spin fluctuation, which has an enhanced value in heavy electron systems.
Keywords
Cite
@article{arxiv.1910.10355,
title = {Gr\"{u}neisen Parameter and Thermal Expansion by the Self-Consistent Renormalization Theory of Spin Fluctuations},
author = {Shinji Watanabe and Kazumasa Miyake},
journal= {arXiv preprint arXiv:1910.10355},
year = {2019}
}
Comments
7 pages, 2 figures