Thermodynamics of the first-order vortex lattice melting transition in YBaCuO
arXiv:cond-mat/9712145 · doi:10.1103/PhysRevB.57.14498
Abstract
Using the London approximation within the high field scaling regime, we calculate the jump in the specific heat at the first-order melting transition of the vortex lattice in YBaCuO. This has recently been measured [A. Schilling et al., Phys. Rev. Lett. (78), 4833 (1997)] and reported to be at least 100 times higher than expected from the fluctuations of field induced vortices alone. We demonstrate how the correct treatment of the temperature dependence of the model parameters, which are singular at the mean-field line, leads to good agreement between the predictions of the London model and the size of the experimental jump. In addition, we consider the changes in the slopes of the magnetization and at the transition. Using continuum anisotropic scaling theory we demonstrate the consistency of measurements at different angles of the magnetic field with respect to the crystal c-axis.
9 pages, RevTeX, six postscript figures incorporated using epsf
References in corpus (2)
Cited by in corpus (4)
- The Absence of Vortex Lattice Melting in a Conventional Superconductor
- Crystal-lattice coupling to the vortex-melting transition in YBa2Cu3O7-d
- Estimates for the thermodynamic signatures of vortex-lattice melting in conventional superconductors
- Equilibrium magnetization in the vicinity of the first order phase transition in the mixed state of high-Tc superconductors