arXiv · 1208.3480
Critical Scaling of Two-component Systems from Quantum Fluctuations
Abstract
The thermodynamics of excited nuclear systems allows one to explore the second-order phase transition in a two-component quantum mixture. Temperatures and densities are derived from quantum fluctuations of fermions. The pressures are determined from the grand partition function of Fisher's model. Critical scaling of observables is found for systems which differ in neutron to proton concentrations thus constraining the equation of state of asymmetric nuclear matter. The derived critical exponent {\beta}= 0.35 \pm 0.01, belongs to the liquid-gas universality class. The critical compressibility factor Pc /{\rho}c Tc increases with increasing neutron number.
Explore related subjects
Keep this discovery
J. Mabiala, A. Bonasera, H. Zheng, A. B. McIntosh, Z. Kohley, P. Cammarata, K. Hagel, L. Heilborn, L. W. May, A. Raphelt, A. Zarrella, S. J. Yennello. 2012-08-16. Critical Scaling of Two-component Systems from Quantum Fluctuations. https://doi.org/10.1142/s0218301313500900
Cite the original work for its findings. Save a collection to share your selection of sources.