TY - JOUR
T1 - Magnetocaloric Effect for a Q-Clock-Type System
AU - Aguilera, Michel
AU - Pino-Alarcón, Sergio
AU - Peña, Francisco J.
AU - Vogel, Eugenio E.
AU - Cortés, Natalia
AU - Vargas, Patricio
N1 - Publisher Copyright:
© 2024 by the authors.
PY - 2025/1
Y1 - 2025/1
N2 - In this work, we study the magnetocaloric effect (MCE) in a working substance corresponding to a square lattice of spins with Q possible orientations, known as the “Q-state clock model”. When the Q-state clock model has (Formula presented.) possible configurations, it presents the famous Berezinskii–Kosterlitz–Thouless (BKT) phase associated with vortex states. We calculate the thermodynamic quantities using Monte Carlo simulations for even Q numbers, ranging from (Formula presented.) to (Formula presented.) spin orientations per site in a lattice. We use lattices of different sizes with (Formula presented.) sites, considering free boundary conditions and an external magnetic field varying between (Formula presented.) and (Formula presented.) in natural units of the system. By obtaining the entropy, it is possible to quantify the MCE through an isothermal process in which the external magnetic field on the spin system is varied. In particular, we find the values of Q that maximize the MCE depending on the lattice size and the magnetic phase transitions linked with the process. Given the broader relevance of the Q-state clock model in areas such as percolation theory, neural networks, and biological systems, where multi-state interactions are essential, our study provides a robust framework in applied quantum mechanics, statistical physics, and related fields.
AB - In this work, we study the magnetocaloric effect (MCE) in a working substance corresponding to a square lattice of spins with Q possible orientations, known as the “Q-state clock model”. When the Q-state clock model has (Formula presented.) possible configurations, it presents the famous Berezinskii–Kosterlitz–Thouless (BKT) phase associated with vortex states. We calculate the thermodynamic quantities using Monte Carlo simulations for even Q numbers, ranging from (Formula presented.) to (Formula presented.) spin orientations per site in a lattice. We use lattices of different sizes with (Formula presented.) sites, considering free boundary conditions and an external magnetic field varying between (Formula presented.) and (Formula presented.) in natural units of the system. By obtaining the entropy, it is possible to quantify the MCE through an isothermal process in which the external magnetic field on the spin system is varied. In particular, we find the values of Q that maximize the MCE depending on the lattice size and the magnetic phase transitions linked with the process. Given the broader relevance of the Q-state clock model in areas such as percolation theory, neural networks, and biological systems, where multi-state interactions are essential, our study provides a robust framework in applied quantum mechanics, statistical physics, and related fields.
KW - Q-clock
KW - entropy
KW - magnetocaloric
UR - https://www.scopus.com/pages/publications/85215805873
U2 - 10.3390/e27010011
DO - 10.3390/e27010011
M3 - Article
AN - SCOPUS:85215805873
SN - 1099-4300
VL - 27
JO - Entropy
JF - Entropy
IS - 1
M1 - 11
ER -