English

Magnetic-thermodynamic phase transition in strained phosphorous-doped graphene

Mesoscale and Nanoscale Physics 2024-11-21 v1

Abstract

We explore quantum-thermodynamic effects in a phosphorous (P)-doped graphene monolayer subjected to biaxial tensile strain. Introducing substitutional P atoms in the graphene lattice generates a tunable spin magnetic moment controlled by the strain control parameter ε\varepsilon. This leads to a magnetic quantum phase transition (MQPT) at zero temperature modulated by ε\varepsilon. The system transitions from a magnetic phase, characterized by an out-of-plane sp3sp^3 type hybridization of the P-carbon (P-C) bonds, to a non-magnetic phase when these bonds switch to in-plane sp2sp^2 hybridization. Employing a Fermi-Dirac statistical model, we calculate key thermodynamic quantities as the electronic entropy SeS_e and electronic specific heat CeC_e. At finite temperatures, we find the MQPT is reflected in both SeS_e and CeC_e, which display a distinctive Λ\Lambda-shaped profile as a function of ε\varepsilon. These thermodynamic quantities sharply increase up to ε=5%\varepsilon = 5\% in the magnetic regime, followed by a sudden drop at ε=5.5%\varepsilon = 5.5\% , transitioning to a linear dependence on ε\varepsilon in the nonmagnetic regime. Notably, SeS_e and CeC_e capture the MQPT behavior for low and moderate temperature ranges, providing insights into the accessible electronic states in P-doped graphene. This controllable magnetic-to-nonmagnetic switch offers potential applications in electronic nanodevices operating at finite temperatures.

Keywords

Cite

@article{arxiv.2411.12959,
  title  = {Magnetic-thermodynamic phase transition in strained phosphorous-doped graphene},
  author = {Natalia Cortés and J. Hernández-Tecorralco and L. Meza-Montes and R. de Coss and Patricio Vargas},
  journal= {arXiv preprint arXiv:2411.12959},
  year   = {2024}
}