Preview

Nanosystems: Physics, Chemistry, Mathematics

Advanced search

First observations of entropy vs free energy for lattice based Ising model for spin coarsening in conserved and non-conserved binary mixtures: a phenomenological study of phase transitions in 2D thin films

https://doi.org/10.17586/2220-8054-2015-6-6-882-895

Abstract

This paper presents the results of Monte Carlo (MC) simulation for paramagnetic, ferromagnetic and anti-ferromagnetic transitions in 2D thin films. The spin coarsening which lowers energy brings order at the cost of lowering entropy in the presence of an external magnetic field, which in turn, may increase the free energy at relatively higher temperatures because of spin mixing. There is a competition between energy of the system and entropy in conserved and non-conserved binary mixtures in the presence of an external magnetic field. The simulation is done on a lattice of size 100×100 using Metropolis algorithm with periodic boundary conditions. All data are sampled for 20 K MC cycles after a regular interval of 100 MC cycles. The paramagnetic case with spin coupling coefficient and the ferromagnetic and anti-ferromagnetic cases with j"(AB)j = 0:0J0, 0:25J0, 0:50J0, 0:75J0 & 1:0J0 (keeping j"(AA)j = j"(BB)j = 1:0J0) (Here J0 = 1:0 unit of energy) are studied at temperatures kT = 0:25J0, 0:50J0, 0:75J0, 1:0J0, 1:25J0, 1:5J0, 1:75J0, & 2:0J0 in presence of varying external magnetic field strengths in order to observe the organizational behavior of spins and the interplay between the free energy and entropy. The induced magnetization and the magnetic susceptibilities are found to be in qualitative agreement with the theory. The paramagnetic to ferromagnetic transition has been observed and explored at high T values. The spin correlation function plotted helps to reveal the spin transport properties of the systems. The spontaneous ferromagnetic transition temperatures for "(AB) = 1:0J0, 0:75J0 & 0:50J0 are observed as kBT = 0:44J0, 0:39J0 & 0:33J0 (i.e. nearly 96 % magnetizations are observed at these temperatures) respectively at B = 0:0J0=µ (i.e. absence of any external magnetic field). This is in quantitative agreement with theory. The spin correlation function diverges at these transition temperatures, which can be understood as the theoretical evidence supporting the observation of spontaneous magnetization. The ferromagnetic to paramagnetic transitions are not very sharp but the range of the spin-spin interaction can be said to decay gradually. Even at higher temperature as kT = 2:0J0, the opposite spin pair correlation function supports formation of tiny domains with spin transport from one domain to another, whereas for lower temperatures below kT = 1:0J0, the presence of majority +1=2 spins diminish the effect. Tiny domain walls have lower energy surrounded by opposite spins and seem to be energetically preferred. This quasi nature of spin-spin interaction with temperature is also supported by the corresponding ensemble entropy averages.

About the Author

Pal Singh Satya
Department of Applied Sciences, Madan Mohan Malaviya University of Technology
India

Gorakhpur, 273010



References

1. C.P. Pooley, F.J. Owens. Introduction to Nanotechnology, Wiley India Pvt. Ltd. New Delhi, 2009.

2. J. Ramsden. Nanotechnology: An Introduction, Chapter-2, The nanoscle, Elsevier, UK, 2011.

3. M. Kuno. Introductory Nanoscience, Garland Science, Taylor and Francis Gropu, USA, 2012.

4. C.W.Shong, S.C.Haur, A.T.S. Wee. Science at Nanoscale, Pan Stanford Publishing Pvt. Ltd. 2010, Singapore.

5. R.K. Pathria, P.D. Beale. Statistical Mechanics, 3rd Ed., Butterworth-Heinemenn, USA, 2011.

6. B.K. Tanner. Introduction to the Physics of Electrons in Solids, Cambridge University Press, UK, 1995.

7. J.D. Fast. Entropy, 2nd Ed., Gordon and Breach Science Publishers Inc., USA, 1968.

8. A.K. Saha, S.P. Singh, J.K. Singh, S.K. Kwak. Quasi- 2D and prewetting transitions of square well fluids on a square-well substrate. Molecular Physics, 2009, 107 (20), P. 2189–2200.

9. S.P. Singh, J.K. Singh, A. Sharma. Adsorption of gas like molecules on self aligned square well fluid channels under confinement of chemically patterned substrates. Appl. Nanosc., 2013, 3, P. 179–187.

10. S.P. Singh, J.K. Singh, A. Sharma. Investigating bridge like structures in a square well binary mixture using NVT Monte Carlo simulation. Int. J. Nanosc., 2011, 10, (1), P. 329–333.

11. S.P. Singh. Spinodal theory: A common rupturing mechanism in spinodal dewetting and surface directed phase separation (some technological aspects and the significance of dipole-quadrupole interaction in spinodal dewetting). Advances in Cond. Mat. Phys., 2011, 2011, Article ID 526397, 14 pages.

12. S.P. Singh. Spatial correlation in 2D and 3D thin films of conserved binary mixtures in presence of wetting of substrates by preferred majority component: Interpretation in real scenario. Appl. Nanosc., 2012, 2, P. 365– 369.

13. S.P. Singh. Revisiting 2D lattice based spin flip-flop Ising model: Magnetic properties of a thin film and its temperature dependence. Eur. J. Phys. Educ., 2014, 5 (3).

14. S.P. Singh. Dimensions and Trends of Nanotechnology. ISST J. Appl. Phys., 2015, 6 (1), P. 73–77.

15. G.H. Wannier. Elements of solid state theory, Chapter-4, Co-operative phenomena in solids. Cambridge University Press, UK, 1960.

16. H.V. Keer. Principles of solid state, Chapter-5, Magnetic properties. New Age International Publishers, New Delhi, 2005.

17. J. Marro, R. Toral. Microscopic observations on a kinetic Ising model. Am. J. Phys., 1986, 54 (12), P. 1114– 1121.

18. V.A. Ignatchenko. Spontaneous magnetization of ferromagnetic thin films. Soviet Physics JETP, 1961, 13 (4), P. 863.

19. S. Banerjee, M. Widom. Shapes and texture of ferromagnetic liquid droplets. Brazilian J. Phys., 2011, 31 (3), P. 360–365.

20. A. Goswami. Thin film fundamentals, Chapter-12, Magnetic and superconducting film. New Age International Publishers, New Delhi, 2008.

21. A. Sundaresan, R. Bhargavi, et al. Ferromagnetism as a universal feature of nanoparticles of the otherwise nonmagnetic oxides. Phys. Rev. B, 2006, 74, P. 161306(R).

22. J.M.D. Coey. High temperature ferromagnetism in dilute magnetic oxides. J. of Appl. Phys., 2005, 97, 10D313.

23. N. Poudyai, G.S. Chaubey, C.-B. Rong, J.P. Liu. Shape control of FePt nanocrystals. J. Appl. Phys., 2009, 105, 07A749.


Review

For citations:


Satya P. First observations of entropy vs free energy for lattice based Ising model for spin coarsening in conserved and non-conserved binary mixtures: a phenomenological study of phase transitions in 2D thin films. Nanosystems: Physics, Chemistry, Mathematics. 2015;6(6):882-895. https://doi.org/10.17586/2220-8054-2015-6-6-882-895

Views: 3


Creative Commons License
This work is licensed under a Creative Commons Attribution 4.0 License.


ISSN 2220-8054 (Print)
ISSN 2305-7971 (Online)