2 Interparticle Interactions: Theory and Mesoscopic Modeling
61
References
1. A. Joseph, S. Mathew, Ferrofluids: synthetic strategies stabilization, physicochemical features,
characterization, and applications. Chempluschem 79, 1382–1420 (2014)
2. S. Singamaneni, V.N. Bliznyuk, C. Binek, E.Y. Tsymbal, Magnetic nanoparticles: recent
advances in synthesis, self-assembly and applications. J. Mater. Chem. 21, 16819–16845 (2011)
3. M. Vasilakaki, G. Margaris, K.N. Trohidou, Magnetic Behavior of Composite Nanoparticle Assemblies, in Magnetic Nanoparticle Assemblies, ed. by K.N. Trohidou (Pan Stanford
Publishing, USA, 2014), pp. 253–280
4. P. Allia, M. Coisson, P. Tiberto, F. Vinai, M. Knobel, M.A. Novak, W.C. Nunes, Granular
Cu-Co alloys as interacting superparamagnets, Phys. Rev. B Condens. Matter Mater. Phys. 64,
1444201–14442012 (2001)
5. S. Nakamae, C. Crauste-Thibierge, K. Komatsu, D. L’Hôte, E. Vincent, E. Dubois, V. Dupuis,
R. Perzynski, Anisotropy-axis orientation effect on the magnetization of γ-Fe 2 O 3 frozen
ferrofluid. J. Phys. D Appl. Phys. 43, 474001 (2010)
6. D. Peddis, C. Cannas, A. Musinu, G. Piccaluga, Coexistence of superparmagnetism and spinglass like magnetic ordering phenomena in a CoFe 2 O 4 -SiO 2 nanocomposite. J. Phys. Chem.
C 112, 5141–5147 (2008)
7. M. Vasilakaki, G. Margaris, D. Peddis, R. Mathieu, N. Yaacoub, D. Fiorani, K. Trohidou,
Monte Carlo study of the superspin glass behavior of interacting ultrasmall ferrimagnetic
nanoparticles, Phys. Rev. B. 97, 094413(6) (2018)
8. J.M. Vargas, L.M. Socolovsky, M. Knobel, D. Zanchet, Dipolar interaction and size effects in
powder samples of colloidal iron oxide nanoparticles. Nanotechnology. 16, S285–S290 (2005)
9. J.L. Dormann, D. Fiorani, E. Tronc, On the models for interparticle interactions in nanoparticle
assemblies: comparison with experimental results. J. Magn. Magn. Mater. 202, 251–267 (1999)
10. S.A. Majetich, M. Sachan, Magnetostatic interactions in magnetic nanoparticle assemblies:
Energy, time and length scales. J. Phys. D Appl. Phys. 39, R407–R422 (2006)
11. P. Allia, P. Tiberto, Dynamic effects of dipolar interactions on the magnetic behavior of
magnetite nanoparticles. J. Nanoparticle Res. 13, 7277–7293 (2011)
12. L. Néel, Le champ coercif d’une poudre ferromagnetique cubique á grains anisotropes, C. R.
Acad. Sci., Paris. 224, 1550–1551 (1947)
13. E.P. Wohlfarth, The Effect of Particle Interaction on the Coercive Force of Ferromagnetic
Micropowders, Proc. R. Soc. A Math. Phys. Eng. Sci. 232, 208–227 (1955)
14. J.L. Dormann, L. Bessais, D. Fiorani, A dynamic study of small interacting particlessuperparamagnetic model and spin-glass laws. J. Phys. C-Solid State Phys. 21, 2015–2034
(1988)
15. D. Kechrakos, K.N. Trohidou, Effects of dipolar interactions on the magnetic properties of
granular solids. J. Magn. Magn. Mater. 1771, 943–944 (1998)
16. S. Bedanta, W. Kleemann, Supermagnetism, J. Phys. D. Appl. Phys. 42, 013001(28 pp) (2009)
17. J.J. Lu, M.-T. Lin, C.C. Kuo, H.L. Huang, Hysteretic behavior of magnetic particles with dipole
interaction. J. Appl. Phys. 85, 5558–5560 (1999)
18. K. Nadeem, H. Krenn, T. Traussing, I. Letofsky-Papst, Distinguishing magnetic blocking and
surface spin-glass freezing in nickel ferrite nanoparticl. J. Appl. Phys. 109, 13912 (2011)
19. T. Uusimäki, G. Margaris, K. Trohidou, P. Granitzer, K. Rumpf, M. Sezen, G. Kothleitner,
Three dimensional quantitative characterization of magnetite nanoparticles embedded in mesoporous silicon: Local curvature, demagnetizing factors and magnetic Monte Carlo simulations.
Nanoscale. 5, 11944–11953 (2013)
20. A. López-Ortega, M. Estrader, G. Salazar-Alvarez, A.G. Roca, J. Nogués, Applications of
exchange coupled bi-magnetic hard/soft and soft/hard magnetic core/shell nanoparticles. Phys.
Rep. 553, 1–32 (2015)
21. G. Margaris, K.N. Trohidou, J. Nogués, Mesoscopic model for the simulation of large arrays
of Bi-magnetic core/shell nanoparticles. Adv. Mater. 24, 4331–4336 (2012)
61
References
1. A. Joseph, S. Mathew, Ferrofluids: synthetic strategies stabilization, physicochemical features,
characterization, and applications. Chempluschem 79, 1382–1420 (2014)
2. S. Singamaneni, V.N. Bliznyuk, C. Binek, E.Y. Tsymbal, Magnetic nanoparticles: recent
advances in synthesis, self-assembly and applications. J. Mater. Chem. 21, 16819–16845 (2011)
3. M. Vasilakaki, G. Margaris, K.N. Trohidou, Magnetic Behavior of Composite Nanoparticle Assemblies, in Magnetic Nanoparticle Assemblies, ed. by K.N. Trohidou (Pan Stanford
Publishing, USA, 2014), pp. 253–280
4. P. Allia, M. Coisson, P. Tiberto, F. Vinai, M. Knobel, M.A. Novak, W.C. Nunes, Granular
Cu-Co alloys as interacting superparamagnets, Phys. Rev. B Condens. Matter Mater. Phys. 64,
1444201–14442012 (2001)
5. S. Nakamae, C. Crauste-Thibierge, K. Komatsu, D. L’Hôte, E. Vincent, E. Dubois, V. Dupuis,
R. Perzynski, Anisotropy-axis orientation effect on the magnetization of γ-Fe 2 O 3 frozen
ferrofluid. J. Phys. D Appl. Phys. 43, 474001 (2010)
6. D. Peddis, C. Cannas, A. Musinu, G. Piccaluga, Coexistence of superparmagnetism and spinglass like magnetic ordering phenomena in a CoFe 2 O 4 -SiO 2 nanocomposite. J. Phys. Chem.
C 112, 5141–5147 (2008)
7. M. Vasilakaki, G. Margaris, D. Peddis, R. Mathieu, N. Yaacoub, D. Fiorani, K. Trohidou,
Monte Carlo study of the superspin glass behavior of interacting ultrasmall ferrimagnetic
nanoparticles, Phys. Rev. B. 97, 094413(6) (2018)
8. J.M. Vargas, L.M. Socolovsky, M. Knobel, D. Zanchet, Dipolar interaction and size effects in
powder samples of colloidal iron oxide nanoparticles. Nanotechnology. 16, S285–S290 (2005)
9. J.L. Dormann, D. Fiorani, E. Tronc, On the models for interparticle interactions in nanoparticle
assemblies: comparison with experimental results. J. Magn. Magn. Mater. 202, 251–267 (1999)
10. S.A. Majetich, M. Sachan, Magnetostatic interactions in magnetic nanoparticle assemblies:
Energy, time and length scales. J. Phys. D Appl. Phys. 39, R407–R422 (2006)
11. P. Allia, P. Tiberto, Dynamic effects of dipolar interactions on the magnetic behavior of
magnetite nanoparticles. J. Nanoparticle Res. 13, 7277–7293 (2011)
12. L. Néel, Le champ coercif d’une poudre ferromagnetique cubique á grains anisotropes, C. R.
Acad. Sci., Paris. 224, 1550–1551 (1947)
13. E.P. Wohlfarth, The Effect of Particle Interaction on the Coercive Force of Ferromagnetic
Micropowders, Proc. R. Soc. A Math. Phys. Eng. Sci. 232, 208–227 (1955)
14. J.L. Dormann, L. Bessais, D. Fiorani, A dynamic study of small interacting particlessuperparamagnetic model and spin-glass laws. J. Phys. C-Solid State Phys. 21, 2015–2034
(1988)
15. D. Kechrakos, K.N. Trohidou, Effects of dipolar interactions on the magnetic properties of
granular solids. J. Magn. Magn. Mater. 1771, 943–944 (1998)
16. S. Bedanta, W. Kleemann, Supermagnetism, J. Phys. D. Appl. Phys. 42, 013001(28 pp) (2009)
17. J.J. Lu, M.-T. Lin, C.C. Kuo, H.L. Huang, Hysteretic behavior of magnetic particles with dipole
interaction. J. Appl. Phys. 85, 5558–5560 (1999)
18. K. Nadeem, H. Krenn, T. Traussing, I. Letofsky-Papst, Distinguishing magnetic blocking and
surface spin-glass freezing in nickel ferrite nanoparticl. J. Appl. Phys. 109, 13912 (2011)
19. T. Uusimäki, G. Margaris, K. Trohidou, P. Granitzer, K. Rumpf, M. Sezen, G. Kothleitner,
Three dimensional quantitative characterization of magnetite nanoparticles embedded in mesoporous silicon: Local curvature, demagnetizing factors and magnetic Monte Carlo simulations.
Nanoscale. 5, 11944–11953 (2013)
20. A. López-Ortega, M. Estrader, G. Salazar-Alvarez, A.G. Roca, J. Nogués, Applications of
exchange coupled bi-magnetic hard/soft and soft/hard magnetic core/shell nanoparticles. Phys.
Rep. 553, 1–32 (2015)
21. G. Margaris, K.N. Trohidou, J. Nogués, Mesoscopic model for the simulation of large arrays
of Bi-magnetic core/shell nanoparticles. Adv. Mater. 24, 4331–4336 (2012)
