5 Magneto-Plasmonic Nanoparticles
129
and magnetic hyperthermia effects therapies and plasmon driven demagnetization
process. However, other crossing mechanisms can be outlined. Martin et al. [264]
theoretically showed that the spatial thermal diffusion of the plasmon-induced heat
between MP nanoparticles can be controlled by the MO effects. Experiments by
Temnov et al. [265, 266] demonstrate the modulation of the non-linear optical properties of propagating plasmons in magnetoplasmonic multilayers induced by the
thermal process at the magnetic interfaces. In addition, in MP NPs, single phase
or hybrid, phononic and magnonic excitations are affected, and coupled, by size
effects of the moieties, the inter and intra particle coupling and by the particle
morphology. The fact that an increasing number of novel properties are being
observed in magnetic and plasmonic nanostructures using other external stimulus—
like chirality light, electrical and electrochemical fields or mechanical forces—[14,
72, 171, 174, 197, 251] involves that MPs will be excellent benchmark materials to
design and investigate multi-responsive, multifunctional nanomaterials.
Acknowledgements This work has been supported by the European Union’s Horizon
2020 Research and Innovation program under Grant agreement No. 737093 (FEMTOTERABYTE https://www.physics.gu.se/femtoterabyte) and by the University of Pisa through project
PRA_2017_25.
References
1. S.A. Maier, Plasmonics: Fundamentals and Applications (Springer, New York, 2007)
2. J.A. Schuller, E.S. Barnard, W. Cai, Y.C. Jun, J.S. White, M.L. Brongersma, Nat. Mater. 9,
193 (2010)
3. D.K. Gramotnev, S.I. Bozhevolnyi, Nat. Photon. 4, 83 (2010)
4. O. Tokel, F. Inci, U. Demirci, Chem. Rev. 114, 5728 (2014)
5. J. Langer, S.M. Novikov, L.M. Liz-Marzán, Nanotechnology 26, 322001 (2015)
6. U. Kreibig, M. Vollmer, Optical Properties of Metal Cluster (Springer, Berlin, 1995)
7. S.K. Ghosh, T. Pal, Chem. Rev. 107, 4797 (2007)
8. M.A. García, J. Phys. D: Appl. Phys. 44, 283001 (2011)
9. S. Kim, J.M. Kim, J.E. Park, J.M. Nam, Adv. Mater. 30, 1704528 (2018)
10. B. Doiron, M. Mota, M.P. Wells, R. Bower, ACS Photon. 6, 240 (2019)
11. J.M.D. Coey, Magnetism and Magnetic Materials (Cambridge University Press, New York,
2010)
12. G. Armelles, A. Cebollada, A. García-Martín and M. Ujué González, Adv. Opt. Mater. 1, 10
(2013).
13. R. Scarfiello, C. Nobile, P.D. Cozzoli, Front. Mater. 3, 1 (2016)
14. D. Floess, H. Giessen, Rep. Prog. Phys. 81, 116401 (2018)
15. V.T. Tran, J. Kim, L.T. Tufa, S. Oh, J. Kwon, J. Lee, Anal. Chem. 90, 225 (2018)
16. P.B. Johnson, R.W. Christy, Phys. Rev. B 6, 4370 (1972)
17. P.B. Johnson, R.W. Christy, Phys. Rev. B 9, 5056 (1974)
18. K.K. Tikuišis, L. Beran, P. Cejpek, K. Uhlírová, J. Hamrle, M. Vaˇ natka, M. Urbánek, M. Veis,
Mater. Design. 114, 31 (2017)
19. G. Armelles, D. Weller, B. Rellinghaus, R.F.C. Farrow, M.F. Toney, P. Caro, A. Cebollada,
M.I. Alonso, IEEE Trans. Magn. 33, 3419 (1997)
20. N.W. Ashcroft, N.D. Mermin, Solid State Physics (Saunders College, Philadelphia, 1976)
129
and magnetic hyperthermia effects therapies and plasmon driven demagnetization
process. However, other crossing mechanisms can be outlined. Martin et al. [264]
theoretically showed that the spatial thermal diffusion of the plasmon-induced heat
between MP nanoparticles can be controlled by the MO effects. Experiments by
Temnov et al. [265, 266] demonstrate the modulation of the non-linear optical properties of propagating plasmons in magnetoplasmonic multilayers induced by the
thermal process at the magnetic interfaces. In addition, in MP NPs, single phase
or hybrid, phononic and magnonic excitations are affected, and coupled, by size
effects of the moieties, the inter and intra particle coupling and by the particle
morphology. The fact that an increasing number of novel properties are being
observed in magnetic and plasmonic nanostructures using other external stimulus—
like chirality light, electrical and electrochemical fields or mechanical forces—[14,
72, 171, 174, 197, 251] involves that MPs will be excellent benchmark materials to
design and investigate multi-responsive, multifunctional nanomaterials.
Acknowledgements This work has been supported by the European Union’s Horizon
2020 Research and Innovation program under Grant agreement No. 737093 (FEMTOTERABYTE https://www.physics.gu.se/femtoterabyte) and by the University of Pisa through project
PRA_2017_25.
References
1. S.A. Maier, Plasmonics: Fundamentals and Applications (Springer, New York, 2007)
2. J.A. Schuller, E.S. Barnard, W. Cai, Y.C. Jun, J.S. White, M.L. Brongersma, Nat. Mater. 9,
193 (2010)
3. D.K. Gramotnev, S.I. Bozhevolnyi, Nat. Photon. 4, 83 (2010)
4. O. Tokel, F. Inci, U. Demirci, Chem. Rev. 114, 5728 (2014)
5. J. Langer, S.M. Novikov, L.M. Liz-Marzán, Nanotechnology 26, 322001 (2015)
6. U. Kreibig, M. Vollmer, Optical Properties of Metal Cluster (Springer, Berlin, 1995)
7. S.K. Ghosh, T. Pal, Chem. Rev. 107, 4797 (2007)
8. M.A. García, J. Phys. D: Appl. Phys. 44, 283001 (2011)
9. S. Kim, J.M. Kim, J.E. Park, J.M. Nam, Adv. Mater. 30, 1704528 (2018)
10. B. Doiron, M. Mota, M.P. Wells, R. Bower, ACS Photon. 6, 240 (2019)
11. J.M.D. Coey, Magnetism and Magnetic Materials (Cambridge University Press, New York,
2010)
12. G. Armelles, A. Cebollada, A. García-Martín and M. Ujué González, Adv. Opt. Mater. 1, 10
(2013).
13. R. Scarfiello, C. Nobile, P.D. Cozzoli, Front. Mater. 3, 1 (2016)
14. D. Floess, H. Giessen, Rep. Prog. Phys. 81, 116401 (2018)
15. V.T. Tran, J. Kim, L.T. Tufa, S. Oh, J. Kwon, J. Lee, Anal. Chem. 90, 225 (2018)
16. P.B. Johnson, R.W. Christy, Phys. Rev. B 6, 4370 (1972)
17. P.B. Johnson, R.W. Christy, Phys. Rev. B 9, 5056 (1974)
18. K.K. Tikuišis, L. Beran, P. Cejpek, K. Uhlírová, J. Hamrle, M. Vaˇ natka, M. Urbánek, M. Veis,
Mater. Design. 114, 31 (2017)
19. G. Armelles, D. Weller, B. Rellinghaus, R.F.C. Farrow, M.F. Toney, P. Caro, A. Cebollada,
M.I. Alonso, IEEE Trans. Magn. 33, 3419 (1997)
20. N.W. Ashcroft, N.D. Mermin, Solid State Physics (Saunders College, Philadelphia, 1976)
