3 Spin-Polarized Plasmonics: Fresh View …
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36. Y. Kumamoto, A. Taguchi, M. Honda, K. Watanabe, Y. Saito, S. Kawata, Indium for deep
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structure of bulk cobalt: The αα, ββ, and εε-phases from density functional theory calculations.J.
Chem. Phys. 133, 024701 (2010)
41. D. Gull, Electron mean free path in elemental metals. J. Appl. Phys. 119, 085101 (2016)
42. P. Perdew, K. Burke, M. Ernzerhof, Phys. Rev. Lett. 77, 3865 (1996)
43. V. Blum, R. Gehrke, F. Hanke, P. Havu, V. Havu, X. Ren, K. Reuter, M. Scheffler, Comput.
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44. V. Havu, V. Blum, P. Havu, M. Scheffler, J. Comput. Phys. 228, 8367–8379 (2009)
45. A. Marek, V. Blum, R. Johanni, V. Havu, B. Lang, T. Auckenthaler, A. Heinecke, H.-J. Bungartz,
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47. J.-X. Liu, H.-Y. Su, D.-P. Sun, B.-Y. Zhang, W.-X. Li, J. Am. Chem. Soc. 135, 16284 (2013)
48. J.M. Rahm, P. Erhart, WulffPack: a python package for Wulff constructions. J. Open Source
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49. V.F. Puntes, K. Krishnan, A.P. Alivisatos, Colloidal nanocrystal shape and size control: the
case of cobalt. Science 291, 2115–2117 (2001)
50. H.T. Yang, C.M. Shen, Y.G. Wang, Y.K. Su, T.Z. Yang, H.J. Gao, Stable cobalt nanoparticles
passivated with oleic acid and trioctylphosphine. Nanotechnology 15, 70–74 (2004)
51. Y.K. Su, C.M. Shen, T.Z. Yang, H.T. Yang, H.J. Gao, H.L. Li, The dependence of Co
nanoaprticle sizes on the ratio of surfactants and the influence of different crystal sizes on
magnetic properties. Appl. Phys. A 81, 569–572 (2005)
52. S.H. Sun, C.B. Murray, Synthesis of monodisperse cobalt nanoparticles and their assemble into
magnetic superlattices. J. Appl. Phys. 85, 4325 (1999). https://doi.org/10.1063/1.370357
53. A. Kelly, K. Knowles (2012) Crystallography and Crystal Defects 2nd Ed. (Wiley, 2011)
54. L. Néel, Théorie du traînage magnétique des ferromagnétiques en grains fins avec application
aux terres 5 cuites. Ann. Géophys. 5, 99–136 (1949)
55. W.T. Coffey, D.S.F. Crothers, Yu.P. Kalmykov, E.S. Massawe, J.T. Waldron, Exact analytic
formula for the correlation time of a single-domain ferromagnetic particle. Phys. Rev. E 49,
1869 (1994)
56. J.L. Dormann; F. D’Orazio, F. Lucari, E. Tronc, P. Prene, J.P. Jolivet, D. Fiorani, R. Cherkaoui,
M. Nogue’s, Thermal variation of the relaxation time of the magnetic moment of γ-Fe 2 O 3
nanoparticles with interparticle interactions of various strengths. Phys. Rev. B 53, 14291–14297
(1996)
73
31. M.G. Blaber, C.J. Engel, S.R.C. Vivekchand, S.M. Lubin, T.W. Odom, G.C. Schatz, Eutectic
liquid alloys for plasmonics: theory and experiment. Nano Lett. 12, 4324–4328 (2012)
32. M.G. Blaber, M.D. Arnold, M.J. Ford, A review of the optical properties of alloys and
intermetallics for plasmonics J. Phys.: Condens. Matter 22, 143201–143215 (2010)
33. G. Maidecchi, G. Gonella, R.P. Zaccaria, R. Moroni, L. Anghinolfi, A. Giglia, S. Nannarone,
L. Mattera, H.-L. Dai, M. Canepa, F. Bisio, Deep ultraviolet plasmon resonance in aluminum
nanoparticle arrays. ACS Nano 7, 5834 (2013)
34. M.W. Knight, N.S. King, L. Liu, H.O. Everitt, P. Nordlander, N.J. Halas, Aluminum for
plasmonics. ACS Nano 8, 834–840 (2014)
35. T. Ding, D.O. Sigle, L.O. Herrmann, D. Wolverson, J. J. Baumberg, Nanoimprint Lithography
of Al Nanovoids for Deep-UV SERS. ACS Appl. Mater. Interf. https://doi.org/10.1021/am5
05511v
36. Y. Kumamoto, A. Taguchi, M. Honda, K. Watanabe, Y. Saito, S. Kawata, Indium for deep
ultraviolet surface-enhanced resonance raman scattering. ACS Photon. 1, 598–603 (2014)
37. N.F. Mott, The resistance and thermoelectric properties of the transition metals. Proc. Royal
Soc. 156, 368 (1936). https://doi.org/10.1098/rspa.1936.0154
38. N.F. Mott, Electrons in transition metals. Adv. Phys. 13, 325 (1964). https://doi.org/10.1080/
00018736400101041
39. M.N. Baibich, J.M. Broto, A. Fert, N. Van Dau, F. Petroff, P. Etienne, G. Creuzet, A. Friederich,
Chazelas, Giant magnetoresistance of (001) Fe/(001) Cr magnetic superlattices. J. Phys. Rev.
Lett. 61, 2472 (1988). https://doi.org/10.1103/PhysRevLett.61.2472
40. V.A. de la Peña O’Shea, I. de P. R. Moreira, A. Roldán, A. Illas, Electronic and magnetic
structure of bulk cobalt: The αα, ββ, and εε-phases from density functional theory calculations.J.
Chem. Phys. 133, 024701 (2010)
41. D. Gull, Electron mean free path in elemental metals. J. Appl. Phys. 119, 085101 (2016)
42. P. Perdew, K. Burke, M. Ernzerhof, Phys. Rev. Lett. 77, 3865 (1996)
43. V. Blum, R. Gehrke, F. Hanke, P. Havu, V. Havu, X. Ren, K. Reuter, M. Scheffler, Comput.
Phys. Commun. 180, 2175–2196 (2009)
44. V. Havu, V. Blum, P. Havu, M. Scheffler, J. Comput. Phys. 228, 8367–8379 (2009)
45. A. Marek, V. Blum, R. Johanni, V. Havu, B. Lang, T. Auckenthaler, A. Heinecke, H.-J. Bungartz,
H. Lederer, J. Phys. Condens. Matter 26, 213201 (2014)
46. S. Levchenko, X. Ren, J. Wieferink, R. Johanni, P. Rinke, V. Blum, M. Scheffler, Comput.
Phys. Commun. 192, 60–69 (2015)
47. J.-X. Liu, H.-Y. Su, D.-P. Sun, B.-Y. Zhang, W.-X. Li, J. Am. Chem. Soc. 135, 16284 (2013)
48. J.M. Rahm, P. Erhart, WulffPack: a python package for Wulff constructions. J. Open Source
Softw. 5.45 (2020): 1944
49. V.F. Puntes, K. Krishnan, A.P. Alivisatos, Colloidal nanocrystal shape and size control: the
case of cobalt. Science 291, 2115–2117 (2001)
50. H.T. Yang, C.M. Shen, Y.G. Wang, Y.K. Su, T.Z. Yang, H.J. Gao, Stable cobalt nanoparticles
passivated with oleic acid and trioctylphosphine. Nanotechnology 15, 70–74 (2004)
51. Y.K. Su, C.M. Shen, T.Z. Yang, H.T. Yang, H.J. Gao, H.L. Li, The dependence of Co
nanoaprticle sizes on the ratio of surfactants and the influence of different crystal sizes on
magnetic properties. Appl. Phys. A 81, 569–572 (2005)
52. S.H. Sun, C.B. Murray, Synthesis of monodisperse cobalt nanoparticles and their assemble into
magnetic superlattices. J. Appl. Phys. 85, 4325 (1999). https://doi.org/10.1063/1.370357
53. A. Kelly, K. Knowles (2012) Crystallography and Crystal Defects 2nd Ed. (Wiley, 2011)
54. L. Néel, Théorie du traînage magnétique des ferromagnétiques en grains fins avec application
aux terres 5 cuites. Ann. Géophys. 5, 99–136 (1949)
55. W.T. Coffey, D.S.F. Crothers, Yu.P. Kalmykov, E.S. Massawe, J.T. Waldron, Exact analytic
formula for the correlation time of a single-domain ferromagnetic particle. Phys. Rev. E 49,
1869 (1994)
56. J.L. Dormann; F. D’Orazio, F. Lucari, E. Tronc, P. Prene, J.P. Jolivet, D. Fiorani, R. Cherkaoui,
M. Nogue’s, Thermal variation of the relaxation time of the magnetic moment of γ-Fe 2 O 3
nanoparticles with interparticle interactions of various strengths. Phys. Rev. B 53, 14291–14297
(1996)
