5 Enabling Materials By Dimensionality: From 0D to 3D Carbon-Based. . .
195
16. L. Van Hove, The occurrence of singularities in the elastic frequency distribution of a crystal.
Phys. Rev. 89, 1189–1193 (1953)
17. F. Bassani, G. Pastori Parravicini, Electronic States and Optical Transitions in Solids
(Pergamon Press, Oxford/New York, 1975)
18. M. Azzolini, T. Morresi, G. Garberoglio, L. Calliari, N.M. Pugno, S. Taioli, M. Dapor, Monte
Carlo simulations of measured electron energy-loss spectra of diamond and graphite: role of
dielectric-response models. Carbon 118, 299–309 (2017)
19. P. Cudazzo, M. Gatti, A. Rubio, Interplay between structure and electronic properties
of layered transition-metal dichalcogenides: comparing the loss function of 1T and 2H
polymorphs. Phys. Rev. B 86, 075121 (2012)
20. C.L. Kane, E.J. Mele, Quantum spin hall effect in graphene. Phys. Rev. Lett. 95, 22680 (2005)
21. H. Gao, Application of fracture mechanics concepts to hierarchical biomechanics of bone and
bone-like materials. Int. J. Fract. 138, 101–137 (2006)
22. H. Yao, H. Gao, Multi-scale cohesive laws in hierarchical materials. Int. J. Solids Struct. 44,
8177–8193 (2007)
23. M.J. Buehler, S. Keten, T. Ackbarow, Theoretical and computational hierarchical nanomechanics of protein materials: deformation and fracture. Prog. Mater. Sci. 53, 1101–1241
(2008)
24. R. Puxkandl, I. Zizak, O. Paris, J. Keckes, W. Tesch, S. Bernstorff, P. Purslow, P. Fratzl,
Viscoelastic properties of collagen: synchrotron radiation investigations and structural model.
Philos. Trans. R. Soc. Lond. B 357, 191–197 (2001)
25. M.S. Dresselhaus, G. Dresselhaus, P.C. Eklund, Science of fullerenes and carbon nanotubes
(Academic Press, San Diego, 1996)
26. D.E.H. Jones, Hollow molecules. New Sci. 32, 245 (1966)
27. H.W. Kroto, J.R. Health, S.C. O’Brien, R.F. Curl, R.E. Smalley, C60: Buckminsterfullerene.
Nature 318, 162–163 (1985)
28. A. Lassesson, N. Walsh, F. Martinez, A. Herlert, G. Marx, L. Schweikhard, Formation of
fullerene dianions in a Penning trap. Eur. Phys. J. D At. Mol. Opt. Plasma Phys. 34, 73–77
(2005)
29. D. Tomànek, M.A. Schluter, Growth regimes of carbon clusters. Phys. Rev. Lett. 67, 2331–
2334 (1991)
30. C.J. Brabec, E.B. Anderson, B.N. Davidson, S.A. Kajihara, Q.-M. Zhang, J. Bernholc, D.
Tomànek, Precursors to C 60 fullerene formation. Phys. Rev. B 46, 7326–7328 (1992)
31. Z. Yufeng, K. Yong-Hyun, A.C. Dillon, M.J. Heben, S.B. Zhang, Hydrogen storage in novel
organometallic buckyballs. Phys. Rev. Lett. 94, 155504 (2005)
32. C.E. Housecroft, A.G. Sharpe, Chapter 14: the group 14 elements, in Inorganic Chemistry,
3rd edn. (Pearson, London, 2008)
33. N.S. Sariciftci et al., Semiconducting polymer-buckminsterfullerene heterojunctions: diodes,
photodiodes, and photovoltaic cells. Appl. Phys. Lett. 62, 585–587 (1993)
34. F. Tran, P. Blaha, Accurate band gaps of semiconductors and insulators with a semilocal
exchange-correlation potential. Phys. Rev. Lett. 102, 226401 (2009)
35. S. Jalali-Asadabadi, Electronic structure of crystalline buckyballs: fcc-C 60 . J. Electron. Mater.
45, 339–348 (2016)
36. E.L. Shirley, S.G. Louie, Electron excitations in solid C 60 : energy gap, band dispersions, and
effects of orientational disorder. Phys. Rev. Lett. 71, 133–136 (1993)
37. K.H. Michel, J.R.D. Copley, D.A. Neumann, Microscopic theory of orientational disorder and
the orientational phase transition in solid C 60 . Phys. Rev. Lett. 68, 2929–2932 (1992)
38. S. Saito, A. Oshiyama, Cohesive mechanism and energy bands of solid C 60 . Phys. Rev. Lett.
66, 2637–2640 (1991)
39. M.S. Golden, M. Knupfer, J. Fink, J.F. Armbruster, T.R. Cummins, H.A. Romberg, M.
Roth, M. Sing, M. Schmidt, E. Sohmen, The electronic structure of fullerenes and fullerene
compounds from high-energy spectroscopy. J. Phys. Condens. Matter 7, 8219 (1995)
40. J.R. Pinzón, A. Villalta-Cerdas, L. Echegoyen, Fullerenes, carbon nanotubes, and graphene
for molecular electronics, in Unimolecular and Supramolecular Electronics, vol. 312
(Springer, Berlin/Heidelberg, 2012), pp. 127–74
195
16. L. Van Hove, The occurrence of singularities in the elastic frequency distribution of a crystal.
Phys. Rev. 89, 1189–1193 (1953)
17. F. Bassani, G. Pastori Parravicini, Electronic States and Optical Transitions in Solids
(Pergamon Press, Oxford/New York, 1975)
18. M. Azzolini, T. Morresi, G. Garberoglio, L. Calliari, N.M. Pugno, S. Taioli, M. Dapor, Monte
Carlo simulations of measured electron energy-loss spectra of diamond and graphite: role of
dielectric-response models. Carbon 118, 299–309 (2017)
19. P. Cudazzo, M. Gatti, A. Rubio, Interplay between structure and electronic properties
of layered transition-metal dichalcogenides: comparing the loss function of 1T and 2H
polymorphs. Phys. Rev. B 86, 075121 (2012)
20. C.L. Kane, E.J. Mele, Quantum spin hall effect in graphene. Phys. Rev. Lett. 95, 22680 (2005)
21. H. Gao, Application of fracture mechanics concepts to hierarchical biomechanics of bone and
bone-like materials. Int. J. Fract. 138, 101–137 (2006)
22. H. Yao, H. Gao, Multi-scale cohesive laws in hierarchical materials. Int. J. Solids Struct. 44,
8177–8193 (2007)
23. M.J. Buehler, S. Keten, T. Ackbarow, Theoretical and computational hierarchical nanomechanics of protein materials: deformation and fracture. Prog. Mater. Sci. 53, 1101–1241
(2008)
24. R. Puxkandl, I. Zizak, O. Paris, J. Keckes, W. Tesch, S. Bernstorff, P. Purslow, P. Fratzl,
Viscoelastic properties of collagen: synchrotron radiation investigations and structural model.
Philos. Trans. R. Soc. Lond. B 357, 191–197 (2001)
25. M.S. Dresselhaus, G. Dresselhaus, P.C. Eklund, Science of fullerenes and carbon nanotubes
(Academic Press, San Diego, 1996)
26. D.E.H. Jones, Hollow molecules. New Sci. 32, 245 (1966)
27. H.W. Kroto, J.R. Health, S.C. O’Brien, R.F. Curl, R.E. Smalley, C60: Buckminsterfullerene.
Nature 318, 162–163 (1985)
28. A. Lassesson, N. Walsh, F. Martinez, A. Herlert, G. Marx, L. Schweikhard, Formation of
fullerene dianions in a Penning trap. Eur. Phys. J. D At. Mol. Opt. Plasma Phys. 34, 73–77
(2005)
29. D. Tomànek, M.A. Schluter, Growth regimes of carbon clusters. Phys. Rev. Lett. 67, 2331–
2334 (1991)
30. C.J. Brabec, E.B. Anderson, B.N. Davidson, S.A. Kajihara, Q.-M. Zhang, J. Bernholc, D.
Tomànek, Precursors to C 60 fullerene formation. Phys. Rev. B 46, 7326–7328 (1992)
31. Z. Yufeng, K. Yong-Hyun, A.C. Dillon, M.J. Heben, S.B. Zhang, Hydrogen storage in novel
organometallic buckyballs. Phys. Rev. Lett. 94, 155504 (2005)
32. C.E. Housecroft, A.G. Sharpe, Chapter 14: the group 14 elements, in Inorganic Chemistry,
3rd edn. (Pearson, London, 2008)
33. N.S. Sariciftci et al., Semiconducting polymer-buckminsterfullerene heterojunctions: diodes,
photodiodes, and photovoltaic cells. Appl. Phys. Lett. 62, 585–587 (1993)
34. F. Tran, P. Blaha, Accurate band gaps of semiconductors and insulators with a semilocal
exchange-correlation potential. Phys. Rev. Lett. 102, 226401 (2009)
35. S. Jalali-Asadabadi, Electronic structure of crystalline buckyballs: fcc-C 60 . J. Electron. Mater.
45, 339–348 (2016)
36. E.L. Shirley, S.G. Louie, Electron excitations in solid C 60 : energy gap, band dispersions, and
effects of orientational disorder. Phys. Rev. Lett. 71, 133–136 (1993)
37. K.H. Michel, J.R.D. Copley, D.A. Neumann, Microscopic theory of orientational disorder and
the orientational phase transition in solid C 60 . Phys. Rev. Lett. 68, 2929–2932 (1992)
38. S. Saito, A. Oshiyama, Cohesive mechanism and energy bands of solid C 60 . Phys. Rev. Lett.
66, 2637–2640 (1991)
39. M.S. Golden, M. Knupfer, J. Fink, J.F. Armbruster, T.R. Cummins, H.A. Romberg, M.
Roth, M. Sing, M. Schmidt, E. Sohmen, The electronic structure of fullerenes and fullerene
compounds from high-energy spectroscopy. J. Phys. Condens. Matter 7, 8219 (1995)
40. J.R. Pinzón, A. Villalta-Cerdas, L. Echegoyen, Fullerenes, carbon nanotubes, and graphene
for molecular electronics, in Unimolecular and Supramolecular Electronics, vol. 312
(Springer, Berlin/Heidelberg, 2012), pp. 127–74
