93. Lewandowska K, Bednarski W, Milczarek G, Waplak S, Graja A, Park EY, Kim T-D, Lee
K-S (2011) Photoelectrochemical cells based on LB films of fullerene-thiophene derived
dyads. Synth Met 161:1640–1645
94. Graja A (2012) Corrole-fullerene dyads: Will they place porphyrin-fullerene systems? Mol
Cryst Liq Cryst 554:31–42
95. Wróbel D, Lewandowska K (2011) Covalent dyads of porphyrin–fullerene and perylene–
fullerene for organic photovoltaics: spectroscopic and photocurrent studies. Opt Mater
33:1424–1428
96. Marcus RA (1956) On the theory of oxidation-reduction reactions involving electron
transfer. I. J Chem Phys 24:966
97. Marcus RA, Sutin N (1985) Electron transfers in chemistry and biology. Biochim Biophys
Acta 811:265–322
98. Lin BC, Cheng CP, Lao ZPM (2003) Reorganization energies in the transports of holes and
electrons in organic amines in organic electroluminescence studied by density functional
theory. J Phys Chem A 107:5241–5251
99. Tokunaga K (2009) On the difference in electronic properties between fullerene C 60 and
C 60 X 2 . Chem Phys Lett 476:253–257
100. Tokunaga K (2012) Hydrogenation of fullerene C 60 : material design of organic semiconductors by computation. In: Karamé I (ed) Hydrogenation InTech. https://doi.org/10.5772/
48534
101. Brizet B, Desbois N, Bonnot A, Langlois A, Dubois A, Barbe J-M, Gros CP, Goze C,
Denat F, Harvey PD (2014) Slow and fast singlet energy transfers in BODIPY-gallium
(iii)corrole dyads linked by flexible chains. Inorg Chem 53:3392–3403
102. Wróbel D, Graja A (2011) Photoinduced electron transfer processes in fullerene–organic
chromophore systems. Coord Chem Rev 255:2555–2577
103. Imahori H, Tkachenko NV, Vehmanen V, Tamaki K, Lemmetyien H, Sakata Y, Fukuzumi S
(2001) An extremely small reorganization energy of electron transfer in porphyrin-fullerene
dyad. J Phys Chem 105:1750–1756
122
D. Wróbel and B. Barszcz
K-S (2011) Photoelectrochemical cells based on LB films of fullerene-thiophene derived
dyads. Synth Met 161:1640–1645
94. Graja A (2012) Corrole-fullerene dyads: Will they place porphyrin-fullerene systems? Mol
Cryst Liq Cryst 554:31–42
95. Wróbel D, Lewandowska K (2011) Covalent dyads of porphyrin–fullerene and perylene–
fullerene for organic photovoltaics: spectroscopic and photocurrent studies. Opt Mater
33:1424–1428
96. Marcus RA (1956) On the theory of oxidation-reduction reactions involving electron
transfer. I. J Chem Phys 24:966
97. Marcus RA, Sutin N (1985) Electron transfers in chemistry and biology. Biochim Biophys
Acta 811:265–322
98. Lin BC, Cheng CP, Lao ZPM (2003) Reorganization energies in the transports of holes and
electrons in organic amines in organic electroluminescence studied by density functional
theory. J Phys Chem A 107:5241–5251
99. Tokunaga K (2009) On the difference in electronic properties between fullerene C 60 and
C 60 X 2 . Chem Phys Lett 476:253–257
100. Tokunaga K (2012) Hydrogenation of fullerene C 60 : material design of organic semiconductors by computation. In: Karamé I (ed) Hydrogenation InTech. https://doi.org/10.5772/
48534
101. Brizet B, Desbois N, Bonnot A, Langlois A, Dubois A, Barbe J-M, Gros CP, Goze C,
Denat F, Harvey PD (2014) Slow and fast singlet energy transfers in BODIPY-gallium
(iii)corrole dyads linked by flexible chains. Inorg Chem 53:3392–3403
102. Wróbel D, Graja A (2011) Photoinduced electron transfer processes in fullerene–organic
chromophore systems. Coord Chem Rev 255:2555–2577
103. Imahori H, Tkachenko NV, Vehmanen V, Tamaki K, Lemmetyien H, Sakata Y, Fukuzumi S
(2001) An extremely small reorganization energy of electron transfer in porphyrin-fullerene
dyad. J Phys Chem 105:1750–1756
122
D. Wróbel and B. Barszcz
