9 Photosynergetic Effects on Triplet–Triplet Annihilation …
169
14. Monguzzi A, Tubino R, Hoseinkhani S, Campione M, Meinardi F (2012) Low power, noncoherent sensitized photon up-conversion: modelling and perspectives. Phys Chem Chem Phys
14:4322–4332
15. Sternlicht H, Nieman GC, Robinson GW (1963) Triplet–triplet annihilation and delayed
fluorescence in molecular aggregates. J Chem Phys 38:1326–1335
16. Campione M, Fumagalli E, Raimondo L, Monguzzi A, Meinardi F, Sassella A (2011) Control
of π–π interactions in epitaxial films of platinum(II) octaethyl porphyrin. Chem Mater 23:832–
840
17. Goudarzi H, Keivanidis PE (2014) Triplet–triplet annihilation-induced up-converted delayed
luminescence in solid-state organic composites: monitoring low-energy photon up-conversion
at low temperatures. J Phys Chem C 118:14256–14265
18. Fujiwara Y, Ozawa R, Onuma D, Suzuki K, Yoza K, Kobayashi K (2013) Double alkylenestrapped diphenylanthracene as a photostable and intense solid-state blue-emitting material. J
Org Chem 78:2206–2212
19. Abulikemu A, Sakagami Y, Heck C, Kamada K, Sotome H, Miyasaka H, Kuzuhara D, Yamada
H (2019) Solid state, near-infrared to visible photon upconversion via triplet–triplet annihilation
of a binary system fabricated by solution casting. ACS Appl Mater Interf 11:20812–20819
20. Wu M, Congreve DN, Wilson MWB, Jean J, Geva N, Welborn M, Van Voorhis T, Bulovi´ c
V, Bawendi MG, Baldo MA (2016) Solid-state infrared-to-visible upconversion sensitized by
colloidal nanocrystals. Nat Photon 10:31–34
21. Amemori S, Sasaki Y, Yanai N, Kimizuka N (2016) Near-infrared-to-visible photon upconversion sensitized by a metal complex with spin-forbidden yet strong S 0 -T 1 absorption. J Am
Chem Soc 138:8702–8705
22. Cheng YY, Khoury T, Clady RGCR, Tayebjee MJY, Ekins-Daukes NJ, Crossley MJ,
Schmidt TW (2010) On the efficiency limit of triplet–triplet annihilation for photochemical
upconversion. Phys Chem Chem Phys 12:66–71
23. Takagi S, Eguchi M, Tryk DA, Inoue H (2006) Porphyrin photochemistry in inorganic/organic
hybrid materials: Clays, layered semiconductors, nanotubes, and mesoporous materials. J
Photochem Photobio C 7:104–126
24. Mizokuro T, Abulikemu A, Sakagami Y, Jin T, Kamada K (2018) Enhanced phosphorescence
properties of Pt-porphyrin derivative fixed on the surface of nano-porous glass. Photochem
Photobio Sci 17:622–627
25. Mizokuro T, Abulikemu A, Suzuki K, Sakagami Y, Nishii R, Jin T, Kamada K (2020) Triplettriplet annihilation upconversion through triplet energy transfer at a nanoporous solid-liquid
interface. Phys Chem Chem Phys, accepted.
26. Sato R, Kitoh-Nishioka H, Yanai T, Shigeta Y (2017) Theoretical analyses on triplet–triplet
annihilation process of 9,10-diphenylanthracene in solution. Chem Lett 46:873–875
27. Sato R, Kitoh-Nishioka H, Kamada K, Mizokuro T, Kobayashi K, Shigeta Y (2018) Does
inactive alkyl chain enhance triplet–triplet annihilation of 9,10-diphenylanthracene derivatives.
J Phys Chem C 122:5334–5340
28. Sato R, Kitoh-Nishioka H, Kamada K, Mizokuro T, Kobayashi K, Shigeta Y (2018) Synergetic
effects of triplet–triplet annihilation and triplet–triplet energy transfer processes on photon
up-conversion in crystalline systems. J Phys Chem Lett 9:6638–6643
29. Marcus RA, Sutin N (1985) Electron transfer in chemistry and biology. Biochem Biophys Acta
811:265–322
30. Nakamura H, Truhlar DG (2001) The direct calculation of diabatic states based on configurational uniformity. J Chem Phys 115:10353–10372
31. Nakamura H, Truhlar DG (2002) Direct diabatization of electronic states by the fourfoldway.
II. Dynamical correlation and rearrangement processes. J Chem Phys 117:5576–5593
32. Yang KR, Xu X, Truhlar DG (2013) Direct diabatization of electronic state by the fourfold-way:
including dynamical correlation by multi-condiguration quasidegenerate perturbation theory
with complete active space self-consistent-field diabatic molecular orbitals. Chem Phys Lett
573:84–89
169
14. Monguzzi A, Tubino R, Hoseinkhani S, Campione M, Meinardi F (2012) Low power, noncoherent sensitized photon up-conversion: modelling and perspectives. Phys Chem Chem Phys
14:4322–4332
15. Sternlicht H, Nieman GC, Robinson GW (1963) Triplet–triplet annihilation and delayed
fluorescence in molecular aggregates. J Chem Phys 38:1326–1335
16. Campione M, Fumagalli E, Raimondo L, Monguzzi A, Meinardi F, Sassella A (2011) Control
of π–π interactions in epitaxial films of platinum(II) octaethyl porphyrin. Chem Mater 23:832–
840
17. Goudarzi H, Keivanidis PE (2014) Triplet–triplet annihilation-induced up-converted delayed
luminescence in solid-state organic composites: monitoring low-energy photon up-conversion
at low temperatures. J Phys Chem C 118:14256–14265
18. Fujiwara Y, Ozawa R, Onuma D, Suzuki K, Yoza K, Kobayashi K (2013) Double alkylenestrapped diphenylanthracene as a photostable and intense solid-state blue-emitting material. J
Org Chem 78:2206–2212
19. Abulikemu A, Sakagami Y, Heck C, Kamada K, Sotome H, Miyasaka H, Kuzuhara D, Yamada
H (2019) Solid state, near-infrared to visible photon upconversion via triplet–triplet annihilation
of a binary system fabricated by solution casting. ACS Appl Mater Interf 11:20812–20819
20. Wu M, Congreve DN, Wilson MWB, Jean J, Geva N, Welborn M, Van Voorhis T, Bulovi´ c
V, Bawendi MG, Baldo MA (2016) Solid-state infrared-to-visible upconversion sensitized by
colloidal nanocrystals. Nat Photon 10:31–34
21. Amemori S, Sasaki Y, Yanai N, Kimizuka N (2016) Near-infrared-to-visible photon upconversion sensitized by a metal complex with spin-forbidden yet strong S 0 -T 1 absorption. J Am
Chem Soc 138:8702–8705
22. Cheng YY, Khoury T, Clady RGCR, Tayebjee MJY, Ekins-Daukes NJ, Crossley MJ,
Schmidt TW (2010) On the efficiency limit of triplet–triplet annihilation for photochemical
upconversion. Phys Chem Chem Phys 12:66–71
23. Takagi S, Eguchi M, Tryk DA, Inoue H (2006) Porphyrin photochemistry in inorganic/organic
hybrid materials: Clays, layered semiconductors, nanotubes, and mesoporous materials. J
Photochem Photobio C 7:104–126
24. Mizokuro T, Abulikemu A, Sakagami Y, Jin T, Kamada K (2018) Enhanced phosphorescence
properties of Pt-porphyrin derivative fixed on the surface of nano-porous glass. Photochem
Photobio Sci 17:622–627
25. Mizokuro T, Abulikemu A, Suzuki K, Sakagami Y, Nishii R, Jin T, Kamada K (2020) Triplettriplet annihilation upconversion through triplet energy transfer at a nanoporous solid-liquid
interface. Phys Chem Chem Phys, accepted.
26. Sato R, Kitoh-Nishioka H, Yanai T, Shigeta Y (2017) Theoretical analyses on triplet–triplet
annihilation process of 9,10-diphenylanthracene in solution. Chem Lett 46:873–875
27. Sato R, Kitoh-Nishioka H, Kamada K, Mizokuro T, Kobayashi K, Shigeta Y (2018) Does
inactive alkyl chain enhance triplet–triplet annihilation of 9,10-diphenylanthracene derivatives.
J Phys Chem C 122:5334–5340
28. Sato R, Kitoh-Nishioka H, Kamada K, Mizokuro T, Kobayashi K, Shigeta Y (2018) Synergetic
effects of triplet–triplet annihilation and triplet–triplet energy transfer processes on photon
up-conversion in crystalline systems. J Phys Chem Lett 9:6638–6643
29. Marcus RA, Sutin N (1985) Electron transfer in chemistry and biology. Biochem Biophys Acta
811:265–322
30. Nakamura H, Truhlar DG (2001) The direct calculation of diabatic states based on configurational uniformity. J Chem Phys 115:10353–10372
31. Nakamura H, Truhlar DG (2002) Direct diabatization of electronic states by the fourfoldway.
II. Dynamical correlation and rearrangement processes. J Chem Phys 117:5576–5593
32. Yang KR, Xu X, Truhlar DG (2013) Direct diabatization of electronic state by the fourfold-way:
including dynamical correlation by multi-condiguration quasidegenerate perturbation theory
with complete active space self-consistent-field diabatic molecular orbitals. Chem Phys Lett
573:84–89
