20 Functional Photoactive Materials Based on Flexible π Molecules
359
References
1. Imahori H, Tkachenko NV, Vehmanen V, Tamaki K, Lemmetyinen H, Sakata Y, Fukuzumi S
(2001) An extremely small reorganization energy of electron transfer in porphyrin − fullerene
dyad. J Phys Chem A 105:1750–1756
2. Kowaka Y, Suganuma Y, Ashizawa N, Nakayama N, Goto H, Ishimoto T, Nagashima U, Baba M
(2010) Ultrahigh-resolution laser spectroscopy of the S 1
1 B 2u ← S 0
1 A g transition of perylene.
J Mol Spectrosc 260:72–76
3. Mori H, Itoh Y, Nishiura Y, Nakamura T, Shinagawa Y (1997) Performance of a novel optical
compensation film based on negative birefringence of discotic compound for wide-viewingangle twisted-nematic liquid-crystal displays. Jpn J Appl Phys 36:143–147
4. Saito S (2019) Flapping molecules for photofunctional materials. In: Yamamoto H, Kato T
(eds) Molecular technology: materials innovation. Wiley-VCH, Weinheim
5. Saito S (2019) Rigid-flexible hybrid design for photofunctional molecules and materials. In:
Yagai S, Yamada H (eds) Light-active functional organic materials. Jenny Stanford Publishing,
Singapore
6. Yuan C, Saito S, Camacho C, Irle S, Hisaki I, Yamaguchi S (2013) A π-conjugated system
with flexibility and rigidity that shows environment-dependent rgb luminescence. J Am Chem
Soc 135:8842–8845
7. Yuan C, Saito S, Camacho C, Kowalczyk T, Irle S, Yamaguchi S (2014) Hybridization of a
flexible cyclooctatetraene core and rigid aceneimide wings for multiluminescent flapping π
systems. Chem Eur J 20:2193–2200
8. Haidekker MA, Theodorakis EA (2016) Ratiometric mechanosensitive fluorescent dyes: design
and applications. J Mater Chem C 4:2707–2718
9. Kuimova MK (2012) Mapping viscosity in cells using molecular rotors. Phys Chem Chem
Phys 14:12671–12686
10. Haidekker MA, Theodorakis EA (2007) Molecular rotors—fluorescent biosensors for viscosity
and flow. Org Biomol Chem 5:1669–1678
11. Klymchenko AS (2017) Solvatochromic and fluorogenic dyes as environment-sensitive probes:
design and biological applications. Acc Chem Res 50:366–375
12. Klymchenko AS, Kreder R (2014) Fluorescent probes for lipid rafts: from model membranes
to living cells. Chem Biol 21:97–113
13. Yang Z, Cao J, He Y, Yang JH, Kim T, Peng X, Kim JS (2014) Macro-/micro-environmentsensitive chemosensing and biological imaging. Chem Soc Rev 43:4563–4601
14. Kowada T, Maeda H, Kikuchi K (2015) BODIPY-based probes for the fluorescence imaging
of biomolecules in living cells. Chem Soc Rev 44:4953–4972
15. Kotani R, Sotome H, Okajima H, Yokoyama S, Nakaike Y, Kashiwagi A, Mori C, Nakada Y,
Yamaguchi S, Osuka A, Sakamoto A, Miyasaka H, Saito S (2017) Flapping viscosity probe
that shows polarity-independent ratiometric fluorescence. J Mater Chem C 5:5248–5256
16. Nakanishi W, Saito S, Sakamoto N, Kashiwagi A, Yamaguchi S, Sakai H, Ariga K (2019) Monitoring fluorescence response of amphiphilic flapping molecules in compressed monolayers at
the air-water interface. Chem Asian J 14:2869–2876
17. Hohl DK, Weder C (2019) (De)bonding on demand with optically switchable adhesives. Adv
Opt Mater 7:1900230
18. Croll AB, Hosseini N, Bartlett MD (2019) Switchable adhesives for multifunctional interfaces.
Adv Mater Technol 4:1900193
19. Saito S, Nobusue S, Tsuzaka E, Yuan C, Mori C, Hara M, Seki T, Camacho C, Irle S, Yamaguchi
S (2016) Light-melt adhesive based on dynamic carbon frameworks in a columnar liquid-crystal
phase. Nat Commun 7:12094
20. Ebe K, Seno H, Horigome K (2003) UV curable pressure-sensitive adhesives for fabricating
semiconductors. I. Development of easily peelable dicing tapes. J Appl Polym Sci 90:436–441
21. Ikeda T (2003) Photomodulation of liquid crystal orientations for photonic applications. J Mater
Chem 13:2037–2057
359
References
1. Imahori H, Tkachenko NV, Vehmanen V, Tamaki K, Lemmetyinen H, Sakata Y, Fukuzumi S
(2001) An extremely small reorganization energy of electron transfer in porphyrin − fullerene
dyad. J Phys Chem A 105:1750–1756
2. Kowaka Y, Suganuma Y, Ashizawa N, Nakayama N, Goto H, Ishimoto T, Nagashima U, Baba M
(2010) Ultrahigh-resolution laser spectroscopy of the S 1
1 B 2u ← S 0
1 A g transition of perylene.
J Mol Spectrosc 260:72–76
3. Mori H, Itoh Y, Nishiura Y, Nakamura T, Shinagawa Y (1997) Performance of a novel optical
compensation film based on negative birefringence of discotic compound for wide-viewingangle twisted-nematic liquid-crystal displays. Jpn J Appl Phys 36:143–147
4. Saito S (2019) Flapping molecules for photofunctional materials. In: Yamamoto H, Kato T
(eds) Molecular technology: materials innovation. Wiley-VCH, Weinheim
5. Saito S (2019) Rigid-flexible hybrid design for photofunctional molecules and materials. In:
Yagai S, Yamada H (eds) Light-active functional organic materials. Jenny Stanford Publishing,
Singapore
6. Yuan C, Saito S, Camacho C, Irle S, Hisaki I, Yamaguchi S (2013) A π-conjugated system
with flexibility and rigidity that shows environment-dependent rgb luminescence. J Am Chem
Soc 135:8842–8845
7. Yuan C, Saito S, Camacho C, Kowalczyk T, Irle S, Yamaguchi S (2014) Hybridization of a
flexible cyclooctatetraene core and rigid aceneimide wings for multiluminescent flapping π
systems. Chem Eur J 20:2193–2200
8. Haidekker MA, Theodorakis EA (2016) Ratiometric mechanosensitive fluorescent dyes: design
and applications. J Mater Chem C 4:2707–2718
9. Kuimova MK (2012) Mapping viscosity in cells using molecular rotors. Phys Chem Chem
Phys 14:12671–12686
10. Haidekker MA, Theodorakis EA (2007) Molecular rotors—fluorescent biosensors for viscosity
and flow. Org Biomol Chem 5:1669–1678
11. Klymchenko AS (2017) Solvatochromic and fluorogenic dyes as environment-sensitive probes:
design and biological applications. Acc Chem Res 50:366–375
12. Klymchenko AS, Kreder R (2014) Fluorescent probes for lipid rafts: from model membranes
to living cells. Chem Biol 21:97–113
13. Yang Z, Cao J, He Y, Yang JH, Kim T, Peng X, Kim JS (2014) Macro-/micro-environmentsensitive chemosensing and biological imaging. Chem Soc Rev 43:4563–4601
14. Kowada T, Maeda H, Kikuchi K (2015) BODIPY-based probes for the fluorescence imaging
of biomolecules in living cells. Chem Soc Rev 44:4953–4972
15. Kotani R, Sotome H, Okajima H, Yokoyama S, Nakaike Y, Kashiwagi A, Mori C, Nakada Y,
Yamaguchi S, Osuka A, Sakamoto A, Miyasaka H, Saito S (2017) Flapping viscosity probe
that shows polarity-independent ratiometric fluorescence. J Mater Chem C 5:5248–5256
16. Nakanishi W, Saito S, Sakamoto N, Kashiwagi A, Yamaguchi S, Sakai H, Ariga K (2019) Monitoring fluorescence response of amphiphilic flapping molecules in compressed monolayers at
the air-water interface. Chem Asian J 14:2869–2876
17. Hohl DK, Weder C (2019) (De)bonding on demand with optically switchable adhesives. Adv
Opt Mater 7:1900230
18. Croll AB, Hosseini N, Bartlett MD (2019) Switchable adhesives for multifunctional interfaces.
Adv Mater Technol 4:1900193
19. Saito S, Nobusue S, Tsuzaka E, Yuan C, Mori C, Hara M, Seki T, Camacho C, Irle S, Yamaguchi
S (2016) Light-melt adhesive based on dynamic carbon frameworks in a columnar liquid-crystal
phase. Nat Commun 7:12094
20. Ebe K, Seno H, Horigome K (2003) UV curable pressure-sensitive adhesives for fabricating
semiconductors. I. Development of easily peelable dicing tapes. J Appl Polym Sci 90:436–441
21. Ikeda T (2003) Photomodulation of liquid crystal orientations for photonic applications. J Mater
Chem 13:2037–2057
