2 Direct Visualization of Crystal Formation and Growth …
51
34. Lakowicz, J.R.: Radiative decay engineering: biophysical and biomedical applications. Anal.
Biochem. 298, 1–24 (2001)
35. Ito, F., Ohta, R., Yokota, Y., Ueno, K., Misawa, H., Nagamura, T.: Near-infrared fluorescence
enhancement by regularly arranged gold nanoblocks. Chem. Lett. 39, 1218–1219 (2010)
36. Sauerbrey, G.: Verwendung von Schwingquarzen zur Wägung dünner Schichten und zur
Mikrowägung. Zeitschrift für Physik 155, 206–222 (1959)
37. Kanazawa, K.K., Gordon, J.G.: Frequency of a quartz microbalance in contact with liquid.
Anal. Chem. 57, 1770–1771 (1985)
38. Muramatsu, H., Tamiya, E., Karube, I.: Computation of equivalent circuit parameters of quartz
crystals in contact with liquids and study of liquid properties. Anal. Chem. 60, 2142–2146
(1988)
39. Kubono, A., Akiyama, R.: Viscoelastic analysis in the formation of organic thin films. Mol.
Cryst. Liq. Cryst. 445, 213–222 (2006)
40. Tang, B.Z., Qin, A.: Aggregation-Induced Emission: Fundamentals. Wiley, United Kingdom
(2013)
41. Hong, Y.N., Lam, J.W.Y., Tang, B.Z.: Aggregation-induced emission. Chem. Soc. Rev. 40,
5361–5388 (2011)
42. An, B.K., Kwon, S.K., Jung, S.D., Park, S.Y.: Enhanced emission and its switching in
fluorescent organic nanoparticles. J. Am. Chem. Soc. 124, 14410–14415 (2002)
43. Ito, F., Fujimori, J.I.: Fluorescence visualization of the molecular assembly processes
during solvent evaporation via aggregation-induced emission in a cyanostilbene derivative.
CrystEngComm 16, 9779–9782 (2014)
44. Ito, F., Fujimori, J., Oka, N., Sliwa, M., Ruckebusch, C., Ito, S., Miyasaka, H.: AIE phenomena
of a cyanostilbene derivative as a probe of molecular assembly processes. Faraday Discuss.
196, 231–243 (2017)
45. Davey, R.J., Schroeder, S.L.M., ter Horst, J.H.: Nucleation of organic crystalsa molecular
perspective. Angew. Chem. Int. Ed. 52, 2166–2179 (2013)
46. Okutsu, T.: Photochemically-induced crystallization of protein. J. Photochem. Photobiol. C 8,
143–155 (2007)
47. Buxbaum, J.N., Linke, R.P.: A molecular history of the amyloidoses. J. Mol. Biol. 421, 142–159
(2012)
48. Stsiapura, V.I., Maskevich, A.A., Kuzmitsky, V.A., Uversky, V.N., Kuznetsova, I.M., Turoverov,
K.K.: Thioflavin T as a molecular rotor: fluorescent properties of Thioflavin T in solvents with
different viscosity. J. Phys. Chem. B 112, 15893–15902 (2008)
49. Nielsen, L., Khurana, R., Coats, A., Frokjaer, S., Brange, J., Vyas, S., Uversky, V.N., Fink,
A.L.: Effect of environmental factors on the kinetics of insulin fibril formation: elucidation of
the molecular mechanism. Biochemistry 40, 6036–6046 (2001)
51
34. Lakowicz, J.R.: Radiative decay engineering: biophysical and biomedical applications. Anal.
Biochem. 298, 1–24 (2001)
35. Ito, F., Ohta, R., Yokota, Y., Ueno, K., Misawa, H., Nagamura, T.: Near-infrared fluorescence
enhancement by regularly arranged gold nanoblocks. Chem. Lett. 39, 1218–1219 (2010)
36. Sauerbrey, G.: Verwendung von Schwingquarzen zur Wägung dünner Schichten und zur
Mikrowägung. Zeitschrift für Physik 155, 206–222 (1959)
37. Kanazawa, K.K., Gordon, J.G.: Frequency of a quartz microbalance in contact with liquid.
Anal. Chem. 57, 1770–1771 (1985)
38. Muramatsu, H., Tamiya, E., Karube, I.: Computation of equivalent circuit parameters of quartz
crystals in contact with liquids and study of liquid properties. Anal. Chem. 60, 2142–2146
(1988)
39. Kubono, A., Akiyama, R.: Viscoelastic analysis in the formation of organic thin films. Mol.
Cryst. Liq. Cryst. 445, 213–222 (2006)
40. Tang, B.Z., Qin, A.: Aggregation-Induced Emission: Fundamentals. Wiley, United Kingdom
(2013)
41. Hong, Y.N., Lam, J.W.Y., Tang, B.Z.: Aggregation-induced emission. Chem. Soc. Rev. 40,
5361–5388 (2011)
42. An, B.K., Kwon, S.K., Jung, S.D., Park, S.Y.: Enhanced emission and its switching in
fluorescent organic nanoparticles. J. Am. Chem. Soc. 124, 14410–14415 (2002)
43. Ito, F., Fujimori, J.I.: Fluorescence visualization of the molecular assembly processes
during solvent evaporation via aggregation-induced emission in a cyanostilbene derivative.
CrystEngComm 16, 9779–9782 (2014)
44. Ito, F., Fujimori, J., Oka, N., Sliwa, M., Ruckebusch, C., Ito, S., Miyasaka, H.: AIE phenomena
of a cyanostilbene derivative as a probe of molecular assembly processes. Faraday Discuss.
196, 231–243 (2017)
45. Davey, R.J., Schroeder, S.L.M., ter Horst, J.H.: Nucleation of organic crystalsa molecular
perspective. Angew. Chem. Int. Ed. 52, 2166–2179 (2013)
46. Okutsu, T.: Photochemically-induced crystallization of protein. J. Photochem. Photobiol. C 8,
143–155 (2007)
47. Buxbaum, J.N., Linke, R.P.: A molecular history of the amyloidoses. J. Mol. Biol. 421, 142–159
(2012)
48. Stsiapura, V.I., Maskevich, A.A., Kuzmitsky, V.A., Uversky, V.N., Kuznetsova, I.M., Turoverov,
K.K.: Thioflavin T as a molecular rotor: fluorescent properties of Thioflavin T in solvents with
different viscosity. J. Phys. Chem. B 112, 15893–15902 (2008)
49. Nielsen, L., Khurana, R., Coats, A., Frokjaer, S., Brange, J., Vyas, S., Uversky, V.N., Fink,
A.L.: Effect of environmental factors on the kinetics of insulin fibril formation: elucidation of
the molecular mechanism. Biochemistry 40, 6036–6046 (2001)
