164. Vilaça N, Totovao R, Prasetyanto EA, Miranda-Gonçalves V, Morais-Santos F, Fernandes R,
Figueiredo F, Bañobre-López M, Fonseca AM, De Cola L, Baltazar F, Neves IC (2018)
Internalization studies on zeolite nanoparticles using human cells. J Mater Chem B 6:469–476
165. Gasecka A, Dieu LQ, Brühwiler D, Brasselet S (2010) Probing molecular order in zeolite L
inclusion compounds using two-photon fluorescence polarimetric microscopy. J Phys Chem B
114:4192–4198
166. Busby M, Blum C, Tibben M, Fibikar S, Calzaferri G, Subramaniam V, De Cola L (2008)
Time, space, and spectrally resolved studies on J-aggregate interactions in zeolite L
nanochannels. J Am Chem Soc 130:10970–10976
167. Matsuoka Y, Yamaoka K (1979) Film dichroism. II. Linearly polarized absorption spectra of
acridine dyes in stretched poly(vinyl alcohol) films. Bull Chem Soc Jpn 52:3163–3170
168. Matsuoka Y (1980) Film dichroism. 4. Linear dichroism study of orientation behaviour of
planar molecules in stretched poly(vinyl alcohol) film. J Phys Chem 84:1361–1366
169. Yatskou MM, Meyer M, Huber S, Pfenniger M, Calzaferri G (2003) Electronic excitation
energy migration in a photonic dye-zeolite antenna. ChemPhysChem 4:567–587
170. Lutkouskaya K, Calzaferri G (2006) Transfer of electronic excitation energy between randomly mixed dye molecules in the channels of zeolite L. J Phys Chem B 11:5633–5638
171. Devaux A, Calzaferri G, Miletto I, Cao P, Belser P, Brühwiler D, Khorev O, Häner R,
Kunzmann A (2013) Self-absorption and luminescence quantum yields of dye-zeolite L
composites. J Phys Chem C 117:23034–23047
172. Albuquerque RQ, Calzaferri G (2007) Proton activity inside the channels of zeolite L. Chem
Eur J 13:8939–8952
173. Kasha M (1953) Collisional perturbation of spin-orbit coupling and the mechanism of
fluorescence quenching. A visual demonstration of the perturbation. J Chem Phys 20:71–74
174. Caspar JV, Ramamurthy V, Corbin DR (1990) The location of organic guests within X-type
faujasite zeolites via external heavy-atom induced phosphorescence. Coord Chem Rev
97:225–236
175. Ramamurthy V, Caspar JV, Corbin DR, Schlyer BD, Maki AH (1990) Triplet-state
photophysics of naphthalene and α,ω-diphenylpolyenes included in heavy-cations-exchanged
zeolites. J Phys Chem 94:3391–3393
176. Valeur B (2002) Molecular fluorescence, principles and applications. Wiley, Weinheim.
ISBN: 3-527-29919-X
177. Hashimoto S, Hagiri M, Matsubara N, Tobita S (2001) Photophysical studies of neutral
aromatic species confined in zeolite L: comparison with cationic dyes. Phys Chem Chem
Phys 3:5043–5051
178. Calzaferri G, Méallet-Renault R, Brühwiler D, Pansu R, Dolamic I, Dienel T, Adler P, Li H,
Kunzmann A (2011) Designing dye–nanochannel antenna hybrid materials for light
harvesting, transport and trapping. ChemPhysChem 12:580–594
179. Kuhn H, Försterling HD (2000) Principles of physical chemistry. Wiley, Chichester
180. Alén B, Bosch J, Granados D, Martínez-Pastor J, García JM, González L (2007) Oscillator
strength reduction induced by external electric fields in self-assembled quantum dots and rings.
Phys Rev B 75:045319-1–045319-7
181. Calzaferri G, Devaux A (2011) Manipulation of energy transfer processes within the channels
of L-zeolite. In: Ramamurthy V, Inoue Y (eds) Supramolecular photochemistry; controlling
photochemical processes. Wiley, Hoboken., ISBN: 978-0-470-23053-4, Chapter 9, pp
285–387
182. Fois E, Tabacchi G (2019) Water in zeolite L and its MOF mimic. Z Krist Cryst Mater 234
(7–8):495–511
183. Hawkes SJ (1996) All positive ions give acid solutions in water. J Chem Educ 73:516–517
184. Bussemer B, Dreiling I, Grummt UW, Mohr GJ (2009) Spectroscopic and quantum chemical
study of the Brønsted acid sites in zeolite L channels with acidochromic cyanine dyes. J
Photochem Photobiol A Chem 204:90–96
Guests in Nanochannels of Zeolite L
71
Figueiredo F, Bañobre-López M, Fonseca AM, De Cola L, Baltazar F, Neves IC (2018)
Internalization studies on zeolite nanoparticles using human cells. J Mater Chem B 6:469–476
165. Gasecka A, Dieu LQ, Brühwiler D, Brasselet S (2010) Probing molecular order in zeolite L
inclusion compounds using two-photon fluorescence polarimetric microscopy. J Phys Chem B
114:4192–4198
166. Busby M, Blum C, Tibben M, Fibikar S, Calzaferri G, Subramaniam V, De Cola L (2008)
Time, space, and spectrally resolved studies on J-aggregate interactions in zeolite L
nanochannels. J Am Chem Soc 130:10970–10976
167. Matsuoka Y, Yamaoka K (1979) Film dichroism. II. Linearly polarized absorption spectra of
acridine dyes in stretched poly(vinyl alcohol) films. Bull Chem Soc Jpn 52:3163–3170
168. Matsuoka Y (1980) Film dichroism. 4. Linear dichroism study of orientation behaviour of
planar molecules in stretched poly(vinyl alcohol) film. J Phys Chem 84:1361–1366
169. Yatskou MM, Meyer M, Huber S, Pfenniger M, Calzaferri G (2003) Electronic excitation
energy migration in a photonic dye-zeolite antenna. ChemPhysChem 4:567–587
170. Lutkouskaya K, Calzaferri G (2006) Transfer of electronic excitation energy between randomly mixed dye molecules in the channels of zeolite L. J Phys Chem B 11:5633–5638
171. Devaux A, Calzaferri G, Miletto I, Cao P, Belser P, Brühwiler D, Khorev O, Häner R,
Kunzmann A (2013) Self-absorption and luminescence quantum yields of dye-zeolite L
composites. J Phys Chem C 117:23034–23047
172. Albuquerque RQ, Calzaferri G (2007) Proton activity inside the channels of zeolite L. Chem
Eur J 13:8939–8952
173. Kasha M (1953) Collisional perturbation of spin-orbit coupling and the mechanism of
fluorescence quenching. A visual demonstration of the perturbation. J Chem Phys 20:71–74
174. Caspar JV, Ramamurthy V, Corbin DR (1990) The location of organic guests within X-type
faujasite zeolites via external heavy-atom induced phosphorescence. Coord Chem Rev
97:225–236
175. Ramamurthy V, Caspar JV, Corbin DR, Schlyer BD, Maki AH (1990) Triplet-state
photophysics of naphthalene and α,ω-diphenylpolyenes included in heavy-cations-exchanged
zeolites. J Phys Chem 94:3391–3393
176. Valeur B (2002) Molecular fluorescence, principles and applications. Wiley, Weinheim.
ISBN: 3-527-29919-X
177. Hashimoto S, Hagiri M, Matsubara N, Tobita S (2001) Photophysical studies of neutral
aromatic species confined in zeolite L: comparison with cationic dyes. Phys Chem Chem
Phys 3:5043–5051
178. Calzaferri G, Méallet-Renault R, Brühwiler D, Pansu R, Dolamic I, Dienel T, Adler P, Li H,
Kunzmann A (2011) Designing dye–nanochannel antenna hybrid materials for light
harvesting, transport and trapping. ChemPhysChem 12:580–594
179. Kuhn H, Försterling HD (2000) Principles of physical chemistry. Wiley, Chichester
180. Alén B, Bosch J, Granados D, Martínez-Pastor J, García JM, González L (2007) Oscillator
strength reduction induced by external electric fields in self-assembled quantum dots and rings.
Phys Rev B 75:045319-1–045319-7
181. Calzaferri G, Devaux A (2011) Manipulation of energy transfer processes within the channels
of L-zeolite. In: Ramamurthy V, Inoue Y (eds) Supramolecular photochemistry; controlling
photochemical processes. Wiley, Hoboken., ISBN: 978-0-470-23053-4, Chapter 9, pp
285–387
182. Fois E, Tabacchi G (2019) Water in zeolite L and its MOF mimic. Z Krist Cryst Mater 234
(7–8):495–511
183. Hawkes SJ (1996) All positive ions give acid solutions in water. J Chem Educ 73:516–517
184. Bussemer B, Dreiling I, Grummt UW, Mohr GJ (2009) Spectroscopic and quantum chemical
study of the Brønsted acid sites in zeolite L channels with acidochromic cyanine dyes. J
Photochem Photobiol A Chem 204:90–96
Guests in Nanochannels of Zeolite L
71
