• Acta Photonica Sinica
  • Vol. 46, Issue 8, 832002 (2017)
JIANG Li-lin1、*, LIU Wei-long2, CHEN Qin3, SHI Yan1, and WU Gui-rong1
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
  • 3[in Chinese]
  • show less
    DOI: 10.3788/gzxb20174608.0832002 Cite this Article
    JIANG Li-lin, LIU Wei-long, CHEN Qin, SHI Yan, WU Gui-rong. Femtosecond Time-resolved Spectroscopies of the Excited State of the All-trans-astaxanthin in DMSO Solvent[J]. Acta Photonica Sinica, 2017, 46(8): 832002 Copy Citation Text show less
    References

    [1] FRANK H A, COGDELL R. J. Carotenoids in photosynthesis[J]. Photochemistry and Photobiology, 1996, 63(3): 257-264.

    [2] EDGE R, MCGARVEY D J, TRUSCOTT T G. The carotenoids as anti-oxidants- a review[J]. Journal of Photochemistry and Photobiology B: Biology, 1997, 41(3): 189-200.

    [3] HIGUERA-CIAPARA I, FLIX-VALENZUELA L, GOYCOOLEA F M. Astaxanthin: A review of its chemistry and applications[J]. Critical Reviews in Food Science and Nutrition, 2006, 46(2): 185-196.

    [4] SCHOLES G D, FLEMING G R, A OLAYA-CASTRO, et al. Lessons from nature about solar light harvesting[J]. Nature Chemistry, 2011, 3(10): 763-774.

    [5] POLVKA T, FRANK H A. Molecular factors controlling photosynthetic light harvesting by carotenoids[J]. Accounts of Chemical Research, 2010, 43(8): 1125-1134.

    [6] NAGUIB Y M. Antioxidant activities of astaxanthin and related carotenoids[J]. Journal of Agricultural & Food Chemistry, 2000, 48(48): 1150-1154.

    [7] ZAMORA R, HIDALGO F J, TAPPEL A L. Comparative antioxidant effectiveness of dietary beta-carotene, vitamin E, selenium and coenzyme Q10 in rat erythrocytes and plasma[J]. Journal of Nutrition, 1991, 121(1): 50-56.

    [8] POLVKA T, SUNDSTRM V. Ultrafast dynamics of carotenoid excited states-from solution to natural and artificial systems[J]. Chemical Reviews, 2004, 104(4): 2021-2071

    [9] ILAGAN R P, CHRISTENSEN R L, CHAPP T W, et al. Femtosecond time-resolved absorption spectroscopy of astaxanthin in solution and in α-crustacyanin[J]. The Journal of Physical Chemistry A, 2005, 109(14): 3120-3127.

    [10] LIU W L, ZHENG Z R, DAI Z F, et al. Effect of solvent on absorption spectra of all-trans-β-carotene under high pressure[J]. Journal of Chemical Physics, 2008, 128(12): 124501-1-7.

    [11] WENG Y X, LI L, LIU Y, et al. Surface-binding forms of carboxylic groups on nanoparticulate TiO2 surface studied by the interface-sensitive transient triplet-state molecular probe[J]. The Journal of Physical Chemistry B, 2003, 107(18): 4356-4362.

    [12] ZHANG L, YANG J, WANG L, et al. Direct observation of interfacial charge recombination to the excited-triplet state in all-trans-retinoic acid sensitized TiO2 nanoparticles by femtosecond time-resolved Difference absorption spectroscopy[J]. The Journal of Physical Chemistry B, 2003, 107(49): 13688-13697.

    [13] KACZOR A, TURNAU K, M BARANSKA. In situ Raman imaging of astaxanthin in a single microalgal cell[J]. Analyst, 2011, 136(6): 1109-1112.

    [14] FUCIMAN M, DURCHAN M, LOUF V, et al. Excited-state dynamics of astaxanthin aggregates[J]. Chemical Physics Letters, 2013, 568-569(3): 21-25.

    [15] AMARIE S, FRSTER U, GILDENHOFF N, et al. Excited state dynamics of the astaxanthin radical cation[J]. Chemical Physics, 2010, 373(1): 8-14.

    [16] SCHULTEN K, KARPLUS M. On the origin of a low-lying forbidden transition in polyenes and related molecules[J]. Chemical Physics Letters, 1972, 14(3): 305-309.

    [17] JIANG Li-lin. Influence of photoinduced electron transfer on Raman spectroscopic characteristic of alizarin dye-sensitized TiO2 nanoparticles[J]. Acta Photonics Sinica, 2014, 43(2): 0230002.

    [18] FRONTIERA R R, MATHIES R A. Femtosecond stimulated Raman spectroscopy[J]. Laser Photonics Reviews, 2011, 5(1): 102-113.

    [19] RHINEHART J M, MEHLENBACHER R D, McCAMANT D. Probing the charge transfer reaction coordinate of 4-(Dimethylamino) benzonitrile with femtosecond stimulated Raman spectroscopy[J]. The Journal of Physical Chemistry B, 2010, 114(45): 14646.

    [20] FRSTENBERG A, JULLIARD M D, DELIGEORGIEV T G, et al. Ultrafast excited-state dynamics of DNA fluorescent intercalators: New insight into the fluorescence enhancement mechanism[J]. Journal of the American Chemical Society, 2006, 128(23): 7661-7669.

    [21] VAUTHEY E. Direct measurements of the charge-recombination dynamics of geminate ion pairs formed upon electron-transfer quenching at high donor concentration[J]. The Journal of Physical Chemistry A, 2001, 105(2): 340-348.

    [22] HGEMANN C, PAUCHARD M, VAUTHEY E. Picosecond transient grating spectroscopy: The nature of the diffracted spectrum[J]. Review of Scientific Instruments, 1996, 67(10): 3449-3453.

    [23] MORANDEIRA A, FRSTENBERG A, VAUTHEY E. Fluorescence quenching in electron-donating solvents. 2. Solvent dependence and product dynamics[J]. The Journal of Physical Chemistry A, 2004, 108(40): 8190-8200.

    [24] PAGS S, LANG B, VAUTHEY E. Ultrafast spectroscopic investigation of the charge recombination dynamics of ion pairs formed upon highly exergonic bimolecular electron-transfer quenching: Looking for the normal region[J]. The Journal of Physical Chemistry A, 2004, 108(4): 549-555.

    [25] PAGS S, LANG B, VAUTHEY E. Ultrafast excited state dynamics of the perylene radical cation generated upon bimolecular photoinduced electron transfer reaction[J]. The Journal of Physical Chemistry A, 2006, 110(24): 7547-7553.

    [26] WENDE T, LIEBEL M, SCHNEDERMANN C. Population-controlled impulsive vibrational spectroscopy: Background- and baseline-free Raman spectroscopy of excited electronic states[J]. The Journal of Physical Chemistry A, 2014, 118(43): 9976-9984.

    [27] TAKEUCHI S, RUHMAN S, TSUNEDA T, et al. Spectroscopic tracking of structural evolution in ultrafast stilbene photoisomerization[J]. Science, 2008, 322(5904): 1073-1077.

    [28] JIANG L L, LIU W L, SONG Y F, et al. Photoinduced intermolecular electron transfer and non-resonance Raman characteristics of rhodamine 101/N,N-diethylaniline[J]. Chemical Physics, 2014, 429(2): 12-19.

    [29] JIANG L L, LIU W L, SONG Y F, et al. Photoinduced electron transfer of rhodamine 6G/N,N-diethylaniline revealed by multiplex transient grating and transient absorption spectroscopies[J]. Applied Physics B: Lasers and Optics, 2014, 116(2): 271-277.

    [30] JIANG L L, LIU W L, SONG Y F, et al. Photoinduced intramolecular electron transfer and intramolecular vibrational relaxation of rhodamine 6G in DMSO revealed by multiplex transient grating spectroscopy[J]. Chinese Physics B, 2014, 23(10): 107802.

    [31] JIANG Li-lin, LIU Wei-long, SONG, Yun-fei, et al. Fluorescence and Raman spectroscopic characteristics of the photoinduced electron transfer of coumarin 343 dye-sensitized TiO2 nanoparticles[J]. Acta Physico-Chimica Sinica, 2012, 28(28): 2953-2957.

    [32] LIU W L, ZHENG Z. R, ZHANG J P, et al. White-light continuum probed femtosecond time-resolved absorption spectroscopic measurement of β-carotene under high pressure[J]. Chemical Physics Letters, 2012, 532(4): 47-51.

    [33] CHRISTENSEN R L, BARNEY E A, BROENE R D, et al. Linear polyenes: Models for the spectroscopy and photophysics of carotenoids. Archives of Biochemistry and Biophysics, 2004, 430(1): 30-36.

    [34] HUDSONG B, KOHLER B. Linear polyene electronic structure and spectroscopy[J]. Annual Review of Physical Chemistry, 1974, 25(25): 437-460.

    [35] NING Zhang-lei, YANG Dan-dan, LEI Xi-ting, et al. Room temperature synthesis of Samarium Pyrazine-2,3,5,6-tetracarboxylate coordination polymers via a fast precipitation method and their luminescent properties[J]. Chinese Journal of Luminescence, 2016, 37(8): 906-911.

    [36] LIEBEL M, SCHNEDEMANN C, WENDE T, et al. Principles and applications of broadband impulsive vibrational spectroscopy[J]. The Journal of Physical Chemistry A, 2015, 119(36): 9506-9517.

    JIANG Li-lin, LIU Wei-long, CHEN Qin, SHI Yan, WU Gui-rong. Femtosecond Time-resolved Spectroscopies of the Excited State of the All-trans-astaxanthin in DMSO Solvent[J]. Acta Photonica Sinica, 2017, 46(8): 832002
    Download Citation