Vibrational energy transfer in highly excited bridged azulene-aryl compounds: Direct observation of energy flow through aliphatic chains and into the solvent

被引:65
作者
Schwarzer, D [1 ]
Hanisch, C [1 ]
Kutne, P [1 ]
Troe, J [1 ]
机构
[1] Max Planck Inst Biophys Chem, D-37077 Gottingen, Germany
关键词
D O I
10.1021/jp0210576
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Intra- and intermolecular vibrational energy flow in vibrationally highly excited bridged azulene-(CH2)(n)-aryl (n = 0,1,3; aryl = benzene or anthracene) compounds is observed using time-resolved pump-probe laser spectroscopy. Light absorption in the azulene S-1-band, followed by fast internal conversion, leads to vibrational excitation at the azulene side of the molecules. Subsequent energy flow through the aliphatic chain to the aryl group at the other side of the molecules and vibrational energy transfer into a surrounding liquid solvent bath are measured either by probing the red edge of the azulene S-3-absorption band at 300 nm and/or the anthracene S-1-absorption, band at 400 nm. The data are analyzed by representing the intramolecular energy flux as a diffusion process and using hot absorption spectra of the two chromophores of the compounds for measuring their energy contents. A fit to all of the experimental signals leads to an energy. conductivity of a single C-C bond of kappa(CC) = (10 +/- 1) cm(-1) K-1 ps(-1) (with energies measured in cm(-1)). Depending on the substituent and the length of,the chain, this models yield intramolecular energy transfer times of 1.2-4 ps. Energy transfer to the solvent 1,1,2-trichloro-trifluoro-ethane, on the other hand, is characterized by an exponential loss profile with a cooling time constant of (21 +/- 2) ps, independent of the substituent and the same as for bare azulene.
引用
收藏
页码:8019 / 8028
页数:10
相关论文
共 60 条
[1]   AZULENE .5. ALKYLATION EXPERIMENTS - CHLOROMERCURATION [J].
ANDERSON, AG ;
COWLES, EJ ;
TAZUMA, JJ ;
NELSON, JA .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1955, 77 (23) :6321-6323
[2]  
Baer T., 1996, UNIMOLECULAR REACTIO
[3]   Transient electronic absorption of vibrationally excited CH2I2:: Watching energy flow in solution [J].
Bingemann, D ;
King, AM ;
Crim, FF .
JOURNAL OF CHEMICAL PHYSICS, 2000, 113 (12) :5018-5025
[4]   POPULATION-DISTRIBUTIONS IN THE VIBRATIONAL DEACTIVATION OF BENZENE AND BENZENE-D(6) - 1ST AND 2ND MOMENTS DERIVED FROM 2-COLOR INFRARED FLUORESCENCE MEASUREMENTS [J].
BRENNER, JD ;
ERINJERI, JP ;
BARKER, JR .
CHEMICAL PHYSICS, 1993, 175 (01) :99-111
[5]   MEASUREMENT OF INTERNAL ENERGIES BY HOT ULTRAVIOLET-ABSORPTION SPECTROSCOPY - SPECTRA OF EXCITED AZULENE MOLECULES [J].
BROUWER, L ;
HIPPLER, H ;
LINDEMANN, L ;
TROE, J .
JOURNAL OF PHYSICAL CHEMISTRY, 1985, 89 (21) :4608-4612
[6]   Force field and assignment of the vibrational spectrum of anthracene: Theoretical prediction [J].
Chakraborty, D ;
Ambashta, R ;
Manogaran, S .
JOURNAL OF PHYSICAL CHEMISTRY, 1996, 100 (33) :13963-13970
[7]   RESONANCE RAMAN-SPECTRA AND VIBRATIONAL ASSIGNMENTS OF AZULENE-D0 AND AZULENE-D8 [J].
CHAO, RS ;
KHANNA, RK .
SPECTROCHIMICA ACTA PART A-MOLECULAR AND BIOMOLECULAR SPECTROSCOPY, 1977, 33 (01) :53-62
[8]   Real-time probing of intramolecular vibrational energy redistribution and intermolecular vibrational energy transfer of selectively excited CH2I2 molecules in solution [J].
Charvat, A ;
Assmann, J ;
Abel, B ;
Schwarzer, D .
JOURNAL OF PHYSICAL CHEMISTRY A, 2001, 105 (21) :5071-5080
[9]   VIBRATIONAL-ENERGY RELAXATION IN LIQUIDS [J].
CHESNOY, J ;
GALE, GM .
ANNALES DE PHYSIQUE, 1984, 9 (06) :893-949
[10]   EFFICIENT COLLISIONAL ENERGY-TRANSFER OF VIBRATIONALLY HIGHLY EXCITED C6F6 MOLECULES IN THE GROUND ELECTRONIC STATE [J].
DAMM, M ;
HIPPLER, H ;
OLSCHEWSKI, HA ;
TROE, J ;
WILLNER, J .
ZEITSCHRIFT FUR PHYSIKALISCHE CHEMIE NEUE FOLGE, 1990, 166 :129-143