Measuring the change in the intermolecular Raman spectrum during dipolar solvation

被引:48
作者
Underwood, DF [1 ]
Blank, DA [1 ]
机构
[1] Univ Minnesota, Dept Chem, Minneapolis, MN 55455 USA
关键词
D O I
10.1021/jp044187i
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
We demonstrate a method to directly measure the change in the spectrum of intermolecular solvent fluctuations as a function of time after electronic excitation of a solute, and this method is applied to the dye Coumarin 102 (C102) in acetonitrile. The complete intermolecular response is captured following resonant excitation with time domain third-order Raman spectroscopy. In a previous report, we introduced this method and used it to probe one point in the intermolecular response as a function of time after solute excitation (Underwood, D. F., Blank, D. A. J. Phys. Chem. A 2003, 107 (7), 956). Here we extend this approach to recover the change in the entire intermolecular response as a function of time. To our knowledge the results provide the first direct measurement of the difference in the equilibrated intermolecular response after excitation of a solute and its evolution during a dipolar solvation event. Excitation of C102 results in a significant increase in the solvent-solute interaction due to a large increase in the dipole moment. The observed change in the intermolecular response is consistent with a rapid change in local solvent density, with intermolecular kinetic energy transfer changing the response on longer time scales. Evolution of the response exhibits a strong frequency dependence and suggests changes over longer distances at longer delay times. The measured change in the spectrum of solvent fluctuations represents a direct experimental confirmation of the breakdown of linear response and confirms predictions from molecular dynamics simulations.
引用
收藏
页码:3295 / 3306
页数:12
相关论文
共 86 条
[1]  
AAQVIST J, 1996, J PHYS CHEM-US, V100, P9512
[2]   Nonlinear, nonpolar solvation dynamics in water: The roles of electrostriction and solvent translation in the breakdown of linear response [J].
Aherne, D ;
Tran, V ;
Schwartz, BJ .
JOURNAL OF PHYSICAL CHEMISTRY B, 2000, 104 (22) :5382-5394
[3]   Polar and nonpolar solvation dynamics, ion diffusion, and vibrational relaxation: Role of biphasic solvent response in chemical dynamics [J].
Bagchi, B ;
Biswas, R .
ADVANCES IN CHEMICAL PHYSICS, VOL 109, 1999, 109 :207-433
[4]  
Barbara P. F., 1990, ADV PHOTOCHEM, V15, P1, DOI [DOI 10.1002/9780470133453.CHL, DOI 10.1103/PhysRevLett.88.158101]
[5]   Contemporary issues in electron transfer research [J].
Barbara, PF ;
Meyer, TJ ;
Ratner, MA .
JOURNAL OF PHYSICAL CHEMISTRY, 1996, 100 (31) :13148-13168
[6]  
Beard MC, 2002, ACS SYM SER, V820, P44
[7]  
Beard MC, 2002, J PHYS CHEM A, V106, P878, DOI [10.1021/jp013603l, 10.1021/jp0136031]
[8]   Terahertz spectroscopy [J].
Beard, MC ;
Turner, GM ;
Schmuttenmaer, CA .
JOURNAL OF PHYSICAL CHEMISTRY B, 2002, 106 (29) :7146-7159
[9]   Hidden breakdown of linear response: Projections of molecular motions in nonequilibrium simulations of solvation dynamics [J].
Bedard-Hearn, MJ ;
Larsen, RE ;
Schwartz, BJ .
JOURNAL OF PHYSICAL CHEMISTRY A, 2003, 107 (24) :4773-4777
[10]   Viscoelastic continuum model of nonpolar solvation. 1. Implications for multiple time scales in liquid dynamics [J].
Berg, M .
JOURNAL OF PHYSICAL CHEMISTRY A, 1998, 102 (01) :17-30