Testing the core/shell model of nanoconfined water in reverse micelles using linear and nonlinear IR spectroscopy

被引:320
作者
Piletic, IR
Moilanen, DE
Spry, DB
Levinger, NE
Fayer, MD [1 ]
机构
[1] Stanford Univ, Dept Chem, Stanford, CA 94305 USA
[2] Colorado State Univ, Dept Chem, Ft Collins, CO 80523 USA
关键词
D O I
10.1021/jp061065c
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
A core/shell model has often been used to describe water confined to the interior of reverse micelles. The validity of this model for water encapsulated in AOT/isooctane reverse micelles ranging in diameter from 1.7 to 28 nm (w(0) = 2-60) and bulk water is investigated using four experimental observables: the hydroxyl stretch absorption spectra, vibrational population relaxation times, orientational relaxation rates, and spectral diffusion dynamics. The time dependent observables are measured with ultrafast infrared spectrally resolved pump-probe and vibrational echo spectroscopies. Major progressive changes appear in all observables as the system moves from bulk water to the smallest water nanopool, w(0) = 2. The dynamics are readily distinguishable for reverse micelle sizes smaller than 7 nm in diameter (w(0) = 20) compared to the response of bulk water. The results also demonstrate that the size dependent absorption spectra and population relaxation times can be quantitatively predicted using a core-shell model in which the properties of the core (interior of the nanopool) are taken to be those of bulk water and the properties of the shell (water associated with the headgroups) are taken to be those of w(0) = 2. A weighted sum of the core and shell components reproduces the size dependent spectra and the nonexponential population relaxation dynamics. However, the same model does not reproduce the spectral diffusion and the orientational relaxation experiments. It is proposed that, when hydrogen bond structural rearrangement is involved (orientational relaxation and spectral diffusion), dynamical coupling between the shell and the core cause the water nanopool to display more homogeneous dynamics. Therefore, the absorption spectra and vibrational lifetime decays can discern different hydrogen bonding environments whereas orientational and spectral diffusion correlation functions predict that the dynamics are size dependent but not as strongly spatially dependent within a reverse micelle.
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页码:4985 / 4999
页数:15
相关论文
共 95 条
[1]   Molecular modeling and simulations of AOT-Water reverse micelles in isooctane: Structural and dynamic properties [J].
Abel, S ;
Sterpone, F ;
Bandyopadhyay, S ;
Marchi, M .
JOURNAL OF PHYSICAL CHEMISTRY B, 2004, 108 (50) :19458-19466
[2]   Water dynamics: Vibrational echo correlation spectroscopy and comparison to molecular dynamics simulations [J].
Asbury, JB ;
Steinel, T ;
Stromberg, C ;
Corcelli, SA ;
Lawrence, CP ;
Skinner, JL ;
Fayer, MD .
JOURNAL OF PHYSICAL CHEMISTRY A, 2004, 108 (07) :1107-1119
[3]   Dynamics of water probed with vibrational echo correlation spectroscopy [J].
Asbury, JB ;
Steinel, T ;
Kwak, K ;
Corcelli, SA ;
Lawrence, CP ;
Skinner, JL ;
Fayer, MD .
JOURNAL OF CHEMICAL PHYSICS, 2004, 121 (24) :12431-12446
[4]   Vibrational echo correlation spectroscopy probes of hydrogen bond dynamics in water and methanol [J].
Asbury, JB ;
Steinel, T ;
Fayer, MD .
JOURNAL OF LUMINESCENCE, 2004, 107 (1-4) :271-286
[5]   Hydrogen-bond dynamics near a micellar surface: Origin of the universal slow relaxation at complex aqueous interfaces [J].
Balasubramanian, S ;
Pal, S ;
Bagchi, B .
PHYSICAL REVIEW LETTERS, 2002, 89 (11) :1-115505
[6]  
Berry R. S., 2000, PHYS CHEM
[7]   Infrared intensities of liquids .20. The intensity of the OH stretching band of liquid water revisited, and the best current values of the optical constants of H2O(1) at 25 degrees C between 15,000 and 1 cm(-1) [J].
Bertie, JE ;
Lan, ZD .
APPLIED SPECTROSCOPY, 1996, 50 (08) :1047-1057
[8]   Structure of adsorption complexes of water in zeolites of different types studied by infrared spectroscopy and inelastic neutron scattering [J].
Beta, IA ;
Bohlig, H ;
Hunger, B .
PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2004, 6 (08) :1975-1981
[9]   Direct observation of terahertz surface modes in nanometer-sized liquid water pools [J].
Boyd, JE ;
Briskman, A ;
Colvin, VL ;
Mittleman, DM .
PHYSICAL REVIEW LETTERS, 2001, 87 (14) :147401/1-147401/4
[10]   The integrated photon echo and solvation dynamics [J].
Cho, MH ;
Yu, JY ;
Joo, TH ;
Nagasawa, Y ;
Passino, SA ;
Fleming, GR .
JOURNAL OF PHYSICAL CHEMISTRY, 1996, 100 (29) :11944-11953