High-resolution magnetic relaxation dispersion measurements of solute spin probes using a dual-magnet system

被引:40
作者
Wagner, S [1 ]
Dinesen, TRJ [1 ]
Rayner, T [1 ]
Bryant, RG [1 ]
机构
[1] Univ Virginia, Dept Chem, Charlottesville, VA 22901 USA
关键词
high-resolution magnetic relaxation dispersion; magnetic relaxation dispersion; nuclear magnetic relaxation dispersion; field dependence; spin-lattice relaxation;
D O I
10.1006/jmre.1999.1811
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
The magnetic field dependence of the nuclear spin-lattice relaxation rate provides a detailed report of the spectral density functions that characterize the intra- and intermolecular fluctuations that drive magnetic relaxation. Rie have addressed the difficult sensitivity and resolution problems associated with low magnetic field strengths by using two magnets in close proximity and shielded from each other. The sample is stored in the high magnetic field, pneumatically driven to the variable satellite field, then returned to the high field for detection at high resolution. A magnetic shield effectively decouples the two magnets so that varying the satellite field strength has minimal effect on the field strength and shim of the high field magnet. The disadvantage of the sample-shuttle magnet-pair system is the restriction imposed on the relaxation times by the finite shuttle times. Experiments not described here have shown this rate maximum to be about 20 s(-1) for most practical solutions. However, we demonstrate here that the sensitivity gains over switched-current magnet systems permit characterization of solute inter- and intramolecular dynamics over the time scale range from tens of microseconds to less than a picosecond. This range permits investigation of a number of crucial chemical dynamics questions, while high sensitivity permits examination of a variety of solute spins. Representative data are presented for H-1, Cd-111, and Li-7. (C) 1999 Academic Press.
引用
收藏
页码:172 / 178
页数:7
相关论文
共 18 条
[1]   ROLE OF NUCLEAR TUNNELING IN AQUEOUS FERROUS FERRIC ELECTRON-TRANSFER [J].
BADER, JS ;
KUHARSKI, RA ;
CHANDLER, D .
JOURNAL OF CHEMICAL PHYSICS, 1990, 93 (01) :230-236
[2]   ZERO-FIELD NMR AND NQR SPECTROMETER [J].
BIELECKI, A ;
ZAX, DB ;
ZILM, KW ;
PINES, A .
REVIEW OF SCIENTIFIC INSTRUMENTS, 1986, 57 (03) :393-403
[3]   The extracellular matrix of the human fetal membranes: Structure and function [J].
Bryant-Greenwood, GD .
PLACENTA, 1998, 19 (01) :1-11
[4]   Magnetic Relaxation Dispersion of 7Li:: Interaction with Mn(II) in the aqueous solvent cage [J].
Dinesen, TRJ ;
Wagner, S ;
Bryant, RG .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1998, 120 (28) :7004-7009
[5]  
EDMONDS DT, 1974, ADV NUCLEAR QUADRUPO, V1, P145
[6]   SIGNAL-TO-NOISE RATIO OF NUCLEAR MAGNETIC-RESONANCE EXPERIMENT [J].
HOULT, DI ;
RICHARDS, RE .
JOURNAL OF MAGNETIC RESONANCE, 1976, 24 (01) :71-85
[7]  
KIMMICH R, 1987, J PHYS E, V20, P43
[8]  
KOENIG SH, 1969, J BIOL CHEM, V244, P3283
[9]   FIELD-CYCLING RELAXOMETRY OF PROTEIN SOLUTIONS AND TISSUE - IMPLICATIONS FOR MRI [J].
KOENIG, SH ;
BROWN, RD .
PROGRESS IN NUCLEAR MAGNETIC RESONANCE SPECTROSCOPY, 1990, 22 :487-567
[10]   CONFINEMENT EFFECTS ON DIPOLAR RELAXATION BY TRANSLATIONAL DYNAMICS OF LIQUIDS IN POROUS SILICA GLASSES [J].
KORB, JP ;
XU, S ;
JONAS, J .
JOURNAL OF CHEMICAL PHYSICS, 1993, 98 (03) :2411-2422