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使用基波异相吸收电子顺磁共振信号进行自旋弛豫测量:旋转运动效应。

Spin relaxation measurements using first-harmonic out-of-phase absorption EPR signals: rotational motion effects.

作者信息

Livshits V A, Marsh D

机构信息

Centre of Photochemistry, Russian Academy of Sciences, 117427, Moscow, Russian Federation.

出版信息

J Magn Reson. 2000 Jul;145(1):84-94. doi: 10.1006/jmre.2000.2069.

Abstract

A recent survey of nonlinear continuous-wave (CW) EPR methods revealed that the first-harmonic absorption EPR signal, detected 90 degrees out of phase with respect to the Zeeman modulation (V(1)(')-EPR), is the most appropriate for determining spin-lattice relaxation enhancements of spin labels (V. A. Livshits, T. Páli, and D. Marsh, 1998, J. Magn. Reson. 134, 113-123). The sensitivity of such V(1)(')-EPR spectra to molecular rotational motion is investigated here by spectral simulations for nitroxyl spin labels, over the entire range of rotational correlation times. Determination of the effective spin-lattice relaxation times is less dependent on rotational mobility than for other nonlinear CW EPR methods, especially at a Zeeman modulation frequency of 25 kHz which is particularly appropriate for spin labels. This relative insensitivity to molecular motion further enhances the usefulness of the V(1)(')-EPR method. Calibrations of the out-of-phase to in-phase spectral intensity (and amplitude) ratios are given as a function of spin-lattice relaxation time, for the full range of spin-label rotational correlation times. Experimental measurements on spin labels in the slow, intermediate, and fast motional regimes of molecular rotation are used to test and validate the method.

摘要

最近一项关于非线性连续波(CW)电子顺磁共振(EPR)方法的调查显示,相对于塞曼调制检测到的90度异相的基波吸收EPR信号(V(1)(')-EPR),最适合用于确定自旋标记物的自旋-晶格弛豫增强(V. A. 利夫希茨、T. 帕利和D. 马什,1998年,《磁共振杂志》134卷,第113 - 123页)。本文通过对硝酰自旋标记物在整个旋转相关时间范围内的光谱模拟,研究了此类V(1)(')-EPR光谱对分子旋转运动的灵敏度。与其他非线性连续波EPR方法相比,有效自旋-晶格弛豫时间的测定对旋转迁移率的依赖性较小,尤其是在25 kHz的塞曼调制频率下,该频率特别适合自旋标记物。这种对分子运动的相对不敏感性进一步提高了V(1)(')-EPR方法的实用性。给出了在自旋标记物整个旋转相关时间范围内,异相到同相光谱强度(和幅度)比作为自旋-晶格弛豫时间函数的校准。对处于分子旋转慢、中、快运动状态的自旋标记物进行的实验测量用于测试和验证该方法。

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