Krymov Vladimir, Gerfen Gary J
Department of Physiology and Biophysics, Albert Einstein College of Medicine, Yeshiva University, 1300 Morris Park Avenue, Bronx, NY 10461, USA.
J Magn Reson. 2003 Jun;162(2):466-78. doi: 10.1016/s1090-7807(03)00109-5.
This paper investigates basic characteristics of the electron paramagnetic resonance (EPR) signal obtained from spectrometers employing reflection resonators. General equations are presented which reveal the phase and amplitude dependence on instrumental parameters of both components of the continuous wave (CW) EPR signal (absorption and dispersion). New phase vector diagrams derived from these general equations are presented for the analysis of the EPR response. The dependence of the phase and absolute value of the CW EPR signal on the local oscillator (LO) phase and on resonator offset and coupling is presented and analyzed. The EPR spectrometer tuning procedures for both balanced and unbalanced heterodyne receivers are analyzed in detail using the new phase diagrams. Extraneous signals at the RF input of the microwave receiver (resulting from circulator leakage and reflections in the resonator transmission line) have been taken into account and analyzed. It is shown that a final tuning condition that corresponds to an extremum of the receiver output as a function of the resonator frequency is necessary and sufficient for the acquisition of pure absorption signal. This condition is universal: it applies to all spectrometer configurations in all frequency ranges. High Frequency EPR spectrometer (130 GHz) data are used to generate experimental phase diagrams that illustrate the theoretical concepts presented in the paper. Conditions are presented under which the absorption signal can be measured with complete suppression of the dispersion, independent of the mutual frequency offset between the microwave source and the EPR sample resonator. Equations describing the approximate relationship between changes of the resonator properties (Q-factor and frequency) and paramagnetic susceptibility are derived and analyzed.
本文研究了采用反射谐振器的光谱仪所获得的电子顺磁共振(EPR)信号的基本特性。给出了通用方程,这些方程揭示了连续波(CW)EPR信号的两个分量(吸收和色散)的相位和幅度对仪器参数的依赖性。给出了从这些通用方程导出的新的相位矢量图,用于分析EPR响应。给出并分析了CW EPR信号的相位和绝对值对本地振荡器(LO)相位以及谐振器偏移和耦合的依赖性。利用新的相位图详细分析了平衡和不平衡外差接收器的EPR光谱仪调谐程序。考虑并分析了微波接收器射频输入端的外来信号(由环行器泄漏和谐振器传输线中的反射引起)。结果表明,对应于接收器输出作为谐振器频率函数的极值的最终调谐条件对于获取纯吸收信号是必要且充分的。这个条件是通用的:它适用于所有频率范围内的所有光谱仪配置。使用高频EPR光谱仪(130 GHz)数据生成实验相位图,以说明本文提出的理论概念。给出了在完全抑制色散的情况下测量吸收信号的条件,该条件与微波源和EPR样品谐振器之间的相互频率偏移无关。推导并分析了描述谐振器特性(品质因数和频率)变化与顺磁磁化率之间近似关系的方程。