Department of Chemistry and Biochemistry, School of Engineering and Computer Science, University of Denver, Denver, CO 80208, United States.
J Magn Reson. 2011 Dec;213(1):119-25. doi: 10.1016/j.jmr.2011.09.024. Epub 2011 Sep 14.
A digital EPR spectrometer was constructed by replacing the traditional bridge with an arbitrary waveform generator (AWG) to produce excitation patterns and a high-speed digitizer for direct detection of the spin system response at the carrier frequency. Digital down-conversion produced baseband signals in quadrature with very precise orthogonality. Real-time resonator tuning was performed by monitoring the Fourier transforms of signals reflected from the resonator during frequency sweeps generated by the AWG. The capabilities of the system were demonstrated by rapid magnetic field scans at 256 MHz carrier frequency, and FID and spin echo experiments at 1 and 10 GHz carrier frequencies. For the rapid scan experiments the leakage through a cross-loop resonator was compensated by adjusting the amplitude and phase of a sinusoid at the carrier frequency that was generated with another AWG channel.
通过用任意波形发生器 (AWG) 取代传统的桥路来构建数字 EPR 光谱仪,以产生激励模式,并使用高速数字化仪直接检测载频处的自旋系统响应。数字下变频产生具有非常精确正交性的基带信号。通过在 AWG 产生的频率扫描过程中监测从谐振器反射的信号的傅里叶变换,实现实时谐振器调谐。通过在 256 MHz 载波频率下进行快速磁场扫描以及在 1 和 10 GHz 载波频率下进行 FID 和自旋回波实验,展示了该系统的性能。对于快速扫描实验,通过调整另一个 AWG 通道生成的载波频率正弦波的幅度和相位来补偿交叉环谐振器的泄漏。