Breitgoff Frauke D, Polyhach Yevhen O, Jeschke Gunnar
ETH Zurich, Vladimir-Prelog-Weg 2, 8093 Zurich, Switzerland.
Phys Chem Chem Phys. 2017 Jun 21;19(24):15754-15765. doi: 10.1039/c7cp01487b.
Double electron electron resonance (DEER) enables determination of distance distributions in the nanometre range. A recently introduced 5-pulse version of this experiment prolongs the electron spin coherence lifetime and thus provides improved sensitivity or an extended distance range, but suffers from artefacts due to partial excitation and excitation band overlap. In particular, the partial excitation artefact is hard to eliminate experimentally at frequencies where DEER is most sensitive or on spectrometers that provide only monochromatic pulses. Here, a data post-processing method is introduced that removes the partial excitation artefact without relying on previous knowledge of its amplitude and without sensitivity loss. The method is based on acquisition of two traces with shifted positions of the artefact and computation of the artefact shape from the difference of the two traces. Artefact removal was successfully tested both on simulated and experimental data. It was found to be stable for a variety of distance distributions and down to low signal-to-noise ratios in the presence of moderate background decay. The artefact correction method also performs well in the regime of rather strong partial excitation artefacts that is usually encountered with rectangular monochromatic pump pulses on widely available commercial spectrometers.
双电子电子共振(DEER)能够测定纳米范围内的距离分布。该实验最近推出的一种5脉冲版本延长了电子自旋相干寿命,从而提高了灵敏度或扩展了距离范围,但由于部分激发和激发带重叠而存在伪影。特别是,在DEER最敏感的频率处或仅提供单色脉冲的光谱仪上,部分激发伪影很难通过实验消除。在此,引入了一种数据后处理方法,该方法无需依赖对伪影幅度的先验知识,也不会损失灵敏度,即可消除部分激发伪影。该方法基于采集两条具有伪影偏移位置的迹线,并根据两条迹线的差异计算伪影形状。在模拟数据和实验数据上均成功测试了伪影去除效果。结果发现,在存在适度背景衰减的情况下,对于各种距离分布以及低至低信噪比,该方法都是稳定的。在广泛使用的商业光谱仪上,通常使用矩形单色泵浦脉冲时会遇到相当强的部分激发伪影,该伪影校正方法在这种情况下也表现良好。