Scherer Andreas, Yildirim Berk, Drescher Malte
Department of Chemistry, Konstanz Research School Chemical Biology, University of Konstanz, 78457 Konstanz, Germany.
Magn Reson (Gott). 2023 Feb 8;4(1):27-46. doi: 10.5194/mr-4-27-2023. eCollection 2023.
Laser-induced magnetic dipole (LaserIMD) spectroscopy and light-induced double electron-electron resonance (LiDEER) spectroscopy are important techniques in the emerging field of light-induced pulsed dipolar electron paramagnetic resonance (EPR) spectroscopy (light-induced PDS). These techniques use the photoexcitation of a chromophore to the triplet state and measure its dipolar coupling to a neighboring electron spin, which allows the determination of distance restraints. To date, LaserIMD and LiDEER have been analyzed with software tools that were developed for a pair of two spins and that neglected the zero-field splitting (ZFS) of the excited triplet. Here, we explore the limits of this assumption and show that the ZFS can have a significant effect on the shape of the dipolar trace. For a detailed understanding of the effect of the ZFS, a theoretical description for LaserIMD and LiDEER is derived, taking into account the non-secular terms of the ZFS. Simulations based on this model show that the effect of the ZFS is not that pronounced in LiDEER for experimentally relevant conditions. However, the ZFS leads to an additional decay in the dipolar trace in LaserIMD. This decay is not that pronounced in Q-band but can be quite noticeable for lower magnetic field strengths in X-band. Experimentally recorded LiDEER and LaserIMD data confirm these findings. It is shown that ignoring the ZFS in the data analysis of LaserIMD traces can lead to errors in the obtained modulation depths and background decays. In X-band, it is additionally possible that the obtained distance distribution is plagued by long distance artifacts.
激光诱导磁偶极(LaserIMD)光谱和光诱导双电子 - 电子共振(LiDEER)光谱是光诱导脉冲偶极电子顺磁共振(EPR)光谱(光诱导PDS)这一新兴领域中的重要技术。这些技术利用发色团到三重态的光激发,并测量其与相邻电子自旋的偶极耦合,从而确定距离限制。迄今为止,LaserIMD和LiDEER一直使用为一对两个自旋开发的软件工具进行分析,而忽略了激发三重态的零场分裂(ZFS)。在这里,我们探讨了这一假设的局限性,并表明ZFS对偶极迹线的形状可能有显著影响。为了详细理解ZFS的影响,我们推导了考虑ZFS非久期项的LaserIMD和LiDEER的理论描述。基于该模型的模拟表明,在实验相关条件下,ZFS在LiDEER中的影响并不那么明显。然而,ZFS会导致LaserIMD中偶极迹线出现额外的衰减。这种衰减在Q波段并不明显,但在X波段较低磁场强度下可能会相当显著。实验记录的LiDEER和LaserIMD数据证实了这些发现。结果表明,在LaserIMD迹线的数据分析中忽略ZFS会导致获得的调制深度和背景衰减出现误差。在X波段,还可能出现所获得的距离分布受到长距离伪影困扰的情况。