首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Signals in Solid-State Photochemically Induced Dynamic Nuclear Polarization Recover Faster Than Signals Obtained with the Longitudinal Relaxation Time
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Signals in Solid-State Photochemically Induced Dynamic Nuclear Polarization Recover Faster Than Signals Obtained with the Longitudinal Relaxation Time

机译:固态光化学诱导的动态核极化中的信号恢复的速度快于纵向弛豫时间获得的信号

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摘要

During the photocycle of quinone-blocked photosynthetic reaction centers(RCs),photochemically induced dynamic nuclear polarization(photo-CIDNP)is produced by polarization transfer from the initially totally electron polarized electron pair and can be observed by 13C magic-angle spinning(MAS)NMR as a strong modification of signal intensities.The same processes creating net nuclear polarization open up light-dependent channels for polarization loss.This leads to coherent and incoherent enhanced signal recovery,in addition to the recovery due to light-independent longitudinal relaxation.Coherent mixing between electron and nuclear spin states due to pseudosecular hyperfine coupling within the radical pair state provides such a coherent loss channel for nuclear polarization.Another polarization transfer mechanism called differential relaxation,which is based on the long lifetime of the triplet state of the donor,provides an efficient incoherent relaxation path.In RCs of the purple bacterium Rhodobacter sphaeroides R26,the photochemical active channels allow for accelerated signal scanning by a factor of 5.Hence,photo-CIDNP MAS NMR provides the possibility to drive the NMR technique beyond the T1 limit.
机译:在醌封闭的光合作用反应中心(RCs)的光循环中,通过最初的全电子极化电子对的极化转移产生光化学诱导的动态核极化(photo-CIDNP),可以通过13C幻角旋转(MAS)观察到NMR是对信号强度的强力修改。创建净核极化的相同过程为偏振损失打开了光相关通道,这导致了相干和不相干增强的信号恢复,此外还有与光无关的纵向弛豫引起的恢复。自由基对内由于假性超精细耦合而产生的电子和核自旋态之间的混合为核极化提供了一个相干的损失通道。另一种称为微分弛豫的极化转移机制,其基于供体三重态的长寿命,提供了有效的非相干松弛路径。在紫色细菌的RC中在球形红球菌R26中,光化学活性通道可将信号扫描速度提高5倍。因此,photo-CIDNP MAS NMR提供了将NMR技术推向T1极限以上的可能性。

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