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Spectral editing through laser-flash excitation in two-dimensional photo-CIDNP MAS NMR experiments

机译:在二维光CIDNP MAS NMR实验中通过激光闪光激发进行光谱编辑

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In solid-state photochemically induced dynamic nuclear polarization (photo-CIDNP) MAS NMR experiments, strong signal enhancement is observed from molecules forming a spin-correlated radical pair in a rigid matrix. Two-dimensional C-13-C-13 dipolar-assisted rotational resonance (DARR) photo-CIDNP MAS NMR experiments have been applied to obtain exact chemical shift assignments from those cofactors. Under continuous illumination, the signals are enhanced via three-spin mixing (TSM) and differential decay (DD) and their intensity corresponds to the electron spin density in p(z) orbitals. In multiple-C-13 labelled samples, spin diffusion leads to propagation of signal enhancement to all C-13 spins. Under steady-state conditions, direct signal assignment is possible due to the uniform signal intensity. The original intensities, however, are inaccessible and the information of the local electron spin density is lost. Upon laser-flash illumination, the signal is enhanced via the classical radical pair mechanism (RPM). The obtained intensities are related to isotropic hyperfine interactions a(iso) and both enhanced absorptive and emissive lines can be observed due to differences in the sign of the local isotropic hyperfine interaction. Exploiting the mechanism of the polarization, selectivity can be increased by the novel time-resolved two-dimensional dipolar-assisted rotational resonance (DARR) MAS NMR experiment which simplifies the signal assignment compared to complex spectra of the same RCs obtained by continuous illumination. Here we present two-dimensional time-resolved photo-CIDNP MAS NMR experiments providing both directly: signal assignment and spectral editing by sign and strength of a(iso). Hence, this experiment provides a direct key to the electronic structure of the correlated radical pair. (C) 2014 Elsevier Inc. All rights reserved.
机译:在固态光化学诱导的动态核极化(photo-CIDNP)MAS NMR实验中,从在刚性基质中形成自旋相关自由基对的分子中观察到了强信号增强。二维C-13-C-13偶极辅助旋转共振(DARR)光CIDNP MAS NMR实验已用于从那些辅因子获得确切的化学位移分配。在连续照明下,信号通过三轴混合(TSM)和微分衰减(DD)增强,其强度与p(z)轨道中的电子自旋密度相对应。在多个用C-13标记的样品中,自旋扩散导致信号增强传播到所有C-13自旋。在稳态条件下,由于信号强度均匀,因此可以直接分配信号。然而,原始强度是不可接近的,并且局部电子自旋密度的信息丢失了。在激光闪光照明下,信号通过经典的自由基对机制(RPM)增强。所获得的强度与各向同性超精细相互作用a(iso)有关,并且由于局部各向同性超精细相互作用的符号不同,可以观察到增强的吸收线和发射线。利用极化机制,可以通过新颖的时间分辨二维偶极辅助旋转共振(DARR)MAS NMR实验来提高选择性,与通过连续照明获得的相同RCs的复杂光谱相比,它简化了信号分配。在这里,我们介绍了二维时间分辨的光CIDNP MAS NMR实验,该实验直接提供了两个方面:通过a(iso)的符号和强度进行信号分配和光谱编辑。因此,该实验为相关自由基对的电子结构提供了直接的钥匙。 (C)2014 Elsevier Inc.保留所有权利。

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