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一种用于精确测定动态核极化剂磁共振参数的定制多频电子顺磁共振方法:应用于AMUPol。

A tailored multi-frequency EPR approach to accurately determine the magnetic resonance parameters of dynamic nuclear polarization agents: application to AMUPol.

作者信息

Gast P, Mance D, Zurlo E, Ivanov K L, Baldus M, Huber M

机构信息

Department of Physics, Huygens-Kamerlingh Onnes Laboratory, Leiden University, PO Box 9504, 2300 RA Leiden, The Netherlands.

NMR Spectroscopy, Bijvoet Center for Biomolecular Research, Utrecht University, 3584 CH, Utrecht, The Netherlands.

出版信息

Phys Chem Chem Phys. 2017 Feb 1;19(5):3777-3781. doi: 10.1039/c6cp05864g.

Abstract

To understand the dynamic nuclear polarization (DNP) enhancements of biradical polarizing agents, the magnetic resonance parameters need to be known. We describe a tailored EPR approach to accurately determine electron spin-spin coupling parameters using a combination of standard (9 GHz), high (95 GHz) and ultra-high (275 GHz) frequency EPR. Comparing liquid- and frozen-solution continuous-wave EPR spectra provides accurate anisotropic dipolar interaction D and isotropic exchange interaction J parameters of the DNP biradical AMUPol. We found that D was larger by as much as 30% compared to earlier estimates, and that J is 43 MHz, whereas before it was considered to be negligible. With the refined data, quantum mechanical calculations confirm that an increase in dipolar electron-electron couplings leads to higher cross-effect DNP efficiencies. Moreover, the DNP calculations qualitatively reproduce the difference of TOTAPOL and AMUPol DNP efficiencies found experimentally and suggest that AMUPol is particularly effective in improving the DNP efficiency at magnetic fields higher than 500 MHz. The multi-frequency EPR approach will aid in predicting the optimal structures for future DNP agents.

摘要

为了理解双自由基极化剂的动态核极化(DNP)增强效应,需要了解磁共振参数。我们描述了一种定制的电子顺磁共振(EPR)方法,通过结合标准(9 GHz)、高(95 GHz)和超高(275 GHz)频率的EPR来准确测定电子自旋 - 自旋耦合参数。比较液体和冷冻溶液的连续波EPR光谱可提供DNP双自由基AMUPol准确的各向异性偶极相互作用D和各向同性交换相互作用J参数。我们发现,与早期估计相比,D值大了多达30%,并且J为43 MHz,而之前认为其可忽略不计。利用精确的数据,量子力学计算证实偶极电子 - 电子耦合的增加会导致更高的交叉效应DNP效率。此外,DNP计算定性地再现了实验发现的TOTAPOL和AMUPol DNP效率的差异,并表明AMUPol在高于500 MHz的磁场中对提高DNP效率特别有效。多频EPR方法将有助于预测未来DNP试剂的最佳结构。

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