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Dynamic Nuclear Polarization of 1H, 13C, and 59Co in a Tris(ethylenediamine)cobalt(III) Crystalline Lattice Doped with Cr(III)

机译:掺杂Cr(III)的三(乙二胺)钴(III)晶体晶格中1H,13C和59Co的动态核极化

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摘要

The study of inorganic crystalline materials by solid-state NMR spectroscopy is often complicated by the low sensitivity of heavy nuclei. However, these materials often contain or can be prepared with paramagnetic dopants without significantly affecting the structure of the crystalline host. Dynamic nuclear polarization (DNP) is generally capable of enhancing NMR signals by transferring the magnetization of unpaired electrons to the nuclei. Therefore, the NMR sensitivity in these paramagnetically doped crystals might be increased by DNP. In this paper we demonstrate the possibility of efficient DNP transfer in polycrystalline samples of [Co(en)[subscript 3]Cl[subscript 3]][subscript 2]·NaCl·6H[subscript 2]O (en = ethylenediamine, C[subscript 2]H[subscript 8]N[subscript 2]) doped with Cr(III) in varying concentrations between 0.1 and 3 mol %. We demonstrate that [superscript 1]H, [superscript 13]C, and [superscript 59]Co can be polarized by irradiation of Cr(III) with 140 GHz microwaves at a magnetic field of 5 T. We further explain our findings on the basis of electron paramagnetic resonance spectroscopy of the Cr(III) site and analysis of its temperature-dependent zero-field splitting, as well as the dependence of the DNP enhancement factor on the external magnetic field and microwave power. This first demonstration of DNP transfer from one paramagnetic metal ion to its diamagnetic host metal ion will pave the way for future applications of DNP in paramagnetically doped materials or metalloproteins.
机译:由于重核的低灵敏度,通过固态NMR光谱对无机晶体材料的研究通常变得很复杂。但是,这些材料通常包含顺磁性掺杂剂或可以用顺磁性掺杂剂制备,而不会显着影响晶体主体的结构。动态核极化(DNP)通常能够通过将不成对电子的磁化传递到核来增强NMR信号。因此,这些顺磁性掺杂晶体中的NMR灵敏度可能会因DNP而增加。本文证明了[Co(en)[下标3] Cl [下标3]] [下标2]·NaCl·6H [下标2] O(en =乙二胺,C [ Cr(III)掺杂浓度在0.1和3 mol%之间的下标2] H [下标8] N [下标2])。我们证明了用5 GHz磁场在140 GHz微波下照射Cr(III)可以使[上标1] H,[上标13] C和[上标59] Co极化。 Cr(III)位电子顺磁共振光谱学的基础,并分析了其温度相关的零场分裂,以及DNP增强因子对外部磁场和微波功率的依赖性。 DNP从一个顺磁性金属离子转移到其反磁性主体金属离子的第一个证明将为DNP在顺磁性掺杂材料或金属蛋白中的未来应用铺平道路。

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