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恒绝热超低频磁场操控 para-H2 极化:在 AA'X 自旋体系中的应用。

Constant-adiabaticity ultralow magnetic field manipulations of parahydrogen-induced polarization: application to an AA'X spin system.

机构信息

International Tomography Center SB RAS, Novosibirsk, Russia.

出版信息

Phys Chem Chem Phys. 2021 Mar 28;23(12):7125-7134. doi: 10.1039/d0cp06581a. Epub 2021 Mar 22.

Abstract

The field of magnetic resonance imaging with hyperpolarized contrast agents is rapidly expanding, and parahydrogen-induced polarization (PHIP) is emerging as an inexpensive and easy-to-implement method for generating the required hyperpolarized biomolecules. Hydrogenative PHIP delivers hyperpolarized proton spin order to a substrate via chemical addition of H in the spin-singlet state, but it is typically necessary to transfer the proton polarization to a heteronucleus (usually C) which has a longer spin lifetime. Adiabatic ultralow magnetic field manipulations can be used to induce the polarization transfer, but this is necessarily a slow process, which is undesirable since the spins continually relax back to thermal equilibrium. Here we demonstrate two constant-adiabaticity field sweep methods, one in which the field passes through zero, and one in which the field is swept from zero, for optimal polarization transfer on a model AA'X spin system, [1-C]fumarate. We introduce a method for calculating the constant-adiabaticity magnetic field sweeps, and demonstrate that they enable approximately one order of magnitude faster spin-order conversion compared to linear sweeps. The present method can thus be utilized to manipulate nonthermal order in heteronuclear spin systems.

摘要

利用高极化对比剂的磁共振成像领域正在迅速发展,而 Para 氢诱导极化 (PHIP) 作为一种生成所需高极化生物分子的廉价且易于实施的方法正在出现。氢化 PHIP 通过在自旋单重态下添加 H 来向底物传递超极化质子自旋顺序,但通常需要将质子极化转移到具有更长自旋寿命的杂核(通常为 C)。绝热超低磁场操作可用于诱导极化转移,但这必然是一个缓慢的过程,这是不理想的,因为自旋不断回到热平衡。在这里,我们展示了两种具有恒定绝热性的磁场扫描方法,一种是磁场通过零,另一种是磁场从零开始扫,对于模型 AA'X 自旋系统[1-C]富马酸盐的最佳极化转移。我们引入了一种计算恒定绝热性磁场扫描的方法,并证明与线性扫描相比,它们可以使自旋顺序转换快一个数量级。因此,本方法可用于操纵杂核自旋系统中的非热序。

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