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零磁场下的氘代氢极化。

Parahydrogen-induced polarization at zero magnetic field.

机构信息

Materials Sciences Division, Lawrence Berkeley National Laboratory, Berkeley, California 94720, USA.

出版信息

J Chem Phys. 2013 Jun 21;138(23):234201. doi: 10.1063/1.4805062.

DOI:10.1063/1.4805062
PMID:23802953
Abstract

We use symmetry arguments and simple model systems to describe the conversion of the singlet state of parahydrogen into an oscillating sample magnetization at zero magnetic field. During an initial period of free evolution governed by the scalar-coupling Hamiltonian HJ, the singlet state is converted into scalar spin order involving spins throughout the molecule. A short dc pulse along the z axis rotates the transverse spin components of nuclear species I and S through different angles, converting a portion of the scalar order into vector order. The development of vector order can be described analytically by means of single-transition operators, and it is found to be maximal when the transverse components of I are rotated by an angle of ±π∕2 relative to those of S. A period of free evolution follows the pulse, during which the vector order evolves as a set of oscillating coherences. The imaginary parts of the coherences represent spin order that is not directly detectable, while the real parts can be identified with oscillations in the z component of the molecular spin dipole. The dipole oscillations are due to a periodic exchange between Iz and Sz, which have different gyromagnetic ratios. The frequency components of the resulting spectrum are imaginary, since the pulse cannot directly induce magnetization in the sample; it is only during the evolution under HJ that the vector order present at the end of the pulse evolves into detectable magnetization.

摘要

我们利用对称论证和简单的模型系统来描述零磁场下反氢 singlet态到振荡样品磁化的转换。在由标量耦合哈密顿量 HJ 控制的初始自由演化期间, singlet 态被转换为涉及整个分子中自旋的标量自旋有序。沿着 z 轴施加短的直流脉冲会使核种 I 和 S 的横向自旋分量以不同的角度旋转,从而将部分标量有序转换为向量有序。通过单跃迁算符可以对向量有序的发展进行分析描述,并且当 I 的横向分量相对于 S 的横向分量旋转 ±π∕2 时,向量有序达到最大值。脉冲之后是一段自由演化期,在此期间,向量有序作为一组振荡相干性演化。相干性的虚部代表不可直接检测的自旋有序,而实部可以与分子自旋偶极子 z 分量的振荡相对应。偶极子振荡是由于 Iz 和 Sz 之间的周期性交换引起的,它们具有不同的旋磁比。由于脉冲不能直接在样品中感应出磁化,因此产生的光谱的频率分量是虚数;只有在 HJ 下的演化过程中,脉冲结束时存在的向量有序才会演变成可检测的磁化。

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