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Influence of nuclear spin on chemical reactions: Magnetic isotope and magnetic field effects (A Review)

机译:核自旋对化学反应的影响:磁性同位素和磁场效应(评论)

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摘要

The course of chemical reactions involving radical pairs may depend on occurrence and orientation of nuclear spins in the pairs. The influence of nuclear spins is maximized when the radical pairs are confined to a space that serves as a cage that allows a certain degree of independent diffusional and rotational motion of the partners of the pair but that also encourages reencounters of the partners within a period which allows the nuclear spins to operate on the odd electron spins of the pair. Under the proper conditions, the nuclear spins can induce intersystem crossing between triplet and singlet states of radical pairs. It is shown that this dependence of intersystem crossing on nuclear spin leads to a magnetic isotope effect on the chemistry of radical pairs which provides a means of separating isotopes on the basis of nuclear spins rather than nuclear masses and also leads to a magnetic field effect on the chemistry of radical pairs which provides a means of influencing the course of polymerization by the application of weak magnetic fields.
机译:涉及自由基对的化学反应过程可能取决于原子对中核自旋的发生和取向。当自由基对被限制在一个空间中时,核自旋的影响被最大化,该空间用作笼子,该笼子允许该配对的伴侣之间进行一定程度的独立扩散和旋转运动,但同时也鼓励伴侣在一定时期内再次遇到允许核自旋在成对的奇数电子自旋上运行。在适当的条件下,核自旋可引起自由基对的三重态和单重态之间的系统间交叉。结果表明,系统间交叉对核自旋的这种依赖性导致对自由基对化学反应的磁同位素效应,这为基于核自旋而不是核质量分离同位素提供了一种手段,并且还导致了对核自旋的磁场效应。自由基对的化学性质,可通过施加弱磁场来影响聚合过程。

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