Quantum Research Group, School of Chemistry and Physics, University of KwaZulu-Natal, Durban, KwaZulu-Natal, 4001, South Africa.
National Institute for Theoretical Physics (NITheP), KwaZulu-Natal, 4001, South Africa.
Sci Rep. 2018 Oct 24;8(1):15719. doi: 10.1038/s41598-018-34007-4.
The development of the radical pair mechanism has allowed for theoretical explanation of the fact that magnetic fields are observed to have an effect on chemical reactions. The mechanism describes how an external magnetic field can alter chemical yields by interacting with the spin state of a pair of radicals. In the field of quantum biology, there has been some interest in the application of the mechanism to biological systems. This paper takes an open quantum systems approach to a model of the radical pair mechanism in order to derive a master equation in the Born-Markov approximation for the case of two electrons, each interacting with an environment of nuclear spins as well as the external magnetic field, then placed in a dissipative bosonic bath. This model is used to investigate two different cases relating to radical pair dynamics. The first uses a collective coupling approach to simplify calculations for larger numbers of nuclei interacting with the radical pair. The second looks at the effects of different hyperfine configurations of the radical pair model, for instance the case in which one of the electrons interact with two nuclei with different hyperfine coupling constants. The results of these investigations are analysed to see if they offer any insights into the biological application of the radical pair mechanism in avian magnetoreception.
自由基对机制的发展使得人们能够从理论上解释磁场对化学反应有影响这一事实。该机制描述了外磁场如何通过与自由基对的自旋态相互作用来改变化学产率。在量子生物学领域,人们对将该机制应用于生物系统产生了一定的兴趣。本文采用开放量子系统方法对自由基对机制模型进行了研究,以便在两个电子的情况下,在外磁场作用下,每个电子与核自旋环境以及外部磁场相互作用,然后置于耗散玻色子浴中,在 Born-Markov 近似下推导出主方程。该模型用于研究与自由基对动力学相关的两种不同情况。第一种情况使用集体耦合方法来简化与自由基对相互作用的大量核的计算。第二种情况则研究了自由基对模型的不同超精细结构配置的影响,例如其中一个电子与两个具有不同超精细耦合常数的核相互作用的情况。对这些研究的结果进行了分析,以了解它们是否为鸟类磁感受中自由基对机制的生物学应用提供了任何见解。