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首页> 外文期刊>New journal of physics >Electron spin relaxation can enhance the performance of a cryptochrome-based magnetic compass sensor
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Electron spin relaxation can enhance the performance of a cryptochrome-based magnetic compass sensor

机译:电子自旋弛豫可以增强基于隐色的磁性罗盘传感器的性能

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The radical pair model of the avian magnetoreceptor relies on long-lived electron spin coherence. Dephasing, resulting from interactions of the spins with their fluctuating environment, is generally assumed to degrade the sensitivity of this compass to the direction of the Earth's magnetic field. Here we argue that certain spin relaxation mechanisms can enhance its performance. We focus on the flavin–tryptophan radical pair in cryptochrome, currently the only candidate magnetoreceptor molecule. Correlation functions for fluctuations in the distance between the two radicals in Arabidopsis thaliana cryptochrome 1 were obtained from molecular dynamics (MD) simulations and used to calculate the spin relaxation caused by modulation of the exchange and dipolar interactions. We find that intermediate spin relaxation rates afford substantial enhancements in the sensitivity of the reaction yields to an Earth-strength magnetic field. Supported by calculations using toy radical pair models, we argue that these enhancements could be consistent with the molecular dynamics and magnetic interactions in avian cryptochromes.
机译:禽类磁受体的自由基对模型依赖于长寿命的电子自旋相干。通常认为,由于自旋与其波动环境的相互作用而导致的相移会降低该罗盘对地球磁场方向的灵敏度。在这里,我们认为某些自旋弛豫机制可以增强其性能。我们重点研究了隐色染料中的黄素-色氨酸自由基对,这是目前唯一的候选磁受体分子。通过分子动力学(MD)模拟获得拟南芥隐色染料1中两个自由基之间距离波动的相关函数,并用于计算由交换和偶极相互作用的调制引起的自旋弛豫。我们发现,中间的自旋弛豫速率在反应产率对地球强度磁场的敏感性方面提供了实质性的增强。在使用玩具自由基对模型进行计算的支持下,我们认为这些增强作用可能与禽类隐色分子的分子动力学和磁性相互作用相一致。

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