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量子探针和具有磁性纳米结构的化学罗盘设计。

Quantum probe and design for a chemical compass with magnetic nanostructures.

机构信息

Institut für Quantenoptik und Quanteninformation der Österreichischen Akademie der Wissenschaften, Innsbruck, Austria.

出版信息

Phys Rev Lett. 2011 Mar 11;106(10):100501. doi: 10.1103/PhysRevLett.106.100501. Epub 2011 Mar 9.

Abstract

Magnetic fields as weak as Earth's may affect the outcome of certain photochemical reactions that go through a radical pair intermediate. When the reaction environment is anisotropic, this phenomenon can form the basis of a chemical compass and has been proposed as a mechanism for animal magnetoreception. Here, we demonstrate how to optimize the design of a chemical compass with a much better directional sensitivity simply by a gradient field, e.g., from a magnetic nanostructure. We propose an experimental test of these predictions, and suggest design principles for a hybrid metallic-organic chemical compass. In addition to the practical interest in designing a biomimetic weak magnetic field sensor, our result shows that gradient fields can serve as powerful tools to probe spin correlations in radical pair reactions.

摘要

磁场弱如地球磁场也可能会影响某些经历自由基对中间体的光化学反应的结果。当反应环境各向异性时,这种现象可以作为化学罗盘的基础,并被提议作为动物磁受体的一种机制。在这里,我们展示了如何通过梯度场(例如,来自磁性纳米结构),简单地优化具有更好方向灵敏度的化学罗盘的设计。我们提出了对这些预测进行实验测试的建议,并为混合金属-有机化学罗盘提出了设计原则。除了设计仿生弱磁场传感器的实际兴趣之外,我们的结果表明,梯度场可以作为探测自由基对反应中自旋相关性的有力工具。

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