Institut für Quantenoptik und Quanteninformation der Osterreichischen Akademie der Wissenschaften, Innsbruck, Austria.
Phys Rev Lett. 2010 Jun 4;104(22):220502. doi: 10.1103/PhysRevLett.104.220502.
The radical-pair mechanism is one of the two main hypotheses to explain the navigability of animals in weak magnetic fields, enabling, e.g., birds to see Earth's magnetic field. It also plays an essential role in spin chemistry. Here, we show how quantum control can be used to either enhance or reduce the performance of such a chemical compass, providing a new route to further study the radical-pair mechanism and its applications. We study the role of radical-pair entanglement in this mechanism, and demonstrate its intriguing connections with the magnetic-field sensitivity of the compass. Beyond their immediate application to the radical-pair mechanism, these results also demonstrate how state-of-the-art quantum technologies could potentially be used to probe and control biological functions.
自由基对机制是解释动物在弱磁场中导航能力的两个主要假设之一,使鸟类能够感知地球磁场。它在自旋化学中也起着至关重要的作用。在这里,我们展示了如何使用量子控制来增强或降低这种化学罗盘的性能,为进一步研究自由基对机制及其应用提供了新的途径。我们研究了自由基对纠缠在这个机制中的作用,并展示了它与罗盘的磁场灵敏度之间有趣的联系。除了它们在自由基对机制中的直接应用,这些结果还展示了如何利用最先进的量子技术来探测和控制生物功能。