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Quantum teleportation across a biological membrane by means of correlated spin pair dynamics in photosynthetic reaction centers

机译:在光合作用反应中心中通过相关自旋对动力学实现跨生物膜的量子隐形传态

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摘要

In the process coined quantum teleportation the complete information contained in an input quantum stateΨ i is teleported to a distant location at which the original quantum state is regenerated as teleported output stateΨ i. This paper presents the proof-of-feasibility concept of a quantum teleportation experiment during which an arbitrary input quantum state is teleported across a biological membrane. As particular aspect it is emphasized that all essential subprocesses of the usual quantum teleportation scheme are suggested to be realized by free running reaction processes in a biological membrane-bound reaction center complex with only one significant adaptation required at the input side. The first process of generation of a spin-correlated (Einstein-Podolsky-Rosen) pair of particles (Bell-state source) is a naturally occurring process realized in photosynthetic reaction centers by the primary processes of light-induced charge separation across the membrane. The second process is the so-called Bell-state measurement, which is able to store the complete information of the input quantum state. It is suggested to be realized by a fast spin-dependent recombination between one pair partner spin and a properly engineered input spin. Under suitable recombination conditions the remaining second pair partner spin, situated at the receiver location on the other side of the membrane, is shown to end up in the quantum state identical to that of the initial input state due to the fixed spin correlation of the Bell-state source and the particular spin selectivity of the recombination process. Thus, the input (spin) quantum state is teleported from the spin near the (electron charge) donor side to the acceptor side of the membrane-bound photosynthetic reaction center complex. A comprehensive discussion is presented for this quantum teleportation concept using photosynthetic reaction centers as the quantum channel of communication. Standard electron paramagnetic resonance techniques can be used to set up the input state and read out or hand over the output state for subsequent quantum information processing.
机译:在称为量子隐形传态的过程中,包含在输入量子态Ψi 中的全部信息被隐形传到一个遥远的位置,在该位置原始的量子态被再生为隐形输出态Ψi 。本文提出了一种量子隐形传态实验的可行性证明概念,在该概念中,任意输入量子态都将跨生物膜隐形传态。作为一个特定方面,要强调的是,通常的量子隐形传态方案的所有基本子过程都建议通过在生物膜结合的反应中心复合物中的自由运行反应过程来实现,而在输入侧只需要一个明显的适应即可。产生自旋相关(爱因斯坦-波多尔斯基-罗森)对粒子(贝尔状态源)的第一个过程是在光合作用中心通过光诱导的跨膜电荷分离的主要过程实现的自然过程。第二个过程是所谓的贝尔状态测量,它能够存储输入量子状态的完整信息。建议通过一对配对自旋与正确设计的输入自旋之间快速自旋相关的重组来实现。在合适的重组条件下,由于贝尔的自旋相关性固定,位于膜另一侧的受体位置的其余第二对配对自旋被显示为处于与初始输入态相同的量子态。态源和重组过程的特定自旋选择性。因此,输入的(自旋)量子态从自旋靠近(电子电荷)供体侧向膜结合的光合作用反应中心复合物的受体侧传送。使用光合作用反应中心作为通信的量子通道,对该量子隐形传态概念进行了全面的讨论。可以使用标准的电子顺磁共振技术来设置输入状态,并读出或移交输出状态以用于后续的量子信息处理。

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  • 来源
    《Applied Magnetic Resonance》 |2007年第2期|237-252|共16页
  • 作者单位

    Kazan Physical-Technical Institute Russian Academy of Sciences Kazan Russian Federation;

    Department of Biochemistry and Molecular Biology Pennsylvania State University University Park Pennsylvania USA;

    Institut für Experimentalphysik Freie Universität Berlin Arnimallee 14 14195 Berlin Germany;

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