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Geometric quantum computation using nuclear magnetic resonance

机译:利用核磁共振的几何量子计算

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A significant development in computing has been the discovery that the computational power of quantum computers exceeds that of Turing machines. Central to the experimental realization of quantum information processing is the construction of fault-tolerant quantum logic gates. Their operation requires conditional quantum dynamics, in which one sub-system undergoes a coherent evolution that depends on the quantum state of another sub-system; in particular, the evolving sub-system may acquire a conditional phase shift. Although conventionally dynamic in origin, phase shifts can also be geometric. Conditional geometric (or 'Berry') phases depend only on the geometry of the path executed, and are therefore resilient to certain types of errors; this suggests the possibility of an intrinsically fault- tolerant way of performing quantum gate operations. Nuclear magnetic resonance techniques have already been used to demonstrate both simple quantum information processing and geometric phase shifts. Here we combine these ideas by performing a nuclear magnetic resonance experiment in which a conditional Berry phase is implemented, demonstrating a controlled phase shift gate.
机译:计算领域的重大发展是发现量子计算机的计算能力超过了图灵机。量子信息处理实验实现的核心是构建容错量子逻辑门。它们的运行需要有条件的量子动力学,其中一个子系统经历依赖于另一子系统的量子状态的连贯演化。特别地,演进的子系统可以获取条件相移。尽管原点通常是动态的,但相移也可以是几何的。有条件的几何(或“浆果”)阶段仅取决于所执行路径的几何,因此对某些类型的错误具有弹性;这暗示了执行量子门操作的内在容错方式的可能性。核磁共振技术已经被用来证明简单的量子信息处理和几何相移。在这里,我们通过执行其中有条件的Berry相得以实现的核磁共振实验,结合了这些思想,展示了受控的相移门。

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