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Quantum information processing by NMR using strongly coupled spins

机译:使用强耦合自旋通过NMR进行量子信息处理

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The enormous theoretical potential of quantum information processing (QIP) is driving the pursuit for its practical realization by various physical techniques. Currently, nuclear magnetic resonance (NMR) has been the forerunner by demonstrating a majority of quantum algorithms. In NMR, spin-systems consisting of coupled nuclear spins are utilized as qubits. In order to carry out QIP, a spin-system has to meet two major requirements: (i) qubit addressability and (ii) mutual coupling among the. qubits. It has been demonstrated that the magnitude of the mutual coupling among qubits can be increased by orienting the spin-systems in a liquid crystal matrix and utilizing the residual dipolar couplings. While utilizing residual dipolar couplings may be useful to increase the number of qubits, nuclei of the same species (homonuclei) might become strongly coupled. In strongly coupled spin-systems, spins lose their individual identity of being qubits. We propose that even such strongly coupled spin-systems can be used for QIP and the qubit-manipulation can be achieved by transition-selective pulses. We demonstrate experimental preparation of pseudopure states, creation of maximally entangled states, implementation of logic gates and implementation of Deutsch-Jozsa (DJ) algorithm in strongly coupled 2, 3 and 4 spin-systems. The energy levels of the strongly coupled 3 and 4 spin-systems were obtained using a Z-COSY experiment.
机译:量子信息处理(QIP)的巨大理论潜力正在推动人们通过各种物理技术对其实现的追求。当前,核磁共振(NMR)是演示大多数量子算法的先驱。在NMR中,由耦合核自旋组成的自旋系统被用作量子位。为了执行QIP,自旋系统必须满足两个主要要求:(i)量子位可寻址性和(ii)它们之间的相互耦合。量子比特。已经证明,通过在液晶矩阵中定向自旋系统并利用残留的偶极耦合,可以增加量子位之间的互耦合的幅度。虽然利用残留的偶极耦合可能有助于增加量子位的数量,但同一物种的核(单核)可能变得牢固耦合。在强耦合的自旋系统中,自旋失去了它们各自的量子位身份。我们提出,即使这种强耦合的自旋系统也可以用于QIP,并且可以通过转换选择脉冲来实现qubit操纵。我们演示了在强耦合2、3和4自旋系统中伪纯态的实验准备,最大纠缠态的创建,逻辑门的实现以及Deutsch-Jozsa(DJ)算法的实现。使用Z-COSY实验获得了强耦合3和4自旋系统的能级。

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