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Use of quadrupolar nuclei for quantum-information processing by nuclear magnetic resonance: Implementation of a quantum algorithm

机译:四极核在核磁共振量子信息处理中的应用:量子算法的实现

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摘要

Physical implementation of quantum-information processing by liquid-state nuclear magnetic resonance, using weakly coupled spin- 1/2 nuclei of a molecule, is well established. Nuclei with spin.1/2 oriented in liquid-crystalline matrices is another possibility. Such systems have multiple qubits per nuclei and large quadrupolar couplings resulting in well separated lines in the spectrum. So far, creation of pseudopure states and logic gates has been demonstrated in such systems using transition selective radio-frequency pulses. In this paper we report two developments. First, we implement a quantum algorithm that needs coherent superposition of states. Second, we use evolution under quadrupolar coupling to implement multiqubit gates. We implement the Deutsch-Jozsa algorithm on a spin- 3/2 (2 qubit) system. The controlled-NOT operation needed to implement this algorithm has been implemented here by evolution under the quadrupolar Hamiltonian. To the best of our knowledge, this method has been implemented for the first time in quadrupolar systems. Since the quadrupolar coupling is several orders of magnitude greater than the coupling in weakly coupled spin- 1/2 nuclei, the gate time decreases, increasing the clock speed of the quantum computer.
机译:利用分子的弱耦合自旋1/2核,通过液态核磁共振实现量子信息处理的物理实现已得到充分确立。在液晶基质中取向为spin.1 / 2的核是另一种可能性。这样的系统每个核具有多个量子位,并且四极耦合很大,从而导致光谱中的谱线分离得很好。到目前为止,已经在使用过渡选择性射频脉冲的此类系统中演示了伪纯状态和逻辑门的创建。在本文中,我们报告了两个进展。首先,我们实现了一种量子算法,该算法需要状态的相干叠加。其次,我们使用四极耦合下的演化来实现多量子位门。我们在自旋3/2(2量子位)系统上实现Deutsch-Jozsa算法。实现该算法所需的受控NOT操作已通过四极哈密顿量下的演化实现。据我们所知,此方法已首次在四极系统中实现。由于四极耦合比弱耦合的自旋1/2核中的耦合大几个数量级,因此门控时间减少,从而提高了量子计算机的时钟速度。

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    Das Ranabir; Kumar Anil;

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  • 年度 2003
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