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A modular design of molecular qubits to implement universal quantum gates

机译:分子量子位的模块化设计以实现通用量子门

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The physical implementation of quantum information processing relies on individual modules—qubits—and operations that modify such modules either individually or in groups—quantum gates. Two examples of gates that entangle pairs of qubits are the controlled NOT-gate (CNOT) gate, which flips the state of one qubit depending on the state of another, and the gate that brings a two-qubit product state into a superposition involving partially swapping the qubit states. Here we show that through supramolecular chemistry a single simple module, molecular {Cr7Ni} rings, which act as the qubits, can be assembled into structures suitable for either the CNOT or gate by choice of linker, and we characterize these structures by electron spin resonance spectroscopy. We introduce two schemes for implementing such gates with these supramolecular assemblies and perform detailed simulations, based on the measured parameters including decoherence, to demonstrate how the gates would operate.
机译:量子信息处理的物理实现依赖于单个模块-量子位-以及单独或成组修改此类模块的操作-量子门。纠缠成对的量子位的门的两个示例是受控的非门(CNOT)门,该门根据一个状态的另一状态翻转一个量子位的状态,以及将两个量子位乘积状态变为部分涉及的叠加的门交换量子位状态。在这里,我们表明,通过超分子化学,一个简单的模块,即分子{Cr 7 Ni}环,作为量子位,可以通过选择连接子组装成适用于CNOT或栅极的结构,我们通过电子自旋共振光谱来表征这些结构。我们介绍了使用这些超分子组件实现此类门的两种方案,并基于包括退相干在内的测量参数进行了详细的仿真,以演示门的工作方式。

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