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首页> 外文期刊>Quantum information & computation >TWO-QUBIT QUANTUM GATES DESIGN VIA UNITARY FACTORIZATION UNDER ANISOTROPIC HEISENBERG-ISING INTERACTION
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TWO-QUBIT QUANTUM GATES DESIGN VIA UNITARY FACTORIZATION UNDER ANISOTROPIC HEISENBERG-ISING INTERACTION

机译:通过各向异性的Heisenberg ising互动下通过整体分解的两种量子位量子门设计

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摘要

Quantum information and quantum computation are emerging research areas based on the properties of quantum resources, such as superposition and entanglement. In the quantum gate array version, the use of convenient and proper gates is essential. While these gates adopt theoretically convenient forms to reproduce computational algorithms, their design and feasibility depend on specific quantum systems and physical resources used in their setup. These gates should be based on systems driven by physical interactions ruled by a quantum Hamiltonian. Then, the gate design is restricted to the properties and the limitations imposed by the interactions and the physical elements involved. This work shows how anisotropic Heisenberg-Ising interactions, written in a non-local basis, allow the reproduction of quantum computer operations based on unitary processes. We show that gates can be generated by a pulse sequence of driven magnetic fields. This fact states alternative techniques in quantum gate design for magnetic systems. A brief final discussion around associated fault tolerant extensions to the current work is included.
机译:量子信息和量子计算是基于量子资源的性质的新兴研究领域,例如叠加和纠缠。在量子门阵列版本中,使用方便和适当的门是必不可少的。虽然这些门采用理论上方便的形式来重现计算算法,但它们的设计和可行性取决于其设置中使用的特定量子系统和物理资源。这些门应基于由量子汉密尔顿人统治的物理交互驱动的系统。然后,栅极设计限于相互作用和所涉及的物理元素所施加的性质和限制。这项工作表明了以非本地写入的各向异性海星贝格互动互动,允许基于整体过程进行量子计算机操作的再现。我们表明栅极可以通过驱动磁场的脉冲序列产生。磁系统量子栅极设计中的这种情况替代技术。包括围绕相关的容错扩展到当前工作的简要讨论。

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