Producing Cluster States in Charge Qubits and Flux Qubits
Tetsufumi Tanamoto, Yu-xi Liu, Shinobu Fujita, Xuedong Hu, Franco Nori
Abstract
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Tetsufumi Tanamoto, Yu-xi Liu, Shinobu Fujita, Xuedong Hu, Franco Nori
Abstract
Open-access reader
We propose a method to efficiently generate cluster states in charge qubits, both semiconducting and superconducting, as well as flux qubits. We show that highly entangled cluster states can be realized by a "one-touch" entanglement operation by tuning gate bias voltages for charge qubits. We also investigate the robustness of these cluster states for nonuniform qubits, which are unavoidable in solid-state systems. We find that quantum computation based on cluster states is a promising approach for solid-state qubits.
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We propose a method to efficiently generate cluster states in charge qubits, both semiconducting and superconducting, as well as flux qubits. We show that highly entangled cluster states can be realized by a "one-touch" entanglement operation by tuning gate bias voltages for charge qubits. We also investigate the robustness of these cluster states for nonuniform qubits, which are unavoidable in solid-state systems. We find that quantum computation based on cluster states is a promising approach for solid-state qubits.
Key concepts: Cluster state, Superconducting quantum computing, Qubit, Quantum entanglement, Physics, Quantum computer, Flux qubit, W state