研究目的
Investigating the implementation of a multi-target-qubit controlled-NOT gate with logical qubits outside a decoherence-free subspace and its application in creating quantum entangled states.
研究成果
The study successfully demonstrates a method for implementing a multi-target-qubit controlled-NOT gate with logical qubits outside a DFS, offering advantages such as simplified implementation, deterministic operation, and immunity to decoherence during state storage. The application of this gate in creating GHZ entangled states of multiple logical qubits in a DFS is also shown to be feasible with current technology.
研究不足
The technical and application constraints include the need for precise control over the qutrit level spacings and the cavity interactions, as well as the potential for decoherence during the gate operation if the operation time is not sufficiently short compared to the decoherence times of the qutrits.
1:Experimental Design and Method Selection:
The experiment involves manipulating quantum states outside a DFS but ensuring the states of logical qubits remain in their DFS before and after the gate operation. The methodology includes using qutrits placed in a cavity or coupled to a resonator to realize the gate.
2:Sample Selection and Data Sources:
The samples are n qutrit pairs placed in a cavity or coupled to a resonator. The data sources are the quantum states of these qutrits before and after the gate operation.
3:List of Experimental Equipment and Materials:
The equipment includes qutrits (three-level quantum systems), a cavity or resonator, and classical pulses for resonant interactions.
4:Experimental Procedures and Operational Workflow:
The procedure involves applying classical pulses to qutrit pairs, adjusting the level spacing of qutrits to interact with the cavity, and implementing the gate through a series of steps that manipulate the quantum states outside the DFS.
5:Data Analysis Methods:
The analysis involves verifying the state transformations and the fidelity of the gate operation through numerical simulations and master equation solutions.
独家科研数据包,助您复现前沿成果,加速创新突破
获取完整内容