Demonstrating a universal logical gate set on a superconducting quantum processor
- URL: http://arxiv.org/abs/2405.09035v1
- Date: Wed, 15 May 2024 02:04:34 GMT
- Title: Demonstrating a universal logical gate set on a superconducting quantum processor
- Authors: Jiaxuan Zhang, Zhao-Yun Chen, Yun-Jie Wang, Bin-Han Lu, Hai-Feng Zhang, Jia-Ning Li, Peng Duan, Yu-Chun Wu, Guo-Ping Guo,
- Abstract summary: Fault-tolerant quantum computing (FTQC) is essential for achieving large-scale practical quantum computation.
Here, we experimentally implement logical CNOT gate as well as arbitrary single-qubit rotation gates on distance-2 surface codes using the superconducting quantum processor Wutextkong.
In the experiment, we design encoding circuits to prepare the required logical states, where fidelities of the fault-tolerantly prepared logical states surpass those of the physical states.
- Score: 13.391691829693226
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Fault-tolerant quantum computing (FTQC) is essential for achieving large-scale practical quantum computation. Implementing arbitrary FTQC requires the execution of a universal gate set on logical qubits, which is highly challenging. Particularly, in the superconducting system, two-qubit gates on surface code logical qubits have not been realized. Here, we experimentally implement logical CNOT gate as well as arbitrary single-qubit rotation gates on distance-2 surface codes using the superconducting quantum processor \textit{Wukong}, thereby demonstrating a universal logical gate set. In the experiment, we design encoding circuits to prepare the required logical states, where the fidelities of the fault-tolerantly prepared logical states surpass those of the physical states. Furthermore, we demonstrate the transversal CNOT gate between two logical qubits and fault-tolerantly prepare four logical Bell states, all with fidelities exceeding those of the Bell states on the physical qubits. Using the logical CNOT gate and an ancilla logical state, arbitrary single-qubit rotation gate is implemented through gate teleportation. All logical gates are characterized on a complete state set and their fidelities are evaluated by logical Pauli transfer matrices. Implementation of the universal logical gate set and entangled logical states beyond physical fidelity marks a significant step towards FTQC on superconducting quantum processors.
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