Fast realization of high-fidelity nonadiabatic holonomic quantum gates with a time-optimal-control technique in Rydberg atoms
Creators
- 1. School of Physics, Key Laboratory of Materials Physics of Ministry of Education, and International Laboratory for Quantum Functional Materials of Henan, Zhengzhou University, Zhengzhou 450001, China
- 2. Institute of Quantum Materials and Physics, Henan Academy of Science, Henan 450046, China
- 3. State Key Laboratory of Magnetic Resonance and Atomic and Molecular Physics, Wuhan Institute of Physics and Mathematics, Innovation Academy of Precision Measurement Science and Technology, Chinese Academy of Sciences, Wuhan 430071, China
- 4. School of Physics, University of the Chinese Academy of Sciences, Beijing 100049, China
- 5. Research Center for Quantum Precision Measurement, Institute of Industry Technology, Guangzhou and Chinese Academy of Sciences, Guangzhou 511458, China
Description
The nonadiabatic holonomic quantum computation (NHQC) has received great attention for decades, however, there are many challenges to its implementation in experiments. To further shorten the evolution time is the first challenge to be conquered to realize high-fidelity quantum gates in NHQC. In this paper, we propose a controlled two-qubit model in Rydberg atoms to realize nonadiabatic holonomic quantum gates, where the evolution time is extremely decreased and the influences of several kinds of noises are minimized by utilizing the time-optimal-control technique on the target atom. In addition, we can construct arbitrary geometric gates by selecting the appropriate parameters in our model. Furthermore, numerical simulations for the gate and gate based on the master equation show that the fidelities of geometric gates obtained in our model are still very high even though noises are considered, which demonstrates the robustness of our protocol. It is worth noting that the controlled two-qubit model may pave the way to realize fault-tolerant quantum computation in the future.
Additional details
Identifiers
- DOI
- 10.1103/PhysRevA.109.022613;
- Crossref Funder ID
- 10.13039/501100012166; 10.13039/501100001809; 10.13039/501100006407;
Publishing Information
- Journal Title
- Physical Review A
- Journal Volume
- 109
- Journal Issue
- 2
- Journal Page Range
- 11 pgs.
- ISSN
- 1094-1622
INIS
- Country of Publication
- United States
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- Subject category
- S71: CLASSICAL AND QUANTUM MECHANICS, GENERAL PHYSICS; S97: MATHEMATICAL METHODS AND COMPUTING;
- Descriptors DEI
- ATOMS; CALCULATION METHODS; COMPUTERIZED SIMULATION; CONTROL THEORY; EQUATIONS; EVOLUTION; IMPLEMENTATION; INFORMATION THEORY; NOISE; PURE STATES; QUANTUM COMPUTERS; QUANTUM CRYPTOGRAPHY; QUANTUM DECOHERENCE; QUANTUM OPTICS; QUBITS; RYDBERG STATES
- Descriptors DEC
- COMPUTERS; CRYPTOGRAPHY; ENERGY LEVELS; EXCITED STATES; INFORMATION; OPTICS; QUANTUM INFORMATION; QUANTUM STATES; SIMULATION
Optional Information
- Copyright
- ©2024 American Physical Society
- Contract/Grant/Project number
- 2022YFA1404500; 2021YFA1400900; 12274376; 12204424; 12204428; 12074346; 212300410085; 221100210400
- Notes
- Contact Email: physicalxupeng@whu.edu.cn; Contact Email: slsu@zzu.edu.cn; Contact Email: chengang971@163.com; Record automatically processed
- Funding organization
- National Key Research and Development Program of China; National Natural Science Foundation of China; Natural Science Foundation of Henan Province; Major Science and Technology project of Henan Province