Researchers at the National Institute of Standards and Technology and Lawrence Livermore National Laboratory have demonstrated a method for generating entanglement between trapped atomic ions with Bell state fidelities exceeding 0.99. The work realizes high-fidelity entangling operations by adiabatically ramping both the amplitude of state-dependent forces and the motional mode frequencies of trapped atomic ions.
Geometric Phase Gates Boost Ion Qubit Entanglement Fidelity
Researchers at the National Institute of Standards and Technology and Lawrence Livermore National Laboratory have demonstrated a method for generating entanglement between trapped atomic ions with Bell state fidelities exceeding 0.99.…
Quantum Zeitgeist
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Aug 30, 2026 at 12:54 PM UTC · Updated 2 小时前 · 5 分钟阅读

This technique functions effectively even with motional occupations up to 10 phonons, eliminating the need for extremely precise ground-state cooling and is well suited for both quantum logic spectroscopy applications and scalable quantum computing architectures. The controlled creation of high-fidelity entanglement is crucial for quantum applications across all physical platforms.
Ramped Amplitude and Frequency for Entanglement Generation
Bell state fidelities exceeding 0.99 have been consistently achieved using a method for generating entanglement between trapped atomic ions, demonstrating an improvement in the accuracy of quantum information processing. This level of fidelity, confirmed across a broad range of experimental parameters, does not surpass previous benchmarks.
This advancement addresses a longstanding challenge in trapped ion quantum computing: the sensitivity of entanglement to the initial state of the ions’ shared motional modes. Traditionally, achieving high-fidelity entanglement demanded cooling these modes to their ground state, a process that introduces complexity and time overhead, particularly as quantum systems scale.
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