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Quantum Chemistry Calculations on a Trapped-Ion Quantum Simulator

机译:捕获离子量子模拟器上的量子化学计算

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Quantum-classical hybrid algorithms are emerging as promising candidates for near-term practical applications of quantum information processors in a wide variety of fields ranging from chemistry to physics and materials science. We report on the experimental implementation of such an algorithm to solve a quantum chemistry problem, using a digital quantum simulator based on trapped ions. Specifically, we implement the variational quantum eigensolver algorithm to calculate the molecular ground-state energies of two simple molecules and experimentally demonstrate and compare different encoding methods using up to four qubits. Furthermore, we discuss the impact of measurement noise as well as mitigation strategies and indicate the potential for adaptive implementations focused on reaching chemical accuracy, which may serve as a cross-platform benchmark for multiqubit quantum simulators.
机译:量子古典混合算法是在各种各样的田野和物理和材料科学中的各种田野中的近期实际应用的承诺候选候选人。我们报告了基于捕获离子的数字量子模拟器来解决量子化学问题的这样一种算法的实验实施。具体地,我们实施了变分量子Eigensolver算法,以计算两个简单分子的分子接地能量,并通过多达四个Qubits进行实验证明和比较不同的编码方法。此外,我们讨论了测量噪声的影响以及缓解策略,并指出了适应性实现的潜力,其专注于达到化学精度,这可以作为多谜Quantum模拟器的跨平台基准。

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