Programmable silicon-photonic quantum simulator based on a linear combination of unitaries

IF 6.6 1区 物理与天体物理 Q1 OPTICS Photonics Research Pub Date : 2024-05-29 DOI:10.1364/prj.517294
Yue Yu, Yulin Chi, Chonghao Zhai, Jieshan Huang, Qihuang Gong, Jianwei Wang
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Abstract

Simulating the dynamic evolution of physical and molecular systems in a quantum computer is of fundamental interest in many applications. The implementation of dynamics simulation requires efficient quantum algorithms. The Lie-Trotter-Suzuki approximation algorithm, also known as the Trotterization, is basic in Hamiltonian dynamics simulation. A multi-product algorithm that is a linear combination of multiple Trotterizations has been proposed to improve the approximation accuracy. However, implementing such multi-product Trotterization in quantum computers remains challenging due to the requirements of highly controllable and precise quantum entangling operations with high success probability. Here, we report a programmable integrated-photonic quantum simulator based on a linear combination of unitaries, which can be tailored for implementing the linearly combined multiple Trotterizations, and on the simulator we benchmark quantum simulation of Hamiltonian dynamics. We modify the multi-product algorithm by integrating it with oblivious amplitude amplification to simultaneously reach high simulation precision and high success probability. The quantum simulator is devised and fabricated on a large-scale silicon-photonic quantum chip, which allows the initialization, manipulation, and measurement of arbitrary four-qubit states and linearly combined unitary gates. As an example, the quantum simulator is reprogrammed to emulate the dynamics of an electron spin and nuclear spin coupled system. This work promises the practical dynamics simulations of real-world physical and molecular systems in future large-scale quantum computers.
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基于单元线性组合的可编程硅光子量子模拟器
在量子计算机中模拟物理和分子系统的动态演化在许多应用中都具有重要意义。动态模拟的实现需要高效的量子算法。Lie-Trotter-Suzuki 近似算法(又称 Trotterization)是哈密顿动力学模拟的基本算法。为了提高近似精度,有人提出了一种多积算法,即多个特罗特化的线性组合。然而,在量子计算机中实现这种多积 Trotterization 仍然具有挑战性,因为需要高成功概率的高度可控和精确的量子纠缠操作。在这里,我们报告了一种基于单元线性组合的可编程集成光子量子模拟器,它可以为实现线性组合的多重特罗特化量身定制,在该模拟器上,我们对哈密顿动力学进行了量子模拟基准测试。我们修改了多乘积算法,将其与遗忘振幅放大相结合,从而同时达到高仿真精度和高成功概率。量子模拟器是在大规模硅光子量子芯片上设计和制造的,可以初始化、操纵和测量任意四量子比特态和线性组合单元门。举例来说,量子模拟器被重新编程,以模拟电子自旋和核自旋耦合系统的动力学。这项工作有望在未来的大规模量子计算机中对真实世界的物理和分子系统进行实用的动力学模拟。
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来源期刊
CiteScore
13.60
自引率
5.30%
发文量
1325
期刊介绍: Photonics Research is a joint publishing effort of the OSA and Chinese Laser Press.It publishes fundamental and applied research progress in optics and photonics. Topics include, but are not limited to, lasers, LEDs and other light sources; fiber optics and optical communications; imaging, detectors and sensors; novel materials and engineered structures; optical data storage and displays; plasmonics; quantum optics; diffractive optics and guided optics; medical optics and biophotonics; ultraviolet and x-rays; terahertz technology.
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