论文标题

量子计算机辅助设计的量子光学硬件

Quantum Computer-Aided design of Quantum Optics Hardware

论文作者

Kottmann, Jakob S., Krenn, Mario, Kyaw, Thi Ha, Alperin-Lea, Sumner, Aspuru-Guzik, Alán

论文摘要

量子系统的参数随涉及的量子颗粒的数量呈指数增长。因此,相关的内存需求远远超出了由数十个粒子组成的量子系统最佳经典计算机的极限,从而在其数值模拟中遇到了巨大的挑战。这意味着验证(更不用说新的量子设备和实验的设计)从根本上限于系统大小。目前尚不清楚如何利用大量子系统的全部潜力。在这里,我们介绍了量子计算机设计的量子硬件的概念,并将其应用于量子光学的字段。具体而言,我们将复杂的实验硬件绘制为高维,多体纠缠的光子中的复杂实验硬件,以进入基于门的量子电路。我们明确显示了如何实现玻色子采样实验的数字量子模拟。然后,我们说明了如何为复杂的纠缠光子系统设计量子光学设置,例如高维的Greenberger-Horne-Horne-Zeilinger Station及其衍生物。由于光子硬件已经处于量子至上的边缘(超出系统无法再经过经典计算的极限),并且基于门的量子计算机的开发正在迅速前进,因此我们的方法承诺将成为量子设备设计未来的有用工具。

The parameters of a quantum system grow exponentially with the number of involved quantum particles. Hence, the associated memory requirement goes well beyond the limit of best classic computers for quantum systems composed of a few dozen particles leading to huge challenges in their numerical simulation. This implied that verification, let alone, design of new quantum devices and experiments, is fundamentally limited to small system size. It is not clear how the full potential of large quantum systems can be exploited. Here, we present the concept of quantum computer designed quantum hardware and apply it to the field of quantum optics. Specifically, we map complex experimental hardware for high-dimensional, many-body entangled photons into a gate-based quantum circuit. We show explicitly how digital quantum simulation of Boson Sampling experiments can be realized. Then we illustrate how to design quantum-optical setups for complex entangled photon systems, such as high-dimensional Greenberger-Horne-Zeilinger states and their derivatives. Since photonic hardware is already on the edge of quantum supremacy (the limit beyond which systems can no longer be calculated classically) and the development of gate-based quantum computers is rapidly advancing, our approach promises to be an useful tool for the future of quantum device design.

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