| Literature DB >> 31922765 |
Hui Wang1,2, Jian Qin1,2, Xing Ding1,2, Ming-Cheng Chen1,2, Si Chen1,2, Xiang You1,2, Yu-Ming He1,2, Xiao Jiang1,2, L You3, Z Wang3, C Schneider4, Jelmer J Renema5, Sven Höfling1,4,6, Chao-Yang Lu1,2, Jian-Wei Pan1,2.
Abstract
Quantum computing experiments are moving into a new realm of increasing size and complexity, with the short-term goal of demonstrating an advantage over classical computers. Boson sampling is a promising platform for such a goal; however, the number of detected single photons is up to five so far, limiting these small-scale implementations to a proof-of-principle stage. Here, we develop solid-state sources of highly efficient, pure, and indistinguishable single photons and 3D integration of ultralow-loss optical circuits. We perform experiments with 20 pure single photons fed into a 60-mode interferometer. In the output, we detect up to 14 photons and sample over Hilbert spaces with a size up to 3.7×10^{14}, over 10 orders of magnitude larger than all previous experiments, which for the first time enters into a genuine sampling regime where it becomes impossible to exhaust all possible output combinations. The results are validated against distinguishable samplers and uniform samplers with a confidence level of 99.9%.Year: 2019 PMID: 31922765 DOI: 10.1103/PhysRevLett.123.250503
Source DB: PubMed Journal: Phys Rev Lett ISSN: 0031-9007 Impact factor: 9.161