Quantum Brain
← Back to papers

Generation of a frequency-degenerate four-photon entangled state using a silicon nanowire

Lantian Feng, Ming Zhang, Zhi-yuan Zhou, Yang Chen, Ming Li, Daoxin Dai, Hong-Liang Ren, G. Guo, Guang-can Guo, M. Tame, Xifeng Ren·December 6, 2018·DOI: 10.1038/s41534-019-0205-4
Physics

AI Breakdown

Get a structured breakdown of this paper — what it's about, the core idea, and key takeaways for the field.

Abstract

Integrated photonics is becoming an ideal platform for generating two-photon entangled states with high brightness, high stability, and scalability. This high brightness and high quality of photon pair sources encourages researchers further to study and manipulate multiphoton entangled states. Here, we experimentally demonstrate frequency-degenerate four-photon entangled state generation based on a single silicon nanowire 1 cm in length. The polarization encoded entangled states are generated with the help of a Sagnac loop using additional optical elements. The states are analyzed using quantum interference and state tomography techniques. As an example, we show that the generated quantum states can be used to achieve phase super-resolution. Our work provides a method for preparing indistinguishable multi-photon entangled states and realizing quantum algorithms in a compact on-chip setting.

Related Research

Quantum Intelligence

Ask about quantum research, companies, or market developments.