Quantum random number generators (QRNGs) produce true random numbers, which are guaranteed by the fundamental principles of quantum physics. Miniaturization of QRNGs is crucial for a wide range of communication and cryptography applications. Here, we first report a fully functional QRNG chip based on vacuum-state fluctuations, with dimensions of 16.6 mm x 7.8 mm. The quantum entropy source, which is achieved via hybrid photonic integration with a SiO2 waveguide, generates raw quantum random numbers. The hybrid photonic and electrical components are assembled into a compact ceramic package using system-in-package technology. A microcontroller unit acquires the raw data and outputs the processed quantum random numbers via a serial peripheral interface. According to the characterization results, the QRNG chip achieves a constant real-time output rate of 5.2 Mbps across the industrial temperature range of -40{\deg}C to 85{\deg}C, making it suitable for practical applications.
@article{arxiv.2509.13105,
title = {Real-time vacuum-state quantum random number generator on a chip},
author = {Guan-Ru Qiao and Bing Bai and Zi-Xuan Weng and Han-Shen Chen and Wei Zheng and Zhi-Yuan Zheng and You-Qi Nie and Jun Zhang and Jian-Wei Pan},
journal= {arXiv preprint arXiv:2509.13105},
year = {2025}
}
Comments
8 pages, 6 figures. Accepted by Physical Review Applied