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On-chip Quantum Measurement of Squeezing Generated from a Silicon Nitride Micro-ring Resonator

Quantum Physics 2026-08-04 v1 Optics

Abstract

Integration of quantum optical technique on-chip is crucial for large scale applications of quantum technology, which were proven in a free space environment to be superior to the corresponding classical technology. Squeezed states of light can be used for enhancing the sensitivity of quantum sensors and for fault-tolerant quantum computing. Although chip-based squeezed light generation has advanced significantly, practical impact remains limited because coupling losses between the chip and off-chip detectors destroy delicate quantum correlations, restricting the amount of observed squeezing. Here, we overcome this limitation by implementing the idea of on-chip quantum measurement with the aid of a parametric amplifier and applying it to the squeezed state generated by a silicon nitride (SiN) microring resonator. In our scheme, two matched SiN micro-rings are sequentially constructed. The first ring generates a squeezed state, whereas the second ring acts as a high-gain parametric amplifier (PA) that measures the squeezed state before the light experiences significant off-chip loss. This architecture is inherently loss-tolerant: the amplifier elevates the quantum noise well above the vacuum level, making the measurement insensitive to downstream losses. We directly observe a quantum noise reduction of 4.6 dB from the first ring, despite a chip-to-fiber coupling loss exceeding 5 dB. This work also demonstrates the first monolithic SU(1,1) interferometer with an estimated 5 dB signal-to-noise enhancement compared to traditional linear interferometers, and thus establishes a practical pathway for chip-based quantum sensors.

Keywords

Cite

@article{arxiv.2608.03402,
  title  = {On-chip Quantum Measurement of Squeezing Generated from a Silicon Nitride Micro-ring Resonator},
  author = {Yuhang Lei and Chenfei Cui and Yue Li and Hon Ki Tsang and Z. Y. Ou},
  journal= {arXiv preprint arXiv:2608.03402},
  year   = {2026}
}

Comments

20 pages, 7 figures