An ultrastable 1397-nm laser stabilized by a crystalline-coated room-temperature cavity

Author:

Zhu Xian-Qing12ORCID,Cui Xing-Yang2,Kong De-Quan12ORCID,Yu Hai-Wei12ORCID,Zhai Xiao-Min23,Zheng Ming-Yang4ORCID,Xie Xiu-Ping4ORCID,Zhang Qiang1234,Jiang Xiao123ORCID,Zhang Xi-Bo34ORCID,Xu Ping123ORCID,Dai Han-Ning123ORCID,Chen Yu-Ao123ORCID,Pan Jian-Wei123ORCID

Affiliation:

1. Hefei National Research Center for Physical Sciences at the Microscale and School of Physical Sciences, University of Science and Technology of China 1 , Hefei 230026, China

2. Shanghai Research Center for Quantum Sciences and CAS Center for Excellence in Quantum Information and Quantum Physics, University of Science and Technology of China 2 , Shanghai 201315, China

3. Hefei National Laboratory, University of Science and Technology of China 3 , Hefei 230088, China

4. Jinan Institute of Quantum Technology and CAS Center for Excellence in Quantum Information and Quantum Physics, University of Science and Technology of China 4 , Jinan 250101, China

Abstract

State-of-the-art optical cavities are pivotal in pushing the envelope of laser frequency stability below 10−16. This is often achieved by extending the cavity length or cooling the system to cryogenic temperatures to reduce the thermal noise floor. In our study, we present a 30-cm-long cavity that operates at room temperature and is outfitted with crystalline coatings. The system has a predicted ultralow thermal noise floor of 4.4 × 10−17, comparable to what is observed in cryogenic silicon cavities. A 1397-nm laser is stabilized in this advanced cavity, and the stable frequency is then transferred to the clock transition in strontium optical lattice clocks via a frequency-doubling process. We have meticulously minimized and assessed the technical noise contributions through comparisons with an ultrastable reference laser that is locked to a commercially available 30-cm cavity. The frequency instability of the system is rigorously evaluated using a three-cornered-hat method. The results demonstrate that the laser frequency instability remains below 2 × 10−16 for averaging times ranging from 1 to 50 s. These findings underscore the significant potential of room-temperature cavities with crystalline coatings in high-precision metrology and pave the way for further improvements in optical lattice clocks.

Funder

National Natural Science Foundation of China

Shanghai Rising-Star Program

National Key Research and Development Program of China

Shanghai Municipal Science and Technology Major Project

Innovation Program for Quantum Science and Technology

the Strategic Priority Research Program of Chinese Academy of Sciences

the New Corner Stone Science Foundation

Anhui Initiative in Quantum Information Technologies

Publisher

AIP Publishing

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