Sub-Doppler rubidium atom cooling using a programmable agile integrated PZT-on-SiN resonator

Abstract Programmability and precise control of laser frequency are essential for quantum experiments and applications such as atomic clocks, quantum computers, and cold-atom sensors. Current systems use bulky, power-hungry modulators and frequency shifters which are difficult to integrate and limit portability and scalability. We report an electrically controllable, agile optical frequency source based on a semiconductor laser stabilized to a photonic integrated resonator cavity with a lead zirconate titanate (PZT) actuator. We demonstrate this approach with precision programmable frequency control of a 780-nm laser that can periodically reference to rubidium-87 ( 87 Rb) spectroscopy followed by fast, programmable, arbitrary frequency tuning sequences for quantum control. We use this approach to demonstrate sub-Doppler cooling of 87 Rb without any external modulators, achieving atom-cloud temperatures as low as 16 μ K. The device achieves a tuning strength up to 1 GHz/V with 11 MHz modulation bandwidth while consuming only 10 nW of electrical power. This work establishes a route toward compact, low-power, and chip-scale laser systems for next-generation quantum and atomic sensing technologies.

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Publication Details

Journal
Nature Communications
Published
2026-09-16
DOI
https://doi.org/10.1038/s41467-026-77526-9
Primary Topic
Atomic and Subatomic Physics Research
Type
article
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Sub-Doppler rubidium atom cooling using a programmable agile integrated PZT-on-SiN resonator

Ryan Q. Rudy, Andrei Isichenko, Nitesh Chauhan, Jennifer T. Choy et al.
Nature Communications
Atomic and Subatomic Physics Research
article

Sub-Doppler rubidium atom cooling using a programmable agile integrated PZT-on-SiN resonator

Ryan Q. Rudy, Andrei Isichenko, Nitesh Chauhan, Jennifer T. Choy, Daniel J. Blumenthal, S. Carpenter, Pritha Mukherjee, Jiawei Wang, Mark Harrington, Mayand Dangi, Chuan Zhong, Nitin Indukuri, Xuting Yang, Nick Montifiore, Iain M. Kierzewski
article en

Abstract

Abstract Programmability and precise control of laser frequency are essential for quantum experiments and applications such as atomic clocks, quantum computers, and cold-atom sensors. Current systems use bulky, power-hungry modulators and frequency shifters which are difficult to integrate and limit portability and scalability. We report an electrically controllable, agile optical frequency source based on a semiconductor laser stabilized to a photonic integrated resonator cavity with a lead zirconate titanate (PZT) actuator. We demonstrate this approach with precision programmable frequency control of a 780-nm laser that can periodically reference to rubidium-87 ( 87 Rb) spectroscopy followed by fast, programmable, arbitrary frequency tuning sequences for quantum control. We use this approach to demonstrate sub-Doppler cooling of 87 Rb without any external modulators, achieving atom-cloud temperatures as low as 16 μ K. The device achieves a tuning strength up to 1 GHz/V with 11 MHz modulation bandwidth while consuming only 10 nW of electrical power. This work establishes a route toward compact, low-power, and chip-scale laser systems for next-generation quantum and atomic sensing technologies.

Nature Communications
Affordable and clean energy
Openalex Percentile: Top 13%
Atomic and Subatomic Physics Research
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Sub-Doppler rubidium atom cooling using a programmable agile integrated PZT-on-SiN resonator — Ryan Q. Rudy, Andrei Isichenko, et al. · Nature Communications (2026) | TGRS Research Map | TGRS