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Characterization of SiN Integrated Optical Phased Arrays on a Wafer-Scale Test Station
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An on-chip phased array for non-classical light
Volkan Gurses1,2, Samantha I Davis3,4, Raju Valivarthi3,4
1Division of Engineering and Applied Science, California Institute of Technology, Pasadena, CA, USA. gurses@caltech.edu.
Nature Communications
|July 29, 2025
Summary
Researchers developed a chip-based phased array system capable of receiving, imaging, and manipulating non-classical light. This breakthrough enables wireless quantum technologies for enhanced sensing and communication applications.
Area of Science:
- Quantum Science and Technology
- Integrated Photonics
- Metamaterials
Background:
- Wireless links are crucial for expanding quantum technologies.
- Phased arrays revolutionized classical wireless communication through directional wave manipulation.
- Existing quantum technologies are primarily wired, limiting their reach.
Purpose of the Study:
- To demonstrate a chip-based phased array system for free-space quantum signal manipulation.
- To create a direct free-space-to-chip interface for reconfigurable quantum links.
- To enable wireless quantum sensing and communication.
Main Methods:
- Developed an integrated photonic-electronic system with over 1000 components.
- Integrated 32 sub-wavelength engineered metamaterial antennas for free-space reception.
- Implemented a large-scale array of quantum-limited coherent receivers for simultaneous signal detection.
Main Results:
- Successfully detected squeezed light using the phased array system.
- Demonstrated a 32-pixel imaging capability of non-classical light.
- Achieved spatially configurable reception and manipulation of squeezed light over free space.
Conclusions:
- The developed system advances wireless quantum technologies.
- This work paves the way for practical applications in quantum communications and sensing.
- On-chip integration of phased arrays offers a scalable solution for future quantum networks.
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