| Literature DB >> 33087912 |
R J Niffenegger1, J Stuart2,3, C Sorace-Agaskar2, D Kharas2, S Bramhavar2, C D Bruzewicz2, W Loh2, R T Maxson2, R McConnell2, D Reens2, G N West3, J M Sage4,5, J Chiaverini6,7.
Abstract
Monolithic integration of control technologies for atomic systems is a promising route to the development of quantum computers and portable quantum sensors1-4. Trapped atomic ions form the basis of high-fidelity quantum information processors5,6 and high-accuracy optical clocks7. However, current implementations rely on free-space optics for ion control, which limits their portability and scalability. Here we demonstrate a surface-electrode ion-trap chip8,9 using integrated waveguides and grating couplers, which delivers all the wavelengths of light required for ionization, cooling, coherent operations and quantum state preparation and detection of Sr+ qubits. Laser light from violet to infrared is coupled onto the chip via an optical-fibre array, creating an inherently stable optical path, which we use to demonstrate qubit coherence that is resilient to platform vibrations. This demonstration of CMOS-compatible integrated photonic surface-trap fabrication, robust packaging and enhanced qubit coherence is a key advance in the development of portable trapped-ion quantum sensors and clocks, providing a way towards the complete, individual control of larger numbers of ions in quantum information processing systems.Entities:
Year: 2020 PMID: 33087912 DOI: 10.1038/s41586-020-2811-x
Source DB: PubMed Journal: Nature ISSN: 0028-0836 Impact factor: 49.962