Dave Kharas

Collection of fluorescence from an ion using trap-integrated photonics

Felix W. Knollmann [1], Sabrina M. Corsetti [1], Ethan R. Clements [1], Reuel Swint [2], Aaron D. Leu [1,3], May E. Kim [2], Patrick T. Callahan [2], Dave Kharas [2], Thomas Mahony [2], Cheryl Sorace-Agaskar [2], Robert McConnell [2], Colin D. Bruzewicz [2], Isaac L. Chuang [1], Jelena Notaros [1], John Chiaverini [1,2]

Abstract

Spontaneously emitted photons are entangled with the electronic and nuclear degrees of freedom of the emitting atom, so interference and measurement of these photons can entangle separate matter-based quantum systems as a resource for quantum information processing. However, the isotropic nature of spontaneous emission hinders the single-mode photonic operations required to generate entanglement. Current demonstrations rely on bulk photon-collection and manipulation optics that suffer from environment-induced phase instability, mode matching challenges, and system-to-system variability, factors that impede scaling to the large numbers of entangled pairs needed for quantum information processing. To address these limitations, we demonstrate a collection method that enables passive phase stability, straightforward photonic manipulation, and intrinsic reproducibility. Specifically, we engineer a waveguide-integrated grating to couple photons emitted from a trapped ion into a single optical mode within a microfabricated ion-trap chip. Using the integrated collection optic, we characterize the collection efficiency, image the ion, and detect the ion's quantum state. This proof-of-principle demonstration lays the foundation for leveraging the inherent stability and reproducibility of integrated photonics to efficiently create, manipulate, and measure multipartite quantum states in arrays of quantum emitters.

Integrated-Photonics-Based Systems for Polarization-Gradient Cooling of Trapped Ions

Sabrina M. Corsetti [1], Ashton Hattori [1], Ethan R. Clements [1], Felix W. Knollmann [1], Milica Notaros [1], Reuel Swint [2], Tal Sneh [1], Patrick T. Callahan [2], Gavin N. West [1], Dave Kharas [2], Thomas Mahony [2], Colin D. Bruzewicz [2], Cheryl Sorace-Agaskar [2], Robert McConnell [2], Isaac L. Chuang [1], John Chiaverini [1,2], Jelena Notaros [1]

Abstract

Trapped ions are a promising modality for quantum systems, with demonstrated utility as the basis for quantum processors and optical clocks. However, traditional trapped-ion systems are implemented using complex free-space optical configurations, whose large size and susceptibility to vibrations and drift inhibit scaling to large numbers of qubits. In recent years, integrated-photonics-based systems have been demonstrated as an avenue to address the challenge of scaling trapped-ion systems while maintaining high fidelities. While these previous demonstrations have implemented both Doppler and resolved-sideband cooling of trapped ions, these cooling techniques are fundamentally limited in efficiency. In contrast, polarization-gradient cooling can enable faster and more power-efficient cooling and, therefore, improved computational efficiencies in trapped-ion systems. While free-space implementations of polarization-gradient cooling have demonstrated advantages over other cooling mechanisms, polarization-gradient cooling has never previously been implemented using integrated photonics. In this paper, we design and experimentally demonstrate key polarization-diverse integrated-photonics devices and utilize them to implement a variety of integrated-photonics-based polarization-gradient-cooling systems, culminating in the first experimental demonstration of polarization-gradient cooling of a trapped ion by an integrated-photonics-based system. By demonstrating polarization-gradient cooling using an integrated-photonics-based system and, in general, opening up the field of polarization-diverse integrated-photonics-based devices and systems for trapped ions, this work facilitates new capabilities for integrated-photonics-based trapped-ion platforms.

Sub-Doppler cooling of a trapped ion in a phase-stable polarization gradient

Ethan Clements [1], Felix W. Knollmann [1], Sabrina Corsetti [1], Zhaoyi Li [1], Ashton Hattori [1], Milica Notaros [1], Reuel Swint [2], Tal Sneh [1], May E. Kim [2], Aaron D. Leu [3], Patrick Callahan [2], Thomas Mahony [2], Gavin N. West [1], Cheryl Sorace-Agaskar [2], Dave Kharas [2], Robert McConnell [2], Colin D. Bruzewicz [2], Isaac L. Chuang [1], Jelena Notaros [1], John Chiaverini [1,2]

Abstract

Trapped ions provide a highly controlled platform for quantum sensors, clocks, simulators, and computers, all of which depend on cooling ions close to their motional ground state. Existing methods like Doppler, resolved sideband, and dark resonance cooling balance trade-offs between the final temperature and cooling rate. A traveling polarization gradient has been shown to cool multiple modes quickly and in parallel, but utilizing a stable polarization gradient can achieve lower ion energies, while also allowing more tailorable light-matter interactions in general. In this paper, we demonstrate cooling of a trapped ion below the Doppler limit using a phase-stable polarization gradient created using trap-integrated photonic devices. At an axial frequency of $2π\cdot1.45~ \rm MHz$ we achieve $\langle n \rangle = 1.3 \pm 1.1$ in $500~μ\rm s$ and cooling rates of ${\sim}0.3 \, \rm quanta/μs$. We examine ion dynamics under different polarization gradient phases, detunings, and intensities, showing reasonable agreement between experimental results and a simple model. Cooling is fast and power-efficient, with improved performance compared to simulated operation under the corresponding running wave configuration.

High-Fidelity Ion State Detection Using Trap-Integrated Avalanche Photodiodes

David Reens [1], Michael Collins [1], Joseph Ciampi [1], Dave Kharas [1], Brian F. Aull [1], Kevan Donlon [1], Colin D. Bruzewicz [1], Bradley Felton [1], Jules Stuart [1,2], Robert J. Niffenegger [1], Philip Rich [1,2], Danielle Braje [1], Kevin K. Ryu [1], John Chiaverini [1,2], Robert McConnell [1]

Abstract

Integrated technologies greatly enhance the prospects for practical quantum information processing and sensing devices based on trapped ions. High-speed and high-fidelity ion state readout is critical for any such application. Integrated detectors offer significant advantages for system portability and can also greatly facilitate parallel operations if a separate detector can be incorporated at each ion-trapping location. Here we demonstrate ion quantum state detection at room temperature utilizing single-photon avalanche diodes (SPADs) integrated directly into the substrate of silicon ion trapping chips. We detect the state of a trapped $^{88}\text{Sr}^{+}$ ion via fluorescence collection with the SPAD, achieving $99.92(1)\%$ average fidelity in 450 $μ$s, opening the door to the application of integrated state detection to quantum computing and sensing utilizing arrays of trapped ions.

Integrated multi-wavelength control of an ion qubit

Robert J. Niffenegger, Jules Stuart, Cheryl Sorace-Agaskar, Dave Kharas, Suraj Bramhavar, Colin D. Bruzewicz, William Loh, Ryan T. Maxson, Robert McConnell, David Reens, Gavin N. West, Jeremy M. Sage, John Chiaverini

Abstract

Monolithic integration of control technologies for atomic systems is a promising route to the development of quantum computers and portable quantum sensors. Trapped atomic ions form the basis of high-fidelity quantum information processors and high-accuracy optical clocks. 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 chip 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-fiber 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 toward the complete, individual control of larger numbers of ions in quantum information processing systems.