Lintao Li

88Sr+ ion trap apparatus for generating 408 nm photons

Jianlong Lin [1], Mari Cieszynski [2], William Christopherson [2], Darman Khan [2], Lintao Li [2], Elizabeth Goldschmidt [2], Brian DeMarco [2]

Abstract

We describe a 88Sr+ ion trap apparatus with the capability to produce high-quality 408 nm photons aimed at distributed quantum computing and networking applications. This instrument confines ion chains using a surface electrode trap with a two-dimensional magneto-optical trap as an atomic source. Several laser systems spanning 400-1100 nm are used to achieve high fidelity state preparation and readout. Photons are produced via the decay of an exited state, which is accessed using a custom 408 nm laser system that produces 150 ps optical pulses using non-linear photonics. We demonstrate single photon production through a Hanbury Brown-Twiss measurement for one to six ions.

An architecture for two-qubit encoding in neutral ytterbium-171 atoms

Zhubing Jia [1], William Huie [1], Lintao Li [1], Won Kyu Calvin Sun [1], Xiye Hu [1], Aakash [1], Healey Kogan [1], Abhishek Karve [1], Jong Yeon Lee [1,2], Jacob P. Covey [1]

Abstract

We present an architecture for encoding two qubits within the optical "clock" transition and nuclear spin-1/2 degree of freedom of neutral ytterbium-171 atoms. Inspired by recent high-fidelity control of all pairs of states within this four-dimensional ququart space, we present a toolbox for intra-ququart (single atom) one- and two-qubit gates, inter-ququart (two atom) Rydberg-based two- and four-qubit gates, and quantum nondemolition (QND) readout. We then use this toolbox to demonstrate the advantages of the ququart encoding for entanglement distillation and quantum error correction which exhibit superior hardware efficiency and better performance in some cases since fewer two-atom (Rydberg-based) operations are required. Finally, leveraging single-state QND readout in our ququart encoding, we present a unique approach to studying interactive circuits as well as to realizing a symmetry protected topological phase of a spin-1 chain with a shallow, constant-depth circuit. These applications are all within reach of recent experiments with neutral ytterbium-171 atom arrays or with several trapped ion species.