Rachel Noek

Single qubit manipulation in a microfabricated surface electrode ion trap

Emily Mount [1], So-Young Baek [1], Matthew Blain [2], Daniel Stick [2], Daniel Gaultney [1], Stephen Crain [1], Rachel Noek [1], Taehyun Kim [1], Peter Maunz [1], Jungsang Kim [1]

Abstract

We trap individual $^{171}$Yb$^+$ ions in a surface trap microfabricated on a silicon substrate, and demonstrate a complete set of high fidelity single qubit operations for the hyperfine qubit. Trapping times exceeding 20 minutes without laser cooling, and heating rates as low as 0.8(0.1) quanta/ms indicate stable trapping conditions in these microtraps. A coherence time of more than one second, high fidelity qubit state detection and single qubit rotations are demonstrated.

High Speed, High Fidelity Detection of an Atomic Hyperfine Qubit

Rachel Noek [1], Geert Vrijsen [1], Daniel Gaultney [1], Emily Mount [1], Taehyun Kim [1], Peter Maunz [1,2], Jungsang Kim [1]

Abstract

Fast and efficient detection of the qubit state in trapped ion quantum information processing is critical for implementing quantum error correction and performing fundamental tests such as a loophole-free Bell test. In this work we present a simple qubit state detection protocol for a $^{171}$Yb$^+$ hyperfine atomic qubit trapped in a microfabricated surface trap, enabled by high collection efficiency of the scattered photons and low background photon count rate. We demonstrate average detection times of 10.5, 28.1 and 99.8\,$\upmu$s, corresponding to state detection fidelities of 99%, 99.85(1)% and 99.915(7)%, respectively.