We propose and demonstrate a protocol for high-fidelity indirect readout of trapped ion hyperfine qubits, where the state of a $^9\text{Be}^+$ qubit ion is mapped to a $^{25}\text{Mg}^+$ readout ion using laser-driven Raman transitions. By partitioning the $^9\text{Be}^+$ ground state hyperfine manifold into two subspaces representing the two qubit states and choosing appropriate laser parameters, the protocol can be made robust to spontaneous photon scattering errors on the Raman transitions, enabling repetition for increased readout fidelity. We demonstrate combined readout and back-action errors for the two subspaces of $1.2^{+1.1}_{-0.6} \times 10^{-4}$ and $0^{+1.9}_{-0} \times 10^{-5}$ with 68% confidence while avoiding decoherence of...
Two-qubit gates are a fundamental constituent of a quantum computer and typically its most challengi...
Manipulating individual trapped ions at the single quantum level has become standard practice in rad...
We demonstrate laser-driven two-qubit and single-qubit logic gates with fidelities 99.9(1)% and 99.9...
We demonstrate single-shot qubit readout with a fidelity sufficient for fault-tolerant quantum compu...
We demonstrate single-shot qubit readout with a fidelity sufficient for fault-tolerant quantum compu...
This thesis describes experimental demonstrations of high-fidelity readout of trapped ion quantum bi...
One of the most effective ways to advance the performance of quantum computers and quantum sensors i...
This thesis describes experimental demonstrations of high-fidelity readout of trapped ion quantum bi...
This thesis describes experimental demonstrations of high-fidelity readout of trapped ion quantum bi...
We analyze the error in trapped-ion, hyperfine qubit, quantum gates due to spontaneous scattering of...
We present a method for achieving high fidelity state preparation and measurement (SPAM) using trapp...
Creative Commons Attribution-Noncommercial License The trapped atomic ion qubits feature desirable p...
<p>The trapped atomic ion qubits feature desirable properties for use in a quantum computer such as ...
<p>Trapped ion systems are the leading candidate for quantum information processing because many of ...
Hyperfine atomic states are among the most promising candidates for qubit encoding in quantum infor...
Two-qubit gates are a fundamental constituent of a quantum computer and typically its most challengi...
Manipulating individual trapped ions at the single quantum level has become standard practice in rad...
We demonstrate laser-driven two-qubit and single-qubit logic gates with fidelities 99.9(1)% and 99.9...
We demonstrate single-shot qubit readout with a fidelity sufficient for fault-tolerant quantum compu...
We demonstrate single-shot qubit readout with a fidelity sufficient for fault-tolerant quantum compu...
This thesis describes experimental demonstrations of high-fidelity readout of trapped ion quantum bi...
One of the most effective ways to advance the performance of quantum computers and quantum sensors i...
This thesis describes experimental demonstrations of high-fidelity readout of trapped ion quantum bi...
This thesis describes experimental demonstrations of high-fidelity readout of trapped ion quantum bi...
We analyze the error in trapped-ion, hyperfine qubit, quantum gates due to spontaneous scattering of...
We present a method for achieving high fidelity state preparation and measurement (SPAM) using trapp...
Creative Commons Attribution-Noncommercial License The trapped atomic ion qubits feature desirable p...
<p>The trapped atomic ion qubits feature desirable properties for use in a quantum computer such as ...
<p>Trapped ion systems are the leading candidate for quantum information processing because many of ...
Hyperfine atomic states are among the most promising candidates for qubit encoding in quantum infor...
Two-qubit gates are a fundamental constituent of a quantum computer and typically its most challengi...
Manipulating individual trapped ions at the single quantum level has become standard practice in rad...
We demonstrate laser-driven two-qubit and single-qubit logic gates with fidelities 99.9(1)% and 99.9...