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Demonstration of Erasure Conversion in a Molecular Tweezer Array
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Programmable optical tweezer arrays of molecules are an emerging platform for quantum simulation and quantum information science. For these applications, reducing and mitigating errors that arise during initial state preparation and subsequent evolution remain major challenges. In this paper, we present work on site-resolved detection of internal state errors and quantum erasures, which are qubit errors with known locations. First, using a new site-resolved detection scheme, we demonstrate robust and enhanced tweezer array preparation fidelities. This enables creating molecular arrays with low defect rates, opening the door to high-fidelity simulation of quantum many-body systems. Second, for the first time in molecules, we demonstrate mid-circuit detection of erasures using a composite detection scheme that minimally affects error-free qubits. We also demonstrate mid-circuit conversion of blackbody-induced errors into detectable erasures. Our demonstration of erasure conversion, which has been shown to significantly reduce overheads for fault-tolerant quantum error correction, could be useful for quantum information processing in molecular tweezer arrays.
Forward citations
Cited by 3 Pith papers
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Erasure Minesweeper: exploring hybrid-erasure surface code architectures for efficient quantum error correction
A hybrid surface code with erasure qubits placed in central rows and columns achieves better logical error rates per transmon than all-standard or all-erasure designs for certain near-term transmon budgets.
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Universal gates for a metastable qubit in strontium-88
A universal gate set with erasure conversion is demonstrated on the metastable fine-structure qubit in strontium-88, along with a state-resolved detection scheme.
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A high optical access cryogenic system for Rydberg atom arrays with a 3000-second trap lifetime
A cryogenic optical tweezer system with a 45-50 K cold box and room-temperature high-NA objective demonstrates a 3000 s atom trap lifetime, low imaging and cooling losses, and coherent microwave and Rydberg control of...
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