Parallel Multi-Pair Entanglement of Trapped Ion Qubits
ORAL
Abstract
Trapped ions are considered a top contender for realizing a quantum computer, due to their dense qubit-to-qubit connectivity, high gate fidelities, long coherence times, and clean state detection. However, trapped-ion quantum computers offer limited gate speeds in long ion chains. In this talk, we present a novel approach for implementing multiple entangling gates in parallel using pulse shaping, with negligible overhead when compared to a single entangling gate implementation. Our methodology advances gate-pulse synthesis and dramatically simplifies calibration overhead for extended ion chains. These demonstrate parallel gates in a 5-qubit trapped-ion quantum computer, for 1-regular, star, and linear-nearest-neighbor graph patterns, and show clear speed ups over a rudimentary serial implementation.
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Presenters
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Matthew Diaz
University of Maryland College Park
Authors
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Matthew Diaz
University of Maryland College Park
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Masoud Mohammadi-Arzanagh
University Of Maryland
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Yingyue Zhu
University of Maryland College Park
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Xingxin Liu
University of Maryland College Park
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Anton Trong Than
University of Maryland College Park
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Norbert M Linke
Duke University
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Alaina M Green
University of Maryland College Park
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Yunseong Nam
University of Maryland College Park