Moein Malekakhlagh, Timothy Phung, Daniel Puzzuoli, Kentaro Heya, Neereja Sundaresan, Jason Orcutt
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In particular, by suppressing leakage to a select (resonant) interconnect mode, SATD breaks the speed-limit relation imposed by the qubit-interconnect interaction <math display=\"inline\" overflow=\"scroll\" xmlns=\"http://www.w3.org/1998/Math/MathML\"><mi>g</mi></math>, where instead the operation time is limited by leakage to the adjacent modes, i.e., the free spectral range <math display=\"inline\" overflow=\"scroll\" xmlns=\"http://www.w3.org/1998/Math/MathML\"><msub><mi mathvariant=\"normal\">Δ</mi><mi>c</mi></msub></math> of the interconnect, allowing for fast operations even with weak <math display=\"inline\" overflow=\"scroll\" xmlns=\"http://www.w3.org/1998/Math/MathML\"><mi>g</mi></math>. 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Therefore, adopting a weak coupling, imposed by a multimode interconnect, SATD provides a significant improvement in terms of operation speed and consequently sensitivity to incoherent error.","PeriodicalId":20109,"journal":{"name":"Physical Review Applied","volume":"46 1","pages":""},"PeriodicalIF":3.8000,"publicationDate":"2024-08-02","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Enhanced quantum state transfer and Bell-state generation over long-range multimode interconnects via superadiabatic transitionless driving\",\"authors\":\"Moein Malekakhlagh, Timothy Phung, Daniel Puzzuoli, Kentaro Heya, Neereja Sundaresan, Jason Orcutt\",\"doi\":\"10.1103/physrevapplied.22.024006\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"Achieving high-fidelity direct two-qubit gates over meter-scale quantum interconnects is challenging, in part due to the multimode nature of such systems. 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引用次数: 0
摘要
在米级量子互连上实现高保真直接双量子比特门具有挑战性,部分原因在于此类系统的多模性质。一种替代方案是将本地操作与远程量子态转移或远程纠缠结合起来。在这里,我们从理论上研究了两个远距离量子比特的量子态转移和纠缠生成,这两个量子比特配备了可调的相互作用,通过一个普通的多模互连。我们模拟了绝热通过的超绝热无过渡驱动(SATD)协议的性能,并展示了与标准方法相比的各种有利改进。特别是,通过抑制向选择(共振)互连模式的泄漏,SATD 打破了由量子比特-互连相互作用 g 强加的速度限制关系,运行时间反而受限于向相邻模式的泄漏,即此外,我们还发现了利用这种绝热协议生成贝尔态的多模误差机制,其中,量子比特-互连相互作用的偶数/奇数模依赖性打破了暗态对称性,导致与奇数模的有害绝热重叠随着(g/Δc)2 的增长而增加。因此,采用多模互连施加的弱耦合,SATD 在运行速度和对非相干误差的敏感性方面都有显著改善。
Enhanced quantum state transfer and Bell-state generation over long-range multimode interconnects via superadiabatic transitionless driving
Achieving high-fidelity direct two-qubit gates over meter-scale quantum interconnects is challenging, in part due to the multimode nature of such systems. One alternative scheme is to combine local operations with remote quantum state transfer or remote entanglement. Here, we theoretically study quantum state transfer and entanglement generation for two distant qubits, equipped with tunable interactions, over a common multimode interconnect. We model the performance of the superadiabatic transitionless driving (SATD) protocol for adiabatic passage and demonstrate various favorable improvements over the standard method. In particular, by suppressing leakage to a select (resonant) interconnect mode, SATD breaks the speed-limit relation imposed by the qubit-interconnect interaction , where instead the operation time is limited by leakage to the adjacent modes, i.e., the free spectral range of the interconnect, allowing for fast operations even with weak . Furthermore, we identify a multimode error mechanism for Bell-state generation using such adiabatic protocols, in which the even/odd modal dependence of qubit-interconnect interaction breaks down the dark-state symmetry, leading to detrimental adiabatic overlap with the odd modes growing as . Therefore, adopting a weak coupling, imposed by a multimode interconnect, SATD provides a significant improvement in terms of operation speed and consequently sensitivity to incoherent error.
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