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Hauptverfasser: An, En-Teng, Zhang, Hao-Qing, Huang, Yun-Feng, Li, Chuan-Feng, Cui, Jin-Ming
Format: Preprint
Veröffentlicht: 2025
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Online-Zugang:https://arxiv.org/abs/2511.04893
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author An, En-Teng
Zhang, Hao-Qing
Huang, Yun-Feng
Li, Chuan-Feng
Cui, Jin-Ming
author_facet An, En-Teng
Zhang, Hao-Qing
Huang, Yun-Feng
Li, Chuan-Feng
Cui, Jin-Ming
contents Scaling of quantum gates remains a central challenge in quantum information science. Ultrafast gates based on spin-dependent kicks provide a promising approach for trapped-ion systems. However, these gates require laser pulses with both high temporal tunability and stability, which are difficult to achieve with existing pulsed sources. Here, we propose a programmable pulsed source that allows flexible control of pulse intensity, waveform, and phase profiles. This enables precise manipulation of pulse sequences, thereby improving the fidelity of entangling gates. Furthermore, since the pulse parameters can be conveniently tuned, various coherent population-transfer schemes can be implemented adiabatic SDKs, thereby improving both the fidelity and robustness of fast quantum gate. Simulation results show that our programmable pulse system can achieve gate fidelities above 99.99% with strong robustness against variations in pulse intensity and single-photon detuning using stimulated Raman adiabatic rapid passage (STIRARP) protocols.
format Preprint
id arxiv_https___arxiv_org_abs_2511_04893
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Programmable Adiabatic Rapid Passage laser pulses for Ultra-fast Gates on trapped ions
An, En-Teng
Zhang, Hao-Qing
Huang, Yun-Feng
Li, Chuan-Feng
Cui, Jin-Ming
Quantum Physics
Scaling of quantum gates remains a central challenge in quantum information science. Ultrafast gates based on spin-dependent kicks provide a promising approach for trapped-ion systems. However, these gates require laser pulses with both high temporal tunability and stability, which are difficult to achieve with existing pulsed sources. Here, we propose a programmable pulsed source that allows flexible control of pulse intensity, waveform, and phase profiles. This enables precise manipulation of pulse sequences, thereby improving the fidelity of entangling gates. Furthermore, since the pulse parameters can be conveniently tuned, various coherent population-transfer schemes can be implemented adiabatic SDKs, thereby improving both the fidelity and robustness of fast quantum gate. Simulation results show that our programmable pulse system can achieve gate fidelities above 99.99% with strong robustness against variations in pulse intensity and single-photon detuning using stimulated Raman adiabatic rapid passage (STIRARP) protocols.
title Programmable Adiabatic Rapid Passage laser pulses for Ultra-fast Gates on trapped ions
topic Quantum Physics
url https://arxiv.org/abs/2511.04893