Time-reversed biphoton source of the double-Λ spontaneous four-wave mixing process

IF 5.6 2区 物理与天体物理 Q1 PHYSICS, MULTIDISCIPLINARY Quantum Science and Technology Pub Date : 2025-01-07 DOI:10.1088/2058-9565/ada08f
Wei-Kai Huang, Bongjune Kim, Teng-Jen Shih, Chia-Yu Hsu, Pei-Yu Tu, Tse-Yu Lin, Yong-Fan Chen, Chih-Sung Chuu and Ite A Yu
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Abstract

Utilizing the double-Λ spontaneous four-wave mixing (SFWM) process, the biphoton source generates narrow-linewidth pairs of signal and probe photons. In a medium, the signal photon propagates at nearly the speed of light in a vacuum, while the probe photon propagates as slow light. Typically, signal photons arrive at the detector first and are used as the heralding photons in conventional biphoton sources. In this work, we propose using probe photons as the heralding photons to enhance the heralding probability, an approach that has been overlooked previously. We also investigate a time-reversed double-Λ SFWM biphoton source using heated atomic vapor. Compared with the conventional biphoton source under the same experimental conditions, the time-reversed one exhibits a time-reversed temporal profile with a similar full-width-at-half-maximum linewidth of 3.4 MHz, increased the heralding efficiency by a factor of 5.3, and enhanced the detection rate by 1.3 times. With the time-reversed source, we achieved a heralding probability of 82±6% and a generation rate of (1.8 ± 0.2)× 106 pairs/s, referring to biphotons collected within polarization-maintained single-mode optical fibers. Furthermore, the time-reversed temporal profile is more suitable for quantum memory. Simulation results show that, at an optical depth of 150 (or 50), the storage efficiency of a quantum memory using the time-reversed source can reach 91% (or 81%), compared with 81% (or 67%) using the conventional source. This study demonstrates the significance of using the slow-light photon in biphoton pairs as the heralding photon for quantum operations. We have achieved a biphoton source with high heralding probability, high generation rate, and narrow linewidth in a room-temperature or hot medium.
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双时间反转双光子源-Λ自发四波混频过程
利用双-Λ自发四波混合(SFWM)过程,双光子源产生窄线宽的信号光子对和探测光子对。在介质中,信号光子在真空中以接近光速的速度传播,而探测光子以慢光的速度传播。通常情况下,信号光子首先到达探测器,并在传统双光子源中用作预示光子。在这项工作中,我们提出使用探测光子作为预警光子来提高预警概率,这是一种以前被忽视的方法。我们还研究了一个时间反转的双-Λ SFWM双光子源,使用加热原子蒸汽。与传统双光子源相比,在相同的实验条件下,时间反转的双光子源显示出时间反转的时间轮廓,半最大线宽为3.4 MHz,预示效率提高了5.3倍,检测率提高了1.3倍。使用时间反转光源,我们获得了82±6%的预警概率和(1.8±0.2)× 106对/秒的生成率,这是指在维持偏振的单模光纤中收集的双光子。此外,时间反转的时间剖面更适合于量子存储。仿真结果表明,在光深度为150(或50)时,使用时间反转源的量子存储器的存储效率可以达到91%(或81%),而使用传统源的存储效率为81%(或67%)。本研究证明了在双光子对中使用慢光光子作为量子操作的预示光子的意义。我们已经在室温或热介质中实现了高预示概率、高产生率和窄线宽的双光子源。
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来源期刊
Quantum Science and Technology
Quantum Science and Technology Materials Science-Materials Science (miscellaneous)
CiteScore
11.20
自引率
3.00%
发文量
133
期刊介绍: Driven by advances in technology and experimental capability, the last decade has seen the emergence of quantum technology: a new praxis for controlling the quantum world. It is now possible to engineer complex, multi-component systems that merge the once distinct fields of quantum optics and condensed matter physics. Quantum Science and Technology is a new multidisciplinary, electronic-only journal, devoted to publishing research of the highest quality and impact covering theoretical and experimental advances in the fundamental science and application of all quantum-enabled technologies.
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