Ramachandran Ajan, Wilbur Grant R, Mathew Reuble, Mason Allister, O'Neal Sabine, Deppe Dennis G, Hall Kimberley C
Department of Physics and Atmospheric Science, Dalhousie University, Halifax, NS, B3H 4R2, Canada.
The College of Optics and Photonics, University of Central Florida, Orlando, FL, 32816-2700, USA.
Sci Rep. 2024 Mar 4;14(1):5356. doi: 10.1038/s41598-024-55634-0.
Deterministic sources of quantum light (i.e. single photons or pairs of entangled photons) are required for a whole host of applications in quantum technology, including quantum imaging, quantum cryptography and the long-distance transfer of quantum information in future quantum networks. Semiconductor quantum dots are ideal candidates for solid-state quantum emitters as these artificial atoms have large dipole moments and a quantum confined energy level structure, enabling the realization of single photon sources with high repetition rates and high single photon purity. Quantum dots may also be triggered using a laser pulse for on-demand operation. The naturally-occurring size variations in ensembles of quantum dots offers the potential to increase the bandwidth of quantum communication systems through wavelength-division multiplexing, but conventional laser triggering schemes based on Rabi rotations are ineffective when applied to inequivalent emitters. Here we report the demonstration of the simultaneous triggering of >10 quantum dots using adiabatic rapid passage. We show that high-fidelity quantum state inversion is possible in a system of quantum dots with a 15 meV range of optical transition energies using a single broadband, chirped laser pulse, laying the foundation for high-bandwidth, multiplexed quantum networks.
量子技术的众多应用,包括量子成像、量子密码学以及未来量子网络中的量子信息长距离传输,都需要确定性的量子光源(即单光子或纠缠光子对)。半导体量子点是固态量子发射器的理想候选者,因为这些人造原子具有大的偶极矩和量子限制能级结构,能够实现具有高重复率和高单光子纯度的单光子源。量子点也可以使用激光脉冲触发以实现按需操作。量子点集合中自然存在的尺寸变化提供了通过波分复用增加量子通信系统带宽的潜力,但是基于拉比旋转的传统激光触发方案应用于不等价发射器时无效。在此,我们报告了使用绝热快速通过同时触发超过10个量子点的演示。我们表明,使用单个宽带啁啾激光脉冲,在光学跃迁能量范围为15毫电子伏特的量子点系统中实现高保真量子态反转是可能的,这为高带宽、复用量子网络奠定了基础。