Affiliation:
1. Columbia University
2. Cornell University
3. Institute for Photonics and Advanced Sensing (IPAS) and School of Physical Sciences, University of Adelaide
4. National Institute of Standards and Technology
5. Institut für Physik, Humboldt-Universität zu Berlin
Abstract
Techniques to control the spectro-temporal properties of quantum states
of light at ultrafast time scales are crucial for numerous
applications in quantum information science. In this work, we report
an all-optical time lens for quantum signals based on Bragg-scattering
four-wave mixing with picosecond resolution. Our system achieves a
temporal magnification factor of 158 with single-photon level inputs,
which is sufficient to overcome the intrinsic timing jitter of
superconducting nanowire single-photon detectors. We demonstrate
discrimination of two terahertz-bandwidth, single-photon-level pulses
with 2.1 ps resolution (electronic jitter corrected resolution of
1.25 ps). We draw on elegant tools from Fourier optics to further show
that the time-lens framework can be extended to perform complex
unitary spectro-temporal transformations by imparting optimized
temporal and spectral phase profiles to the input waveforms. Using
numerical optimization techniques, we show that a four-stage
transformation can realize an efficient temporal mode sorter that
demultiplexes 10 Hermite–Gaussian (HG) modes. Our time-lens-based
framework represents a new toolkit for arbitrary spectro-temporal
processing of single photons, with applications in temporal mode
quantum processing, high-dimensional quantum key distribution,
temporal mode matching for quantum networks, and quantum-enhanced
sensing with time-frequency entangled states.
Funder
National Science Foundation
Australian Research Council
Subject
Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials
Cited by
20 articles.
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