Ultrafast electro-optic time-frequency fractional Fourier imaging at the single-photon level

被引:3
|
作者
Lipka, Michal [1 ,2 ]
Parniak, Michal [1 ,2 ]
机构
[1] Univ Warsaw, Ctr New Technol, Ctr Quantum Opt Technol, Banacha 2C, PL-02097 Warsaw, Poland
[2] Univ Warsaw, Fac Phys, Pasteura 5, PL-02093 Warsaw, Poland
关键词
PULSE STRETCHER; TRANSFORM; DUALITY; LENS;
D O I
10.1364/OE.507911
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
The Fractional Fourier Transform (FRT) corresponds to an arbitrary-angle rotation in the phase space, e.g., the time-frequency (TF) space, and generalizes the fundamentally important Fourier Transform. FRT applications range from classical signal processing (e.g., time-correlated noise optimal filtering) to emerging quantum technologies (e.g., super-resolution TF sensing) which rely on or benefit from coherent low-noise TF operations. Here a versatile low-noise single-photon-compatible implementation of the FRT is presented. Optical TF FRT can be synthesized as a series of a spectral disperser, a time-lens, and another spectral disperser. Relying on the state-of-the-art electro-optic modulators (EOM) for the time-lens, our method avoids added noise inherent to the alternatives based on non-linear optical interactions (such as wave-mixing, cross-phase modulation, or parametric processes). Precise control of the EOM-driving radio-frequency signal enables fast all-electronic control of the FRT angle. In the experiment, we demonstrate FRT angles of up to 1.63 rad for pairs of coherent temporally separated 11.5 ps-wide pulses in the near-infrared (800 nm). We observe a good agreement between the simulated and measured output spectra in the bright-light and single-photon-level regimes, and for a range of pulse separations (20 ps to 26.7 ps). Furthermore, a tradeoff is established between the maximal FRT angle and optical bandwidth, with the current setup accommodating up to 248 GHz of bandwidth. With the ongoing progress in EOM on-chip integration, we envisage excellent scalability and vast applications in all-optical TF processing both in the classical and quantum regimes.
引用
收藏
页码:9573 / 9588
页数:16
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