Inelastic electron-light scattering is a powerful tool for investigating optical properties on the nanoscale in an ultrafast transmission electron microscope. Combining electron microscopy with integrated photonics, the requirement of pulsed laser and electron sources can be overcome. In this talk, we demonstrate the spatial and spectral characterization of the intracavity field of a photonic chip-based, high-Q silicon nitride microresonator utilizing free electron-light interaction. By combining optical and electron spectroscopies, we moreover probe the emergence of various nonlinear intracavity states. This novel combination of nonlinear integrated photonics and electron microscopy promises new schemes in electron beam manipulation as well as electron-based probing of optical microresonator states.
In this talk, we establish chip-based integrated silicon nitride photonics as a platform for experiments on the interactions between free electrons and light. Placing the fibre-coupled microresonators in a transmission electron microscope, we observe a quantised loss of energy for electrons passing the waveguide in an aloof geometry and inelastically scattering off the initially empty cavity modes while generating photons. Coincidence measurements performed on both particles reveal the common origin of these correlated electron-photon pairs, while post-selection allows for enhanced imaging of the resonator’s optical modes and promises applications as a high-fidelity heralded photon Fock state source.
We review our recent experiment on the Terabit-class coherent optical communication using a photonics integrated circuit-based optical amplifier. The 25.6-Tb/s 16-channel wavelength-division multiplexed (WDM) transmission (over 81-km fiber) proved the potential of such on-chip amplification for future coherent applications.
Here we establish a platform for efficient electron-photon pair generation by integrating a photonic chip-based silicon nitride microresonator into a transmission electron microscope. The free electrons passing the resonator scatter inelastically with the empty optical modes, leading to a quantized electron-energy loss as well as the generation of cavity photons.
The temporal correlation of their detection demonstrates the generation of electron-photon pairs. Selection of these pairs allows further analysis of the generation process, as well as the usage of the platform as a high-fidelity single-photon or single-electron source. This promises new experimental capabilities in free-electron quantum optics.
Inelastic electron-light scattering between electrons and optical modes renders ultrafast transmission electron microscopes an ideal platform for investigating optical properties on the nanoscale. Building on this technique, we demonstrate the spatial and spectral characterization of the intracavity field of a photonic chip-based, high-Q silicon nitride microresonator by means of free electron light interaction. By combining optical and electron spectroscopies, we probe the emergence of various nonlinear intracavity states, including dissipative Kerr solitons. This novel combination of nonlinear integrated photonics and electron microscopy promises new schemes in electron beam manipulation as well as electron-based probing of optical microresonator states.
Erbium-doped fiber amplifiers have revolutionized long-haul optical communications and laser technology. Erbium ions could provide a basis for efficient optical amplification in photonic integrated circuits. We demonstrate a Si3N4 photonic integrated circuit–based erbium amplifier reaching > 100 mW output power and > 30 dB gain – comparable with commercial fiber amplifiers. Moreover, we will show that endowing Si3N4 photonic integrated circuits with Erbium-based optical gain opens the door to the miniaturization of high-performance fiber-based lasers on a chip.
Advancing quantum information and communication requires the control of quantum correlations in complementary degrees of freedom. In this work, we generate electron-photon pair states via inelastic scattering of free electrons at a high-Q photonic-chip-based microresonator. In analogy to spontaneous parametric down-conversion, time- and energy-resolved detection of both particles enables various heralding schemes. We experimentally characterize this new heralded source of single photons and free electrons. Ultimately, these results underpin the recent progress in free-electron quantum optics, promising electron-photon entanglement, tailored photon Fock states, and quantum-enhanced electron imaging.
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