Publications by Year: 2022

2022
Sulimany, K., Tziperman, O., Bromberg, Y. & Gat, O. Soliton-pair dynamical transition in mode-locked lasers. Optica 9, 11, 1260–1267 (2022). Publisher's VersionAbstract
The self-assembly of solitons into nonlinear superpositions of multiple solitons plays a key role in the complex dynamics of mode-locked lasers. These states are extensively studied in light of their potential technological applications and their resemblance to molecules that offer opportunities for studying molecular interactions. However, progress along these endeavors is still held back by the lack of effective means to manipulate multi-soliton waveforms. Here we show it is possible to control inter-soliton interactions in mode-locked fiber lasers using a single control knob, the laser gain. We experimentally demonstrate a 2-orders-of-magnitude reduction in the separation of bound soliton pairs by sweeping the pumping current of the laser. The sweep induces a dynamical transition between a phase-incoherent loosely bound state and a phase-locked tightly bound state. Using numerical simulations and a simplified analytical model, we find that the dynamical transition is governed by noise-mediated interactions, which can be switched between repulsion and attraction. The discovery of a single control parameter that sets the nature of the inter-soliton interaction points to possibilities for controlling multi-soliton states for optical communication systems and pump-probe spectroscopy.
Lib, O. & Bromberg, Y. Quantum light in complex media and its applications. Nat. Phys. 18, 986-993 (2022). Publisher's Version
Lib, O. & Bromberg, Y. Thermal biphotons. APL Photonics 7, 3, 031301 (2022). Publisher's Version
Sulimany, K. & Bromberg, Y. All-fiber source and sorter for multimode correlated photons. NPJ Quantum Inf. 8, 4 (2022). Publisher's VersionAbstract

Photons occupying multiple spatial modes hold a great promise for implementing high-dimensional quantum communication. We use spontaneous four-wave mixing to generate multimode photon pairs in a few-mode fiber. We show the photons are correlated in the fiber mode basis using an all-fiber mode sorter. Our demonstration offers an essential building block for realizing high-dimensional quantum protocols based on standard, commercially available fibers, in an all-fiber configuration.

Lib, O., Sulimany, K. & Bromberg, Y. Processing Entangled Photons in High Dimensions with a Programmable Light Converter. Phys. Rev. Applied 18, 014063 (2022). Publisher's Version
Gigan, S., et al. Roadmap on Wavefront Shaping and deep imaging in complex media. Journal of Physics: Photonics 4, 4, 042501 (2022). Publisher's Version