Towards compact phase-matched and waveguided nonlinear optics in atomically layered semiconductors
Xinyi Xu, Chiara Trovatello, Fabian Mooshammer, Yinming Shao, Shuai, Zhang, Kaiyuan Yao, Dmitri N. Basov, Giulio Cerullo, P. James Schuck

TL;DR
This paper demonstrates highly efficient, compact nonlinear optical frequency conversion in 3R-stacked MoS2, revealing its potential for integrated photonics and quantum applications through detailed characterization of its nonlinear properties and coherence lengths.
Contribution
First measurement of in-plane SHG coherence length in 3R-MoS2 and demonstration of tunable SHG in waveguide geometry, advancing the understanding of TMDs for nonlinear photonics.
Findings
Record nonlinear enhancement >10^4 times compared to monolayer
Similar conversion efficiencies to lithium niobate with much shorter propagation lengths
Broadly tunable SHG in waveguide geometry
Abstract
Nonlinear frequency conversion provides essential tools for light generation, photon entanglement, and manipulation. Transition metal dichalcogenides (TMDs) possess huge nonlinear susceptibilities and 3R-stacked TMD crystals further combine broken inversion symmetry and aligned layering, representing ideal candidates to boost the nonlinear optical gain with minimal footprint. Here, we report on the efficient frequency conversion of 3R-MoS2, revealing the evolution of its exceptional second-order nonlinear processes along the ordinary (in-plane) and extraordinary (out-of-plane) directions. By measuring second harmonic generation (SHG) of 3R-MoS2 with various thickness - from monolayer (~0.65 nm) to bulk (~1 {\mu}m) - we present the first measurement of the in-plane SHG coherence length (~530 nm) at 1520 nm and achieve record nonlinear optical enhancement from a van der Waals material,…
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