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DOE OSTI · 1887306

Monolithic Kerr and electro-optic hybrid microcombs

Abstract

Microresonator-based soliton generation promises chip-scale integration of optical frequency combs for applications spanning from time keeping to frequency synthesis. Access to the soliton repetition rate is a prerequisite for those applications. While miniaturized cavities harness Kerr nonlinearity and enable terahertz soliton repetition rates, such high rates are not amenable to direct electronic detection. Here, we demonstrate hybrid Kerr and electro-optic microcombs using a lithium niobate thin film that exhibits both Kerr and Pockels nonlinearities. By interleaving the high-repetition-rate Kerr soliton comb with the low-repetition-rate electro-optic comb on the same waveguide, wide Kerr soliton mode spacing is divided within a single chip, allowing for direct electronic detection and feedback control of the soliton repetition rate. Our work establishes an integrated approach to electronically access terahertz solitons, paving the way for building chip-scale referenced comb sources.

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BibTeXRIS

Gong, Zheng (ORCID:0000000301704870), Shen, Mohan, Lu, Juanjuan (ORCID:0000000319389119), Surya, Joshua B. (ORCID:0000000212321384), Tang, Hong X. (ORCID:0000000153742137). 2022-09-14. Monolithic Kerr and electro-optic hybrid microcombs. https://doi.org/10.1364/optica.462055

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