TY - JOUR
T1 - Photonic Damascene process for integrated high-Q microresonator based nonlinear photonics
AU - Pfeiffer, Martin H. P.
AU - Kordts, Arne
AU - Brasch, Victor
AU - Zervas, Michael
AU - Geiselmann, Michael
AU - Jost, John D.
AU - Kippenberg, Tobias J.
PY - 2016
Y1 - 2016
N2 - High confinement, integrated silicon nitride (SiN) waveguides have recently emerged as an attractive platform for on-chip nonlinear optical devices. The fabrication of high-Q SiN microresonators with anomalous group velocity dispersion has enabled broadband nonlinear optical frequency comb generation. Such frequency combs have been successfully applied in coherent communication and ultrashort pulse generation. However, the reliable fabrication of high confinement waveguides from stoichiometric, high stress SiN remains challenging. Here we present a novel photonic Damascene fabrication process enabling the use of substrate topography for stress control and thin film crack prevention. With close to unity sample yield we fabricate microresonators with 1.35 mu m thick waveguides and optical Q-factors of 3.7 x 106 and demonstrate single temporal dissipative Kerr soliton based coherent optical frequency comb generation. Our newly developed process is also interesting for other material platforms, photonic integration, and mid-infrared Kerr comb generation. (C) 2016 Optical Society of America
AB - High confinement, integrated silicon nitride (SiN) waveguides have recently emerged as an attractive platform for on-chip nonlinear optical devices. The fabrication of high-Q SiN microresonators with anomalous group velocity dispersion has enabled broadband nonlinear optical frequency comb generation. Such frequency combs have been successfully applied in coherent communication and ultrashort pulse generation. However, the reliable fabrication of high confinement waveguides from stoichiometric, high stress SiN remains challenging. Here we present a novel photonic Damascene fabrication process enabling the use of substrate topography for stress control and thin film crack prevention. With close to unity sample yield we fabricate microresonators with 1.35 mu m thick waveguides and optical Q-factors of 3.7 x 106 and demonstrate single temporal dissipative Kerr soliton based coherent optical frequency comb generation. Our newly developed process is also interesting for other material platforms, photonic integration, and mid-infrared Kerr comb generation. (C) 2016 Optical Society of America
U2 - 10.1364/OPTICA.3.000020
DO - 10.1364/OPTICA.3.000020
M3 - Journal article
SN - 2334-2536
VL - 3
SP - 20
EP - 25
JO - Optica
JF - Optica
IS - 1
ER -