Probing the loss origins of ultra-smooth $\mathrm{Si_3N_4}$ integrated photonic waveguides
Martin H. P. Pfeiffer, Junqiu Liu, Arslan S. Raja, Tiago Morais,, Bahareh Ghadiani, and Tobias J. Kippenberg

TL;DR
This paper demonstrates ultra-smooth silicon nitride waveguides with record low losses and high Q factors, revealing metal impurities as a key absorption loss source, advancing integrated nonlinear photonics.
Contribution
It introduces a novel fabrication process combining photonic Damascene and reflow techniques to achieve unprecedented waveguide smoothness and low losses.
Findings
Record mean Q factors > 5 million in Si3N4 microresonators.
Metal impurity related absorption identified as a significant loss source.
Systematic analysis differentiates scattering and absorption losses.
Abstract
On-chip optical waveguides with low propagation losses and precisely engineered group velocity dispersion (GVD) are important to nonlinear photonic devices such as soliton microcombs. Yet, despite intensive research efforts, nonlinear integrated photonic platforms still feature propagation losses orders of magnitude higher than in standard optical fiber. The tight confinement and high index contrast of integrated waveguides make them highly susceptible to fabrication induced surface roughness. Therefore, microresonators with ultra-high Q factors are, to date, only attainable in polished bulk crystalline, or chemically etched silica based devices, that pose however challenges for full photonic integration. Here, we demonstrate the fabrication of silicon nitride () waveguides with unprecedentedly smooth sidewalls and tight confinement with record low propagation losses.…
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Taxonomy
TopicsAdvanced Fiber Laser Technologies · Photonic and Optical Devices · Advanced Fiber Optic Sensors
