Surface-Normal Free-Space Beam Projection via Slow-Light Standing Wave Resonances in Extra-Large Near-Zero Index Grating Couplers
Alexander Yulaev, Daron A. Westly, and Vladimir A. Aksyuk

TL;DR
This paper introduces a new class of large-area, surface-normal beam projection grating couplers that leverage slow-light standing wave resonances in near-zero index structures, enabling efficient, broad, and tunable free-space emission.
Contribution
The authors develop a scalable inverse design method for large-area grating couplers, discovering a novel slow-light resonance mechanism for vertical free-space emission with high efficiency.
Findings
Achieved 70% theoretical conversion efficiency.
Experimentally demonstrated ~90 μm Gaussian beam at 780 nm.
Validated the design's scalability and physical understandability.
Abstract
On-chip grating couplers directly connect photonic circuits to free-space light. The commonly used photonic gratings have been specialized for small areas, specific intensity profiles and non-vertical beam projection. This falls short of the precise and flexible wavefront control over large beam areas needed to empower emerging integrated miniaturized optical systems that leverage volumetric light matter interactions, including trapping, cooling, and interrogation of atoms, bio- and chemi- sensing and complex free-space interconnect. The large coupler size challenges general inverse design techniques, and solutions obtained by them are often difficult to physically understand and generalize. Here by posing the problem to a carefully constrained computational inverse design algorithm capable of large area structures, we discover a qualitatively new class of grating couplers. The…
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Taxonomy
TopicsPhotonic and Optical Devices · Photonic Crystals and Applications · Advanced Fiber Laser Technologies
