Maximizing Archimedes spiral packing density area

Author:

Almutairi Dhaifallah1ORCID,Alshamrani Naif1,Ingram Andrew,Grieco Andrew,Fainman Yeshaiahu

Affiliation:

1. King Abdulaziz City for Science and Technology (KACST)

Abstract

In this paper, we experimentally demonstrate a broadband Archimedes spiral delay line with high packing density on a silicon photonic platform. This high density is achieved by optimizing the gap between the adjacent waveguides (down to sub-micron scale) in the spiral configuration. However, care must be taken to avoid evanescent coupling, the presence of which will cause the spiral to behave as a novel type of distributed spiral resonator. To this end, an analytical model of the resonance phenomenon was developed for a simple spiral. Moreover, it is demonstrated that this distributed spiral resonator effect can be minimized by ensuring that adjacent waveguides in the spiral configuration have different propagation constants (β). Experimental validations were accomplished by fabricating and testing multiple spiral waveguides with varying lengths (i.e., 0.4, 0.8, and 1.4 mm) and separation gaps (i.e., 300 and 150 nm). Finally, a Linear Density Figure of Merit (LDFM) is introduced to evaluate the packing efficiency of various spiral designs in the literature. In this work, the optimum experimental design with mitigated resonance had a length of 1.4mm and occupied an area of 60 × 60µm, corresponding to an LDFM of 388km-1.

Funder

Defense Advanced Research Projects Agency

Office of Naval Research; National Science Foundation

Army Research Office; San Diego Nanotechnology Infrastructure (SDNI) supported by the NSF National Nanotechnology Coordinated Infrastructure

Quantum Materials for Energy Efficient Neuromorphic Computing-an Energy Frontier Research Center funded by the U.S. Department of Energy (DOE) Office of Science

Basic Energy Sciences

LEED: A Lightwave Energy-Efficient Datacenter funded by the Advanced Research Projects Agency-Energy

Cymer Corporation.

Publisher

Optica Publishing Group

Subject

Atomic and Molecular Physics, and Optics

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