Design for quality: reconfigurable flat optics based on active metasurfaces

Author:

Shalaginov Mikhail Y.1,Campbell Sawyer D.2,An Sensong3,Zhang Yifei1,Ríos Carlos1,Whiting Eric B.2ORCID,Wu Yuhao2,Kang Lei2ORCID,Zheng Bowen3,Fowler Clayton3,Zhang Hualiang3,Werner Douglas H.2,Hu Juejun14,Gu Tian4ORCID

Affiliation:

1. Department of Materials Science & Engineering , Massachusetts Institute of Technology , Cambridge , MA 02139 , USA

2. Department of Electrical Engineering , Pennsylvania State University , University Park , PA 16802 , USA

3. Department of Electrical & Computer Engineering , University of Massachusetts Lowell , Lowell , MA 01854 , USA

4. Materials Research Laboratory , Massachusetts Institute of Technology , Cambridge , MA 02139 , USA

Abstract

Abstract Optical metasurfaces, planar subwavelength nanoantenna arrays with the singular ability to sculpt wavefront in almost arbitrary manners, are poised to become a powerful tool enabling compact and high-performance optics with novel functionalities. A particularly intriguing research direction within this field is active metasurfaces, whose optical response can be dynamically tuned postfabrication, thus allowing a plurality of applications unattainable with traditional bulk optics. Designing reconfigurable optics based on active metasurfaces is, however, presented with a unique challenge, since the optical quality of the devices must be optimized at multiple optical states. In this article, we provide a critical review on the active meta-optics design principles and algorithms that are applied across structural hierarchies ranging from single meta-atoms to full meta-optical devices. The discussed approaches are illustrated by specific examples of reconfigurable metasurfaces based on optical phase-change materials.

Funder

Penn State MRSEC, Center for Nanoscale Science

Defense Advanced Research Projects Agency

Publisher

Walter de Gruyter GmbH

Subject

Electrical and Electronic Engineering,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials,Biotechnology

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