High‐Order Nonlinear Frequency Conversion in Transparent Conducting Oxide Thin Films

Author:

Jaffray Wallace1,Belli Federico1,Stengel Sven1,Vincenti Maria Antonietta2,Scalora Michael3,Clerici Matteo4,Shalaev Vladimir M5,Boltasseva Alexandra5,Ferrera Marcello1ORCID

Affiliation:

1. Institute of Photonics and Quantum Sciences Heriot‐Watt University, SUPA Edinburgh EH14 4AS United Kingdom

2. Department of Information Engineering University of Brescia Via Branze 38 Brescia 25133 Italy

3. FCDD‐AMT‐MGR, DEVCOM AvMC Charles M. Bowden Research Center, Redstone Arsenal AL 35898‐5000 USA

4. Dipartimento di Scienza e Alta Tecnologia Università degli Studi dell'Insubria Via Valleggio 11 Como 21100 Italy

5. Elmore Family School of Electrical and Computer Engineering & Birck Nanotechnology Center, Purdue University 1205 West State St. West Lafayette IN 47906 USA

Abstract

AbstractThe study of conductive oxides has gained momentum within the photonics community due to their unique linear and nonlinear optical properties. Despite recent experiments reporting on high harmonic generation from thin films, the optical/electronic behavior of these compounds at the nanoscale is still not fully understood due to the lack of a suitable theoretical model. In the present work, aluminum zinc oxide is excited near its epsilon‐near‐zero crossing point using incident femtosecond pulses having peak power densities in the 1 TW cm−2 range. A relatively efficient frequency up‐conversion including even and odd harmonics up to the seventh order is observed. A hydrodynamic‐Maxwell theoretical approach is adopted, capable of simultaneously taking into account linear and nonlinear dispersions, nonlocal effects, surface, magnetic, and bulk nonlinearities in a spectral region that spans over two and a half octaves from the UV to the NIR region. The study enables a deeper understanding of the fundamental material parameters regulating optical nonlinearities, providing important insights to engineer this class of materials for applications in sensing, ultra‐fast physics, and spectroscopy.

Funder

Engineering and Physical Sciences Research Council

European Office of Aerospace Research and Development

North Atlantic Treaty Organization

Ministero dell'Università e della Ricerca

Royal Academy of Engineering

Royal Society

U.S. Department of Energy

Air Force Office of Scientific Research

Publisher

Wiley

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