Co‐sputtering of A Thin Film Broadband Absorber Based on Self‐Organized Plasmonic Cu Nanoparticles

Author:

Drewes Jonas1,Perdana Nanda2,Rogall Kevin1,Hartig Torge1,Elis Marie3,Schürmann Ulrich34,Pohl Felix1,Abdelaziz Moheb1,Strunskus Thomas14,Kienle Lorenz34,Elbahri Mady5,Faupel Franz14,Rockstuhl Carsten26,Vahl Alexander14ORCID

Affiliation:

1. Department for Materials Science–Chair for Multicomponent Materials Faculty of Engineering Kiel University Kaiserstraße 2 D‐24143 Kiel Germany

2. Institute of Theoretical Solid‐State Physics Karlsruhe Institute of Technology (KIT) 76137 Karlsruhe Germany

3. Department for Materials Science–Synthesis and Real Structure Faculty of Engineering Kiel University Kaiserstraße 2 D‐24143 Kiel Germany

4. Kiel Nano Surface and Interface Science KiNSIS Kiel University Christian‐Albrechts‐Platz 4 D‐24118 Kiel Germany

5. Nanochemistry and Nanoengineering School of Chemical Engineering Department of Chemistry and Materials Science Aalto University Aalto 00076 Finland

6. Institute of Nanotechnology Karlsruhe Institute of Technology (KIT) 76021 Karlsruhe Germany

Abstract

AbstractThe efficient conversion of solar energy to heat is a prime challenge for solar thermal absorbers, and various material classes and device concepts are discussed. One exciting class of solar thermal absorbers are plasmonic broadband absorbers that rely on light absorption thanks to plasmonic resonances sustained in metallic nanoparticles. This work focuses on Cu/Al2O3 plasmonic absorbers, which consist of a thin film stack of a metallic Cu‐mirror, a dielectric Al2O3 spacer, and an Al2O3/Cu‐nanoparticle nanocomposite. This work explores two preparation routes for the Al2O3/Cu‐nanoparticle nanocomposite, which rely on the self‐organization of Cu nanoparticles from sputtered atoms, either in the gas phase (i.e., via gas aggregation source) or on the thin film surface (i.e., via simultaneous co‐sputtering). While in either case, Cu‐Al2O3‐Al2O3/Cu absorbers with a low reflectivity over a broad wavelength regime are obtained, the simultaneous co‐sputtering approach enabled better control over the film roughness and showed excellent agreement with dedicated simulations of the optical properties of the plasmonic absorber using a multi‐scale modeling approach. Upon variation of the thickness and filling factor of the Al2O3/Cu nanocomposite layer, the optical properties of the plasmonic absorbers are tailored, reaching an integrated reflectance down to 0.17 (from 250 to 1600 nm).

Funder

Deutsche Forschungsgemeinschaft

Publisher

Wiley

Subject

Condensed Matter Physics,General Materials Science,General Chemistry

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