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Self-Assembly of Plasmonic Near-Perfect Absorbers of Light: The Effect of Particle Size
Author(s) -
Gus O. Bonin,
Steven J. Barrow,
Timothy U. Connell,
Ann Roberts,
Anthony S. R. Chesman,
Daniel E. Gómez
Publication year - 2020
Publication title -
the journal of physical chemistry letters
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.563
H-Index - 203
ISSN - 1948-7185
DOI - 10.1021/acs.jpclett.0c02461
Subject(s) - materials science , plasmon , nanotechnology , absorption (acoustics) , nanoparticle , monolayer , particle size , optoelectronics , particle (ecology) , reflection (computer programming) , nanostructure , colloid , chemistry , computer science , oceanography , geology , composite material , programming language
Structures capable of perfect light absorption promise technological advancements in varied applications, including sensing, optoelectronics, and photocatalysis. While it is possible to realize such structures by placing a monolayer of metal nanostructures above a reflecting surface, there remains limited studies on what effect particle size plays on their capacity to absorb light. Here, we fabricate near-perfect absorbers using colloidal Au nanoparticles, via their electrostatic self-assembly on a TiO 2 film supported by a gold mirror. This method enables the control of interparticle spacing, thus minimizing reflection to achieve optimal absorption. Slightly altering the nanoparticle size in these structures reveals significant changes in the spectral separation of hybrid optical modes. We rationalize this observation by interpreting data with a coupled-mode theory that provides a thorough basis for creating functional absorbers using complex colloids and outlines the key considerations for achieving a broadened spectral response.

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