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    Area of Science:

    • Electromagnetic theory
    • Plasmonics
    • Nanophotonics

    Background:

    • Power dissipation in electromagnetic absorbers depends quadratically on incident fields.
    • Characterizing absorbers requires managing coupling between different excitations.
    • Energy absorption interferometry (EAI) identifies independent energy absorption pathways (natural absorption modes).

    Purpose of the Study:

    • Analyze plasmonic periodic absorbers using EAI, rigorously accounting for mode coupling.
    • Identify physical processes governing near- and far-field absorption.
    • Exploit identified absorption channels to enhance absorber performance.

    Main Methods:

    • Application of the EAI formalism to resonant golden patches, silver wires, and silver slabs.
    • Rigorous analysis of coupling effects between different absorption modes.
    • Identification of dominant absorption channels through absorption mode signatures.

    Main Results:

    • Demonstrated limitations of classical angular absorption measurements under certain conditions.
    • Identified dominant absorption channels by analyzing absorption modes with EAI.
    • Showcased exploitation of long-range and short-range processes for enhanced spatial selectivity and wide-angle absorptivity.
    • Achieved over a 10x increase in absorption by adding periodic scatterers.

    Conclusions:

    • EAI provides a rigorous framework for analyzing and understanding absorption mechanisms in plasmonic absorbers.
    • The identified absorption channels offer pathways for designing highly efficient and selective absorbers.
    • Simple modifications, like adding periodic scatterers, can dramatically improve absorber performance.