Title :
Anderson localization vs. delocalization of surface plasmons in nanosystems
Author :
Bergman, D.J. ; Stockman, M.I. ; Faleev, S.V.
Author_Institution :
Sch. of Phys. & Astron., Tel Aviv Univ., Israel
Abstract :
Summary form only given. From a partial-differential eigenproblem, without use of the dipole approximation, we show that the eigenmodes (surface plasmons) of disordered nanosystems (modeled as random planar composites) are not universally Anderson-localized, but can have properties of both localized and delocalized states simultaneously. Their topology is determined by separate small-scale "hot spots" that are distributed and coherent over a length that may be comparable to the total size of the system. Coherence lengths and oscillator strengths vary by orders of magnitude from mode to mode at nearby frequencies. The existence of dark vs. luminous eigenmodes is established (the dark eigenmodes do not contribute to optical responses, and the luminous eigenmodes do) and attributed to the effect of charge- and parity-conservation laws. Possible applications are discussed. The theory is based on the spectral representation.
Keywords :
Anderson model; eigenvalues and eigenfunctions; nanocomposites; oscillator strengths; surface plasmons; Anderson localization; charge-conservation laws; coherence lengths; dark eigenmodes; delocalization; disordered nanosystems; luminous eigenmodes; optical responses; oscillator strengths; parity-conservation laws; partial-differential eigenproblem; random planar nanostructured composites; small-scale hot spots; spectral representation; surface plasmons; Eigenvalues and eigenfunctions; Plasmons;
Conference_Titel :
Quantum Electronics and Laser Science Conference, 2002. QELS '02. Technical Digest. Summaries of Papers Presented at the
Conference_Location :
Long Beach, CA, USA
Print_ISBN :
1-55752-708-3
DOI :
10.1109/QELS.2002.1031394