Title :
Nanophotonics: Application of Dressed Photons to Novel Photonic Devices and Systems
Author :
Ohtsu, Motoichi ; Kawazoe, Tadashi ; Yatsui, Takashi ; Naruse, Makoto
Author_Institution :
Dept. of Electron. Eng., Univ. of Tokyo, Tokyo
Abstract :
This paper reviews recent progress in nanophotonics, a novel optical technology proposed by one of the authors (M. Ohtsu). Nanophotonics utilizes the local interaction between nanometric particles via optical near fields. The optical near fields are the elementary surface excitations on nanometric particles, that is, dressed photons that carry the material energy. Of the variety of qualitative innovations in optical technology realized by nanophotonics, this paper focuses on devices and systems. The principles of device operation are reviewed considering the excitation energy transfer via the optical near-field interaction and subsequent dissipation. As representative examples, the principles of a nanophotonic and gate, not gate, and optical nanofountain are described. Experimental results for operating devices using CuCl quantum dots (QDs), InAlAs QDs, and nanorod ZnO double quantum wells are described. Using a systems-perspective approach, the principles of content-addressable memory based on nanophotonic device operations and experimental results are reviewed. The hierarchy of optical near-field interactions is discussed, and its application to a multilayer memory retrieval system is demonstrated.
Keywords :
II-VI semiconductors; III-V semiconductors; aluminium compounds; content-addressable storage; copper compounds; excited states; indium compounds; integrated optics; logic gates; nanoparticles; nanophotonics; optical logic; optical storage; semiconductor quantum dots; semiconductor quantum wells; zinc compounds; AND gate; CuCl; InAlAs; NOT gate; ZnO; content-addressable memory; dressed photons; excitation energy transfer; multilayer memory retrieval system; nanometric particles; nanophotonics; nanorod double quantum wells; optical nanofountain; optical near-field interaction; optical technology; quantum dots; Energy exchange; Indium compounds; Nanophotonics; Nanoscale devices; Nonhomogeneous media; Optical devices; Optical materials; Quantum dots; Technological innovation; Zinc oxide; and gate; not gate; energy transfer; optical near fields; quantum dots (QDs);
Journal_Title :
Selected Topics in Quantum Electronics, IEEE Journal of
DOI :
10.1109/JSTQE.2008.918110