| Literature DB >> 32227898 |
Charles Chih-Chin Lin1, Po-Han Chang1, Yiwen Su1, Amr S Helmy1.
Abstract
Guided-wave plasmonic circuits are promising platforms for sensing, interconnection, and quantum applications in the subdiffraction regime. Nonetheless, the loss-confinement trade-off remains a collective bottleneck for plasmonic-enhanced optical processes. Here, we report a unique plasmonic waveguide architecture that can alleviate such trade-off and improve the efficiencies of plasmonic-based emission, light-matter-interaction, and detection simultaneously. Specifically, record experimental attributes such as normalized Purcell factor approaching 104, 10 dB amplitude modulation with <1 dB insertion loss and fJ-level switching energy, and photodetection sensitivity and internal quantum efficiency of -54 dBm and 6.4% respectively have been realized within our amorphous-based, coupled-mode plasmonic structure. The ability to support multiple optoelectronic phenomena while providing performance gains over existing plasmonic and dielectric counterparts offers a clear path toward reconfigurable, monolithic plasmonic circuits.Entities:
Keywords: Purcell factor; Schottky photodetector; epsilon-near-zero; field-effect modulator; plasmonics
Year: 2020 PMID: 32227898 DOI: 10.1021/acs.nanolett.9b04612
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189