English

Electrically-Reconfigurable Passive and Active Circuits in a Single Plasmonic Architecture

Optics 2020-11-12 v1 Applied Physics

Abstract

Guided-wave plasmonic circuits are promising platforms for sensing, interconnection, and quantum applications in the sub-diffraction regime. Nonetheless, the loss-confinement trade-off remains a collective bottleneck for plasmonic-enhanced optical processes. Here, we report a unique plasmonic waveguide that can alleviate such trade-off and improve the efficiencies of plasmonic-based emission, light-matter-interaction, and detection simultaneously. Through different bias configurations, record experimental attributes such as normalized Purcell factor approaching 10^4, 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 can be realized within the same amorphous-based plasmonic structure. The ability to support multiple optoelectronic phenomena while providing performance gains over existing plasmonic and dielectric counterparts offers a clear path towards reconfigurable, monolithic plasmonic circuits.

Keywords

Cite

@article{arxiv.2011.05812,
  title  = {Electrically-Reconfigurable Passive and Active Circuits in a Single Plasmonic Architecture},
  author = {Charles Lin and Pohan Chang and Yiwen Su and Amr S Helmy},
  journal= {arXiv preprint arXiv:2011.05812},
  year   = {2020}
}

Comments

17 pages, 4 figures

R2 v1 2026-06-23T20:05:06.878Z