English

Light Phase Detection with On-Chip Petahertz Electronic Networks

Optics 2020-07-09 v1 Applied Physics Instrumentation and Detectors

Abstract

Ultrafast light-matter interactions lead to optical-field-driven photocurrents with an attosecond-level temporal response. These photocurrents can be used to detect the carrier-envelope-phase (CEP) of short optical pulses, and could be utilized to create optical-frequency, petahertz (PHz) electronics for information processing. Despite recent reports on optical-field-driven photocurrents in various nanoscale solid-state materials, little has been done in examining the large-scale integration of these devices. In this work, we demonstrate enhanced, on-chip CEP detection via optical-field-driven photocurrent in a monolithic array of electrically-connected plasmonic bow-tie nanoantennas that are contained within an area of hundreds of square microns. The technique is scalable and could potentially be used for shot-to-shot CEP tagging applications requiring orders of magnitude less pulse energy compared to alternative ionization-based techniques. Our results open new avenues for compact time-domain, on-chip CEP detection, and inform the development of integrated circuits for PHz electronics as well as integrated platforms for attosecond and strong-field science.

Keywords

Cite

@article{arxiv.1912.07130,
  title  = {Light Phase Detection with On-Chip Petahertz Electronic Networks},
  author = {Yujia Yang and Marco Turchetti and Praful Vasireddy and William P. Putnam and Oliver Karnbach and Alberto Nardi and Franz X. Kärtner and Karl K. Berggren and Phillip D. Keathley},
  journal= {arXiv preprint arXiv:1912.07130},
  year   = {2020}
}
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