English

Ultrafast intrinsic optical-to-electrical conversion dynamics in graphene photodetector

Mesoscale and Nanoscale Physics 2025-06-09 v2 Materials Science Applied Physics Optics

Abstract

Optical-to-electrical (O-E) conversion in graphene is a central phenomenon for realizing anticipated ultrafast and low-power-consumption information technologies. However, revealing its mechanism and intrinsic time scale require uncharted terahertz (THz) electronics and device architectures. Here, we succeeded in resolving O-E conversion processes in high-quality graphene by on-chip electrical readout of ultrafast photothermoelectric current. By suppressing the RC time constant using a resistive zinc oxide top gate, we constructed a gate-tunable graphene photodetector with a bandwidth of up to 220 GHz. By measuring nonlocal photocurrent dynamics, we found that the photocurrent extraction from the electrode is instantaneous without a measurable carrier transit time across several-micrometer-long graphene, following the Shockley-Ramo theorem. The time for photocurrent generation is exceptionally tunable from immediate to > 4 ps, and its origin is identified as Fermi-level-dependent intraband carrier-carrier scattering. Our results bridge the gap between ultrafast optical science and device engineering, accelerating ultrafast graphene optoelectronic applications.

Keywords

Cite

@article{arxiv.2203.05752,
  title  = {Ultrafast intrinsic optical-to-electrical conversion dynamics in graphene photodetector},
  author = {Katsumasa Yoshioka and Taro Wakamura and Masayuki Hashisaka and Kenji Watanabe and Takashi Taniguchi and Norio Kumada},
  journal= {arXiv preprint arXiv:2203.05752},
  year   = {2025}
}

Comments

13 pages, 4 figures, Supplementary information