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Tailoring Single-Cycle Near Field in a Tunnel Junction with Carrier-Envelope Phase-Controlled Terahertz Electric Fields.
Yoshioka, Katsumasa; Katayama, Ikufumi; Arashida, Yusuke; Ban, Atsuhiko; Kawada, Yoichi; Konishi, Kuniaki; Takahashi, Hironori; Takeda, Jun.
  • Yoshioka K; Department of Physics, Graduate School of Engineering , Yokohama National University , Yokohama 240-8501 , Japan.
  • Katayama I; Department of Physics, Graduate School of Engineering , Yokohama National University , Yokohama 240-8501 , Japan.
  • Arashida Y; Department of Physics, Graduate School of Engineering , Yokohama National University , Yokohama 240-8501 , Japan.
  • Ban A; Department of Physics, Graduate School of Engineering , Yokohama National University , Yokohama 240-8501 , Japan.
  • Kawada Y; Department of Physics, Graduate School of Engineering , Yokohama National University , Yokohama 240-8501 , Japan.
  • Konishi K; Central Research Laboratory , Hamamatsu Photonics K.K. , 5000 Hirakuchi, Hamakita , Hamamatsu City , Shizuoka 434-8601 , Japan.
  • Takahashi H; Institute for Photon Science and Technology, Graduate School of Science , The University of Tokyo , Tokyo 113-0033 , Japan.
  • Takeda J; Central Research Laboratory , Hamamatsu Photonics K.K. , 5000 Hirakuchi, Hamakita , Hamamatsu City , Shizuoka 434-8601 , Japan.
Nano Lett ; 18(8): 5198-5204, 2018 08 08.
Article en En | MEDLINE | ID: mdl-30028952
Light-field-driven processes occurring under conditions far beyond the diffraction limit of the light can be manipulated by harnessing spatiotemporally tunable near fields. A tailor-made carrier envelope phase in a tunnel junction formed between nanogap electrodes allows precisely controlled manipulation of these processes. In particular, the characterization and active control of near fields in a tunnel junction are essential for advancing elaborate manipulation of light-field-driven processes at the atomic-scale. Here, we demonstrate that desirable phase-controlled near fields can be produced in a tunnel junction via terahertz scanning tunneling microscopy (THz-STM) with a phase shifter. Measurements of the phase-resolved subcycle electron tunneling dynamics revealed an unexpected large carrier-envelope phase shift between far-field and near-field single-cycle THz waveforms. The phase shift stems from the wavelength-scale feature of the tip-sample configuration. By using a dual-phase double-pulse scheme, the electron tunneling was coherently manipulated over the femtosecond time scale. Our new prescription-in situ tailoring of single-cycle THz near fields in a tunnel junction-will offer unprecedented control of electrons for ultrafast atomic-scale electronics and metrology.
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Texto completo: 1 Banco de datos: MEDLINE Idioma: En Año: 2018 Tipo del documento: Article

Texto completo: 1 Banco de datos: MEDLINE Idioma: En Año: 2018 Tipo del documento: Article