Network


Latest external collaboration on country level. Dive into details by clicking on the dots.

Hotspot


Dive into the research topics where Katsumasa Yoshioka is active.

Publication


Featured researches published by Katsumasa Yoshioka.


Nano Letters | 2015

Terahertz-Field-Induced Nonlinear Electron Delocalization in Au Nanostructures

Katsumasa Yoshioka; Yasuo Minami; Ken Ichi Shudo; Thang Duy Dao; Tadaaki Nagao; Masahiro Kitajima; Jun Takeda; Ikufumi Katayama

Improved control over the electromagnetic properties of metal nanostructures is indispensable for the development of next-generation integrated nanocircuits and plasmonic devices. The use of terahertz (THz)-field-induced nonlinearity is a promising approach to controlling local electromagnetic properties. Here, we demonstrate how intense THz electric fields can be used to modulate electron delocalization in percolated gold (Au) nanostructures on a picosecond time scale. We prepared both isolated and percolated Au nanostructures deposited on high resistivity Si(100) substrates. With increasing the applied THz electric fields, large opacity in the THz transmission spectra takes place in the percolated nanostructures; the maximum THz-field-induced transmittance difference, 50% more, is reached just above the percolation threshold thickness. Fitting the experimental data to a Drude-Smith model, we found furthermore that the localization parameter and the damping constant strongly depend on the applied THz-field strength. These results show that ultrafast nonlinear electron delocalization proceeds via strong electric field of THz pulses; the intense THz electric field modulates the backscattering rate of localized electrons and induces electron tunneling between Au nanostructures across the narrow insulating bridges without any material breakdown.


Nano Letters | 2018

Tailoring Single-Cycle Near Field in a Tunnel Junction with Carrier-Envelope Phase-Controlled Terahertz Electric Fields

Katsumasa Yoshioka; Ikufumi Katayama; Yusuke Arashida; Atsuhiko Ban; Yoichi Kawada; Kuniaki Konishi; Hironori Takahashi; Jun Takeda

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.


Nature Photonics | 2016

Real-space coherent manipulation of electrons in a single tunnel junction by single-cycle terahertz electric fields

Katsumasa Yoshioka; Ikufumi Katayama; Yasuo Minami; Masahiro Kitajima; Shoji Yoshida; Hidemi Shigekawa; Jun Takeda


conference on lasers and electro optics | 2018

Vacuum Bloch-Siegert Shift in Landau Polaritons with Ultrahigh Cooperativity

Xinwei Li; Motoaki Bamba; Qi Zhang; Saeed Fallahi; Geoff Gardner; Weilu Gao; Minhan Lou; Katsumasa Yoshioka; Michael J. Manfra; Junichiro Kono


conference on lasers and electro optics | 2018

Coherent Terahertz Excitation of Magnons to 30 T

G. T. Noe; Xinwei Li; J. A. Horowitz; Katsumasa Yoshioka; F. Katsutani; N. Yuan; Maolin Xiang; Kai Xu; Zuanming Jin; Shixun Cao; Hiroyuki Nojiri; Ikufumi Katayama; Jun Takeda; Dmitry Turchinovich; Junichiro Kono


conference on lasers and electro optics | 2018

Nanoscale Electron Manipulation Using Phase-controlled THz Near-fields

Jun Takeda; Katsumasa Yoshioka; Yusuke Arashida; Ikufumi Katayama


Nature Photonics | 2018

Vacuum Bloch–Siegert shift in Landau polaritons with ultra-high cooperativity

Xinwei Li; Motoaki Bamba; Qi Zhang; Saeed Fallahi; Geoff Gardner; Weilu Gao; Minhan Lou; Katsumasa Yoshioka; Michael J. Manfra; Junichiro Kono


Journal of Physics D | 2018

Nanoscale electron manipulation in metals with intense THz electric fields

Jun Takeda; Katsumasa Yoshioka; Yasuo Minami; Ikufumi Katayama


The Japan Society of Applied Physics | 2017

Ultrafast Manipulation of Electrons in a Tunnel Junction Using Carrier-Envelope Phase Controlled THz-STM

Katsumasa Yoshioka; Ikufumi Katayama; Yusuke Arashida; Yasuo Minami; Masahiro Kitajima; Shoji Yoshida; Hidemi Shigekawa


Nonlinear Optics | 2017

Coherent Manipulation of Electrons in a Tunnel Junction with Carrier-Envelope Phase Controlled THz Electric Fields

Katsumasa Yoshioka; Ikufumi Katayama; Yusuke Arashida; Yasuo Minami; Masahiro Kitajima; Shoji Yoshida; Hidemi Shigekawa; Jun Takeda

Collaboration


Dive into the Katsumasa Yoshioka's collaboration.

Top Co-Authors

Avatar

Ikufumi Katayama

Yokohama National University

View shared research outputs
Top Co-Authors

Avatar

Jun Takeda

Yokohama National University

View shared research outputs
Top Co-Authors

Avatar

Yasuo Minami

Yokohama National University

View shared research outputs
Top Co-Authors

Avatar

Masahiro Kitajima

Yokohama National University

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar

Yusuke Arashida

Yokohama National University

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar

Ken Ichi Shudo

Yokohama National University

View shared research outputs
Researchain Logo
Decentralizing Knowledge