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Koji Kobayashi

  (小林 浩二)

Profile Information

Affiliation
Assistant Professor, Faculty of Science and Technology Department of Engineering and Applied Sciences, Sophia University
Degree
Doctor of Philosophy in Physics(Sep, 2011, Sophia University)
Master of Science(Mar, 2009, Sophia University)
Bachelor of Science(Mar, 2007, Sophia University)

Researcher number
10711905
ORCID ID
 https://orcid.org/0000-0001-7223-607X
J-GLOBAL ID
201301051911685803
Researcher ID
U-1205-2019
researchmap Member ID
7000004743

External link

I am a theoretical/computational physicist. My main interest is the quantum transport and quantum critical phenomena in disordered topological systems.


Education

 3

Committee Memberships

 1

Papers

 25
  • Mai Kameda, Koji Kobayashi, Yuki Kawaguchi
    Scientific Reports, 16(1) 12941-1-12941-10, Mar 10, 2026  Peer-reviewed
    Abstract Skyrmions are topologically stable spin textures that hold great promise as information carriers in next-generation magnetic memories. Recently, skyrmions only a few nanometers in radius have been observed in several materials, opening a path toward ultrahigh-density integration. As a step toward improving their controllability, we numerically investigate interactions between atomic-scale skyrmions embedded in a uniformly magnetized background of two-dimensional chiral magnets, under tilted magnetic fields and magneto-crystalline anisotropy. We find that attractive potential wells, predicted for larger skyrmions from shape deformation, persist even at the atomic scale. As skyrmions shrink, the short-range repulsion is enhanced, while a tilted background magnetization increases the attraction at larger separations. Under strong magneto-crystalline anisotropy, a magnetic domain forms between skyrmions, producing a deep attractive well whose position and depth are nearly independent of skyrmion size. This shows that tightly bound skyrmion pairs with exchange-scale energies can exist even at the atomic scale. Furthermore, under the magneto-crystalline anisotropy, the atomic lattice potential increasingly affects smaller skyrmions, pinning them and suppressing motion despite attraction. These findings deepen understanding of inter-skyrmion interactions across scales and lay the groundwork for controlling atomic-scale skyrmions in future device technologies.
  • Tomonari Meguro, Akihiro Ozawa, Koji Kobayashi, Yasufumi Araki, Kentaro Nomura
    Physical Review Research, 7(2) L022065-1-L022065-8, Jun 12, 2025  Peer-reviewed
  • Kohei Fujiwara, Kazuma Ogawa, Naotaka Yoshikawa, Koji Kobayashi, Kentaro Nomura, Ryo Shimano, Atsushi Tsukazaki
    Communications Materials, 5 239, Nov 2, 2024  Peer-reviewed
  • Tomonari Meguro, Akihiro Ozawa, Koji Kobayashi, Kentaro Nomura
    Journal of the Physical Society of Japan, 93(3) 034703, Mar 15, 2024  Peer-reviewed
  • Akihiro Ozawa, Koji Kobayashi, Kentaro Nomura
    Physical Review Applied, 21(1) 014041, Jan 22, 2024  Peer-reviewed

Major Misc.

 28

Books and Other Publications

 2
  • Koji Kobayashi, Tomi Ohtsuki, Ken-Ichiro Imura (Role: Contributor, Chapter 4: Topological Matter in the Absence of Translational Invariance)
    Wiley-Scrivener, Apr 9, 2019 (ISBN: 9781119407294)
    Topological properties are sometimes emergent or enforced by the breaking of translational invariance. Here, in this chapter we discuss dimensional crossover of topological properties in thin films of topological insulators (TI) and Weyl semimetals, electronic properties on the surface of TI nanoparticles and TI nanowires as a constrained electronic system. To discuss the effects of disorder is another highlight of this chapter. We cast on the unusual robustness of Dirac and Weyl semimetal phases against disorder, then the discussion is turned to a novel type of quantum criticality emergent from this unusual robustness, leading us to formulate the scaling theory of semimetal-metal transition. The concept of topological matter dose not fade under circumstances of absent translational invariance; it is on the contrary, emergent or enforced under such circumstances.
  • Koji Kobayashi, Tomi Ohtsuki, Ken-Ichiro Imura (Role: Joint author)
    Wiley online library, Mar 12, 2019 (ISBN: 9781119407317)
    Topological properties are sometimes emergent or enforced by the breaking of translational invariance. Here, in this chapter we discuss dimensional crossover of topological properties in thin films of topological insulators (TI) and Weyl semimetals, electronic properties on the surface of TI nanoparticles and TI nanowires as a constrained electronic system. To discuss the effects of disorder is another highlight of this chapter. We cast on the unusual robustness of Dirac and Weyl semimetal phases against disorder, then the discussion is turned to a novel type of quantum criticality emergent from this unusual robustness, leading us to formulate the scaling theory of semimetal-metal transition. The concept of topological matter dose not fade under circumstances of absent translational invariance; it is on the contrary, emergent or enforced under such circumstances.

Presentations

 68

Teaching Experience

 1

Professional Memberships

 1

Research Projects

 4