池田昌司

東京大学 大学院総合文化研究科 広域科学専攻 相関基礎科学系 准教授
住所:〒153-8902 東京都目黒区駒場3-8-1
居室:駒場Iキャンパス 16号館 727A
電話: 03-5454-6755
メール: atsushi.ikeda [at] phys.c.u-tokyo.ac.jp

職歴


学歴


賞罰


学内・学外での役職など


  • 2022年4月-2023年3月
    教養学部 学部長特任補佐
  • 2021年4月-2022年3月
    教養学部 学部長補佐
  • 2016年10月-2018年3月
    平成28年度東大卓越研究員
  • 2016年10月-2017年9月
    一般社団法人 日本物理学会 運営委員(領域12)
  • 2015年4月-2016年2月
    京都大学 福井謙一記念研究センター 副センター長

講義


  • 熱力学
    教養学部・1年生Sセメスター
    2016,2017,2018,2019,2020,2021,2022
  • 力学
    教養学部・1年生Sセメスター
    2024
  • 統計力学I
    教養学部統合自然科学科・2年生Aセメスター
    2016,2017,2018,2019,2020,2021,2022,2023,2024
  • 連続体力学
    教養学部統合自然科学科・3年生Aセメスター
    2016,2018,2020,2022,2024
  • バイオ・ソフトマターの物理(石原さん・柳澤さんと共同担当)
    教養学部統合自然科学科・3年生Sセメスター
    2020,2021,2022,2023,2024
  • 統合自然科学セミナー/数理科学セミナー
    教養学部統合自然科学科・2,3,4年生
    2016,2017,2018,2019,2020,2021,2022,2023,2024
  • 全学自由研究ゼミナール
    教養学部・1,2年生
    2019
  • オムニバス講義
    自然現象とモデル:教養学部1,2年生
    数理科学概論:教養学部統合自然科学科2年生
  • 集中講義
    Physics of the jamming transition:京都大学 基礎物理学研究所 2019.2.14-15
    ガラス系の物理:首都大学東京 理学系研究科 物理学専攻 2019.12.3-6
    ガラス系の物理:九州大学 理学府 物理学専攻 2020.11.13-16

研究助成金(代表者のもの)


  • 2020年4月 - 2024年3月
    科学研究費 基盤研究(B)
    「低エネルギー励起からガラス系を理解する:構造ガラス、物理ゲル、粉体」
  • 2017年4月 - 2020年3月
    科学研究費 若手研究(A)
    「エネルギー地形の階層性に注目したガラスの理解と分類に関する研究」
  • 2016年10月 - 2018年3月
    平成28年度東大卓越研究員
    「ガラス転移(ガラス状態発生)の本質及びガラス転移の統計力学理論に関する研究」
  • 2014年8月 - 2016年3月
    科学研究費 研究活動スタート支援
    「粒子の形とガラス転移-微視的理論によるアプローチ」
  • 2012年12月 - 2014年2月
    日本学術振興会 海外特別研究員
    「レオロジーに注目したガラス転移とジャミング転移の統一的研究」
  • 2008年4月 - 2011年3月
    科学研究費 特別研究員奨励費
    「シミュレーションを用いたガラス転移ダイナミクスの研究」

原著論文リスト


  1. “Multiple glass transitions and higher-order replica symmetry breaking of binary mixtures”
    Harukuni Ikeda, Kunimasa Miyazaki, Hajime Yoshino, Atsushi Ikeda
    Phys. Rev. E 103, 022613 (2021). [arXiv:1710.08373]

  2. “Spatial structure of unstable normal modes in a glass-forming liquid”
    Masanari Shimada, Daniele Coslovich, Hideyuki Mizuno, Atsushi Ikeda
    SciPost Phys. 10, 001 (2021). [arXiv:2009.07972]

  3. “Relaxation dynamics of non-Brownian spheres below jamming”
    Yoshihiko Nishikawa, Atsushi Ikeda, Ludovic Berthier
    J. Stat. Phys. 182, 37 (2021). [arXiv:2007.09418]

  4. “Novel elastic instability of amorphous solids in finite spatial dimensions”
    Masanari Shimada, Hideyuki Mizuno, Atsushi Ikeda
    Soft Matter 17, 346 (2021). [arXiv:2009.00201]

  5. “Intermittent rearrangements accompanying thermal fluctuations distinguish glasses from crystals”
    Hideyuki Mizuno, Hua Tong, Atsushi Ikeda, Stefano Mossa
    J. Chem. Phys. 153, 154501 (2020). [arXiv:2006.15082]

  6. “Vibrational spectrum derived from local mechanical response in disordered solids”
    Masanari Shimada, Hideyuki Mizuno, Atsushi Ikeda
    Soft Matter 16, 7279 (2020). [arXiv:1907.06851]

  7. “Mechanical and Vibrational Properties of Three-Dimensional Dimer Packings Near the Jamming Transition”
    Kumpei Shiraishi, Hideyuki Mizuno, Atsushi Ikeda
    J. Phys. Soc. Jpn. 89, 074603 (2020). [arXiv:2005.02598]

  8. “Low-frequency vibrations of jammed packings in large spatial dimensions”
    Masanari Shimada, Hideyuki Mizuno, Ludovic Berthier, Atsushi Ikeda
    Phys. Rev. E 101, 052906 (2020). [arXiv:1910.07238]

  9. “Stress relaxation above and below the jamming transition”
    Kuniyasu Saitoh, Takahiro Hatano, Atsushi Ikeda, Brian P. Tighe
    Phys. Rev. Lett. 124, 118001 (2020). [arXiv:1909.10142]

  10. “Anharmonic properties of vibrational excitations in amorphous solids”
    Hideyuki Mizuno, Masanari Shimada, Atsushi Ikeda
    Phys. Rev. Research 2, 013215 (2020). [arXiv:1911.07211]

  11. “Universal relaxation dynamics of sphere packings below jamming”
    Atsushi Ikeda, Takeshi Kawasaki, Ludovic Berthier, Kuniyasu Saitoh, Takahiro Hatano
    Phys. Rev. Lett. 124, 058001 (2020). [arXiv:1904.07359]

  12. “Glassy dynamics of a model of bacterial cytoplasm with metabolic activities”
    Norihiro Oyama, Takeshi Kawasaki, Hideyuki Mizuno, Atsushi Ikeda
    Phys. Rev. Research 1, 032038(R) (2019). [arXiv:1904.09052]

  13. “Vibrational properties of two-dimensional dimer packings near the jamming transition”
    Kumpei Shiraishi, Hideyuki Mizuno, Atsushi Ikeda
    Phys. Rev. E 100, 012606 (2019). [arXiv:1905.02966]

  14. “Phonon transport and vibrational excitations in amorphous solids”
    Hideyuki Mizuno, Atsushi Ikeda
    Phys. Rev. E 98, 062612 (2018). [arXiv:1804.08854]

  15. “Spatial structure of quasi-localized vibrations in nearly jammed amorphous solids”
    Masanari Shimada, Hideyuki Mizuno, Matthieu Wyart, Atsushi Ikeda
    Phys. Rev. E 98, 060901(R) (2018). [arXiv:1804.08865]

  16. “Ideal glass states are not purely vibrational: Insight from randomly pinned glasses”
    Misaki Ozawa, Atsushi Ikeda, Kunimasa Miyazaki, Walter Kob
    Phys. Rev. Lett. 121, 205501 (2018). [arXiv:1804.02324]

  17. “Anomalous vibrational properties in the continuum limit of glasses”
    Masanari Shimada, Hideyuki Mizuno, Atsushi Ikeda
    Phys. Rev. E 97, 022609 (2018). [arXiv:1711.04929]

  18. “Mean field theory of the swap Monte Carlo algorithm”
    Harukuni Ikeda, Francesco Zamponi, Atsushi Ikeda
    J. Chem. Phys. 147, 234506 (2017). [arXiv:1701.00936]

  19. “Continuum limit of the vibrational properties of amorphous solids”
    Hideyuki Mizuno, Hayato Shiba, Atsushi Ikeda
    Proc. Natl. Acad. Sci. USA 114, E9767-E9774 (2017). [arXiv:1703.10004]

  20. “Large-scale structure of randomly jammed particles”
    Atsushi Ikeda, Ludovic Berthier, Giorgio Parisi
    Phys. Rev. E 95, 052125 (2017). [arXiv:1701.00936]

  21. “A note on the replica liquid theory of binary mixtures”
    Harukuni Ikeda, Kunimasa Miyazaki, Atsushi Ikeda
    J. Chem. Phys.145, 216101 (2016). [arXiv:1609.08288]

  22. “The decoupling of the glass transitions in the two-component p-spin spherical model”
    Harukuni Ikeda, Atsushi Ikeda
    J. Stat. Mech. 074006 (2016). [arXiv:1603.06314]

  23. “Mean-field dynamic criticality and geometric transition in the Gaussian core model”
    Daniele Coslovich*, Atsushi Ikeda*, Kunimasa Miyazaki (*equally contributed)
    Phys. Rev. E 93, 042602 (2016). [arXiv:1502.00331]

  24. “One-dimensional Kac model of dense amorphous hard spheres”
    Harukuni Ikeda, Atsushi Ikeda
    EPL 111, 40007 (2015). [arXiv:1505.07597]

  25. “Thermal fluctuations, mechanical response, and hyperuniformity in jammed solids”
    Atsushi Ikeda, Ludovic Berthier
    Phys. Rev. E 92, 012309 (2015). [arXiv:1504.02649]

  26. “Reply to Chakrabarty et al.: Particles move even in ideal glasses”
    Misaki Ozawa, Walter Kob, Atsushi Ikeda, Kunimasa Miyazaki
    Proc. Natl. Acad. Sci. USA 112, E4821 (2015).

  27. “Equilibrium phase diagram of a randomly pinned glass-former”
    Misaki Ozawa, Walter Kob, Atsushi Ikeda, Kunimasa Miyazaki
    Proc. Natl. Acad. Sci. USA 112, 6914 (2015). [arXiv:1412.4911]

  28. “Diverging viscosity and soft granular rheology in non-Brownian suspensions”
    Takeshi Kawasaki, Daniele Coslovich, Atsushi Ikeda, Ludovic Berthier
    Phys. Rev. E 91, 012203 (2015). [arXiv:1410.5683]

    + Featured as “Editors' Suggestion”.


  29. “Correlation of Local Order with Particle Mobility in Supercooled Liquids is Highly System Dependent”
    Glen M. Hocky, Daniele Coslovich, Atsushi Ikeda, David R. Reichman
    Phys. Rev. Lett. 113, 157801 (2014). [arXiv:1402.6709]

  30. “Thinning or thickening? Multiple rheological regimes in dense suspensions of soft particles”
    Takeshi Kawasaki, Atsushi Ikeda, Ludovic Berthier
    EPL 107, 28009 (2014). [arXiv:1404.4778]

  31. “Yield stress in amorphous solids: A mode-coupling theory analysis”
    Atsushi Ikeda, Ludovic Berthier
    Phys. Rev. E 88, 052305 (2013). [arXiv:1307.3171]

  32. “Disentangling glass and jamming physics in the rheology of soft materials”
    Atsushi Ikeda, Ludovic Berthier, Peter Sollich
    Soft Matter 9, 7669 (2013). [arXiv:1302.4271]

    + Featured as “Highlight Article”.


  33. “Clustering and reentrant anomalies of nearly Gaussian core particles”
    Daniele Coslovich, Atsushi Ikeda
    Soft Matter 9, 6786 (2013). [arXiv:1303.3113]

    + Published in a themed issue “Emerging Investigators”.


  34. “Jamming and glass transitions viewed from the mean field pictures”
    Misaki Ozawa, Takeshi Kuroiwa, Atsushi Ikeda, Kunimasa Miyazaki
    AIP Conf. Proc. 1518, 128 (2013).

  35. “Dynamic criticality at the jamming transition”
    Atsushi Ikeda, Ludovic Berthier, Giulio Biroli
    J. Chem. Phys. 138, 12A507 (2013). [arXiv:1209.2814]

    + Published in a themed issue “Glass Transition”.


  36. “Jamming Transition and Inherent Structures of Hard Spheres and Discs”
    Misaki Ozawa, Takeshi Kuroiwa, Atsushi Ikeda, Kunimasa Miyazaki
    Phys. Rev. Lett. 109, 205701 (2012). [arXiv:1207.6925]

  37. “Ultra-soft potential system as a mean-field model of the glass transition”
    Atsushi Ikeda, Kunimasa Miyazaki
    J. Phys. Soc. Jpn. SA006 (2012).

  38. “Dimensional Study of the Caging Order Parameter at the Glass Transition”
    Patrick Charbonneau, Atsushi Ikeda, Giorgio Parisi, Francesco Zamponi
    Proc. Natl. Acad. Sci. USA 109, 13939-13943 (2012). [arXiv:1205.4057]

  39. “Unified study of glass and jamming rheology in soft particle systems”
    Atsushi Ikeda, Ludovic Berthier, Peter Sollich
    Phys. Rev. Lett. 109, 018301 (2012). [arXiv:1203.0825]

    + Featured as “Editors' Suggestion”.
    + Highlighted in “ APS Physics”.


  40. “Glass Transition and Random Close Packing above Three Dimensions”
    Patrick Charbonneau, Atsushi Ikeda, Giorgio Parisi, Francesco Zamponi
    Phys. Rev. Lett. 107, 185702 (2011). [arXiv:1107.4666]

  41. “Slow Dynamics of the High Density Gaussian Core Model”
    Atsushi Ikeda, Kunimasa Miyazaki
    J. Chem. Phys. 135, 054901 (2011). [arXiv:1105.5776]

    + Published in “Virtual Journal of Biological Physics Research”.


  42. “Thermodynamics and Structural Properties of the High Density Gaussian Core Model”
    Atsushi Ikeda, Kunimasa Miyazaki
    J. Chem. Phys. 135, 024901 (2011). [arXiv:1104.3426]

  43. “A resonance theory consistent with Mulliken-population concept”
    Atsushi Ikeda, Yoshihide Nakao, Hirofumi Sato, Shigeyoshi Sakaki
    Chem. Phys. Lett. 505, 148-153 (2011). 

  44. “Reply to Comment on ‘Mode-Coupling Theory as a Mean-Field Description of the Glass Transition’”
    Atsushi Ikeda, Kunimasa Miyazaki
    Phys. Rev. Lett. 106, 049602 (2011). [arXiv:1101.5840]

  45. “Glass transition of the monodisperse gaussian core model”
    Atsushi Ikeda, Kunimasa Miyazaki
    Phys. Rev. Lett. 106, 015701 (2011). [arXiv:1008.2597]

    + Featured as “Editors' Suggestion”.


  46. “Mode-coupling theory as a mean-field description of the glass transition”
    Atsushi Ikeda, Kunimasa Miyazaki
    Phys. Rev. Lett. 104, 255704 (2010). [arXiv:1003.5472]

    + Highlighted in “Journal Club for Condensed Matter Physics” with a commentary by Prof. J.-P. Bouchaud.


  47. “Numerical and theoretical study of a monodisperse hard-sphere glass former”
    Patrick Charbonneau, Atsushi Ikeda, Jacobus van Meel, Kunimasa Miyazaki
    Phys. Rev. E 81, 040501(R) (2010). [arXiv:0909.1952]

  48. “Carbon dioxide capture at the molecular level”
    Kenji IIda, Daisuke Yokogawa, Atsushi Ikeda, Hirofumi Sato, Shigeyoshi Sakaki
    Phys. Chem. Chem. Phys. 11, 8556 (2009).

  49. “Generalization of the new resonance theory: Second quantization operator, localization scheme, and basis set”
    Atsushi Ikeda, Yoshihide Nakao, Hirofumi Sato, Shigeyoshi Sakaki
    J. Chem. Theory Comput. 5, 1741 (2009).

  50. “Study of the temperature dependence of the reaction of NO3 with CH3I and the estimation of its impact on atmospheric iodine chemistry”
    Yukio Nakano, Hiromi Ukeguchi, Takashi Ishiwata, Yugo Kanaya, Hiroto Tachikawa, Atsushi Ikeda, Shigeyoshi Sakaki, Masahiro Kawasaki
    Bull. Chem. Soc. Jpn. 81, 938 (2008).

  51. “Photodissociation dynamics of OCS and CS2 adsorbed on water ice films at 193 nm”
    Atsushi Ikeda, Noboru Kawanaka, Akihiro Yabishita, Masahiro Kawasaki
    J. Photochem. Photobiol. A 195, 330 (2008).

  52. “Solvation effect on the interaction between sodium and chloride ions in aqueous solution: An analysis based on the new resonance theory.”
    Atsushi Ikeda, Daisuke Yokogawa, Hirofumi Sato, Shigeyoshi Sakaki
    Int. J. Quantum Chem. 107, 3132 (2007).

  53. “Binding energy of transition metal complexes with large π-conjugate systems. Density functional theory vs Post-Hartree-Fock Methods”
    Atsushi Ikeda, Yoshihide Nakao, Hirofumi Sato, Shigeyoshi Sakaki
    J. Phys. Chem. A 111, 7124 (2007).

    + Featured as “Most-Accessed Articles: July-September, 2007”.


  54. “Binding energies and bonding nature of MX(CO)(PH3)2(C60) (M=Rh or Ir; X=H or Cl): Theoretical study”
    Atsushi Ikeda, Yuu Kameno, Yoshihide Nakao, Hirofumi Sato, Shigeyoshi Sakaki
    J. Organomet. Chem. 692, 299 (2007).

  55. “Discrete sandwich compounds of monolayer Palladium sheets”
    Tetsuro Murahashi, Mayu Fujimoto, Masa-aki Oka, Yasuhiro Hashimoto, Tomohito Uemura, Yasuki Tatsumi, Yoshihide Nakao, Atsushi Ikeda, Shigeyoshi Sakaki, Hideo Kurosawa
    Science 313, 1104 (2006).

  56. “Solvation effect on resonance structure: Extracting valence bond-like character from molecular orbitals”
    Atsushi Ikeda, Daisuke Yokogawa, Hirofumi Sato, Shigeyoshi Sakaki
    Chem. Phys. Lett. 424, 449 (2006).

  57. “A new analysis of molecular orbital wave functions based on resonance theory”
    Atsushi Ikeda, Yoshihide Nakao, Hirofumi Sato, Shigeyoshi Sakaki
    J. Phys. Chem. A 110, 9028 (2006).

    + Published as “Letter”.
    + Featured as “Most-Accessed Articles: July-September, 2006”.


  58. “Theoretical study of M(PH3)2 complexes of C60, Corannulene (C20H10), and Sumanene (C21H12) (M = Pd or Pt). Unexpectedly large binding energy of M(PH3)2(C60)”
    Yuu Kameno, Atsushi Ikeda, Yoshihide Nakao, Hirofumi Sato, Shigeyoshi Sakaki
    J. Phys. Chem. A 109, 8055 (2005).

  59. “Hydrogen atom formation from the photodissociation of water ice at 193 nm”
    Akihiro Yabushita, Yuichi Hashikawa, Atsushi Ikeda, Masahiro Kawasaki, Hiroto Tachikawa
    J. Chem. Phys. 120, 5463 (2004).

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