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Surface-plasmon control of ultrafast energy-relaxation modes in photoexcited Au nanorods probed by time-resolved single-particle X-ray imaging

Author

Listed:
  • Eunyoung Park

    (POSTECH
    Max Planck POSTECH Korea Research Initiative
    POSTECH)

  • Chulho Jung

    (POSTECH
    POSTECH)

  • Junha Hwang

    (POSTECH
    Max Planck POSTECH Korea Research Initiative
    POSTECH)

  • Jaeyong Shin

    (POSTECH
    Max Planck POSTECH Korea Research Initiative
    POSTECH)

  • Sung Yun Lee

    (POSTECH
    Max Planck POSTECH Korea Research Initiative
    POSTECH)

  • Heemin Lee

    (POSTECH
    Max Planck POSTECH Korea Research Initiative
    POSTECH)

  • Seung-Phil Heo

    (POSTECH
    Max Planck POSTECH Korea Research Initiative
    POSTECH)

  • Daewoong Nam

    (POSTECH
    POSTECH)

  • Sangsoo Kim

    (POSTECH)

  • Min Seok Kim

    (POSTECH)

  • Kyung Sook Kim

    (POSTECH
    POSTECH)

  • In Tae Eom

    (POSTECH
    POSTECH)

  • Yungok Ihm

    (POSTECH)

  • Do Young Noh

    (Gwangju Institute of Science and Technology
    Institute for Basic Science (IBS))

  • Changyong Song

    (POSTECH
    Max Planck POSTECH Korea Research Initiative
    POSTECH)

Abstract

Ultrafast laser excitation can drive materials into exotic states beyond thermodynamic limits, offering alternative ways to control how matter stores and releases energy. Yet, whether light can actively steer energy-relaxation pathways during structural transitions remains unclear due to the lack of direct experimental evidence. Here we show, using single-pulse time-resolved X-ray imaging of gold nanorods, that photoinduced localized surface plasmons control ultrafast energy relaxation into distinct deformation modes, transverse or longitudinal deformation modes, each accompanied by characteristic plasmon-induced oscillatory distortions depending on the laser fluence. Numerical simulations further confirm that localized surface plasmons dictate ultrafast energy relaxation process from photoexcited hot electrons to anharmonic nanocrystal deformations. Our results provide direct evidence that surface plasmon-mediated interactions enable ultrafast, nanoscale control of materials’ energetics, opening a pathway for tailoring energy-transfer processes with femtosecond laser fields. This approach lays the foundation for customizing nonequilibrium phase dynamics at the nanoscale and provides a route to tailoring energy-transfer processes using femtosecond laser fields.

Suggested Citation

  • Eunyoung Park & Chulho Jung & Junha Hwang & Jaeyong Shin & Sung Yun Lee & Heemin Lee & Seung-Phil Heo & Daewoong Nam & Sangsoo Kim & Min Seok Kim & Kyung Sook Kim & In Tae Eom & Yungok Ihm & Do Young , 2025. "Surface-plasmon control of ultrafast energy-relaxation modes in photoexcited Au nanorods probed by time-resolved single-particle X-ray imaging," Nature Communications, Nature, vol. 16(1), pages 1-9, December.
  • Handle: RePEc:nat:natcom:v:16:y:2025:i:1:d:10.1038_s41467-025-64853-6
    DOI: 10.1038/s41467-025-64853-6
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    References listed on IDEAS

    as
    1. Niclas S. Mueller & Yu Okamura & Bruno G. M. Vieira & Sabrina Juergensen & Holger Lange & Eduardo B. Barros & Florian Schulz & Stephanie Reich, 2020. "Deep strong light–matter coupling in plasmonic nanoparticle crystals," Nature, Nature, vol. 583(7818), pages 780-784, July.
    2. Jianwei Miao & Pambos Charalambous & Janos Kirz & David Sayre, 1999. "Extending the methodology of X-ray crystallography to allow imaging of micrometre-sized non-crystalline specimens," Nature, Nature, vol. 400(6742), pages 342-344, July.
    3. Bob Y. Zheng & Hangqi Zhao & Alejandro Manjavacas & Michael McClain & Peter Nordlander & Naomi J. Halas, 2015. "Distinguishing between plasmon-induced and photoexcited carriers in a device geometry," Nature Communications, Nature, vol. 6(1), pages 1-7, November.
    4. Yungok Ihm & Do Hyung Cho & Daeho Sung & Daewoong Nam & Chulho Jung & Takahiro Sato & Sangsoo Kim & Jaehyun Park & Sunam Kim & Marcus Gallagher-Jones & Yoonhee Kim & Rui Xu & Shigeki Owada & Ji Hoon S, 2019. "Direct observation of picosecond melting and disintegration of metallic nanoparticles," Nature Communications, Nature, vol. 10(1), pages 1-6, December.
    5. Germán Sciaini & Maher Harb & Sergei G. Kruglik & Thomas Payer & Christoph T. Hebeisen & Frank-J. Meyer zu Heringdorf & Mariko Yamaguchi & Michael Horn-von Hoegen & Ralph Ernstorfer & R. J. Dwayne Mil, 2009. "Electronic acceleration of atomic motions and disordering in bismuth," Nature, Nature, vol. 458(7234), pages 56-59, March.
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