Ultrahigh Nonlinear Responses from MXene Plasmons in the Short-Wave Infrared Range

  • Changhoon Park
  • , Nu Ri Park
  • , Jisung Kwon
  • , Hyerim Kim
  • , Yury Gogotsi
  • , Chong Min Koo*
  • , Myung Ki Kim*
  • *Corresponding author for this work

    Research output: Contribution to journalArticlepeer-review

    Abstract

    Surface plasmons in 2D materials such as graphene exhibit exceptional field confinement. However, the low electron density of majority of 2D materials, which are semiconductors or semimetals, has limited their plasmons to mid-wave or long-wave infrared regime. This study demonstrates that a 2D Ti3C2Tx MXene with high electron density can not only support strong plasmon confinement with an acoustic plasmon mode in the short-wave infrared region, but also provide ultrahigh nonlinear responses. The acoustic MXene plasmons (AMPs) in the MXene (Ti3C2Tx)–insulator (SiO2)–metal (Au) nanostructure generate in the 1.5–6.0 µm wavelength range, exhibiting a two orders of magnitude reduction in wavelength compared to wavelength in free space. Furthermore, AMP resonators with patterned Au rods exhibit a record-high nonlinear absorption coefficient of 1.37 × 10−2 m W−1 at wavelength of 1.56 µm, ≈3 orders of magnitude greater than the highest value recorded for other 2D materials. These results indicate that MXenes can overcome fundamental plasmon wavelength limitations of previously studied 2D materials, providing groundbreaking opportunities in nonlinear optical applications, including all-optical processing and ultrafast optical switching.

    Original languageEnglish
    Article number2309189
    JournalAdvanced Materials
    Volume36
    Issue number21
    DOIs
    Publication statusPublished - 2024 May 23

    Bibliographical note

    Publisher Copyright:
    © 2024 The Authors. Advanced Materials published by Wiley-VCH GmbH.

    Keywords

    • 2D materials
    • MXene plasmons
    • MXenes
    • acoustic plasmons
    • nonlinear absorption

    ASJC Scopus subject areas

    • General Materials Science
    • Mechanics of Materials
    • Mechanical Engineering

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