# Field-Effect Plasmonic Transistors Based on Metallic–Semiconducting Carbon Nanotube Junctions

https://mdr.nims.go.jp/datasets/763d3004-ed38-40db-a388-64469556e126

## File

- [2025A01055G_Field-Effect Plasmonic Transistors Based on Metallic-Semiconducting Carbon Nanotube Junctions.pdf](https://mdr.nims.go.jp/filesets/45ac5c01-13fe-44f5-b5da-38395386556f/download) ([Detail](https://mdr.nims.go.jp/filesets/45ac5c01-13fe-44f5-b5da-38395386556f.md))

## Id

763d3004-ed38-40db-a388-64469556e126

## Local identifier



## Visibility

open_to_public

## State

published

## Created at

2026-07-27T23:43:28.849459Z

## Updated at

2026-07-28T06:08:20.789590Z

## Published at

2026-07-28T07:27:17.254684Z

## Doi



## First published url

https://doi.org/10.1021/acs.nanolett.5c00221

## Date published

2025-04-02

## Recorded date published

2025-4-2

## Resource type

journal_article

## Manuscript type

accepted_manuscript

## Collection



## Title

- title: Field-Effect Plasmonic Transistors Based on Metallic–Semiconducting Carbon
    Nanotube Junctions
  title_type: original
  lang: en

## Description

- description: Nanophotonic circuits are regarded as a transformative technology that
    can overcome many challenges faced by electronic circuits, particularly concerning
    operating frequency limits. However, the development of nanophotonic circuits
    utilizing plasmons is strongly hampered by the absence of fundamental building
    blocks such as long-lived deep-subwavelength plasmons, plasmonic waveguides, and
    field-effect plasmonic transistors (FEPTs). Here, we demonstrate Luttinger-liquid
    FEPTs based on metallic–semiconducting carbon nanotube junctions. In these devices,
    the propagation of plasmon waves across the junction can be efficiently controlled
    by electrostatic gating. Theoretical analysis and numerical simulations indicate
    that the reflection/transmission of Luttinger-liquid plasmons at junctions can
    be captured well by the Fresnel equation. This result suggests that the classical
    Fresnel law persists for Luttinger-liquid plasmons with a reduced dimensionality.
    Our study not only uncovers the fundamental propagation characteristics of Luttinger-liquid
    plasmons at junctions but also introduces a new category of FEPTs that could facilitate
    the development of high-frequency nanophotonic circuits.
  description_type: abstract
  lang: en

## Creator

- name: Yufeng Xie
  role: author
- name: Kunqi Xu
  role: author
- name: Zhenghan Wu
  role: author
- name: Cheng Hu
  role: author
- name: Saiqun Ma
  role: author
- name: Xianliang Zhou
  role: author
- name: Zhichun Zhang
  role: author
- name: Peiyue Shen
  role: author
- name: Yi Chen
  role: author
- name: Chengjia Zhang
  role: author
- name: Liguo Wang
  role: author
- name: Kenji Watanabe
  role: author
  orcid: https://orcid.org/0000-0003-3701-8119
  organization: National Institute for Materials Science
- name: Takashi Taniguchi
  role: author
  orcid: https://orcid.org/0000-0002-1467-3105
  organization: National Institute for Materials Science
- name: Qi Liang
  role: author
- name: Guibai Xie
  role: author
- name: Seojoo Lee
  role: author
- name: Ji-Hun Kang
  role: author
- name: Zhiwen Shi
  role: author

## Contact agent



## Publisher

organization: American Chemical Society (ACS)

## Managing organization



## Keyword

- subject: Plasmon
  schema: not_defined
- subject: Carbon nanotube
  schema: not_defined
- subject: Nanophotonic circuit
  schema: not_defined

## Rights

- description: This document is the Accepted Manuscript version of a Published Work
    that appeared in final form in Nano Letters, copyright © 2025 American Chemical
    Society after peer review and technical editing by the publisher. To access the
    final edited and published work see https://doi.org/10.1021/acs.nanolett.5c00221
  identifier: http://rightsstatements.org/vocab/InC/1.0/

## Other identifier(s)



## Data origin

- data_origin_type: other

## Embargo

start_date: 2025-03-21
end_date: 2026-03-21

## Journal

- title: Nano Letters
  issn: '15306984'
  volume: '25'
  issue: '13'
  start_page: 5334
  end_page: 5341

## Conference



## Related item



## Funding

- identifier: 23H02052
  funder_name: Japan Society for the Promotion of Science
- funder_name: Ministry of Education, Culture, Sports, Science and Technology
- identifier: 2021YFA1202902
  funder_name: National Key Research and Development Program of China
- identifier: 2022YFA1402702
  funder_name: National Key Research and Development Program of China
- identifier: NRF-2021R1A2C2012617
  funder_name: National Research Foundation of Korea
- identifier: NRF-RS-2024-00454528
  funder_name: National Research Foundation of Korea
- identifier: JPMJCR24A5
  funder_name: Core Research for Evolutional Science and Technology
- identifier: 21H05233
  funder_name: Japan Society for the Promotion of Science
- identifier: '12374292'
  funder_name: National Natural Science Foundation of China

## Instrument



## Instrument operator



## Instrument managing organization



## Measurement method



## Specimen



## Chemical composition



## Structure for specimen



## Structural feature for specimen



## Specific property for specimen



## Process for specimen treatment



## Computational method



## Energy level/transition state



## Software



## Custom property



## Fileset

- id: 45ac5c01-13fe-44f5-b5da-38395386556f
  filename: 2025A01055G_Field-Effect Plasmonic Transistors Based on Metallic-Semiconducting
    Carbon Nanotube Junctions.pdf
  content_type: application/pdf
  size: 1053480
  md5: 73610aaee2885bfebf2f785af80629f6

## Thumbnail

fileset_id: 45ac5c01-13fe-44f5-b5da-38395386556f
filename: 2025A01055G_Field-Effect Plasmonic Transistors Based on Metallic-Semiconducting
  Carbon Nanotube Junctions.pdf