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Canalization-based super-resolution imaging using an individual van der Waals thin layer

  • Jiahua Duan*
  • , Aitana Tarazaga Martín-Luengo*
  • , Christian Lanza
  • , Stefan Partel
  • , Kirill Voronin
  • , Ana Isabel F. Tresguerres-Mata
  • , Gonzalo Álvarez-Pérez
  • , Alexey Y. Nikitin
  • , Javier Martín-Sánchez
  • , Pablo Alonso-González*
  • *此作品的通讯作者
  • Beijing Institute of Technology
  • University of Oviedo
  • Department of Physics
  • Research Center of Microtechnology
  • Vorarlberg University of Applied Sciences
  • Donostia International Physics Center
  • Center of Research on Nanomaterials and Nanotechnology
  • Computational Nanoplasmonics group
  • Italian Institute of Technology
  • Ikerbasque Basque Foundation for Science

科研成果: 期刊稿件 › 文章 › 同行评审

摘要

Canalization is an optical phenomenon that enables unidirectional light propagation without predefined waveguiding designs. Recently demonstrated using phonon polaritons in twisted van der Waals (vdW) layers of α-MoO3, it offers unprecedented possibilities for controlling light-matter interactions at the nanoscale. However, practical applications have been hindered by the complex sample fabrication of twisted stacks. In this work, we introduce a previously unexplored canalization phenomenon in a single-thin vdW layer (α-MoO3) interfaced with a substrate exhibiting a given negative permittivity. This enables a proof-of-concept application of polariton canalization: super-resolution nanoimaging (~λ0/220). Canalization-based imaging transcends conventional projection constraints, allowing the super-resolution images to be obtained at any desired location in the image plane. This versatility stems from the synergetic manipulation of three key parameters: incident frequency, rotation angle of the thin vdW layer, and thickness. Our results provide insights into the properties of canalization and constitute a seminal step toward multifaceted photonic applications, including imaging, data transmission, and ultracompact photonic integration.

源语言英语
期刊论文编号eads0569
期刊Science Advances
卷11
期7
DOI
出版状态已出版 - 14 2月 2025

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