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Bibliographic Details
Main Authors: Balena, Antonio, Amato, Marianna D, Kashif, Muhammad Fayyaz, Ding, Chengjie, De Vittorio, Massimo, Pisanello, Ferruccio, Bramati, Alberto
Format: Preprint
Published: 2025
Subjects:
Online Access:https://arxiv.org/abs/2503.23916
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author Balena, Antonio
Amato, Marianna D
Kashif, Muhammad Fayyaz
Ding, Chengjie
De Vittorio, Massimo
Pisanello, Ferruccio
Bramati, Alberto
author_facet Balena, Antonio
Amato, Marianna D
Kashif, Muhammad Fayyaz
Ding, Chengjie
De Vittorio, Massimo
Pisanello, Ferruccio
Bramati, Alberto
contents This study introduces a novel method for the deterministic fabrication of metallic nanostructures with controlled geometry and composition on suspended, single mode tapered optical nanofibers (TNFs) using a tailored Blurred Electron Beam Induced Deposition (BEBID) technique. TNFs, owing to their subwavelength diameters and intense evanescent fields, offer a unique platform for enhanced light matter interactions at the nanoscale. However, their mechanical fragility has thus far hindered the integration of plasmonic structures using conventional high energy deposition methods. BEBID addresses this limitation by deliberately defocusing the electron beam to reduce local mechanical stress, minimize vibration, and prevent fiber damage during deposition, thereby enabling the one-step growth of platinum nanopillars with sub 20 nm spatial precision and high structural fidelity directly on suspended TNFs. The fabricated structures were characterized using SEM, EDX, and their optical properties were investigated through broadband scattering spectra and polarization resolved measurements, showing strong agreement with Finite Difference Time Domain (FDTD) simulations. Numerical modeling further reveals that ordered arrays of nanopillars can shape and direct the scattered field along the fiber axis, enabling directional emission. This work establishes BEBID as a versatile bottom up nanofabrication approach for functional photonic architectures on fragile substrates, with direct applications in quantum photonics, nano optics, and on fiber plasmonic sensing.
format Preprint
id arxiv_https___arxiv_org_abs_2503_23916
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Deterministic Bottom-Up Fabrication of Plasmonic Nanostructures on Optical Nanofibers via Blurred Electron Beam Deposition
Balena, Antonio
Amato, Marianna D
Kashif, Muhammad Fayyaz
Ding, Chengjie
De Vittorio, Massimo
Pisanello, Ferruccio
Bramati, Alberto
Optics
Applied Physics
This study introduces a novel method for the deterministic fabrication of metallic nanostructures with controlled geometry and composition on suspended, single mode tapered optical nanofibers (TNFs) using a tailored Blurred Electron Beam Induced Deposition (BEBID) technique. TNFs, owing to their subwavelength diameters and intense evanescent fields, offer a unique platform for enhanced light matter interactions at the nanoscale. However, their mechanical fragility has thus far hindered the integration of plasmonic structures using conventional high energy deposition methods. BEBID addresses this limitation by deliberately defocusing the electron beam to reduce local mechanical stress, minimize vibration, and prevent fiber damage during deposition, thereby enabling the one-step growth of platinum nanopillars with sub 20 nm spatial precision and high structural fidelity directly on suspended TNFs. The fabricated structures were characterized using SEM, EDX, and their optical properties were investigated through broadband scattering spectra and polarization resolved measurements, showing strong agreement with Finite Difference Time Domain (FDTD) simulations. Numerical modeling further reveals that ordered arrays of nanopillars can shape and direct the scattered field along the fiber axis, enabling directional emission. This work establishes BEBID as a versatile bottom up nanofabrication approach for functional photonic architectures on fragile substrates, with direct applications in quantum photonics, nano optics, and on fiber plasmonic sensing.
title Deterministic Bottom-Up Fabrication of Plasmonic Nanostructures on Optical Nanofibers via Blurred Electron Beam Deposition
topic Optics
Applied Physics
url https://arxiv.org/abs/2503.23916