In situgrowth of Au-Ag bimetallic nanorings on optical fibers for enhanced plasmonic sensing

  • Se Shi
  • , Anran Li
  • , Renliang Huang
  • , Jing Yu
  • , Shuzhou Li*
  • , Wei Qi
  • , Zhimin He
  • , Rongxin Su
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

Highly functionalized materials at the nanoscale on optical fibers offer notable opportunities to construct “lab-on-fiber” functional devices with unusual properties. However, it is extremely difficult to fabricate nanostructures with special morphology on a thin cylindrical optical fiber surface using the commonly used physical lithography techniques. Meanwhile, it is vital to maintain the plasmonic properties of Ag-riched particles while improving their stability. Herein, we design a facile strategy for the fabrication of Au-Ag bimetallic nanorings (Au-Ag NRs) immobilized on optical fibers for enhanced plasmonic properties. Ag NPs are first grownin situon an optical fiber surface through chelation and redox of polydopamine (PDA) to metal ions, and then are quickly converted into Au-Ag NRs by a galvanic replacement reaction and metal deposition. This conversion only takes 3.5 min, while the formed Au-Ag NRs exhibit outstanding localized surface plasmon resonance (LSPR) sensitivity (2204 nm per RIU) and oxidation resistance, and Au and Ag atoms are distributed uniformly in the nanorings. Furthermore, a novel and interesting formation process of the nanorings including deformation, spallation, growth in the gaps, and ring formation is studied. These findings provide a way to grow bimetallic nanorings on optical fibers, which are promising candidates for photoelectric “lab-on-fiber” devices.

Original languageEnglish
Pages (from-to)7552-7560
Number of pages9
JournalJournal of Materials Chemistry C
Volume8
Issue number22
DOIs
StatePublished - 14 Jun 2020

Fingerprint

Dive into the research topics of 'In situgrowth of Au-Ag bimetallic nanorings on optical fibers for enhanced plasmonic sensing'. Together they form a unique fingerprint.

Cite this