English

Layered Bimetal Nanoporous Platforms for SERS Sensing

Applied Physics 2026-05-21 v2 Optics

Abstract

Nanoporous metals are extensively investigated as platforms for applications in plasmonics. They present high surface areas and strong local electric fields that can be tuned at different energies, playing with the choice of the metals and the morphology of the porous layers. Until recently, research in the field of plasmonics has primarily focused on porous metals composed of a single element, with limited attention given to the impact of alloy composition. The investigation of bi-metallic systems has only just begun to emerge in the literature. In particular, combining two or more different plasmonic metals, it could be possible to explore the interactions between two metals excited at specific energies. This involves plasmonic coupling, electron transfer, band hybridization at the interface, electromagnetic field interactions, and possibly thermal and electronic energy transfer depending on separation, size, and materials involved. The analysis of bi-metal systems can also be interesting in biomolecule detection, such as in the case of Surface Enhanced Raman Scattering (SERS). Here we report, for the first time, a detailed study (comprising morphological analyses, numerical modelling, and optical spectroscopies) on bi-metal nanoporous platforms prepared with a dry-synthesis method enabling the easy and controllable fabrication of bilayers combining different metals such as Au, Ag, and Cu.

Keywords

Cite

@article{arxiv.2510.14706,
  title  = {Layered Bimetal Nanoporous Platforms for SERS Sensing},
  author = {Yanqiu Zou and Anastasiia Sapunova and Tommaso Giovannini and Chen Wang and Huaizhou Jin and Vincenzo Caligiuri and Andrea Schirato and Luca Bursi and Alessandro Alabastri and Shukun Weng and Ali Douaki and German Lanzavecchia and Ivan Marri and Roman Krahne and Nicolò Maccaferri and Zhenrong Zheng and Shangzhong Jin and Denis Garoli},
  journal= {arXiv preprint arXiv:2510.14706},
  year   = {2026}
}
R2 v1 2026-07-01T06:41:26.243Z