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Updated: May 15, 2026

Multimodal Analytical Platform on a Multiplexed Surface Plasmon Resonance Imaging Chip for the Analysis of Extracellular Vesicle Subsets
Published on: March 17, 2023
From hotspots to hotspaces: Cascaded photonic-plasmonic coupling for SERS-based deep profiling of whole small
Haoming Bao1,2, Emily Xi Tan2,3, Jie Zhou4
1Key Lab of Materials Physics, Anhui Key Lab of Nanomaterials and Nanotechnology, Institute of Solid State Physics, HFIPS, Chinese Academy of Sciences, Hefei 230031, P.R. China.
Abstract:
The spatial confinement of electromagnetic hotspots (<15 nanometers) in plasmonic nanostructures fundamentally restricts their utility for probing large, heterogeneous targets across diverse material and biological systems. We introduce a cascaded photonic-plasmonic strategy that bridges far-field illumination and near-field enhancement by integrating dielectric silicon dioxide microspheres that form subdiffraction nanojets on a plasmonic, gold-coated silicon dioxide nanoarray. This dual-layer architecture generates spatially extended electromagnetic "hotspaces" exceeding 110 nanometers in lateral extent and sustaining analytical enhancement factors > 106, a regime inaccessible to conventional surface-enhanced Raman scattering (SERS) platforms. In silico simulations and experiments reveal ~20-fold enhancements in signal intensity and spatial reach compared to conventional nanoarrays. As a proof of concept, we demonstrate ultrasensitive, label-free classification of extracellular vesicles, 80 to 200 nm in diameter, derived from patients with colorectal cancer with 99.8% accuracy, surpassing traditional SERS (<87.5%). More broadly, this cascaded excitation strategy shifts the emphasis from nanogap optimization to the engineering of spatially extended fields through hybrid light-focusing architectures, enabling advances in spectroscopy, biosensing, nanophotonics, and diagnostics.
