Abstract
Au nanoparticle-modified WO3inverse opal photonic crystals (Au/WO3IOPCs) exhibit exceptional NO2sensing via synergistic hierarchical porosity, Au catalytic activity, and plasmonic hot electrons. A pioneering multimodal environmental operando microspectroscopy platform integrates photoconductive AFM, Kelvin probe microscopy, and in situ DRIFTS with computational modeling. This approach achieves atomic-scale spatiotemporal resolution of interfacial dynamics, directly revealing: (i) plasmonically generated hot electrons fluxing across the Au/WO3interface to activate NO2adsorption and modulate electron depletion layers under illumination and (ii) dynamic Schottky barrier reconfiguration at electrode junctions that quantitatively correlates environmental stimuli (gas concentration, photon flux, temperature) with resistance evolution. By bridging nanoscale charge transfer to device-level responses, the study establishes a transformative methodology for plasmon-enhanced photonic sensors while providing fundamental insights into interfacial processes, enabling knowledge-driven development of high-precision detectors with ultimate sensitivity and selectivity.
| Original language | English |
|---|---|
| Pages (from-to) | 12369-12378 |
| Number of pages | 10 |
| Journal | Nano Letters |
| Volume | 25 |
| Issue number | 32 |
| DOIs | |
| State | Published - 13 Aug 2025 |
Keywords
- Gas sensing
- hot electrons
- operando microspectroscopy
- photonic crystal heterostructure
- self-assembly
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