Although there has been intense research on plasmon-induced
charge
transfer within metal/semiconductor heterostructures, previous studies
have all focused on the surface plasmonic resonance (SPR) of only
noble metals. Herein and for the first time, we observe and take into
account the plasmonic coupling between SPR of both noble-metal and
semiconductor nanostructures. A W18O49/Ag heterostructure
composed of metallic Ag nanoparticles (Ag NPs) and semiconducting
W18O49 nanowires (W18O49 NWs) is designed and fabricated, which exhibits a broad and strong
SPR absorption in the visible wavelength range. This SPR band is attributed
to the SPR coupling between the SPR of both Ag NPs and W18O49 NWs. Surface-enhanced Raman scattering (SERS) is then
used to reveal the interactions between the metal SPR, semiconductor
SPR, and the heterostructure’s charge transfer (CT) process,
demonstrating that such coupled SPR enhanced the heterostructure’s
internal CT and SERS signals. Finally, we proposed a new coupled-plasmon-induced
charge transfer mechanism to interpret the improved CT efficiency
between the SERS substrate and molecules. Our work provides insight
for further studies on plasmonic effects and interfacial charge transfer
in metal/semiconductor heterostructures