Titanium nitride (TiN) continues to prove itself as an inexpensive, robust, and efficient alternative to gold in plasmonic applications. Notably, TiN has improved hot electron-harvesting and photocatalytic abilities compared to gold systems, which we recently attributed to the role of oxygen in TiN and its native semiconducting TiO2–x surface layer. Here, we explore the role of localized surface plasmon resonances (LSPRs) on electron harvesting across the TiN/TiO2–x interface and probe the resilience of TiN nanostructures under high-power laser illumination. To investigate this, we fabricate TiN strips, in which the lateral confinement allows for the polarization-selective excitation of the LSPR. Using ultrafast pump–probe spectroscopy, opt...
Plasmonic metals can excite charge carriers in semiconductors through plasmon-induced resonance ener...
Exploiting plasmonic Au nanoparticles to sensitize TiO2 to visible light is a widely employed route ...
The refractory metal titanium nitride is promising for high-temperature nanophotonic and plasmonic a...
Titanium oxynitride enables a range of plasmonic and optoelectronic functionality using long-lived p...
We examine the optical properties of nanostructures comprised of titanium nitride, TiN, an electrica...
Developing colloidal plasmonic nanomaterials with high carrier density that show optical resonances ...
Titanium nitride (TiN) is a ceramic with high electrical conductivity which in nanoparticle form, ex...
Titanium nitride (TiN) is a ceramic with high electrical conductivity which in nanoparticle form, ex...
Ultrafast plasmonics is driving growing interest for the search of novel plasmonic materials, overco...
Group IVB metal nitrides have attracted great interest as alternative plasmonic materials. Among the...
New opportunities for plasmonic applications at high temperatures have stimulated interest in refrac...
Conventionally used plasmonic materials generally have low thermal stability, low chemical durabilit...
Plasmonic materials display high local field enhancements and enable the sub-wavelength confinement ...
We investigate titanium nitride (TiN) thin film coatings on silicon for CMOS-compatible sub-bandgap ...
Over the last several decades, innovative light-harvesting devices have evolved to achieve high-effi...
Plasmonic metals can excite charge carriers in semiconductors through plasmon-induced resonance ener...
Exploiting plasmonic Au nanoparticles to sensitize TiO2 to visible light is a widely employed route ...
The refractory metal titanium nitride is promising for high-temperature nanophotonic and plasmonic a...
Titanium oxynitride enables a range of plasmonic and optoelectronic functionality using long-lived p...
We examine the optical properties of nanostructures comprised of titanium nitride, TiN, an electrica...
Developing colloidal plasmonic nanomaterials with high carrier density that show optical resonances ...
Titanium nitride (TiN) is a ceramic with high electrical conductivity which in nanoparticle form, ex...
Titanium nitride (TiN) is a ceramic with high electrical conductivity which in nanoparticle form, ex...
Ultrafast plasmonics is driving growing interest for the search of novel plasmonic materials, overco...
Group IVB metal nitrides have attracted great interest as alternative plasmonic materials. Among the...
New opportunities for plasmonic applications at high temperatures have stimulated interest in refrac...
Conventionally used plasmonic materials generally have low thermal stability, low chemical durabilit...
Plasmonic materials display high local field enhancements and enable the sub-wavelength confinement ...
We investigate titanium nitride (TiN) thin film coatings on silicon for CMOS-compatible sub-bandgap ...
Over the last several decades, innovative light-harvesting devices have evolved to achieve high-effi...
Plasmonic metals can excite charge carriers in semiconductors through plasmon-induced resonance ener...
Exploiting plasmonic Au nanoparticles to sensitize TiO2 to visible light is a widely employed route ...
The refractory metal titanium nitride is promising for high-temperature nanophotonic and plasmonic a...