Titanium nitride (TiN) has emerged as alternative plasmonic material in the visible and near-infrared spectral range due to its metallic properties. We studied the influence of silver ion implantation (fluence range from 0.5 x 10(16)-6 x 10(16) ions/cm(2)) on the structural and optical properties of reactively sputtered 260 nm thick TiN films. The columnar structure was partially destroyed by the irradiation and up to 5 at% of Ag was incorporated into the films within the projected ion range. The formation of cubic Ag nanoparticles with size of 1-2 nm was observed by high resolution transmission electron microscopy and subsequent fast Fourier transform analysis. This presence of Ag within the TiN matrix drastically changes both the real and...
The refractory metal titanium nitride is promising for high-temperature nanophotonic and plasmonic a...
New opportunities for plasmonic applications at high temperatures have stimulated interest in refrac...
© 2018 Elsevier B.V. Emerging plasmonic materials are an essential driving factor of the ongoing pro...
Titanium nitride (TiN) has emerged as alternative plasmonic material in the visible and near-infrare...
Titanium nitride (TiN) thin films thickness of similar to 260 nm prepared by dc reactive sputtering ...
The paper reports the study on dielectric functions of TiN films implanted with Ag ions and after an...
Titanium-nitride (TiN) is known as a very promising plasmonic material, which offers many advantages...
Modification in structural, optical and electrical properties of titanium nitride (TiN) thin films i...
Polycrystalline titaniumnitride (TiN) layers of 240 nmthickness and columnar microstructure were dep...
Titanium nitride is a well-known conductive ceramic material that has recently experienced resumed a...
The present study deals with irradiation effects induced by xenon ions (Xe+ on titanium nitride (TiN...
Transition metal nitrides have recently garnered much interest as alternative materials for robust p...
Titanium nitride (TiN) is a promising plasmonic material alternative to gold and silver thanks to it...
Nanophotonic devices offer an unprecedented ability to concentrate light into small volumes which ca...
We examine the optical properties of nanostructures comprised of titanium nitride, TiN, an electrica...
The refractory metal titanium nitride is promising for high-temperature nanophotonic and plasmonic a...
New opportunities for plasmonic applications at high temperatures have stimulated interest in refrac...
© 2018 Elsevier B.V. Emerging plasmonic materials are an essential driving factor of the ongoing pro...
Titanium nitride (TiN) has emerged as alternative plasmonic material in the visible and near-infrare...
Titanium nitride (TiN) thin films thickness of similar to 260 nm prepared by dc reactive sputtering ...
The paper reports the study on dielectric functions of TiN films implanted with Ag ions and after an...
Titanium-nitride (TiN) is known as a very promising plasmonic material, which offers many advantages...
Modification in structural, optical and electrical properties of titanium nitride (TiN) thin films i...
Polycrystalline titaniumnitride (TiN) layers of 240 nmthickness and columnar microstructure were dep...
Titanium nitride is a well-known conductive ceramic material that has recently experienced resumed a...
The present study deals with irradiation effects induced by xenon ions (Xe+ on titanium nitride (TiN...
Transition metal nitrides have recently garnered much interest as alternative materials for robust p...
Titanium nitride (TiN) is a promising plasmonic material alternative to gold and silver thanks to it...
Nanophotonic devices offer an unprecedented ability to concentrate light into small volumes which ca...
We examine the optical properties of nanostructures comprised of titanium nitride, TiN, an electrica...
The refractory metal titanium nitride is promising for high-temperature nanophotonic and plasmonic a...
New opportunities for plasmonic applications at high temperatures have stimulated interest in refrac...
© 2018 Elsevier B.V. Emerging plasmonic materials are an essential driving factor of the ongoing pro...