Titanium Nitride Coating

Titanium nitride coating is a thin ceramic layer composed of titanium and nitrogen that protects an underlying material while improving surface hardness, wear resistance, and chemical stability. In chemistry and materials research, it is commonly formed by physical vapor deposition, where titanium atoms are vaporized and react with nitrogen in a low-pressure plasma before condensing on a substrate. The resulting gold-colored film can extend component life in cutting tools, molds, decorative hardware, and other surfaces exposed to friction or corrosive environments. Studying titanium nitride coating connects gas-phase reactions, nucleation, film growth, and coating adhesion, helping researchers tune composition and deposition conditions for targeted performance.

Titanium Nitride Coating - Related Videos

Research

JoVE Journal - Chemistry

Growth of Gold Dendritic Nanoforests on Titanium Nitride-coated Silicon Substrates

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Cited by 5 •

2019

This study presents a feasible procedure for synthesizing gold dendritic nanoforests on titanium nitride/silicon substrates. The thickness of gold dendritic nanoforests increases linearly within 15 min of a synthesis reaction.

Fabrication and Characterization of High-Q Silicon Nitride Membrane Resonators

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Cited by 1 •

2025

This article traces the life cycle of a silicon nitride membrane resonator, from design through fabrication to characterization.

Research

JoVE Journal - Chemistry
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Low-energy Cathodoluminescence for (Oxy)Nitride Phosphors

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Cited by 2 •

2016

An excellent chemical and luminescence stabilities of (oxy)nitride phosphors present it as an promising alternative to currently used sulfide and oxide phosphors. In this paper, we present the way to investigate its local luminescence properties using low-energy cathodoluminescence (CL).

Research

JoVE Journal - Engineering
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Digital Printing of Titanium Dioxide for Dye Sensitized Solar Cells

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Cited by 7 •

2016

This paper investigates the suitability of inkjet printing for the manufacturing of dye-sensitized solar cells. A binder-free TiO2 nanoparticle ink was formulated and printed onto a FTO glass substrate. The printed layer was fabricated into a cell with an active area of 0.25 cm2 and an efficiency of 3.5%.

In Vitro Evaluation of The Effects Of Er,Cr:YSGG and Diode Lasers Used on Titanium Cylinder

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2025

In this study, Er,Cr:YSGG and diode lasers applied separately to the flat surface of a total of 96 specially designed titanium cylinders. A thermocouple placed on the other surface and the temperature was measured. Surface roughness analyzed by profilometer, SEM and AFM.

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