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Influence of Protection Layers on Thermal Stability of Nitride Thin Films
Author(s) -
Zakutayev Andriy,
Perkins Craig L.
Publication year - 2021
Publication title -
physica status solidi (rrl) – rapid research letters
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.786
H-Index - 68
eISSN - 1862-6270
pISSN - 1862-6254
DOI - 10.1002/pssr.202100178
Subject(s) - materials science , nitride , thin film , auger electron spectroscopy , thermal stability , annealing (glass) , diffusion barrier , chemical engineering , chromium nitride , zirconium nitride , oxide , composite material , nanotechnology , metallurgy , titanium nitride , layer (electronics) , physics , nuclear physics , engineering
Nitrides are commonly studied for their properties relevant to numerous coating applications, and have been recently used to synthesize newly predicted materials in thin‐film form. However, the thermodynamic stability of such nitride materials is difficult to experimentally evaluate, due to the limited thermal budget of thin films. Herein, it is shown that the thermal stability of nitride films can be extended using protection layers. Specifically, it is found that zirconium nitride (ZrN) thin films are stable up to at least 1200 °C annealing temperature in N 2 atmosphere, if aluminum nitride (AlN) diffusion barriers and capping layers are used. X‐ray diffraction (XRD) measurements show the expected thermodynamically stable rocksalt structure of ZrN, and scanning electron microscopy (SEM) confirms the compact microstructure of these ZrN films. Without such protection layers, the transient bixbyite Zr 2 ON 2 phase and high‐temperature ZrSi 2 phase are observed after annealing by XRD, SEM, and Auger electron spectroscopy (AES), due to side reaction with the native surface oxide (ZrO x ) and the substrate (Si), respectively. These results demonstrate that protection layers are beneficial to increase the thermal budget of nitride thin films, for evaluating rgw thermodynamic stability of new nitride materials, for capturing transient metastable phases during crystallization, and for using functional nitride coatings in extreme environments.