| Literature DB >> 26597298 |
Na Liu1, Lei Dong3, Lei Dong3, Jiangang Yu4, Yupeng Pan5, Rongxin Wan6, Hanqing Gu7, Dejun Li8.
Abstract
Nb-B-Al-O nanocomposite films with different power of Al2O3 were successfully deposited on the Si substrate via multi-target magnetron co-sputtering method. The influences of Al2O3's content on structure and properties of obtained nanocomposite films through controlling Al2O3's power were investigated. Increasing the power of Al2O3 can influence the bombarding energy and cause the momentum transfer of NbB2. This can lead to the decreasing content of Al2O3. Furthermore, the whole films showed monocrystalline NbB2's (100) phase, and Al2O3 shaded from amorphous to weak cubic-crystalline when decreasing content of Al2O3. This structure and content changes were proof by X-ray diffraction (XRD) and high-resolution transmission electron microscopy (TEM) and X-ray photoelectron spectroscopy (XPS). When NbB2 grains were far from each other in lower power of Al2O3, the whole films showed a typical nanocomposite microstructure with crystalline NbB2 grains embedded in a matrix of an amorphous Al2O3 phase. Continuing increasing the power of Al2O3, the less content of Al2O3 tended to cause crystalline of cubic-Al2O3 between the close distances of different crystalline NbB2 grains. The appearance of cubic-crystallization Al2O3 can help to raise the nanocomposite films' mechanical properties to some extent. The maximum hardness and elastic modulus were up to 21.60 and 332.78 GPa, which were higher than the NbB2 and amorphous Al2O3 monolithic films. Furthermore, this structure change made the chemistry bond of O atom change from the existence of O-Nb, O-B, and O-Al bonds to single O-Al bond and increased the specific value of Al and O. It also influenced the hardness in higher temperature, which made the hardness variation of different Al2O3 content reduced. These results revealed that it can enhance the films' oxidation resistance properties and keep the mechanical properties at high temperature. The study highlighted the importance of controlling the Al2O3's content to prepare well-defined films with high mechanical properties and thermal stability.Entities:
Keywords: Amorphous; Bombarding energy; Crystallization; Mechanical; Nb-B-Al-O nanocomposite films
Year: 2015 PMID: 26597298 PMCID: PMC4656258 DOI: 10.1186/s11671-015-1149-z
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Fig. 1Nb and B elemental composition (at.%) EDX of Nb-B-Al-O nanocomposite films at different power of Al2O3 (a) and height of Nb-B-Al-O nanocomposite films at different power of Al2O3 (b)
Fig. 2XRD patterns of Nb-B-Al-O nanocomposite at different power of Al2O3
Fig. 3XRD patterns of Nb-B-Al-O nanocomposite film at 140 W power of Al2O3 (a), TEM images taken at low (b) and high (c) magnification of 140 W power of Al2O3
Fig. 4Hardness and elastic modulus (a), critical load (b) of the Nb-B-Al-O nanocomposite films at different power of Al2O3
Fig. 5TEM images taken at high magnification of 60 W (a), 140 W (b) power of Al2O3, and its model representation (c, d)
Fig. 6Residual stresses of Nb-B-Al-O nanocomposite films at different power of Al2O3
Fig. 7Nb-B-Al-O Nanocomposite films’ high-resolution XPS spectra of O1s in 60 W power (a) and 120 W power (b) of Al2O3
Fig. 8Nb-B-Al-O nanocomposite films’ XPS whole energy spectra of different power of Al2O3
Fig. 9Hardness and elastic modulus with room temperature and 100 °C deposition temperature of Nb-B-Al-O nanocomposite films at different power of Al2O3