| Literature DB >> 28839210 |
Lina Yang1, Kan Zhang2, Mao Wen1, Zhipeng Hou3, Chen Gong3, Xucheng Liu1, Chaoquan Hu1, Xiaoqiang Cui1, Weitao Zheng4.
Abstract
Either hardness or toughness has been the core interest in scientific exploration and technological pursuit for a long time. However, it is still a big challenge to enhance the hardness and toughness at the same time, since the improvement of one side is always at the expense of the other one. Here, we have succeeded in dealing with this pair of conflict based on tungsten (W) coating by doping boron (B) via magnetron co-sputtering. The results reveal that the introduction of low concentrations of B (6.3 at. %), in the doping regime, leads to the formation of W(B) supersaturated solid solution with refined grains. Meanwhile, the doping-induced higher compressive stress, higher H/E* and denser microstructure result in a surprising combination of improved hardness (2 × larger than pure W) and superior toughness (higher crack formation threshold compared to pure W). We believe this is an innovative sight to design new generation of transition-metal-based multifunctional coatings. Besides, our results are applicable for industrial application because it can be realized by simple manufacturing approaches, e.g. magnetron sputtering technology.Entities:
Year: 2017 PMID: 28839210 PMCID: PMC5571190 DOI: 10.1038/s41598-017-09807-9
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Experimental parameters, composition, grain sizes (D) and H/E* for all coatings.
| As-deposited coating | W target power (W) | B target power (W) | Composition (at. %) | D (nm) | H/E* | |
|---|---|---|---|---|---|---|
| W | B | |||||
| W | 70 | 0 | 100 | 0 | 15.3 | 0.066 ± 0.01 |
| α-W(B) | 70 | 93.7 | 6.3 | 8.6 | 0.102 ± 0.01 | |
| W2B | 400 | 75.6 | 24.4 | 3.1 | 0.124 ± 0.02 | |
Figure 1(a) XPS W4f and B1s spectra for the coating with B content of 6.3, and 24.4 at. %. (b) XRD patterns for all coatings as a function of B content. (c–e) HRTEM and corresponding SAED images (insets) formed at the coating with B content of 0 at. % (c), 6.3 at. % (d), 24.4 at. % (e).
Figure 2(a–c) Cross-sectional SEM images for the coatings with B content of 0 at. % (a), 6.3 at. % (b), 24.4 at. % (c). (d–f) AFM 3D micrographs in dimensions of 2 × 2 μm2, the root-mean-square roughness (Rq) is marked.
Figure 3Hardness-displacement curves for the fused silica standard sample and as-deposited coatings (a), hardness and Young modulous for the coatings as a function of B content (b), the internal stress data is added to inset (b).
Figure 4SEM images of the indentations developed on the coatings with B content of 0 at. % (a), 6.3 at. % (b), 24.4 at. % (c).