4.6 Article

Multifunctional ZrB2-rich Zr1-xCrxBy thin films with enhanced mechanical, oxidation, and corrosion properties

期刊

VACUUM
卷 185, 期 -, 页码 -

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.vacuum.2020.109990

关键词

Thin films; Transition-metal (TM) diborides; Mechanical properties; Wear; Oxidation; Corrosion

资金

  1. Knut and Alice Wallenberg (KAW) foundation [KAW 2015.0043]
  2. Swedish Research Council VR [2018-03957, 6422013-8020]
  3. VINNOVA Grant [2019-04882]
  4. Carl Tryggers Stiftelse [CTS 15:219, CTS 20:150, CTS 14:431]
  5. Swedish Government Strategic Research Area in Materials Science on Functional Materials at Linkoping University (Faculty Grant SFO Mat LiU) [2009 00971]
  6. Swedish research council VR-RFI [2017-00646_9]
  7. Swedish Foundation for Strategic Research [RIF14-0053, RIF14-0074]
  8. Swedish Foundation for Strategic Research (SSF) [RIF14-0074] Funding Source: Swedish Foundation for Strategic Research (SSF)

向作者/读者索取更多资源

The effect of Cr addition on the properties of ZrB2-rich thin films was studied, showing that Zr0.56Cr0.44B1.11 alloys exhibit superior toughness, wear, oxidation, and corrosion resistance. This makes them ideal candidates for numerous strategic applications.
Refractory transition-metal (TM) diborides have high melting points, excellent hardness, and good chemical stability. However, these properties are not sufficient for applications involving extreme environments that require high mechanical strength as well as oxidation and corrosion resistance. Here, we study the effect of Cr addition on the properties of ZrB2-rich Zr1-xCrxBy thin films grown by hybrid high-power impulse and de magnetron co-sputtering (Cr-HiPIMS/ZrB2-DCMS) with a 100-V Cr-metal-ion synchronized bias. Cr metal fraction, x = Cr/(Zr + Cr), is increased from 0.23 to 0.44 by decreasing the power P-ZrB2 applied to the DCMS ZrB2 target from 4000 to 2000 W, while the average power, pulse width, and frequency applied to the HiPIMS Cr target are maintained constant. In addition, y decreases from 2.18 to 1.11 as a function of P-ZrB2, as a result of supplying Cr to the growing film and preferential B resputtering caused by the pulsed Cr-ion flux. ZrB2.18, Zr0.77Cr0.23B1.52, Zr0.71Cr0.29B1.42, and Zr(0.68)Cr(0.32)B(1.38 )films have hexagonal AlB2 crystal structure with a columnar nanostructure, while Zr0.64Cr0.36B1.30 and Zr0.56Cr0.44B1.11 are amorphous. All films show hardness above 30 GPa. Zr0.56Cr0.44B1.11 alloys exhibit much better toughness, wear, oxidation, and corrosion resistance than ZrB2.18. This combination of properties makes Zr0.56Cr0.44B1.11 ideal candidates for numerous strategic applications.

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