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  Reactive wear protection through strong and deformable oxide nanocomposite surfaces

Liu, C., Li, Z., Lu, W., Bao, Y., Xia, W., Wu, X., et al. (2021). Reactive wear protection through strong and deformable oxide nanocomposite surfaces. Nature Communications, 12(1): 5518. doi:10.1038/s41467-021-25778-y.

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 Creators:
Liu, Chang1, Author           
Li, Zhiming2, 3, Author           
Lu, Wenjun1, 4, Author           
Bao, Yan5, Author
Xia, Wenzhen6, Author           
Wu, Xiaoxiang1, 7, Author           
Zhao, Huan8, Author           
Gault, Baptiste9, 10, Author           
Liu, Chenglong5, Author
Herbig, Michael11, Author           
Fischer, Alfons12, Author           
Dehm, Gerhard13, Author           
Wu, Ge1, Author           
Raabe, Dierk12, Author           
Affiliations:
1High-Entropy Alloys, Microstructure Physics and Alloy Design, Max-Planck-Institut für Eisenforschung GmbH, Max Planck Society, ou_3010672              
2School of Materials Science and Engineering, Central South University, Changsha 410083, China, ou_persistent22              
3State Key Laboratory of Powder Metallurgy, Central South University, Changsha, 410083 China, ou_persistent22              
4Advanced Transmission Electron Microscopy, Structure and Nano-/ Micromechanics of Materials, Max-Planck-Institut für Eisenforschung GmbH, Max Planck Society, ou_1863399              
5Department of Mechanical Engineering, City University of Hong Kong, Hong Kong, China, ou_persistent22              
6Nanotribology, Structure and Nano-/ Micromechanics of Materials, Max-Planck-Institut für Eisenforschung GmbH, Max Planck Society, ou_1863402              
7Shagang School of Iron and Steel, Soochow University, Suzhou, 215137, China, ou_persistent22              
8Mechanism-based Alloy Design, Microstructure Physics and Alloy Design, Max-Planck-Institut für Eisenforschung GmbH, Max Planck Society, ou_1863383              
9Atom Probe Tomography, Microstructure Physics and Alloy Design, Max-Planck-Institut für Eisenforschung GmbH, Max Planck Society, ou_1863384              
10Imperial College, Royal School of Mines, Department of Materials, London, SW7 2AZ, UK, ou_persistent22              
11Materials Science of Mechanical Contacts, Project Groups, Microstructure Physics and Alloy Design, Max-Planck-Institut für Eisenforschung GmbH, Max Planck Society, ou_2324693              
12Microstructure Physics and Alloy Design, Max-Planck-Institut für Eisenforschung GmbH, Max Planck Society, ou_1863381              
13Structure and Nano-/ Micromechanics of Materials, Max-Planck-Institut für Eisenforschung GmbH, Max Planck Society, ou_1863398              

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 Abstract: Wear-resistant metals have long been a pursuit of reducing wear-related energy and material loss. Here the authors present the 'reactive wear protection' strategy via friction-induced in situ formation of strong and deformable oxide nanocomposites on a surface.

Wear-related energy and material loss cost over 2500 Billion Euro per year. Traditional wisdom suggests that high-strength materials reveal low wear rates, yet, their plastic deformation mechanisms also influence their wear performance. High strength and homogeneous deformation behavior, which allow accommodating plastic strain without cracking or localized brittle fracture, are crucial for developing wear-resistant metals. Here, we present an approach to achieve superior wear resistance via in-situ formation of a strong and deformable oxide nanocomposite surface during wear, by reaction of the metal surface with its oxidative environment, a principle that we refer to as 'reactive wear protection'. We design a TiNbZr-Ag alloy that forms an amorphous-crystalline oxidic nanocomposite surface layer upon dry sliding. The strong (2.4 GPa yield strength) and deformable (homogeneous deformation to 20% strain) nanocomposite surface reduces the wear rate of the TiNbZr-Ag alloy by an order of magnitude. The reactive wear protection strategy offers a pathway for designing ultra-wear resistant alloys, where otherwise brittle oxides are turned to be strong and deformable for improving wear resistance.

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Language(s): eng - English
 Dates: 2021-09-17
 Publication Status: Issued
 Pages: -
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 Rev. Type: Peer
 Identifiers: DOI: 10.1038/s41467-021-25778-y
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Title: Nature Communications
  Abbreviation : Nat. Commun.
Source Genre: Journal
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Pages: - Volume / Issue: 12 (1) Sequence Number: 5518 Start / End Page: - Identifier: ISSN: 2041-1723
CoNE: https://pure.mpg.de/cone/journals/resource/2041-1723