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An investigation of abnormal grain growth in Zr doped CoCrFeNi HEAs through in-situ formed oxide phases

Abnormal grain growth (AGG) in nanocrystalline (CoCrFeNi)100-xZrx (x = 1 and 4 at. %) HEAs, prepared through high energy mechanical alloying, was comprehensively investigated upon annealing. Transmission electron microscopy (TEM), including high angle annular dark field imaging (HAADF) and energy di...

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Published in:Intermetallics 2022-07, Vol.146, p.107588, Article 107588
Main Authors: Tekin, Mustafa, Polat, Gökhan, Kotan, Hasan
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description Abnormal grain growth (AGG) in nanocrystalline (CoCrFeNi)100-xZrx (x = 1 and 4 at. %) HEAs, prepared through high energy mechanical alloying, was comprehensively investigated upon annealing. Transmission electron microscopy (TEM), including high angle annular dark field imaging (HAADF) and energy dispersive spectroscopy (EDS) mapping, focused ion beam microscopy (FIB), and X-ray diffraction experiments (XRD) were utilized to investigate the microstructures as a function of added Zr content and temperature exposures. The results showed that nanocrystalline grains of the as-milled HEAs did not increase significantly upon annealing up to 700 °C as the nanocrystalline grain sizes were retained. However, grain growth was observed in (CoCrFeNi)99Zr1 after annealing at 900 °C, which turned into AGG after annealing at a higher temperature of 1100 °C, disrupting the equiaxed grain structures observed at 900 °C. Although the increased amount of Zr doping reduced the average grain size in (CoCrFeNi)96Zr4, bimodal grain structure existed in the microstructure composed of a matrix with 255 nm grain size and abnormally grown grains up to 3 μm. The observed AGG was attributed to the pinning effect of in-situ formed secondary oxide phases. The microstructural evolution as a function of Zr doping and annealing temperatures was also correlated with the microhardness test results. The AGG and bimodal grain structure reported for the Zr doped CoCrFeNi HEA may open a new avenue to produce HEAs with the enhanced strength-ductility combination due to the incorporation of larger grains and in-situ formed oxide phases in a fine-grained matrix. [Display omitted] •Nanocrystalline Zr doped CoCrFeNi HEAs were prepared by MA and annealed up to 1100 °C.•Zr doping did not affect the fcc crystal structure which remained stable up to 1100 °C.•The grain size of (CoCrFeNi)99Zr1 at 1100 °C was determined to be 630 nm.•(CoCrFeNi)96Zr4 revealed bimodal grain structure with abnormally grown grains up to 3 μm in fine-grained matrix.•In-situ formed oxide phases are responsible for AGG as well as increased hardness.
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Transmission electron microscopy (TEM), including high angle annular dark field imaging (HAADF) and energy dispersive spectroscopy (EDS) mapping, focused ion beam microscopy (FIB), and X-ray diffraction experiments (XRD) were utilized to investigate the microstructures as a function of added Zr content and temperature exposures. The results showed that nanocrystalline grains of the as-milled HEAs did not increase significantly upon annealing up to 700 °C as the nanocrystalline grain sizes were retained. However, grain growth was observed in (CoCrFeNi)99Zr1 after annealing at 900 °C, which turned into AGG after annealing at a higher temperature of 1100 °C, disrupting the equiaxed grain structures observed at 900 °C. Although the increased amount of Zr doping reduced the average grain size in (CoCrFeNi)96Zr4, bimodal grain structure existed in the microstructure composed of a matrix with 255 nm grain size and abnormally grown grains up to 3 μm. The observed AGG was attributed to the pinning effect of in-situ formed secondary oxide phases. The microstructural evolution as a function of Zr doping and annealing temperatures was also correlated with the microhardness test results. The AGG and bimodal grain structure reported for the Zr doped CoCrFeNi HEA may open a new avenue to produce HEAs with the enhanced strength-ductility combination due to the incorporation of larger grains and in-situ formed oxide phases in a fine-grained matrix. [Display omitted] •Nanocrystalline Zr doped CoCrFeNi HEAs were prepared by MA and annealed up to 1100 °C.•Zr doping did not affect the fcc crystal structure which remained stable up to 1100 °C.•The grain size of (CoCrFeNi)99Zr1 at 1100 °C was determined to be 630 nm.•(CoCrFeNi)96Zr4 revealed bimodal grain structure with abnormally grown grains up to 3 μm in fine-grained matrix.•In-situ formed oxide phases are responsible for AGG as well as increased hardness.</description><identifier>ISSN: 0966-9795</identifier><identifier>EISSN: 1879-0216</identifier><identifier>DOI: 10.1016/j.intermet.2022.107588</identifier><language>eng</language><publisher>Barking: Elsevier Ltd</publisher><subject>Abnormal grain growth ; Annealing ; Bimodal grain structure ; Doping ; Grain growth ; Grain size ; Grain structure ; High-entropy alloys ; Ion beams ; Mechanical alloying ; Microhardness ; Microscopy ; Microstructure ; Nanocrystalline ; Nanocrystals ; Phases ; Second phases ; Zirconium</subject><ispartof>Intermetallics, 2022-07, Vol.146, p.107588, Article 107588</ispartof><rights>2022 Elsevier Ltd</rights><rights>Copyright Elsevier BV Jul 2022</rights><lds50>peer_reviewed</lds50><woscitedreferencessubscribed>false</woscitedreferencessubscribed><citedby>FETCH-LOGICAL-c270t-4c608504adebf94683e17bfd026db4ff7a464b73dfcda9a21c836a7b328d3aa3</citedby><cites>FETCH-LOGICAL-c270t-4c608504adebf94683e17bfd026db4ff7a464b73dfcda9a21c836a7b328d3aa3</cites><orcidid>0000-0001-9441-5175 ; 0000-0002-8589-508X ; 0000-0003-0143-900X</orcidid></display><links><openurl>$$Topenurl_article</openurl><openurlfulltext>$$Topenurlfull_article</openurlfulltext><thumbnail>$$Tsyndetics_thumb_exl</thumbnail><link.rule.ids>314,780,784,27924,27925</link.rule.ids></links><search><creatorcontrib>Tekin, Mustafa</creatorcontrib><creatorcontrib>Polat, Gökhan</creatorcontrib><creatorcontrib>Kotan, Hasan</creatorcontrib><title>An investigation of abnormal grain growth in Zr doped CoCrFeNi HEAs through in-situ formed oxide phases</title><title>Intermetallics</title><description>Abnormal grain growth (AGG) in nanocrystalline (CoCrFeNi)100-xZrx (x = 1 and 4 at. %) HEAs, prepared through high energy mechanical alloying, was comprehensively investigated upon annealing. Transmission electron microscopy (TEM), including high angle annular dark field imaging (HAADF) and energy dispersive spectroscopy (EDS) mapping, focused ion beam microscopy (FIB), and X-ray diffraction experiments (XRD) were utilized to investigate the microstructures as a function of added Zr content and temperature exposures. The results showed that nanocrystalline grains of the as-milled HEAs did not increase significantly upon annealing up to 700 °C as the nanocrystalline grain sizes were retained. However, grain growth was observed in (CoCrFeNi)99Zr1 after annealing at 900 °C, which turned into AGG after annealing at a higher temperature of 1100 °C, disrupting the equiaxed grain structures observed at 900 °C. Although the increased amount of Zr doping reduced the average grain size in (CoCrFeNi)96Zr4, bimodal grain structure existed in the microstructure composed of a matrix with 255 nm grain size and abnormally grown grains up to 3 μm. The observed AGG was attributed to the pinning effect of in-situ formed secondary oxide phases. The microstructural evolution as a function of Zr doping and annealing temperatures was also correlated with the microhardness test results. The AGG and bimodal grain structure reported for the Zr doped CoCrFeNi HEA may open a new avenue to produce HEAs with the enhanced strength-ductility combination due to the incorporation of larger grains and in-situ formed oxide phases in a fine-grained matrix. 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Transmission electron microscopy (TEM), including high angle annular dark field imaging (HAADF) and energy dispersive spectroscopy (EDS) mapping, focused ion beam microscopy (FIB), and X-ray diffraction experiments (XRD) were utilized to investigate the microstructures as a function of added Zr content and temperature exposures. The results showed that nanocrystalline grains of the as-milled HEAs did not increase significantly upon annealing up to 700 °C as the nanocrystalline grain sizes were retained. However, grain growth was observed in (CoCrFeNi)99Zr1 after annealing at 900 °C, which turned into AGG after annealing at a higher temperature of 1100 °C, disrupting the equiaxed grain structures observed at 900 °C. Although the increased amount of Zr doping reduced the average grain size in (CoCrFeNi)96Zr4, bimodal grain structure existed in the microstructure composed of a matrix with 255 nm grain size and abnormally grown grains up to 3 μm. The observed AGG was attributed to the pinning effect of in-situ formed secondary oxide phases. The microstructural evolution as a function of Zr doping and annealing temperatures was also correlated with the microhardness test results. The AGG and bimodal grain structure reported for the Zr doped CoCrFeNi HEA may open a new avenue to produce HEAs with the enhanced strength-ductility combination due to the incorporation of larger grains and in-situ formed oxide phases in a fine-grained matrix. [Display omitted] •Nanocrystalline Zr doped CoCrFeNi HEAs were prepared by MA and annealed up to 1100 °C.•Zr doping did not affect the fcc crystal structure which remained stable up to 1100 °C.•The grain size of (CoCrFeNi)99Zr1 at 1100 °C was determined to be 630 nm.•(CoCrFeNi)96Zr4 revealed bimodal grain structure with abnormally grown grains up to 3 μm in fine-grained matrix.•In-situ formed oxide phases are responsible for AGG as well as increased hardness.</abstract><cop>Barking</cop><pub>Elsevier Ltd</pub><doi>10.1016/j.intermet.2022.107588</doi><orcidid>https://orcid.org/0000-0001-9441-5175</orcidid><orcidid>https://orcid.org/0000-0002-8589-508X</orcidid><orcidid>https://orcid.org/0000-0003-0143-900X</orcidid></addata></record>
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subjects Abnormal grain growth
Annealing
Bimodal grain structure
Doping
Grain growth
Grain size
Grain structure
High-entropy alloys
Ion beams
Mechanical alloying
Microhardness
Microscopy
Microstructure
Nanocrystalline
Nanocrystals
Phases
Second phases
Zirconium
title An investigation of abnormal grain growth in Zr doped CoCrFeNi HEAs through in-situ formed oxide phases
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