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electron backscatter diffraction ebsd mapping  (Thermo Fisher)


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    Thermo Fisher electron backscatter diffraction ebsd mapping
    Electron Backscatter Diffraction Ebsd Mapping, supplied by Thermo Fisher, used in various techniques. Bioz Stars score: 86/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/electron+backscatter+diffraction+(ebsd)+maps/pm34534922-61-6-38
    Average 86 stars, based on 1 article reviews
    electron backscatter diffraction ebsd mapping - by Bioz Stars, 2026-10
    86/100 stars

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    Article Title: A strategy for low thermal conductivity of lutetium oxyorthosilicate ceramics fabricated via texture engineering
    Article Snippet: Funding information National Natural Science Foundation of China, Grant/Award Numbers: 51802186, U1732128 Abstract Submicrometer lutetium-gadolinium oxyorthosilicate ((Lu0.95Gd0.05)2SiO5, LGSO) powder with a magnetic susceptibility of 4.19 × 10−6 (5.4 times that of lutetium oxyorthosilicate) was synthesized via a sol-gel method.. Slip casting with a 6 T assisted magnetic field and pressureless sintering at 1600C for 16 h in the air effectively produced the textured LGSO ceramics with an orientation factor f of 0.96.. The grains of textured LGSO ceramics grow with the preferred orientation along the b-axis.

    Article Title: An experimental and crystal plasticity simulation study on kink band-assisted grain fragmentation during high-pressure torsion of (CrFeNi)99Si1 medium-entropy alloy
    Article Snippet: The current research addresses the kink band-assisted grain fragmentation of (CrFeNi)99Si1 medium-entropy alloy during high-pressure torsion (HPT) using combinatorial experimental and crystal plasticity simulations approach.. The HPT experiments were carried out at room temperature with a pressure of 6 GPa for 0.2, 0.5, 1, 2, and 5 turns to achieve different levels of shear strain followed by detailed microstructural characterization using electron backscatter diffraction, transmission electron microscopy, and nanoindentation.. Microstructural characterization at different length scales shows the fragmentation of grains aided by the formation of kink bands due to the activation of {111} < 101 > and {111} < 112 > slip system followed by gradual conversion of low-angle grain boundaries to high-angle grain boundaries by continuous dynamic recrystallization (cDRX) observed in medium and low stacking fault energy FCC metals and alloys.

    Article Title: Additive manufactured ODS-FeCrAl steel achieves high corrosion resistance in lead-bismuth eutectic (LBE)
    Article Snippet: • Two additive manufacturing oxide dispersion-strengthened FeCrAl alloys

    Article Title: Versatile Superlubricity via Boronizing on Engineering Alloys: Insights into In Situ Passivation Mechanism.
    Article Snippet: Superlubricity with a friction coefficient <0.01 holds great promise for reducing energy consumption and global CO2 emissions.. However, current numerous innovative superlubricity techniques have persisted in specific materials, inert atmosphere or nano/micro-scale conditions.. Here, a versatile and universal superlubricity strategy is demonstrated for common engineering alloys under atmospheric environment, and emphasize an innovative superlubricity design principle through surface passivation.

    Article Title: Electron Beam Powder Bed Fusion of ATI C103TM Refractory Alloy
    Article Snippet: Finer microstructural features were observed using a JOEL 6010LA SEM with EDS, a FEI Verios 460L field-emission scanning electron microscope (FESEM), a ThermoFisher Quanta 3D FEG with electron backscatter diffraction (EBSD), and a ThermoFisher Helios Hydra Dual-beam FEG with EDS capabilities.

    Article Title: Microstructure and mechanical properties of highly porous Hastelloy-X nickel superalloy produced by a space holder approach
    Article Snippet: FEI Scios™ Field Emission Gun Scanning Electron Microscope (FEG SEM) coupled with Energy Dispersive X-Ray Spectroscopy (EDS) and Electron Backscatter Diffraction system (EBSD), were utilized.

    Electron Microscopy:

    Article Title: Evading intermediate temperature embrittlement of FeCoCrNiMn high entropy alloy via N-doping
    Article Snippet: .. Electron backscatter diffraction (EBSD) was conducted in an FEI Helios Nano Lab G3 UC scanning electron microscopy (SEM). .. The microstructures of the tensile deformed samples were analyzed by an FEI Titan G2 60–300 transmission electron microscopy (TEM) with a spherical aberration corrector equipped with X-Ray energy-dispersive spectroscopy (EDS) operating at 300 kV.



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    Fig. 1. (a) Illustration of typical microstructure of as-deposited cold sprayed Cu after [14]. Small grains due to dynamic recrystallization (DRX) are located near the splat-splat interfaces, while towards the interior of the splats subgrains and deformed large grains are present. The local region of EBSD and nanoindentation mapping in the current study is indicated in (b).

    Journal: Materials Science and Engineering: A

    Article Title: Submicrometer Scale Mapping of Microstructure and Mechanical Properties of Cold Sprayed Copper

    doi: 10.1016/j.msea.2024.147556

    Figure Lengend Snippet: Fig. 1. (a) Illustration of typical microstructure of as-deposited cold sprayed Cu after [14]. Small grains due to dynamic recrystallization (DRX) are located near the splat-splat interfaces, while towards the interior of the splats subgrains and deformed large grains are present. The local region of EBSD and nanoindentation mapping in the current study is indicated in (b).

    Article Snippet: Electron backscatter diffraction (EBSD) mapping was performed using a Bruker QUANTAX EBSD system at 15 kV.

    Techniques: Recrystallization

    Fig. 3. SEM/EBSD/nanoindentation results of the as-deposited CS-Cu N2 sample: (a) BSE image, (b) SE image, (c) IPF map, (d) GBCD map with the Brandon criterion, (e) KAM map, (f) GND map overlaying with the grain boundaries (misorientation angle >5◦) in black lines, (g) BSE image after nanoindentation, (h) hardness map.

    Journal: Materials Science and Engineering: A

    Article Title: Submicrometer Scale Mapping of Microstructure and Mechanical Properties of Cold Sprayed Copper

    doi: 10.1016/j.msea.2024.147556

    Figure Lengend Snippet: Fig. 3. SEM/EBSD/nanoindentation results of the as-deposited CS-Cu N2 sample: (a) BSE image, (b) SE image, (c) IPF map, (d) GBCD map with the Brandon criterion, (e) KAM map, (f) GND map overlaying with the grain boundaries (misorientation angle >5◦) in black lines, (g) BSE image after nanoindentation, (h) hardness map.

    Article Snippet: Electron backscatter diffraction (EBSD) mapping was performed using a Bruker QUANTAX EBSD system at 15 kV.

    Techniques:

    Fig. 4. SEM/EBSD/nanoindentation results of the 350 ◦C annealed CS-Cu N2 sample: (a) BSE image, (b) SE image, (c) IPF map, (d) GBCD map with the Brandon criterion, (e) KAM map, (f) GND map overlaying with the grain boundaries (misorientation angle >5◦) in black lines, (g) BSE image after nanoindentation, (h) hardness map.

    Journal: Materials Science and Engineering: A

    Article Title: Submicrometer Scale Mapping of Microstructure and Mechanical Properties of Cold Sprayed Copper

    doi: 10.1016/j.msea.2024.147556

    Figure Lengend Snippet: Fig. 4. SEM/EBSD/nanoindentation results of the 350 ◦C annealed CS-Cu N2 sample: (a) BSE image, (b) SE image, (c) IPF map, (d) GBCD map with the Brandon criterion, (e) KAM map, (f) GND map overlaying with the grain boundaries (misorientation angle >5◦) in black lines, (g) BSE image after nanoindentation, (h) hardness map.

    Article Snippet: Electron backscatter diffraction (EBSD) mapping was performed using a Bruker QUANTAX EBSD system at 15 kV.

    Techniques: