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copper anode target  (Malvern Panalytical)


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    Structured Review

    Malvern Panalytical copper anode target
    Copper Anode Target, supplied by Malvern Panalytical, used in various techniques. Bioz Stars score: 99/100, based on 36385 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/copper+anode+target/Empyrean/10__1016_slash_j__seppur__2025__131678-74-11-17
    Average 99 stars, based on 36385 article reviews
    copper anode target - by Bioz Stars, 2026-09
    99/100 stars

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    Related Articles

    other:

    Article Title: Sulfuric acid leaching of ball-milling activated FePO 4 residue after lithium extraction from spent lithium iron phosphate cathode powder.
    Article Snippet: A mechanical-chemical process is proposed to recover the iron phosphate residue(IPR)of spent lithium iron phosphate(LFP)after lithium extraction.. In this process, the IPR was pretreated by ball-milling and leached with the sulfuric acid solution.. The results showed that, under the optimized ball-milling conditions (a mass ratio of the stainless-steel-ball to material to water of 2:1:2.5, a milling time of 20 min), the maximum particle size of IPR decreased from 34.265 um to 13.102 um, the specific surface increased from 11.41 m2/g to 13.74 m2/g, and the cell volume distortion rate could reach 0.331 %.

    Article Title: Crystallization process of FePO4 from acid solution and its application in spent LiFePO4 cathode powder recycling
    Article Snippet: Green and sustainable recovery of iron phosphate (FP) from retired LiFePO4 batteries with minimal environmental impact and chemical usage is of great significance for the recycling and reuse of these valuable elements.. Crystallization instead of neutralization precipitation of FePO4⋅2H2O from iron and phosphorus-bearing acid solutions has been the most promising strategy to recover iron and phosphorus from the spent LFP cathode with minimum chemical consumption.. Here, thermodynamics and kinetics for the novel active seed-induced crystallization method are focused on, to enhance the crystallization efficiency and optimize the precipitate’s physical properties without harsh conditions.



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    Bruker Corporation kw rotating anode copper target x ray source
    a , Recommended candidates for Fe–Co-based HEAs containing first-transition-series elements: FeMnCoTi, FeMnCoV, FeMnCoCr, FeMnCoNi and FeMnCoCu. b , A schematic illustration of the sample—which includes 200 cycles of 0.5 nm spread film—fabricated on SiO 2 /Si(100) substrate using the combinatorial method. Each spread film consists of a 0.25 nm FeCoMn sublayer and a 0.25 nm 1- x (FeCoMn)– x Ni sublayer. c , <t>A</t> <t>two-dimensional</t> <t>X-ray</t> diffraction image of a Fe 0.25 Co 0.25 Mn 0.25 Ni 0.25 thin film measured by changing the angle χ of the incident X-rays. d , A heat map showing the dependence of the X-ray diffraction intensity of 1- x (FeCoMn)– x Ni films on nickel composition and diffraction angle θ .
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    Bruker Corporation xrd system with a 5 kw rotating anode copper target x-ray source
    a , Recommended candidates for Fe–Co-based HEAs containing first-transition-series elements: FeMnCoTi, FeMnCoV, FeMnCoCr, FeMnCoNi and FeMnCoCu. b , A schematic illustration of the sample—which includes 200 cycles of 0.5 nm spread film—fabricated on SiO 2 /Si(100) substrate using the combinatorial method. Each spread film consists of a 0.25 nm FeCoMn sublayer and a 0.25 nm 1- x (FeCoMn)– x Ni sublayer. c , <t>A</t> <t>two-dimensional</t> <t>X-ray</t> diffraction image of a Fe 0.25 Co 0.25 Mn 0.25 Ni 0.25 thin film measured by changing the angle χ of the incident X-rays. d , A heat map showing the dependence of the X-ray diffraction intensity of 1- x (FeCoMn)– x Ni films on nickel composition and diffraction angle θ .
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    Image Search Results


    a , Recommended candidates for Fe–Co-based HEAs containing first-transition-series elements: FeMnCoTi, FeMnCoV, FeMnCoCr, FeMnCoNi and FeMnCoCu. b , A schematic illustration of the sample—which includes 200 cycles of 0.5 nm spread film—fabricated on SiO 2 /Si(100) substrate using the combinatorial method. Each spread film consists of a 0.25 nm FeCoMn sublayer and a 0.25 nm 1- x (FeCoMn)– x Ni sublayer. c , A two-dimensional X-ray diffraction image of a Fe 0.25 Co 0.25 Mn 0.25 Ni 0.25 thin film measured by changing the angle χ of the incident X-rays. d , A heat map showing the dependence of the X-ray diffraction intensity of 1- x (FeCoMn)– x Ni films on nickel composition and diffraction angle θ .

    Journal: Nature Computational Science

    Article Title: Evidence-based recommender system for high-entropy alloys

    doi: 10.1038/s43588-021-00097-w

    Figure Lengend Snippet: a , Recommended candidates for Fe–Co-based HEAs containing first-transition-series elements: FeMnCoTi, FeMnCoV, FeMnCoCr, FeMnCoNi and FeMnCoCu. b , A schematic illustration of the sample—which includes 200 cycles of 0.5 nm spread film—fabricated on SiO 2 /Si(100) substrate using the combinatorial method. Each spread film consists of a 0.25 nm FeCoMn sublayer and a 0.25 nm 1- x (FeCoMn)– x Ni sublayer. c , A two-dimensional X-ray diffraction image of a Fe 0.25 Co 0.25 Mn 0.25 Ni 0.25 thin film measured by changing the angle χ of the incident X-rays. d , A heat map showing the dependence of the X-ray diffraction intensity of 1- x (FeCoMn)– x Ni films on nickel composition and diffraction angle θ .

    Article Snippet: An XRD system with a 5 kW rotating anode copper target X-ray source and a high-resolution two-dimensional detector (BRUKER AXS, D8 Discover Super Speed with GADDS) was used to determine the crystal structure.

    Techniques: