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sem eds analysis  (Hitachi Ltd)


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    Structured Review

    Hitachi Ltd sem eds analysis
    Sem Eds Analysis, supplied by Hitachi Ltd, used in various techniques. Bioz Stars score: 99/100, based on 154308 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/sem+eds+analysis/SU8600/10__1016_slash_j__cej__2025__172542-60-1-4
    Average 99 stars, based on 154308 article reviews
    sem eds analysis - by Bioz Stars, 2026-09
    99/100 stars

    Images

    Related Articles

    Microscopy:

    Article Title: Outperformance of CaO-incorporated alumina-supported Pd catalysts in methanol decomposition
    Article Snippet: .. SEM–EDS analysis was performed with a HITACHI SU5000 Field Emission scanning electron microscope to determine the morphology and metal contents of the synthesized materials. .. Metal ratios of synthesized catalysts were also determined by ICP-OES analysis with a PerkinElmer Optima 4300DV instrument.

    Article Title: Method for manufacturing coal-based geopolymer foam including silica fume
    Article Snippet: .. Some specimens were additionally subjected to SEM/EDS analysis (field emission scanning electron microscope, SU8010, HITACHI, Japan) to observe a change of constituent element ratios in the microscopic structure. .. For foam structure and micro-morphological observation, scanning electron microscopy (SEM) (Nova Nano SEM 200, FEI, USA) was employed to take images of the sample.

    Article Title: Hydrogenation of MTHPA to MHHPA over Ni-based catalysts: Al 2 O 3 coating, Ru incorporation and kinetics
    Article Snippet: .. SEM-EDS analysis of the samples was performed in an S-4800 microscope (Hitachi). ..

    Synthesized:

    Article Title: Outperformance of CaO-incorporated alumina-supported Pd catalysts in methanol decomposition
    Article Snippet: .. SEM–EDS analysis was performed with a HITACHI SU5000 Field Emission scanning electron microscope to determine the morphology and metal contents of the synthesized materials. .. Metal ratios of synthesized catalysts were also determined by ICP-OES analysis with a PerkinElmer Optima 4300DV instrument.

    other:

    Article Title: Carbon nanotubes/carbon black reinforced epoxy resin microcapsule-based cement composites with combined self-healing and self-sensing capacities
    Article Snippet: Self-healing is of great significance to prolong the service life of cracked concrete structures.. Nonetheless, the need for postmortem measurements to evaluate healing performance limits the scalability of this technology in practical engineering.. In this study, two types of carbon-based fillers containing carbon nanotubes (CNTs) and carbon black (CB) and microcapsules containing CNTs/CB and epoxy resins are incorporated into cement matrix to fabricate multifunctional cement composites with combined self-healing and self-sensing capacities.

    Saline:

    Article Title: Structural, EPS, and microbial mechanisms drive Cd(II) tolerance in partial denitrification granular sludge
    Article Snippet: Partial denitrification–anaerobic ammonium oxidation (PDA) is a promising low-carbon nitrogen removal technology, but its stability can be compromised by toxic heavy metals like cadmium (Cd(II)).. This study investigated the long-term response of partial denitrification (PD) granular sludge to stepwise Cd(II) exposure (20–150 mg/L) over 190 days.. The system maintained efficient nitrite production (NTR >70 %) at Cd(II) concentrations up to 120 mg/L but collapsed at 150 mg/L.



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    JEOL energy dispersive spectroscopy eds analysis sem eds
    Synthesis and characterization of the Zn-Gel. (A) Schematic representation of gel formation. (B) Digital images of the sol–gel transition and (C) hydrogel injection. (D) Phase transition time depending on ZnO 2 concentration and addition of H 2 O 2 . Rheological analysis depending on ZnO 2 concentration (E) without H 2 O 2 solution and (F) with H 2 O 2 solution. (G) Porous structure and atomic % of the hydrogels using scanning electron microscopy coupled with energy-dispersive <t>spectroscopy</t> <t>(SEM–EDS)</t> analysis. In vitro hydrogel degradation ratio using (H) collagenase type II and (I) Dulbecco’s phosphate-buffered saline (DPBS). The results in (E), (F), (H), and (I) are shown as average value ± SD ( n = 3). * indicates significant difference from Z0 (* P < 0.05; ** P < 0.01; *** P < 0.001). ## indicates significant difference from Z0.125 ( ## P < 0.01). Scale bars represent 250 μm.
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    Image Search Results


    Synthesis and characterization of the Zn-Gel. (A) Schematic representation of gel formation. (B) Digital images of the sol–gel transition and (C) hydrogel injection. (D) Phase transition time depending on ZnO 2 concentration and addition of H 2 O 2 . Rheological analysis depending on ZnO 2 concentration (E) without H 2 O 2 solution and (F) with H 2 O 2 solution. (G) Porous structure and atomic % of the hydrogels using scanning electron microscopy coupled with energy-dispersive spectroscopy (SEM–EDS) analysis. In vitro hydrogel degradation ratio using (H) collagenase type II and (I) Dulbecco’s phosphate-buffered saline (DPBS). The results in (E), (F), (H), and (I) are shown as average value ± SD ( n = 3). * indicates significant difference from Z0 (* P < 0.05; ** P < 0.01; *** P < 0.001). ## indicates significant difference from Z0.125 ( ## P < 0.01). Scale bars represent 250 μm.

    Journal: Biomaterials Research

    Article Title: Zinc Peroxide-Mediated In Situ Forming Hydrogels for Endogenous Tissue Regeneration

    doi: 10.34133/bmr.0238

    Figure Lengend Snippet: Synthesis and characterization of the Zn-Gel. (A) Schematic representation of gel formation. (B) Digital images of the sol–gel transition and (C) hydrogel injection. (D) Phase transition time depending on ZnO 2 concentration and addition of H 2 O 2 . Rheological analysis depending on ZnO 2 concentration (E) without H 2 O 2 solution and (F) with H 2 O 2 solution. (G) Porous structure and atomic % of the hydrogels using scanning electron microscopy coupled with energy-dispersive spectroscopy (SEM–EDS) analysis. In vitro hydrogel degradation ratio using (H) collagenase type II and (I) Dulbecco’s phosphate-buffered saline (DPBS). The results in (E), (F), (H), and (I) are shown as average value ± SD ( n = 3). * indicates significant difference from Z0 (* P < 0.05; ** P < 0.01; *** P < 0.001). ## indicates significant difference from Z0.125 ( ## P < 0.01). Scale bars represent 250 μm.

    Article Snippet: To analyze the surface morphology and elemental composition of Zn-Gel, scanning electron microscopy (SEM) coupled with energy-dispersive spectroscopy (EDS) analysis (SEM–EDS) was performed using a JSM 7001F microscope (JEOL, Tokyo, Japan); 200-μl hydrogel samples with varying ZnO 2 concentrations (ranging from 0 to 0.5 wt%) were prepared within 1-ml syringes for this analysis.

    Techniques: Injection, Sublimation, Concentration Assay, Electron Microscopy, Spectroscopy, In Vitro, Saline