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d8 advance x ray diffractometer  (Bruker Corporation)


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    Structured Review

    Bruker Corporation d8 advance x ray diffractometer
    Structural characterization of HC. (A) Schematic illustration of the synthesis of HC. (B, C) TEM images of Cu 5.4 O and HC. (D) <t>Energy-dispersive</t> <t>X-ray</t> spectroscopy (EDS) mapping images of C, N, Cu and O for HC. (E) Zeta potentials and hydrodynamic size distribution, and (F) XRD analysis of Cu 5.4 O, HAs and HC. (G, H) XPS spectra of Cu 2p of Cu 5.4 O and HC. (I) X-ray-induced Auger electron spectroscopy (XAES) spectra of the Cu 5.4 O. (J) Size stability of HC in different solvents (Water, PBS, FBS, DMEM) on days 3, 5, and 7 at a concentration of 200 μg/mL, with a sample size of n = 3 (mean ± SD). (∗P < 0.05, ∗∗P < 0.01, ∗∗∗P < 0.001).
    D8 Advance X Ray Diffractometer, supplied by Bruker Corporation, used in various techniques. Bioz Stars score: 99/100, based on 181433 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/x+ray+diffractometer/D8+ADVANCE/pmc13011198-290-9-8
    Average 99 stars, based on 181433 article reviews
    d8 advance x ray diffractometer - by Bioz Stars, 2026-09
    99/100 stars

    Images

    1) Product Images from "Smart microenvironment-adaptive nanocatalytic hydrogel for sequential antibacterial, anti-inflammatory, and regenerative therapy of biofilm-infected wounds"

    Article Title: Smart microenvironment-adaptive nanocatalytic hydrogel for sequential antibacterial, anti-inflammatory, and regenerative therapy of biofilm-infected wounds

    Journal: Bioactive Materials

    doi: 10.1016/j.bioactmat.2026.02.043

    Structural characterization of HC. (A) Schematic illustration of the synthesis of HC. (B, C) TEM images of Cu 5.4 O and HC. (D) Energy-dispersive X-ray spectroscopy (EDS) mapping images of C, N, Cu and O for HC. (E) Zeta potentials and hydrodynamic size distribution, and (F) XRD analysis of Cu 5.4 O, HAs and HC. (G, H) XPS spectra of Cu 2p of Cu 5.4 O and HC. (I) X-ray-induced Auger electron spectroscopy (XAES) spectra of the Cu 5.4 O. (J) Size stability of HC in different solvents (Water, PBS, FBS, DMEM) on days 3, 5, and 7 at a concentration of 200 μg/mL, with a sample size of n = 3 (mean ± SD). (∗P < 0.05, ∗∗P < 0.01, ∗∗∗P < 0.001).
    Figure Legend Snippet: Structural characterization of HC. (A) Schematic illustration of the synthesis of HC. (B, C) TEM images of Cu 5.4 O and HC. (D) Energy-dispersive X-ray spectroscopy (EDS) mapping images of C, N, Cu and O for HC. (E) Zeta potentials and hydrodynamic size distribution, and (F) XRD analysis of Cu 5.4 O, HAs and HC. (G, H) XPS spectra of Cu 2p of Cu 5.4 O and HC. (I) X-ray-induced Auger electron spectroscopy (XAES) spectra of the Cu 5.4 O. (J) Size stability of HC in different solvents (Water, PBS, FBS, DMEM) on days 3, 5, and 7 at a concentration of 200 μg/mL, with a sample size of n = 3 (mean ± SD). (∗P < 0.05, ∗∗P < 0.01, ∗∗∗P < 0.001).

    Techniques Used: Spectroscopy, Concentration Assay

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    Article Snippet: This research focuses on the extraction, purification, characterization, and bioactivity evaluation of anthocyanins (ACNs) derived from red dragon fruit pulp, followed by their encapsulation into chitosan-alginate nanoparticles (CH@ALG-ACN NPs).. The crude ACN extract initially contained 56.43 mg/g, which increased to 124.91 mg/g following ethanol precipitation.. Further purification using Sephadex LH-20 column chromatography enhanced the ACN content to 227.74 mg/g in the 80% ethanol fraction.

    Article Title: A Fe-incorporated bioreactor platform exhibiting antimalarial activity and enhanced response to artemisinin
    Article Snippet: Microstructural characterization was performed using a Hitachi HT7800 transmission electron microscope operated at 120 kV accelerating voltage to optimize contrast while minimizing beam damage. .. An X-ray diffractometer (XRD, Bruker D8 Advance) with Cu Kα ( λ = 1.5406 Å) radiation generated at 40 mA and 40 kV was used to investigate the structure of the nanospheres in the 2 θ range of 5°–90°. .. Elemental composition and chemical state analysis were performed using a Thermo Scientific ESCALAB 250Xi XPS system equipped with a monochromatic Al Kα X-ray source (1,486.6 eV).

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    Article Snippet: The development of biodegradable packaging materials has gained increasing attention as alternatives to petroleum-based plastics.. However, current bio-based packaging materials are based on a homogeneous structural design, which limits their effectiveness in inhibiting food spoilage caused by multiple factors, including microbial metabolism, oxidation reactions, and ultraviolet radiation.. This study developed a Janus bilayer edible film utilizing gelatin and zein as substrates through layer-by-layer assembly technology, based on the Schiff base reaction and enzyme-catalyzed cross-linking.

    Microscopy:

    Article Title: Ultrasound-responsive CPS piezoelectric hydrogel synergistically repairs annulus fibrosus defects through immune reprogramming and cell recruitment
    Article Snippet: .. Scanning electron microscope (ZEISS Gemini SEM 300, Germany), transmission electron microscope (FEI Talos F200S, USA), atomic force microscope (Bruker Dimension Icon, Germany), Fourier transform infrared spectrometer (Thermo Fisher Scientific Nicolet iS20, USA), rheometer (Haake Mars40, Germany), X-ray diffractometer (Bruker D8 Advance, Germany), differential scanning calorimeter (TA Q2000, DSC2500, U.S.A.), nano-particle size and zeta potential analyzer (Malvern Zeta sizer Nano ZS90, U.K.), ultraviolet spectrophotometer (Thermo Fisher Evolution 220, USA), universal testing machine (CMT6104, MTS, USA), microplate reader (MB-580, China), dissolved oxygen meter (JPSJ-605F, China), flow cytometer (A00-1-1102, Beckman, USA). ..

    Transmission Assay:

    Article Title: Ultrasound-responsive CPS piezoelectric hydrogel synergistically repairs annulus fibrosus defects through immune reprogramming and cell recruitment
    Article Snippet: .. Scanning electron microscope (ZEISS Gemini SEM 300, Germany), transmission electron microscope (FEI Talos F200S, USA), atomic force microscope (Bruker Dimension Icon, Germany), Fourier transform infrared spectrometer (Thermo Fisher Scientific Nicolet iS20, USA), rheometer (Haake Mars40, Germany), X-ray diffractometer (Bruker D8 Advance, Germany), differential scanning calorimeter (TA Q2000, DSC2500, U.S.A.), nano-particle size and zeta potential analyzer (Malvern Zeta sizer Nano ZS90, U.K.), ultraviolet spectrophotometer (Thermo Fisher Evolution 220, USA), universal testing machine (CMT6104, MTS, USA), microplate reader (MB-580, China), dissolved oxygen meter (JPSJ-605F, China), flow cytometer (A00-1-1102, Beckman, USA). ..

    Fourier Transform Infrared Spectroscopy:

    Article Title: Ultrasound-responsive CPS piezoelectric hydrogel synergistically repairs annulus fibrosus defects through immune reprogramming and cell recruitment
    Article Snippet: .. Scanning electron microscope (ZEISS Gemini SEM 300, Germany), transmission electron microscope (FEI Talos F200S, USA), atomic force microscope (Bruker Dimension Icon, Germany), Fourier transform infrared spectrometer (Thermo Fisher Scientific Nicolet iS20, USA), rheometer (Haake Mars40, Germany), X-ray diffractometer (Bruker D8 Advance, Germany), differential scanning calorimeter (TA Q2000, DSC2500, U.S.A.), nano-particle size and zeta potential analyzer (Malvern Zeta sizer Nano ZS90, U.K.), ultraviolet spectrophotometer (Thermo Fisher Evolution 220, USA), universal testing machine (CMT6104, MTS, USA), microplate reader (MB-580, China), dissolved oxygen meter (JPSJ-605F, China), flow cytometer (A00-1-1102, Beckman, USA). ..

    Zeta Potential Analyzer:

    Article Title: Ultrasound-responsive CPS piezoelectric hydrogel synergistically repairs annulus fibrosus defects through immune reprogramming and cell recruitment
    Article Snippet: .. Scanning electron microscope (ZEISS Gemini SEM 300, Germany), transmission electron microscope (FEI Talos F200S, USA), atomic force microscope (Bruker Dimension Icon, Germany), Fourier transform infrared spectrometer (Thermo Fisher Scientific Nicolet iS20, USA), rheometer (Haake Mars40, Germany), X-ray diffractometer (Bruker D8 Advance, Germany), differential scanning calorimeter (TA Q2000, DSC2500, U.S.A.), nano-particle size and zeta potential analyzer (Malvern Zeta sizer Nano ZS90, U.K.), ultraviolet spectrophotometer (Thermo Fisher Evolution 220, USA), universal testing machine (CMT6104, MTS, USA), microplate reader (MB-580, China), dissolved oxygen meter (JPSJ-605F, China), flow cytometer (A00-1-1102, Beckman, USA). ..

    Spectrophotometry:

    Article Title: Ultrasound-responsive CPS piezoelectric hydrogel synergistically repairs annulus fibrosus defects through immune reprogramming and cell recruitment
    Article Snippet: .. Scanning electron microscope (ZEISS Gemini SEM 300, Germany), transmission electron microscope (FEI Talos F200S, USA), atomic force microscope (Bruker Dimension Icon, Germany), Fourier transform infrared spectrometer (Thermo Fisher Scientific Nicolet iS20, USA), rheometer (Haake Mars40, Germany), X-ray diffractometer (Bruker D8 Advance, Germany), differential scanning calorimeter (TA Q2000, DSC2500, U.S.A.), nano-particle size and zeta potential analyzer (Malvern Zeta sizer Nano ZS90, U.K.), ultraviolet spectrophotometer (Thermo Fisher Evolution 220, USA), universal testing machine (CMT6104, MTS, USA), microplate reader (MB-580, China), dissolved oxygen meter (JPSJ-605F, China), flow cytometer (A00-1-1102, Beckman, USA). ..

    Flow Cytometry:

    Article Title: Ultrasound-responsive CPS piezoelectric hydrogel synergistically repairs annulus fibrosus defects through immune reprogramming and cell recruitment
    Article Snippet: .. Scanning electron microscope (ZEISS Gemini SEM 300, Germany), transmission electron microscope (FEI Talos F200S, USA), atomic force microscope (Bruker Dimension Icon, Germany), Fourier transform infrared spectrometer (Thermo Fisher Scientific Nicolet iS20, USA), rheometer (Haake Mars40, Germany), X-ray diffractometer (Bruker D8 Advance, Germany), differential scanning calorimeter (TA Q2000, DSC2500, U.S.A.), nano-particle size and zeta potential analyzer (Malvern Zeta sizer Nano ZS90, U.K.), ultraviolet spectrophotometer (Thermo Fisher Evolution 220, USA), universal testing machine (CMT6104, MTS, USA), microplate reader (MB-580, China), dissolved oxygen meter (JPSJ-605F, China), flow cytometer (A00-1-1102, Beckman, USA). ..

    X-ray Diffraction:

    Article Title: High tar conversion performance of a Ni—Fe—MgO catalyst
    Article Snippet: .. X-ray diffraction (XRD) was measured in an X-ray diffractometer (BRUKER D2 PHASER) equipped with a monochromator for Cu Kα radiation at a voltage of 30 kV, and a current of 100 mA. ..



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    Structural characterization of HC. (A) Schematic illustration of the synthesis of HC. (B, C) TEM images of Cu 5.4 O and HC. (D) <t>Energy-dispersive</t> <t>X-ray</t> spectroscopy (EDS) mapping images of C, N, Cu and O for HC. (E) Zeta potentials and hydrodynamic size distribution, and (F) XRD analysis of Cu 5.4 O, HAs and HC. (G, H) XPS spectra of Cu 2p of Cu 5.4 O and HC. (I) X-ray-induced Auger electron spectroscopy (XAES) spectra of the Cu 5.4 O. (J) Size stability of HC in different solvents (Water, PBS, FBS, DMEM) on days 3, 5, and 7 at a concentration of 200 μg/mL, with a sample size of n = 3 (mean ± SD). (∗P < 0.05, ∗∗P < 0.01, ∗∗∗P < 0.001).
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    Image Search Results


    Structural characterization of HC. (A) Schematic illustration of the synthesis of HC. (B, C) TEM images of Cu 5.4 O and HC. (D) Energy-dispersive X-ray spectroscopy (EDS) mapping images of C, N, Cu and O for HC. (E) Zeta potentials and hydrodynamic size distribution, and (F) XRD analysis of Cu 5.4 O, HAs and HC. (G, H) XPS spectra of Cu 2p of Cu 5.4 O and HC. (I) X-ray-induced Auger electron spectroscopy (XAES) spectra of the Cu 5.4 O. (J) Size stability of HC in different solvents (Water, PBS, FBS, DMEM) on days 3, 5, and 7 at a concentration of 200 μg/mL, with a sample size of n = 3 (mean ± SD). (∗P < 0.05, ∗∗P < 0.01, ∗∗∗P < 0.001).

    Journal: Bioactive Materials

    Article Title: Smart microenvironment-adaptive nanocatalytic hydrogel for sequential antibacterial, anti-inflammatory, and regenerative therapy of biofilm-infected wounds

    doi: 10.1016/j.bioactmat.2026.02.043

    Figure Lengend Snippet: Structural characterization of HC. (A) Schematic illustration of the synthesis of HC. (B, C) TEM images of Cu 5.4 O and HC. (D) Energy-dispersive X-ray spectroscopy (EDS) mapping images of C, N, Cu and O for HC. (E) Zeta potentials and hydrodynamic size distribution, and (F) XRD analysis of Cu 5.4 O, HAs and HC. (G, H) XPS spectra of Cu 2p of Cu 5.4 O and HC. (I) X-ray-induced Auger electron spectroscopy (XAES) spectra of the Cu 5.4 O. (J) Size stability of HC in different solvents (Water, PBS, FBS, DMEM) on days 3, 5, and 7 at a concentration of 200 μg/mL, with a sample size of n = 3 (mean ± SD). (∗P < 0.05, ∗∗P < 0.01, ∗∗∗P < 0.001).

    Article Snippet: X-ray diffraction (XRD) patterns were conducted on a Bruker D8 ADVANCE X-ray diffractometer using Cu-Kα radiation (λ = 1.5418 Å).

    Techniques: Spectroscopy, Concentration Assay