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    Structured Review

    Rigaku Corporation x ray diffraction patterns
    Physicochemical and mechanical characterization of the hydrogel formulations. A) Schematic illustration of the preparation of GA–Zn 2+ /BP@SilMA and incorporation of osteogenic bone microtissues (BO). B) Photographs of the hydrogel precursor before and after ultraviolet. C) Scanning electron microscopy (SEM) images of SilMA, GA–Zn 2+ @SilMA, GA–Zn 2+ /BP@SilMA, and GA–Zn 2+ /BP/BO@SilMA hydrogels. D) <t>Energy-dispersive</t> <t>X-ray</t> spectroscopy (EDS) elemental maps of C, O, P, and Zn in the composite hydrogel. E) Fourier-transform infrared spectroscopy (FTIR) spectra of the different hydrogel formulations. F) X-ray <t>diffraction</t> (XRD) patterns of the different hydrogel formulations. G) Atomic force microscopy (AFM) force–separation curves. H) Zn 2+ release profile. I) Degradation behavior of the hydrogel. J) Young's modulus of the different hydrogel formulations. Data are presented as mean ± SD. *p < 0.05 and ****p < 0.0001.
    X Ray Diffraction Patterns, supplied by Rigaku Corporation, used in various techniques. Bioz Stars score: 99/100, based on 6508 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/diffraction/SmartLab+SE/pmc13597281-54-50-56
    Average 99 stars, based on 6508 article reviews
    x ray diffraction patterns - by Bioz Stars, 2026-10
    99/100 stars

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    1) Product Images from "Hydrogel-integrated osteogenic microtissues promote repair of infected intervertebral defects through sequential immunomodulation"

    Article Title: Hydrogel-integrated osteogenic microtissues promote repair of infected intervertebral defects through sequential immunomodulation

    Journal: Materials Today Bio

    doi: 10.1016/j.mtbio.2026.103657

    Physicochemical and mechanical characterization of the hydrogel formulations. A) Schematic illustration of the preparation of GA–Zn 2+ /BP@SilMA and incorporation of osteogenic bone microtissues (BO). B) Photographs of the hydrogel precursor before and after ultraviolet. C) Scanning electron microscopy (SEM) images of SilMA, GA–Zn 2+ @SilMA, GA–Zn 2+ /BP@SilMA, and GA–Zn 2+ /BP/BO@SilMA hydrogels. D) Energy-dispersive X-ray spectroscopy (EDS) elemental maps of C, O, P, and Zn in the composite hydrogel. E) Fourier-transform infrared spectroscopy (FTIR) spectra of the different hydrogel formulations. F) X-ray diffraction (XRD) patterns of the different hydrogel formulations. G) Atomic force microscopy (AFM) force–separation curves. H) Zn 2+ release profile. I) Degradation behavior of the hydrogel. J) Young's modulus of the different hydrogel formulations. Data are presented as mean ± SD. *p < 0.05 and ****p < 0.0001.
    Figure Legend Snippet: Physicochemical and mechanical characterization of the hydrogel formulations. A) Schematic illustration of the preparation of GA–Zn 2+ /BP@SilMA and incorporation of osteogenic bone microtissues (BO). B) Photographs of the hydrogel precursor before and after ultraviolet. C) Scanning electron microscopy (SEM) images of SilMA, GA–Zn 2+ @SilMA, GA–Zn 2+ /BP@SilMA, and GA–Zn 2+ /BP/BO@SilMA hydrogels. D) Energy-dispersive X-ray spectroscopy (EDS) elemental maps of C, O, P, and Zn in the composite hydrogel. E) Fourier-transform infrared spectroscopy (FTIR) spectra of the different hydrogel formulations. F) X-ray diffraction (XRD) patterns of the different hydrogel formulations. G) Atomic force microscopy (AFM) force–separation curves. H) Zn 2+ release profile. I) Degradation behavior of the hydrogel. J) Young's modulus of the different hydrogel formulations. Data are presented as mean ± SD. *p < 0.05 and ****p < 0.0001.

    Techniques Used: Scanning Electron Microscopy, Energy Dispersive X-Ray, Spectroscopy, Fourier Transform Infrared Spectroscopy, Microscopy

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    Article Title: Hydrogel-integrated osteogenic microtissues promote repair of infected intervertebral defects through sequential immunomodulation
    Article Snippet: Hydrogels were freeze-dried, fractured to expose the internal cross-section, sputter-coated with gold, and imaged by field-emission scanning electron microscopy (SEM, Sigma 360, ZEISS, Germany). .. Energy-dispersive X-ray spectroscopy (EDS, Sigma 360, ZEISS, Germany) mapping was used to examine the distribution of C, O, Zn, and P.Fourier transform infrared spectroscopy(FTIR, Nicolet iS50, Thermo Fisher Scientific, USA) was performed with 32 scans in the range of 4000–400 cm −1 at a resolution of 4 cm −1 ; X-ray diffraction patterns (XRD, SmartLab SE, Rigaku Corporation, Japan) were recorded from 5° to 90°. .. Surface morphology, roughness parameters (Ra and Rq), and local nanoscale Young's modulus were characterized using atomic force microscopy(AFM, Dimension Icon, Bruker, Germany).

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    other:

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    Starch:

    Article Title: Microwave power-induced modulation of tigernut ( Cyperus esculentus L.) starch: Insights into structural and functional properties
    Article Snippet: .. A SmartLab SE diffractometer (Rigaku, Japan) with Cu Kα radiation was used to record the X-ray diffraction patterns of the starch samples. ..

    Energy Dispersive X-Ray:

    Article Title: Hydrogel-integrated osteogenic microtissues promote repair of infected intervertebral defects through sequential immunomodulation
    Article Snippet: Hydrogels were freeze-dried, fractured to expose the internal cross-section, sputter-coated with gold, and imaged by field-emission scanning electron microscopy (SEM, Sigma 360, ZEISS, Germany). .. Energy-dispersive X-ray spectroscopy (EDS, Sigma 360, ZEISS, Germany) mapping was used to examine the distribution of C, O, Zn, and P.Fourier transform infrared spectroscopy(FTIR, Nicolet iS50, Thermo Fisher Scientific, USA) was performed with 32 scans in the range of 4000–400 cm −1 at a resolution of 4 cm −1 ; X-ray diffraction patterns (XRD, SmartLab SE, Rigaku Corporation, Japan) were recorded from 5° to 90°. .. Surface morphology, roughness parameters (Ra and Rq), and local nanoscale Young's modulus were characterized using atomic force microscopy(AFM, Dimension Icon, Bruker, Germany).

    Spectroscopy:

    Article Title: Hydrogel-integrated osteogenic microtissues promote repair of infected intervertebral defects through sequential immunomodulation
    Article Snippet: Hydrogels were freeze-dried, fractured to expose the internal cross-section, sputter-coated with gold, and imaged by field-emission scanning electron microscopy (SEM, Sigma 360, ZEISS, Germany). .. Energy-dispersive X-ray spectroscopy (EDS, Sigma 360, ZEISS, Germany) mapping was used to examine the distribution of C, O, Zn, and P.Fourier transform infrared spectroscopy(FTIR, Nicolet iS50, Thermo Fisher Scientific, USA) was performed with 32 scans in the range of 4000–400 cm −1 at a resolution of 4 cm −1 ; X-ray diffraction patterns (XRD, SmartLab SE, Rigaku Corporation, Japan) were recorded from 5° to 90°. .. Surface morphology, roughness parameters (Ra and Rq), and local nanoscale Young's modulus were characterized using atomic force microscopy(AFM, Dimension Icon, Bruker, Germany).

    Infrared:

    Article Title: Hydrogel-integrated osteogenic microtissues promote repair of infected intervertebral defects through sequential immunomodulation
    Article Snippet: Hydrogels were freeze-dried, fractured to expose the internal cross-section, sputter-coated with gold, and imaged by field-emission scanning electron microscopy (SEM, Sigma 360, ZEISS, Germany). .. Energy-dispersive X-ray spectroscopy (EDS, Sigma 360, ZEISS, Germany) mapping was used to examine the distribution of C, O, Zn, and P.Fourier transform infrared spectroscopy(FTIR, Nicolet iS50, Thermo Fisher Scientific, USA) was performed with 32 scans in the range of 4000–400 cm −1 at a resolution of 4 cm −1 ; X-ray diffraction patterns (XRD, SmartLab SE, Rigaku Corporation, Japan) were recorded from 5° to 90°. .. Surface morphology, roughness parameters (Ra and Rq), and local nanoscale Young's modulus were characterized using atomic force microscopy(AFM, Dimension Icon, Bruker, Germany).



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    Physicochemical and mechanical characterization of the hydrogel formulations. A) Schematic illustration of the preparation of GA–Zn 2+ /BP@SilMA and incorporation of osteogenic bone microtissues (BO). B) Photographs of the hydrogel precursor before and after ultraviolet. C) Scanning electron microscopy (SEM) images of SilMA, GA–Zn 2+ @SilMA, GA–Zn 2+ /BP@SilMA, and GA–Zn 2+ /BP/BO@SilMA hydrogels. D) <t>Energy-dispersive</t> <t>X-ray</t> spectroscopy (EDS) elemental maps of C, O, P, and Zn in the composite hydrogel. E) Fourier-transform infrared spectroscopy (FTIR) spectra of the different hydrogel formulations. F) X-ray <t>diffraction</t> (XRD) patterns of the different hydrogel formulations. G) Atomic force microscopy (AFM) force–separation curves. H) Zn 2+ release profile. I) Degradation behavior of the hydrogel. J) Young's modulus of the different hydrogel formulations. Data are presented as mean ± SD. *p < 0.05 and ****p < 0.0001.
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    Physicochemical and mechanical characterization of the hydrogel formulations. A) Schematic illustration of the preparation of GA–Zn 2+ /BP@SilMA and incorporation of osteogenic bone microtissues (BO). B) Photographs of the hydrogel precursor before and after ultraviolet. C) Scanning electron microscopy (SEM) images of SilMA, GA–Zn 2+ @SilMA, GA–Zn 2+ /BP@SilMA, and GA–Zn 2+ /BP/BO@SilMA hydrogels. D) <t>Energy-dispersive</t> <t>X-ray</t> spectroscopy (EDS) elemental maps of C, O, P, and Zn in the composite hydrogel. E) Fourier-transform infrared spectroscopy (FTIR) spectra of the different hydrogel formulations. F) X-ray <t>diffraction</t> (XRD) patterns of the different hydrogel formulations. G) Atomic force microscopy (AFM) force–separation curves. H) Zn 2+ release profile. I) Degradation behavior of the hydrogel. J) Young's modulus of the different hydrogel formulations. Data are presented as mean ± SD. *p < 0.05 and ****p < 0.0001.
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    Image Search Results


    Physicochemical and mechanical characterization of the hydrogel formulations. A) Schematic illustration of the preparation of GA–Zn 2+ /BP@SilMA and incorporation of osteogenic bone microtissues (BO). B) Photographs of the hydrogel precursor before and after ultraviolet. C) Scanning electron microscopy (SEM) images of SilMA, GA–Zn 2+ @SilMA, GA–Zn 2+ /BP@SilMA, and GA–Zn 2+ /BP/BO@SilMA hydrogels. D) Energy-dispersive X-ray spectroscopy (EDS) elemental maps of C, O, P, and Zn in the composite hydrogel. E) Fourier-transform infrared spectroscopy (FTIR) spectra of the different hydrogel formulations. F) X-ray diffraction (XRD) patterns of the different hydrogel formulations. G) Atomic force microscopy (AFM) force–separation curves. H) Zn 2+ release profile. I) Degradation behavior of the hydrogel. J) Young's modulus of the different hydrogel formulations. Data are presented as mean ± SD. *p < 0.05 and ****p < 0.0001.

    Journal: Materials Today Bio

    Article Title: Hydrogel-integrated osteogenic microtissues promote repair of infected intervertebral defects through sequential immunomodulation

    doi: 10.1016/j.mtbio.2026.103657

    Figure Lengend Snippet: Physicochemical and mechanical characterization of the hydrogel formulations. A) Schematic illustration of the preparation of GA–Zn 2+ /BP@SilMA and incorporation of osteogenic bone microtissues (BO). B) Photographs of the hydrogel precursor before and after ultraviolet. C) Scanning electron microscopy (SEM) images of SilMA, GA–Zn 2+ @SilMA, GA–Zn 2+ /BP@SilMA, and GA–Zn 2+ /BP/BO@SilMA hydrogels. D) Energy-dispersive X-ray spectroscopy (EDS) elemental maps of C, O, P, and Zn in the composite hydrogel. E) Fourier-transform infrared spectroscopy (FTIR) spectra of the different hydrogel formulations. F) X-ray diffraction (XRD) patterns of the different hydrogel formulations. G) Atomic force microscopy (AFM) force–separation curves. H) Zn 2+ release profile. I) Degradation behavior of the hydrogel. J) Young's modulus of the different hydrogel formulations. Data are presented as mean ± SD. *p < 0.05 and ****p < 0.0001.

    Article Snippet: Energy-dispersive X-ray spectroscopy (EDS, Sigma 360, ZEISS, Germany) mapping was used to examine the distribution of C, O, Zn, and P.Fourier transform infrared spectroscopy(FTIR, Nicolet iS50, Thermo Fisher Scientific, USA) was performed with 32 scans in the range of 4000–400 cm −1 at a resolution of 4 cm −1 ; X-ray diffraction patterns (XRD, SmartLab SE, Rigaku Corporation, Japan) were recorded from 5° to 90°.

    Techniques: Scanning Electron Microscopy, Energy Dispersive X-Ray, Spectroscopy, Fourier Transform Infrared Spectroscopy, Microscopy