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Philips Healthcare x ray diffraction xrd patterns
X Ray Diffraction Xrd Patterns, supplied by Philips Healthcare, used in various techniques. Bioz Stars score: 86/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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X-ray Diffraction:

Article Title: The effects of platelet rich plasma and zinc oxide nanoparticle on skin wound healing in dogs.
Article Snippet: .. X-Ray Diffraction (XRD) Cu Ka radiation (k = 1.54186 A°) was used in XRD measurements using a Philips PW1710 X-ray diffractometer. ..

Article Title: Integrative simulation and spectroscopy illuminates L-asparaginase stability on nanocomposite surface for biosensing.
Article Snippet: The design and functional immobilization of enzymes on nanomaterial supports is a key aspect in advancing biosensor applications.. In this work, we have presented an integrated experimental and computational study of L-asparaginase (asnB) covalently immobilized onto reduced graphene oxide–molybdenum disulfide (rGO@MoS2) nanocomposites via glutaraldehyde crosslinking.. Hydrothermal synthesis and spectroscopic (XRD, FTIR, CD, SEM-EDX) characterization confirmed successful nanocomposite formation and enzyme attachment.

Article Title: Phosphorus-Induced Changes in Microstructure, Optical, and Tribological Behavior of Electrodeposited Ni-P Coatings.
Article Snippet: .. The crystallographic structure of the coatings deposited on steel substrates was examined by X-ray diffraction (XRD) in grazing incidence mode at 2◦, using a Philips X’Pert PRO diffractometer (Malvern Panalytical, Almelo, The Netherlands) with Cu Kα radiation (λ = 1.54060 Å), operating at 45 kV and 40 mA. ..

Article Title: Titanium dioxide particles and methods of making the same
Article Snippet: .. X-ray diffraction (XRD) patterns of the materials were obtained using a Philips X′Pert diffractometer operating with Cu Kα X-ray source. ..

Article Title: Experimental and predictive analysis of pile raft foundation in clayey soils using machine learning and MATLAB tools.
Article Snippet: .. AR TIC LE IN PR ES S ARTICLE IN PRESS 2.3.4 Mineralogical Characterisation: The mineralogical composition of the 12 clayey soils was determined using an X-ray Diffraction (XRD) Spectrometer (Philips 2404, Holland) with a graphite monochromator and Cu-Kα radiation. ..

Article Title: Synergistic integration of MOF (UiO-66) and COF (SNW-1) on magnetic graphene oxide: an engineered sorbent for the determination of phthalate esters in water by gas chromatography-flame ionization detection.
Article Snippet: 1 Department of Chemistry, Faculty of Science, Ferdowsi University of Mashhad, Mashhad 9177948974, Iran Abstract A magnetic sorbent was developed for the extraction of trace phthalate esters (PAEs) from water by integrating magnetic graphene oxide with the metal-organic framework (UiO-66) and the covalent organic framework (SNW-1).. Comprehensive characterization confirmed the successful formation of a porous and magnetically responsive composite suitable for magnetic solid-phase extraction (MSPE).. Key MSPE parameters, including sample pH, sorbent amount, adsorption/ desorption time, ionic strength, and desorption conditions, were systematically optimized.

Activity Assay:

Article Title: Integrative simulation and spectroscopy illuminates L-asparaginase stability on nanocomposite surface for biosensing.
Article Snippet: The design and functional immobilization of enzymes on nanomaterial supports is a key aspect in advancing biosensor applications.. In this work, we have presented an integrated experimental and computational study of L-asparaginase (asnB) covalently immobilized onto reduced graphene oxide–molybdenum disulfide (rGO@MoS2) nanocomposites via glutaraldehyde crosslinking.. Hydrothermal synthesis and spectroscopic (XRD, FTIR, CD, SEM-EDX) characterization confirmed successful nanocomposite formation and enzyme attachment.

Synthesized:

Article Title: Integrative simulation and spectroscopy illuminates L-asparaginase stability on nanocomposite surface for biosensing.
Article Snippet: The design and functional immobilization of enzymes on nanomaterial supports is a key aspect in advancing biosensor applications.. In this work, we have presented an integrated experimental and computational study of L-asparaginase (asnB) covalently immobilized onto reduced graphene oxide–molybdenum disulfide (rGO@MoS2) nanocomposites via glutaraldehyde crosslinking.. Hydrothermal synthesis and spectroscopic (XRD, FTIR, CD, SEM-EDX) characterization confirmed successful nanocomposite formation and enzyme attachment.

other:

Article Title: Research on Plasma Characteristics of High-Power Impulse Magnetron Sputtering Ti-Nb-Cr Target and Its Effect on Film Properties.
Article Snippet: The phase constitution and microstructure of Ti-Nb-Cr films deposited on Si substrates were characterized by X-ray diffraction (XRD, Philips X’Pert, Eindhoven, The Netherlands).

Article Title: A novel bioactive contact lens for corneal epithelial regeneration in a rabbit model.
Article Snippet: Scaffold Characterization Physicochemical Features Freeze-dried samples were analyzed using Fourier-transform infrared spectroscopy (FTIR, PerkinElmer) and X-ray diffraction (XRD, PHILIPS) to



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Bruker Corporation x ray diffraction xrd patterns
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) <t>XRD</t> 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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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) <t>XRD</t> 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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Haoyuan Chemexpress Co Ltd x ray diffraction xrd patterns
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) <t>XRD</t> 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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Philips Healthcare x ray diffraction xrd patterns
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) <t>XRD</t> 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).
X Ray Diffraction Xrd Patterns, supplied by Philips Healthcare, 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/x-ray+diffraction+(xrd)+pattern/diffraction+ray+x/us12623208-170-0-11
Average 86 stars, based on 1 article reviews
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Malvern Panalytical powder x ray diffraction xrd patterns
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) <t>XRD</t> 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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Brookhaven Instruments characterization synchrotron x ray diffraction xrd patterns
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) <t>XRD</t> 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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Bruker Corporation x ray diffraction xrd pattern
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) <t>XRD</t> 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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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