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Philips Healthcare x pert pro super x ray diffractometer
X Pert Pro Super X Ray Diffractometer, 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+diffractometer/diffractometer+philips+x+%CC%81pert/pm41762903-69-11-10
Average 86 stars, based on 1 article reviews
x pert pro super x ray diffractometer - by Bioz Stars, 2026-09
86/100 stars

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Article Title: Composite design and property assessment of high and medium entropy layers in TaCHfCZrCTiCVC/HfB₂ZrB₂TiB₂ system.
Article Snippet: Phase identification was investigated by an X-ray diffractometer (Philips, Xpert, TW1800), with CuKα radiation, a step size of 0.04 degrees, and a 1 s detecting time.

Article Title: Formulation, Optimization and In vivo Evaluation of Freeze-Dried Nanocapsules for Enhancing the Oral Delivery of Valsartan.
Article Snippet: The crystalline state of freeze-dried VAL-NCs, pure VAL and mannitol was estimated using an X-ray diffractometer (Philips 1710, Germany).

Article Title: A Novel Floating In Situ Chewable Gel System for Curcumin Delivery with Potential Application in Obesity Management.
Article Snippet: PXRD spectra were assessed using an X-ray diffractometer (X’pert MPD, Philips, The Netherlands) at room temperature.

Article Title: Alumina sol modified core-shell zircon refractory aggregates: Characterizations and refractory applications
Article Snippet: In this study, vacuum impregnation was employed to modify the surface of spherical zircon aggregates with alumina sol.. Experimental results demonstrated that the incorporation of alumina sol transformed the initially homogeneous aggregate structure into a core-shell architecture, wherein the core consisted of zircon and the shell was composed of mullite.. Specifically, the introduced Al2O3 accelerated the decomposition of zircon; the SiO2 generated from this decomposition then underwent an in-situ reaction with Al2O3 to form mullite.

Article Title: Radiolabeled Ag 2 S quantum dots for the detection of breast cancer tumours.
Article Snippet: The crystal structures and chemical bond of Ag2S QDs were acquired utilizing X-ray diffractometer (X’PertPro, Philips, USA) with Cu Kα radiation with wavelength of x-ray beam of 1.54 angstrom).

Article Title: Upcycling Rice Husk for the Synthesis of Cellulose-Based Aerogels
Article Snippet: The crystallinity index (CrI) of powdered aerogel samples was determined using an X-ray diffractometer (PW3040X’PertMRD, Philips, Almelo, Netherlands) under operating conditions of 45 kV and 40 mA within a 2θ range of 5−60°, using a step interval of 0.02° s−1 and a scan speed of 0.0167 s−1.

Control:

Article Title: Structural, physical, and elastic properties of α-Fe 2 O 3 nanoparticles doped on borate glasses.
Article Snippet: .. Using a copper anode (Cu K, = 1.5406 A) and an X-ray diffractometer (PW 1710 control unit; Philips), it was recorded at room temperature in the 10–80° range. .. Using a spectrophotometer (Jasco Model 4100 (Japan) infrared spectrometer at ambient temperature and wave-numbers ranging from 400 to 4000 cm− 1, the Fourier transform infrared (FTIR) spectra were acquired at 28 ◦C using the KBr pellet method.

Article Title: Structural, physical, and elastic properties of α-Fe 2 O 3 nanoparticles doped on borate glasses
Article Snippet: .. Using a copper anode (Cu K, = 1.5406 A) and an X-ray diffractometer (PW 1710 control unit; Philips), it was recorded at room temperature in the 10–80° range. .. Using a spectrophotometer (Jasco Model 4100 (Japan) infrared spectrometer at ambient temperature and wave-numbers ranging from 400 to 4000 cm − 1 , the Fourier transform infrared (FTIR) spectra were acquired at 28 ◦ C using the KBr pellet method.



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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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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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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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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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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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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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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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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