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BIBUS METALS disk-shaped cpti g4 samples
Changes in anodic current density at voltage U = 20 V in the <t>CpTi</t> <t>G4</t> anodizing process over time for ( a ) 2 h; ( b ) 18 h; ( c ) 24 h; and ( d ) 48 h.
Disk Shaped Cpti G4 Samples, supplied by BIBUS METALS, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/cpti+g4+samples/pmc11277811-87-1-4?v=BIBUS+METALS
Average 90 stars, based on 1 article reviews
disk-shaped cpti g4 samples - by Bioz Stars, 2026-07
90/100 stars

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1) Product Images from "Anodic Production and Characterization of Biomimetic Oxide Layers on Grade 4 Titanium for Medical Applications"

Article Title: Anodic Production and Characterization of Biomimetic Oxide Layers on Grade 4 Titanium for Medical Applications

Journal: Journal of Functional Biomaterials

doi: 10.3390/jfb15070180

Changes in anodic current density at voltage U = 20 V in the CpTi G4 anodizing process over time for ( a ) 2 h; ( b ) 18 h; ( c ) 24 h; and ( d ) 48 h.
Figure Legend Snippet: Changes in anodic current density at voltage U = 20 V in the CpTi G4 anodizing process over time for ( a ) 2 h; ( b ) 18 h; ( c ) 24 h; and ( d ) 48 h.

Techniques Used:

FE-SEM image of the CpTi G4 microstructure: ( a ) after mechanical grinding; ( b ) after electrochemical polishing.
Figure Legend Snippet: FE-SEM image of the CpTi G4 microstructure: ( a ) after mechanical grinding; ( b ) after electrochemical polishing.

Techniques Used:

FE-SEM images of the microstructure of a porous oxide layer formed on the CpTi G4 surface in a solution of 1M ethylene glycol with the addition of 40 g of ammonium fluoride at a voltage of U = 20 V at a time of ( a , b ) 2 h; ( c , d ) 18 h; ( e , f ) 24 h; and ( g , h ) 48 h.
Figure Legend Snippet: FE-SEM images of the microstructure of a porous oxide layer formed on the CpTi G4 surface in a solution of 1M ethylene glycol with the addition of 40 g of ammonium fluoride at a voltage of U = 20 V at a time of ( a , b ) 2 h; ( c , d ) 18 h; ( e , f ) 24 h; and ( g , h ) 48 h.

Techniques Used:

Computer analysis of porosity based on FE-SEM images of the microstructure of a porous oxide layer formed on the CpTi G4 surface in a solution of 1M ethylene glycol with the addition of 40 g of ammonium fluoride at a voltage of U = 20 V at a time of ( a ) 2 h; ( b ) 18 h; ( c ) 24 h; and ( d ) 48 h.
Figure Legend Snippet: Computer analysis of porosity based on FE-SEM images of the microstructure of a porous oxide layer formed on the CpTi G4 surface in a solution of 1M ethylene glycol with the addition of 40 g of ammonium fluoride at a voltage of U = 20 V at a time of ( a ) 2 h; ( b ) 18 h; ( c ) 24 h; and ( d ) 48 h.

Techniques Used:

EDS analysis in the tested micro-area on the CpTi G4 surface after electrochemical oxidation at 20 V for 48 h: ( a ) FE-SEM image; ( b ) Ti surface distribution map; ( c ) O surface distribution map; ( d ) F surface distribution map.
Figure Legend Snippet: EDS analysis in the tested micro-area on the CpTi G4 surface after electrochemical oxidation at 20 V for 48 h: ( a ) FE-SEM image; ( b ) Ti surface distribution map; ( c ) O surface distribution map; ( d ) F surface distribution map.

Techniques Used:

EDS spectrum from the tested micro-area of the CpTi G4 surface after electrochemical oxidation at 20 V for 48 h.
Figure Legend Snippet: EDS spectrum from the tested micro-area of the CpTi G4 surface after electrochemical oxidation at 20 V for 48 h.

Techniques Used:

Content of elements on the surface of  CpTi G4  after electrochemical oxidation in solution at a voltage of 20 V for 2, 18, 24, and 48 h.
Figure Legend Snippet: Content of elements on the surface of CpTi G4 after electrochemical oxidation in solution at a voltage of 20 V for 2, 18, 24, and 48 h.

Techniques Used:

The ATR-FTIR absorption spectrum of the CpTi G4 before and after the formation of an anodic oxide layer at 20 V for 48 h.
Figure Legend Snippet: The ATR-FTIR absorption spectrum of the CpTi G4 before and after the formation of an anodic oxide layer at 20 V for 48 h.

Techniques Used:

Roughness profile recorded for the CpTi G4 surface: ( a ) mechanically ground; ( b ) electrochemically polished; ( c ) anodized at 20 V for 2 h; ( d ) anodized at 20 V for 18 h; ( e ) anodized at 20 V for 24 h; and ( f ) anodized at 20 V for 48 h.
Figure Legend Snippet: Roughness profile recorded for the CpTi G4 surface: ( a ) mechanically ground; ( b ) electrochemically polished; ( c ) anodized at 20 V for 2 h; ( d ) anodized at 20 V for 18 h; ( e ) anodized at 20 V for 24 h; and ( f ) anodized at 20 V for 48 h.

Techniques Used:

Quantitative roughness measurement results for the  CpTi G4  surface before and after electrochemical oxidation.
Figure Legend Snippet: Quantitative roughness measurement results for the CpTi G4 surface before and after electrochemical oxidation.

Techniques Used:

ATR-FTIR spectrum for the CpTi G4 after electrochemical oxidation at 20 V for 48 h with the drug loaded and gentamicin sulfate in the initial state.
Figure Legend Snippet: ATR-FTIR spectrum for the CpTi G4 after electrochemical oxidation at 20 V for 48 h with the drug loaded and gentamicin sulfate in the initial state.

Techniques Used:

The amount of drug loaded in the form of gentamicin sulfate into the porous oxide layers on the  CpTi G4  surface.
Figure Legend Snippet: The amount of drug loaded in the form of gentamicin sulfate into the porous oxide layers on the CpTi G4 surface.

Techniques Used:

The amount of drug released in the form of gentamicin sulfate from porous oxide layers on the CpTi G4 surface as a function of release time.
Figure Legend Snippet: The amount of drug released in the form of gentamicin sulfate from porous oxide layers on the CpTi G4 surface as a function of release time.

Techniques Used:



Similar Products

90
BIBUS METALS disk-shaped cpti g4 samples
Changes in anodic current density at voltage U = 20 V in the <t>CpTi</t> <t>G4</t> anodizing process over time for ( a ) 2 h; ( b ) 18 h; ( c ) 24 h; and ( d ) 48 h.
Disk Shaped Cpti G4 Samples, supplied by BIBUS METALS, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/cpti+g4+samples/pmc11277811-87-1-4?v=BIBUS+METALS
Average 90 stars, based on 1 article reviews
disk-shaped cpti g4 samples - by Bioz Stars, 2026-07
90/100 stars
  Buy from Supplier

90
BIBUS METALS cpti g4 samples
Changes in anodic current density at voltage U = 20 V in the <t>CpTi</t> <t>G4</t> anodizing process over time for ( a ) 2 h; ( b ) 18 h; ( c ) 24 h; and ( d ) 48 h.
Cpti G4 Samples, supplied by BIBUS METALS, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/cpti+g4+samples/pmc11277811-87-0-4?v=BIBUS+METALS
Average 90 stars, based on 1 article reviews
cpti g4 samples - by Bioz Stars, 2026-07
90/100 stars
  Buy from Supplier

Image Search Results


Changes in anodic current density at voltage U = 20 V in the CpTi G4 anodizing process over time for ( a ) 2 h; ( b ) 18 h; ( c ) 24 h; and ( d ) 48 h.

Journal: Journal of Functional Biomaterials

Article Title: Anodic Production and Characterization of Biomimetic Oxide Layers on Grade 4 Titanium for Medical Applications

doi: 10.3390/jfb15070180

Figure Lengend Snippet: Changes in anodic current density at voltage U = 20 V in the CpTi G4 anodizing process over time for ( a ) 2 h; ( b ) 18 h; ( c ) 24 h; and ( d ) 48 h.

Article Snippet: Disk-shaped CpTi G4 samples (Bibus Metals, Dąbrowa, Poland) with a diameter of 10 mm and a height of 5 mm were mechanically ground using the metallographic grinding and polishing machine Metkon Forcipol 102 (Metkon Instruments Inc., Bursa, Turkey) on SiC abrasive paper with a grain size of 600# (Buehler Ltd., Lake Bluff, IL, USA).

Techniques:

FE-SEM image of the CpTi G4 microstructure: ( a ) after mechanical grinding; ( b ) after electrochemical polishing.

Journal: Journal of Functional Biomaterials

Article Title: Anodic Production and Characterization of Biomimetic Oxide Layers on Grade 4 Titanium for Medical Applications

doi: 10.3390/jfb15070180

Figure Lengend Snippet: FE-SEM image of the CpTi G4 microstructure: ( a ) after mechanical grinding; ( b ) after electrochemical polishing.

Article Snippet: Disk-shaped CpTi G4 samples (Bibus Metals, Dąbrowa, Poland) with a diameter of 10 mm and a height of 5 mm were mechanically ground using the metallographic grinding and polishing machine Metkon Forcipol 102 (Metkon Instruments Inc., Bursa, Turkey) on SiC abrasive paper with a grain size of 600# (Buehler Ltd., Lake Bluff, IL, USA).

Techniques:

FE-SEM images of the microstructure of a porous oxide layer formed on the CpTi G4 surface in a solution of 1M ethylene glycol with the addition of 40 g of ammonium fluoride at a voltage of U = 20 V at a time of ( a , b ) 2 h; ( c , d ) 18 h; ( e , f ) 24 h; and ( g , h ) 48 h.

Journal: Journal of Functional Biomaterials

Article Title: Anodic Production and Characterization of Biomimetic Oxide Layers on Grade 4 Titanium for Medical Applications

doi: 10.3390/jfb15070180

Figure Lengend Snippet: FE-SEM images of the microstructure of a porous oxide layer formed on the CpTi G4 surface in a solution of 1M ethylene glycol with the addition of 40 g of ammonium fluoride at a voltage of U = 20 V at a time of ( a , b ) 2 h; ( c , d ) 18 h; ( e , f ) 24 h; and ( g , h ) 48 h.

Article Snippet: Disk-shaped CpTi G4 samples (Bibus Metals, Dąbrowa, Poland) with a diameter of 10 mm and a height of 5 mm were mechanically ground using the metallographic grinding and polishing machine Metkon Forcipol 102 (Metkon Instruments Inc., Bursa, Turkey) on SiC abrasive paper with a grain size of 600# (Buehler Ltd., Lake Bluff, IL, USA).

Techniques:

Computer analysis of porosity based on FE-SEM images of the microstructure of a porous oxide layer formed on the CpTi G4 surface in a solution of 1M ethylene glycol with the addition of 40 g of ammonium fluoride at a voltage of U = 20 V at a time of ( a ) 2 h; ( b ) 18 h; ( c ) 24 h; and ( d ) 48 h.

Journal: Journal of Functional Biomaterials

Article Title: Anodic Production and Characterization of Biomimetic Oxide Layers on Grade 4 Titanium for Medical Applications

doi: 10.3390/jfb15070180

Figure Lengend Snippet: Computer analysis of porosity based on FE-SEM images of the microstructure of a porous oxide layer formed on the CpTi G4 surface in a solution of 1M ethylene glycol with the addition of 40 g of ammonium fluoride at a voltage of U = 20 V at a time of ( a ) 2 h; ( b ) 18 h; ( c ) 24 h; and ( d ) 48 h.

Article Snippet: Disk-shaped CpTi G4 samples (Bibus Metals, Dąbrowa, Poland) with a diameter of 10 mm and a height of 5 mm were mechanically ground using the metallographic grinding and polishing machine Metkon Forcipol 102 (Metkon Instruments Inc., Bursa, Turkey) on SiC abrasive paper with a grain size of 600# (Buehler Ltd., Lake Bluff, IL, USA).

Techniques:

EDS analysis in the tested micro-area on the CpTi G4 surface after electrochemical oxidation at 20 V for 48 h: ( a ) FE-SEM image; ( b ) Ti surface distribution map; ( c ) O surface distribution map; ( d ) F surface distribution map.

Journal: Journal of Functional Biomaterials

Article Title: Anodic Production and Characterization of Biomimetic Oxide Layers on Grade 4 Titanium for Medical Applications

doi: 10.3390/jfb15070180

Figure Lengend Snippet: EDS analysis in the tested micro-area on the CpTi G4 surface after electrochemical oxidation at 20 V for 48 h: ( a ) FE-SEM image; ( b ) Ti surface distribution map; ( c ) O surface distribution map; ( d ) F surface distribution map.

Article Snippet: Disk-shaped CpTi G4 samples (Bibus Metals, Dąbrowa, Poland) with a diameter of 10 mm and a height of 5 mm were mechanically ground using the metallographic grinding and polishing machine Metkon Forcipol 102 (Metkon Instruments Inc., Bursa, Turkey) on SiC abrasive paper with a grain size of 600# (Buehler Ltd., Lake Bluff, IL, USA).

Techniques:

EDS spectrum from the tested micro-area of the CpTi G4 surface after electrochemical oxidation at 20 V for 48 h.

Journal: Journal of Functional Biomaterials

Article Title: Anodic Production and Characterization of Biomimetic Oxide Layers on Grade 4 Titanium for Medical Applications

doi: 10.3390/jfb15070180

Figure Lengend Snippet: EDS spectrum from the tested micro-area of the CpTi G4 surface after electrochemical oxidation at 20 V for 48 h.

Article Snippet: Disk-shaped CpTi G4 samples (Bibus Metals, Dąbrowa, Poland) with a diameter of 10 mm and a height of 5 mm were mechanically ground using the metallographic grinding and polishing machine Metkon Forcipol 102 (Metkon Instruments Inc., Bursa, Turkey) on SiC abrasive paper with a grain size of 600# (Buehler Ltd., Lake Bluff, IL, USA).

Techniques:

Content of elements on the surface of  CpTi G4  after electrochemical oxidation in solution at a voltage of 20 V for 2, 18, 24, and 48 h.

Journal: Journal of Functional Biomaterials

Article Title: Anodic Production and Characterization of Biomimetic Oxide Layers on Grade 4 Titanium for Medical Applications

doi: 10.3390/jfb15070180

Figure Lengend Snippet: Content of elements on the surface of CpTi G4 after electrochemical oxidation in solution at a voltage of 20 V for 2, 18, 24, and 48 h.

Article Snippet: Disk-shaped CpTi G4 samples (Bibus Metals, Dąbrowa, Poland) with a diameter of 10 mm and a height of 5 mm were mechanically ground using the metallographic grinding and polishing machine Metkon Forcipol 102 (Metkon Instruments Inc., Bursa, Turkey) on SiC abrasive paper with a grain size of 600# (Buehler Ltd., Lake Bluff, IL, USA).

Techniques:

The ATR-FTIR absorption spectrum of the CpTi G4 before and after the formation of an anodic oxide layer at 20 V for 48 h.

Journal: Journal of Functional Biomaterials

Article Title: Anodic Production and Characterization of Biomimetic Oxide Layers on Grade 4 Titanium for Medical Applications

doi: 10.3390/jfb15070180

Figure Lengend Snippet: The ATR-FTIR absorption spectrum of the CpTi G4 before and after the formation of an anodic oxide layer at 20 V for 48 h.

Article Snippet: Disk-shaped CpTi G4 samples (Bibus Metals, Dąbrowa, Poland) with a diameter of 10 mm and a height of 5 mm were mechanically ground using the metallographic grinding and polishing machine Metkon Forcipol 102 (Metkon Instruments Inc., Bursa, Turkey) on SiC abrasive paper with a grain size of 600# (Buehler Ltd., Lake Bluff, IL, USA).

Techniques:

Roughness profile recorded for the CpTi G4 surface: ( a ) mechanically ground; ( b ) electrochemically polished; ( c ) anodized at 20 V for 2 h; ( d ) anodized at 20 V for 18 h; ( e ) anodized at 20 V for 24 h; and ( f ) anodized at 20 V for 48 h.

Journal: Journal of Functional Biomaterials

Article Title: Anodic Production and Characterization of Biomimetic Oxide Layers on Grade 4 Titanium for Medical Applications

doi: 10.3390/jfb15070180

Figure Lengend Snippet: Roughness profile recorded for the CpTi G4 surface: ( a ) mechanically ground; ( b ) electrochemically polished; ( c ) anodized at 20 V for 2 h; ( d ) anodized at 20 V for 18 h; ( e ) anodized at 20 V for 24 h; and ( f ) anodized at 20 V for 48 h.

Article Snippet: Disk-shaped CpTi G4 samples (Bibus Metals, Dąbrowa, Poland) with a diameter of 10 mm and a height of 5 mm were mechanically ground using the metallographic grinding and polishing machine Metkon Forcipol 102 (Metkon Instruments Inc., Bursa, Turkey) on SiC abrasive paper with a grain size of 600# (Buehler Ltd., Lake Bluff, IL, USA).

Techniques:

Quantitative roughness measurement results for the  CpTi G4  surface before and after electrochemical oxidation.

Journal: Journal of Functional Biomaterials

Article Title: Anodic Production and Characterization of Biomimetic Oxide Layers on Grade 4 Titanium for Medical Applications

doi: 10.3390/jfb15070180

Figure Lengend Snippet: Quantitative roughness measurement results for the CpTi G4 surface before and after electrochemical oxidation.

Article Snippet: Disk-shaped CpTi G4 samples (Bibus Metals, Dąbrowa, Poland) with a diameter of 10 mm and a height of 5 mm were mechanically ground using the metallographic grinding and polishing machine Metkon Forcipol 102 (Metkon Instruments Inc., Bursa, Turkey) on SiC abrasive paper with a grain size of 600# (Buehler Ltd., Lake Bluff, IL, USA).

Techniques:

ATR-FTIR spectrum for the CpTi G4 after electrochemical oxidation at 20 V for 48 h with the drug loaded and gentamicin sulfate in the initial state.

Journal: Journal of Functional Biomaterials

Article Title: Anodic Production and Characterization of Biomimetic Oxide Layers on Grade 4 Titanium for Medical Applications

doi: 10.3390/jfb15070180

Figure Lengend Snippet: ATR-FTIR spectrum for the CpTi G4 after electrochemical oxidation at 20 V for 48 h with the drug loaded and gentamicin sulfate in the initial state.

Article Snippet: Disk-shaped CpTi G4 samples (Bibus Metals, Dąbrowa, Poland) with a diameter of 10 mm and a height of 5 mm were mechanically ground using the metallographic grinding and polishing machine Metkon Forcipol 102 (Metkon Instruments Inc., Bursa, Turkey) on SiC abrasive paper with a grain size of 600# (Buehler Ltd., Lake Bluff, IL, USA).

Techniques:

The amount of drug loaded in the form of gentamicin sulfate into the porous oxide layers on the  CpTi G4  surface.

Journal: Journal of Functional Biomaterials

Article Title: Anodic Production and Characterization of Biomimetic Oxide Layers on Grade 4 Titanium for Medical Applications

doi: 10.3390/jfb15070180

Figure Lengend Snippet: The amount of drug loaded in the form of gentamicin sulfate into the porous oxide layers on the CpTi G4 surface.

Article Snippet: Disk-shaped CpTi G4 samples (Bibus Metals, Dąbrowa, Poland) with a diameter of 10 mm and a height of 5 mm were mechanically ground using the metallographic grinding and polishing machine Metkon Forcipol 102 (Metkon Instruments Inc., Bursa, Turkey) on SiC abrasive paper with a grain size of 600# (Buehler Ltd., Lake Bluff, IL, USA).

Techniques:

The amount of drug released in the form of gentamicin sulfate from porous oxide layers on the CpTi G4 surface as a function of release time.

Journal: Journal of Functional Biomaterials

Article Title: Anodic Production and Characterization of Biomimetic Oxide Layers on Grade 4 Titanium for Medical Applications

doi: 10.3390/jfb15070180

Figure Lengend Snippet: The amount of drug released in the form of gentamicin sulfate from porous oxide layers on the CpTi G4 surface as a function of release time.

Article Snippet: Disk-shaped CpTi G4 samples (Bibus Metals, Dąbrowa, Poland) with a diameter of 10 mm and a height of 5 mm were mechanically ground using the metallographic grinding and polishing machine Metkon Forcipol 102 (Metkon Instruments Inc., Bursa, Turkey) on SiC abrasive paper with a grain size of 600# (Buehler Ltd., Lake Bluff, IL, USA).

Techniques: