3d printed base Search Results


90
SprintRay Inc denture base 3d-printed specimens
Materials tested in the study.
Denture Base 3d Printed Specimens, supplied by SprintRay Inc, 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/3d+printed+base/pmc10573664-136-18-17?v=SprintRay+Inc
Average 90 stars, based on 1 article reviews
denture base 3d-printed specimens - by Bioz Stars, 2026-08
90/100 stars
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90
Valplast International Corporation thermoplastic denture base resin 3d printing filament
Materials tested in the study.
Thermoplastic Denture Base Resin 3d Printing Filament, supplied by Valplast International Corporation, 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/3d+printed+base/pmc08393887-33-6-15?v=Valplast+International+Corporation
Average 90 stars, based on 1 article reviews
thermoplastic denture base resin 3d printing filament - by Bioz Stars, 2026-08
90/100 stars
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90
SprintRay Inc 3d printed cone-shaped microneedles with a base diameter of 400 μm and a height of
a A schematic illustration of the microneedle array inserted into the dermis of the skin and interstitial fluid. b A schematic illustration of the microneedle array. c A camera image of the microneedle-based electrochemical sensor. d An optical image of the Au electrode after the deposition of Prussian blue. e An SEM image of 3D printed cone-shaped <t>microneedles</t> with a base diameter of 400 µm and a height of 1.5 mm fabricated by using MoonRay (SprintRay Technology Ltd., China) and clear light-sensitive resin. f An SEM image of 3D printed cone-shaped microneedles with a base diameter of 200 µm and a height of 500 µm fabricated by using an S140 machine and biocompatible light-sensitive resin (BMF Precision Technology Ltd., China). g An EDS point analysis of the working electrode in the part of a microneedle. h , i EDS mapping of the Ag/AgCl electrode in part of a microneedle. j The load–displacement curve on a microneedle by an in situ nanomechanical test system. k Compression test on the microneedle array by a universal material testing machine. l An optical image of the pierced skin with staining after removing the microneedle array
3d Printed Cone Shaped Microneedles With A Base Diameter Of 400 μm And A Height Of, supplied by SprintRay Inc, 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/3d+printed+base/pmc08481261-48-69-87?v=SprintRay+Inc
Average 90 stars, based on 1 article reviews
3d printed cone-shaped microneedles with a base diameter of 400 μm and a height of - by Bioz Stars, 2026-08
90/100 stars
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90
Neuralynx inc 3d-printed plastic base
a A schematic illustration of the microneedle array inserted into the dermis of the skin and interstitial fluid. b A schematic illustration of the microneedle array. c A camera image of the microneedle-based electrochemical sensor. d An optical image of the Au electrode after the deposition of Prussian blue. e An SEM image of 3D printed cone-shaped <t>microneedles</t> with a base diameter of 400 µm and a height of 1.5 mm fabricated by using MoonRay (SprintRay Technology Ltd., China) and clear light-sensitive resin. f An SEM image of 3D printed cone-shaped microneedles with a base diameter of 200 µm and a height of 500 µm fabricated by using an S140 machine and biocompatible light-sensitive resin (BMF Precision Technology Ltd., China). g An EDS point analysis of the working electrode in the part of a microneedle. h , i EDS mapping of the Ag/AgCl electrode in part of a microneedle. j The load–displacement curve on a microneedle by an in situ nanomechanical test system. k Compression test on the microneedle array by a universal material testing machine. l An optical image of the pierced skin with staining after removing the microneedle array
3d Printed Plastic Base, supplied by Neuralynx inc, 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/3d+printed+base/10__1523_slash_jneurosci__1439___21__2021-45-2-18?v=Neuralynx+inc
Average 90 stars, based on 1 article reviews
3d-printed plastic base - by Bioz Stars, 2026-08
90/100 stars
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90
Tecniplast inc 3d printed base
a A schematic illustration of the microneedle array inserted into the dermis of the skin and interstitial fluid. b A schematic illustration of the microneedle array. c A camera image of the microneedle-based electrochemical sensor. d An optical image of the Au electrode after the deposition of Prussian blue. e An SEM image of 3D printed cone-shaped <t>microneedles</t> with a base diameter of 400 µm and a height of 1.5 mm fabricated by using MoonRay (SprintRay Technology Ltd., China) and clear light-sensitive resin. f An SEM image of 3D printed cone-shaped microneedles with a base diameter of 200 µm and a height of 500 µm fabricated by using an S140 machine and biocompatible light-sensitive resin (BMF Precision Technology Ltd., China). g An EDS point analysis of the working electrode in the part of a microneedle. h , i EDS mapping of the Ag/AgCl electrode in part of a microneedle. j The load–displacement curve on a microneedle by an in situ nanomechanical test system. k Compression test on the microneedle array by a universal material testing machine. l An optical image of the pierced skin with staining after removing the microneedle array
3d Printed Base, supplied by Tecniplast inc, 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/3d+printed+base/pm31733283-54-12-22?v=Tecniplast+inc
Average 90 stars, based on 1 article reviews
3d printed base - by Bioz Stars, 2026-08
90/100 stars
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Image Search Results


Materials tested in the study.

Journal: Materials

Article Title: Flexural Strength Analysis of Different Complete Denture Resin-Based Materials Obtained by Conventional and Digital Manufacturing

doi: 10.3390/ma16196559

Figure Lengend Snippet: Materials tested in the study.

Article Snippet: Of all the tested groups, the AADVA disc had the highest mean flexural strength (107.87 MPa), and Sprintray Denture Base 3D-printed specimens polymerized for 20 min with the Labolight curing unit had the lowest (54.07 MPa).

Techniques: Molecular Weight, Titanium Dioxide

a A schematic illustration of the microneedle array inserted into the dermis of the skin and interstitial fluid. b A schematic illustration of the microneedle array. c A camera image of the microneedle-based electrochemical sensor. d An optical image of the Au electrode after the deposition of Prussian blue. e An SEM image of 3D printed cone-shaped microneedles with a base diameter of 400 µm and a height of 1.5 mm fabricated by using MoonRay (SprintRay Technology Ltd., China) and clear light-sensitive resin. f An SEM image of 3D printed cone-shaped microneedles with a base diameter of 200 µm and a height of 500 µm fabricated by using an S140 machine and biocompatible light-sensitive resin (BMF Precision Technology Ltd., China). g An EDS point analysis of the working electrode in the part of a microneedle. h , i EDS mapping of the Ag/AgCl electrode in part of a microneedle. j The load–displacement curve on a microneedle by an in situ nanomechanical test system. k Compression test on the microneedle array by a universal material testing machine. l An optical image of the pierced skin with staining after removing the microneedle array

Journal: Microsystems & Nanoengineering

Article Title: Continuous monitoring of diabetes with an integrated microneedle biosensing device through 3D printing

doi: 10.1038/s41378-021-00302-w

Figure Lengend Snippet: a A schematic illustration of the microneedle array inserted into the dermis of the skin and interstitial fluid. b A schematic illustration of the microneedle array. c A camera image of the microneedle-based electrochemical sensor. d An optical image of the Au electrode after the deposition of Prussian blue. e An SEM image of 3D printed cone-shaped microneedles with a base diameter of 400 µm and a height of 1.5 mm fabricated by using MoonRay (SprintRay Technology Ltd., China) and clear light-sensitive resin. f An SEM image of 3D printed cone-shaped microneedles with a base diameter of 200 µm and a height of 500 µm fabricated by using an S140 machine and biocompatible light-sensitive resin (BMF Precision Technology Ltd., China). g An EDS point analysis of the working electrode in the part of a microneedle. h , i EDS mapping of the Ag/AgCl electrode in part of a microneedle. j The load–displacement curve on a microneedle by an in situ nanomechanical test system. k Compression test on the microneedle array by a universal material testing machine. l An optical image of the pierced skin with staining after removing the microneedle array

Article Snippet: Fig. 1 Overall scheme and materials characterization of the microneedle biosensing device. a A schematic illustration of the microneedle array inserted into the dermis of the skin and interstitial fluid. b A schematic illustration of the microneedle array. c A camera image of the microneedle-based electrochemical sensor. d An optical image of the Au electrode after the deposition of Prussian blue. e An SEM image of 3D printed cone-shaped microneedles with a base diameter of 400 µm and a height of 1.5 mm fabricated by using MoonRay (SprintRay Technology Ltd., China) and clear light-sensitive resin. f An SEM image of 3D printed cone-shaped microneedles with a base diameter of 200 µm and a height of 500 µm fabricated by using an S140 machine and biocompatible light-sensitive resin (BMF Precision Technology Ltd., China). g An EDS point analysis of the working electrode in the part of a microneedle. h , i EDS mapping of the Ag/AgCl electrode in part of a microneedle. j The load–displacement curve on a microneedle by an in situ nanomechanical test system. k Compression test on the microneedle array by a universal material testing machine. l An optical image of the pierced skin with staining after removing the microneedle array Figure shows a camera image of the sensing device with a two-electrode configuration.

Techniques: In Situ, Staining