Titanium Implant Printing

Titanium implant printing is an additive manufacturing technique that produces medical implants directly from digital designs, enabling precise control over shape, fit, and internal structure. In a typical process, a computer-guided laser selectively melts layers of titanium powder, which solidify sequentially to form a dense implant or a porous, patient-specific architecture that can support tissue integration. In medicine, this approach is used to manufacture orthopedic, dental, and craniofacial implants with complex geometries that conventional machining may not achieve. By combining biocompatible titanium with customized design, the method can improve implant fit, surgical planning, and long-term functional outcomes.

Titanium Implant Printing - Related Videos

Research

JoVE Journal - Engineering
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Digital Printing of Titanium Dioxide for Dye Sensitized Solar Cells

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Cited by 7 •

2016

This paper investigates the suitability of inkjet printing for the manufacturing of dye-sensitized solar cells. A binder-free TiO2 nanoparticle ink was formulated and printed onto a FTO glass substrate. The printed layer was fabricated into a cell with an active area of 0.25 cm2 and an efficiency of 3.5%.

Research

JoVE Journal - Bioengineering

Imaging Cell Viability on Non-transparent Scaffolds — Using the Example of a Novel Knitted Titanium Implant

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Cited by 6 •

2016

Here we present a fluorophore based imaging technique to detect cell viability on a non-transparent titanium scaffold as well as to detect glimpses of the scaffold impurities. This protocol troubleshoots the drawback of imaging cell-cell or cell-metal interactions on non-transparent scaffolds.

Plasma Polishing as a New Polishing Option to Reduce the Surface Roughness of Porous Titanium Alloy for 3D Printing

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Cited by 2 •

2023

Plasma polishing is a promising surface processing technology, especially suitable for 3D printing of porous titanium alloy workpieces. It can remove semi-molten powders and ablative oxide layers, thereby effectively reducing surface roughness and improving surface quality.

In Vitro Evaluation of The Effects Of Er,Cr:YSGG and Diode Lasers Used on Titanium Cylinder

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2025

In this study, Er,Cr:YSGG and diode lasers applied separately to the flat surface of a total of 96 specially designed titanium cylinders. A thermocouple placed on the other surface and the temperature was measured. Surface roughness analyzed by profilometer, SEM and AFM.

Rapid Formation and Testing of Self-expanding NiTi Frames with a Small Form Factor Suitable for Minimally Invasive Implants

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Cited by 1 •

2025

This work illustrates a low-cost fabrication technique for shape-setting nitinol wires/frames with a small form factor using sacrificial fixtures. The technique is demonstrated for the fabrication of self-expanding frames designed for minimally invasive implants with complex shapes.

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