Co2 Laser Fabrication

CO2 laser fabrication is a manufacturing technique that uses a carbon dioxide gas laser to cut, engrave, mark, or join materials with high precision. The laser generates infrared light, typically near 10.6 micrometers, which is amplified in a gas-filled resonator and focused into an intense beam; absorbed energy rapidly heats, melts, vaporizes, or bonds the target material. In engineering, this process supports rapid prototyping, sheet-material processing, component marking, and custom fabrication across polymers, wood, ceramics, and many metals. Control of power, pulse duration, focal position, and traverse speed influences kerf width, surface finish, dimensional accuracy, and heat-affected zones.

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Research

JoVE Journal - Engineering

Fabrication of Polymer Microspheres for Optical Resonator and Laser Applications

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Cited by 3 •

2017

Protocols for the synthesis of microspheres from polymers, the manipulation of microspheres, and micro-photoluminescence measurements are presented.

Fabrication of 1-D Photonic Crystal Cavity on a Nanofiber Using Femtosecond Laser-induced Ablation

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Cited by 3 •

2017

We present a protocol for fabricating 1-D photonic crystal cavities on subwavelength diameter silica fibers (optical nanofibers) using femtosecond laser-induced ablation.

Research

JoVE Journal - Bioengineering
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Image-guided, Laser-based Fabrication of Vascular-derived Microfluidic Networks

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Cited by 10 •

2017

This protocol outlines the implementation of image-guided, laser-based hydrogel degradation to fabricate vascular-derived, biomimetic microfluidic networks embedded in poly(ethylene glycol) diacrylate (PEGDA) hydrogels. These biomimetic microfluidic systems may be useful for tissue engineering applications, generation of in vitro disease models, and fabrication of advanced "on-a-chip" devices.

Fabrication and Application of Rose Bengal-chitosan Films in Laser Tissue Repair

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Cited by 23 •

2012

Sutures are usually needed to repair tissue during surgical procedures. However, their application can be problematic as they are invasive and may damage tissue. The fabrication and application methods of a novel tissue adhesive are here reported. This adhesive film is laser-activated and does not require the use of sutures.

Fabrication and Testing of Microfluidic Optomechanical Oscillators

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Cited by 10 •

2014

Parametric optomechanical excitations have recently been experimentally demonstrated in microfluidic optomechanical resonators by means of optical radiation pressure and stimulated Brillouin scattering. This paper describes the fabrication of these microfluidic resonators along with methodologies for generating and verifying optomechanical oscillations.

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