Current microfabrication methods are often restricted to two-dimensional (2D) or two and a half dimensional (2.5D) structures. Those fabrication issues can be potentially addressed by emerging additive manufacturing technologies. Despite rapid growth of additive manufacturing technologies in tissue engineering, microfluidics has seen relatively little developments with regards to adopting 3D printing for rapid fabrication of complex chip-based devices. This has been due to two major factors: lack of sufficient resolution of current rapid-prototyping methods (usually >100 μm) and optical transparency of polymers to allow in vitro imaging of specimens. We postulate that adopting innovative fabrication processes can provide effective soluti...
Organs-on-a-chip, or OoCs, are microfluidic tissue culture devices with micro-scaled architectures t...
Increased demand for inexpensive and rapid prototyping methods for micro- and millifluidic lab-on-a-...
Heuer C, Preuss J-A, Habib T, Enders A, Bahnemann J. 3D printing in biotechnology-An insight into mi...
This work describes a preliminary investigation of commercially available 3D printing technologies f...
A recent revolution in additive manufacturing technologies and access to 3D Computer Assisted Design...
3D Stereolithography (SLA) printing is a high-throughput, precise and reproducible manufacturing pla...
3D Stereolithography (SLA) printing is a high-throughput, precise and reproducible manufacturing pla...
Additive manufacturing techniques using three dimensional (3D) printing have been shown to be suitab...
Additive manufacturing techniques using three dimensional (3D) printing have been shown to be suitab...
In the last few years, 3D printing has emerged as a promising alternative for the fabrication of mic...
Soft-lithography methods are routinely applied in biomedical research, for instance for the fabricat...
Organ-on-chip and Lab-on-chip are microfluidic devices widely applied in the biomedical field. They ...
The combination of microfluidics and photo-polymerization techniques such as stereolithography (SLA)...
The vast majority of microfluidic systems are molded in poly(dimethylsiloxane) (PDMS) by soft lithog...
Additive manufacturing (AM) is ideal for building adaptable, structurally complex, three-dimensional...
Organs-on-a-chip, or OoCs, are microfluidic tissue culture devices with micro-scaled architectures t...
Increased demand for inexpensive and rapid prototyping methods for micro- and millifluidic lab-on-a-...
Heuer C, Preuss J-A, Habib T, Enders A, Bahnemann J. 3D printing in biotechnology-An insight into mi...
This work describes a preliminary investigation of commercially available 3D printing technologies f...
A recent revolution in additive manufacturing technologies and access to 3D Computer Assisted Design...
3D Stereolithography (SLA) printing is a high-throughput, precise and reproducible manufacturing pla...
3D Stereolithography (SLA) printing is a high-throughput, precise and reproducible manufacturing pla...
Additive manufacturing techniques using three dimensional (3D) printing have been shown to be suitab...
Additive manufacturing techniques using three dimensional (3D) printing have been shown to be suitab...
In the last few years, 3D printing has emerged as a promising alternative for the fabrication of mic...
Soft-lithography methods are routinely applied in biomedical research, for instance for the fabricat...
Organ-on-chip and Lab-on-chip are microfluidic devices widely applied in the biomedical field. They ...
The combination of microfluidics and photo-polymerization techniques such as stereolithography (SLA)...
The vast majority of microfluidic systems are molded in poly(dimethylsiloxane) (PDMS) by soft lithog...
Additive manufacturing (AM) is ideal for building adaptable, structurally complex, three-dimensional...
Organs-on-a-chip, or OoCs, are microfluidic tissue culture devices with micro-scaled architectures t...
Increased demand for inexpensive and rapid prototyping methods for micro- and millifluidic lab-on-a-...
Heuer C, Preuss J-A, Habib T, Enders A, Bahnemann J. 3D printing in biotechnology-An insight into mi...