Vital3D Technologies utilizes Two-Photon Polymerization and FemtoBrush technology to produce high-resolution, bioprinted tissues and organs with complex vascular systems for medical research and regenerative medicine. The company addresses the need for functional, implantable 3D bioprinted organs by developing scalable solutions that enhance precision and speed in bioprinting processes.
Funding
Funding not disclosed
Founders
Product
Problem
Creating functional, implantable 3D bioprinted organs with complex vascular systems remains a significant challenge due to limitations in printing speed, resolution, and scalability. Existing bioprinting methods struggle to replicate the intricate microarchitecture and cell density required for viable tissue engineering.
Solution
Vital3D Technologies addresses these challenges with its Vita Light 3D bioprinter, which leverages Two-Photon Polymerization (2PP) and FemtoBrush technology to achieve high-resolution and high-speed printing. The FemtoBrush innovation utilizes a Spatial Light Modulator (SLM) to dynamically adjust voxel size and shape, enabling simultaneous printing of both fine details (down to 1 micron) and bulk areas. This mesoscale 3D printing capability facilitates the creation of complex geometries, tunable material properties, and intricate vascular networks within bioprinted tissues and organs. The technology aims to accelerate medical research, drug discovery, and regenerative medicine by providing scalable solutions for personalized patient therapies.
Target Audience
The primary target audience includes researchers in medical research, drug discovery, and regenerative medicine, as well as healthcare and biotech companies seeking advanced bioprinting solutions.
Features
- Two-Photon Polymerization (2PP) technology for high-resolution printing down to 1 μm
- FemtoBrush technology utilizing a Spatial Light Modulator (SLM) for dynamic voxel control
- Integrated SLM and intelligent hatching algorithms for simultaneous high-fidelity and bulk printing
- Large build volume of 50 mm x 50 mm x 100 mm
- Capability to create complex 3D geometries and intricate vascular networks
- Tunable material properties for customized tissue engineering
- Compact, table-top machine design