NanoPhoenix develops micro and nanostructured devices and surfaces for cell biology studies, biosensors, and Labs-on-chips, utilizing advanced microfabrication techniques to create customizable solutions. Their technology enhances cell culture efficiency and enables precise analysis of biological fluids, addressing the need for improved diagnostic and therapeutic tools in life sciences.
Funding
Funding not disclosed
Founders
Product
Problem
Cell biology studies, biosensors, and lab-on-chip development often require customized micro and nanostructured devices and surfaces, but obtaining these can be challenging and time-consuming. Existing solutions may lack the necessary precision, material compatibility, or scalability for specific research or diagnostic applications.
Solution
NanoPhoenix provides micro and nanofabrication services to create tailored devices and surfaces for cell biology, biosensors, and lab-on-a-chip applications. They offer design, prototyping, manufacturing, and testing services, utilizing Pulsed-NIL nanoimprint lithography for fast, versatile, and accurate production. Their expertise includes developing microfluidic systems with precise fluid control and biosensor platforms with high-performance micro and nanoelectrode arrays. NanoPhoenix supports customers from initial design to large-scale production, offering solutions in various materials and geometries.
Target Audience
The primary customers are researchers in cell biology, developers of biosensors, and manufacturers of lab-on-chip devices in the diagnostic and therapeutic fields.
Features
- Custom micro and nanostructured surfaces for enhanced cell adhesion, proliferation, and differentiation, mimicking the extracellular matrix.
- Microfluidic devices with plug-and-play configuration for biological fluid analysis, including liquid biopsy applications.
- Micro and nano electrodes & biosensors developed for fast, sensitive, and accurate measurements in biological samples.
- Expertise in Pulsed-NIL nanoimprint lithography for high-resolution and cost-effective manufacturing.
- Development of sensor platforms with electrochemical impedance spectroscopy (EIS) and electrochemical transduction schemes.
- Design and implementation of microfluidic circuits with high-precision fluid control for lab-on-chip applications.
- Development of biocompatible micro and nanostructured surfaces for studying cell adhesion, migration, proliferation, and differentiation.