Mock of Dalton Lab Research

Department of Bioengineering

The Dalton Lab

Advanced biomedical manufacturing for the benefit of humanity

Current Research Projects

 

 

 

 

Emerging manufacturing processes are at the heart of the Dalton Lab, to produce advanced biomedical materials that can be translated to an application. 

We specialize in melt electrowriting, but also hybridize other advanced processes to create new objects with distinct properties that outperform existing gold standards. 

In particular, we work with 3D printing technologies towards full digitization of biomaterials, allowing rapid research cycles and innovative biomedical products.

Accessibility 
Lineup in MEW Printers

We initiated an open-source 3D printer hardware ecosystem to improve accessibility of melt electrowriting. We built the “MEWron” on the back of the phenomenal Voron platform to improve functionality, usability, and capabilities of this technology increases adoption and helps move high resolution additive fabrication techniques further.

Pushing the lImits of Fabrication

Expect anything to happen in this space! The principle of the lab is to not do incremental research but follow the threads of research which are capable of transformative change. We want to be disruptive, we want to invent new fields of research and we achieve this through curiosity and taking note of the times we look at data and say “That’s weird!”.

This is why it is difficult to determine where our next breakthrough comes from, and which projects in the lab turbo-charge step-changes in manufacturing capabilities. It could be in microfibers, nanofibers, skin research, hydrogels or structural designs. We LOVE taking tools from other fields and applying them in ours to not reinvent the wheel and perform impactful research that is also economical. 

Pushing the envelope of fabrication includes modulating mechanics, materials, printing conditions to selectively tailor scaffold properties and provide unique solutions to a variety of engineering challenges. We want to transform expectations of what’s possible.

mew tube
Applications
MEW Fibers from the Dalton lab

We fabricate new materials, so that they can be applied to a spectrum of applications. We focus on biomedical materials but also push the boundaries for mechanical, morphological, and chemical properties of high-performance environments. Hybrid fabrication, the use of multiple fabrication technologies to minimize deficiencies of each individual technology, is utilized to achieve specific mechanics and morphologies designed to match tissue properties.

Knight Campus Collaborations

We frequently collaborate with labs across the Knight Campus, and the University of Oregon. 

A group of people sitting, and standing around a couch

The Willett Lab

A group of people smiling, wearing business close, posing with their hands up

The Lindberg Lab

Group of attendees at the Oregon Bioengineering Symposium 2023 posing for a photo in front of a banner displaying the event's title.

The Hettiaratchi Lab

Guldberg group lab photo on the building 1 terrace

The Guldberg Lab

We are always looking for new collaborations, across academia and industry. If you are interested in working together, please reach out.

 

Featured Publications

Circuits arranged in an 'O'

2023

Magnetoelastic Monitoring System for Tracking Growth of Human Mesenchymal Stromal Cells

Sensors

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Circuits arranged in an 'O'

2025

Wireless Suture Button Accessory Sensor for Intra- and Post-Operative Monitoring of Suture Loading in Soft Tissue Reconstruction

Journal of Orthopaedic Experience & Innovation

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The Dalton Lab 

In 2020, the Dalton Lab relocated to the University of Oregon's Phil and Penny Knight Campus for Accelerating Scientific Impact. Based in the Department of Bioengineering in Eugene, Oregon, the Dalton Lab uses advanced manufacturing to create new clinical solutions.