ERIK MARTIN WILLÈN
Author of science fiction
Monday, August 3, 2026
3D-printable material can heal the body, build better robots and recover critical minerals - Engineering - Hi Tech & Innovation
Credit: University of Texas at Austin
A
new type of 3D-printable material developed by researchers at The University of
Texas at Austin mimics human tissue's ability to sort and filter, allowing
certain molecules to pass through while keeping others out. This broad
functionality means the material can be used in a variety of applications
across medicine, water and robotics.
Current methods for building small
tissue-like materials don't scale to sizes that can make applications possible,
the researchers say. The team overcame these issues of speed and scalability by
jamming billions of tiny water droplets tightly together using simple mixing
and centrifuge techniques to form large, tissue-like materials in just a few
minutes. Each droplet is separated by a thin membrane, allowing the membranes
to link up, similar to cell organization in human tissue.
"Tissues can separate and transport ions and molecules; that's how our kidneys or intestines work, taking only what they need and leaving the rest behind," said Manish Kumar, professor in the Cockrell School of Engineering's Fariborz Maseeh Department of Civil, Architectural and Environmental Engineering and the McKetta Department of Chemical Engineering. This work was recently published in Nature Materials.
Stable biomimetic tissues can be created
using JIBEs. Credit: Nature Materials (2026). DOI: 10.1038/s41563-026-02679-3
From scaffolds to soft robots
The flexible material can be
customized to act like different kinds of tissue. Because the structure closely
mimics real tissue and can be 3D
printed from biocompatible materials, it can serve as a scaffold for the growth of new
tissues or organs. The flexibility and responsiveness make it an ideal base for
soft robots—machines that move and adapt like living creatures—that could be
used in surgery, search-and-rescue or hazardous environments where traditional
machines cannot go.
By adding certain proteins,
researchers enabled the material to conduct ion currents, much like nerve
tissue. This holds promise for building computing systems modeled after the
human brain.
In another instance, researchers
added a protein that allowed the tissue to tell ammonium apart from other ions
in wastewater. This includes water produced by oil and gas extraction and
municipal wastewater, an area Kumar has focused on in recent years. The ability
to filter out unwanted ions using membranes is a promising approach for
recycling and reusing critical mineral ions and nutrients from wastewater.
This new research is part of an
effort that spans more than a decade. But it was one of his students, Aida
Fica, who put it all together.
After years of experiencing the
same challenges of slow formation and instability, Fica heard something at a
conference that gave her a new idea. She and the team unlocked the technology
through emulsification, bringing together two oils with different solubilities
to form droplets, then jamming them together with a centrifuge.
"This technology now offers a simple, scalable process with endless applications that could be implemented in any laboratory since it only requires basic equipment," Fica said. "We encourage interested researchers to try this out, and we will heartily support anybody who would like to work in this field through visits and discussions," Kumar added.
Provided by University of Texas at Austin
by University of Texas at Austin
edited by Lisa Lock, reviewed by Robert Egan
Source: 3D-printable material can heal the body, build better robots and recover critical minerals


