Going Beyond 3D Printing to Add a New Dimension for Additive Manufacturing
August 24, 2016 | Lawrence Livermore National LaboratoryEstimated reading time: 2 minutes
A team of Lawrence Livermore National Laboratory researchers has demonstrated the 3D printing of shape-shifting structures that can fold or unfold to reshape themselves when exposed to heat or electricity. The micro-architected structures were fabricated from a conductive, environmentally responsive polymer ink developed at the Lab.
In an article published recently by the journal Scientific Reports (link is external), lab scientists and engineers revealed a strategy for creating boxes, spirals and spheres from shape memory polymers (SMPs), bio-based "smart" materials that exhibit shape-changes when resistively heated or when exposed to the appropriate temperature.
Lab researcher Jennifer Rodriguez examines a 3D printed box that was "programmed" to fold and unfold when heated
While the approach of using responsive materials in 3D printing, often known as "4D printing," is not new, LLNL researchers are the first to combine the process of 3D printing and subsequent folding (via origami methods) with conductive smart materials to build complex structures.
In the paper, the researchers describe creating primary shapes from an ink made from soybean oil, additional co-polymers and carbon nanofibers, and "programming" them into a temporary shape at an engineered temperature, determined by chemical composition. Then the shape-morphing effect was induced by ambient heat or by heating the material with an electrical current, which reverts the part's temporary shape back to its original shape.
Through a direct-ink writing 3D printing process, LLNL researchers produced several types of structures, including a stent that expanded after being exposed to heat."It's like baking a cake," said lead author Jennifer Rodriguez, a postdoc in LLNL's Materials Engineering Division. "You take the part out of the oven before it's done and set the permanent structure of the part by folding or twisting after an initial gelling of the polymer."
Ultimately, Rodriguez said, researchers can use the materials to create extremely complex parts.
"If we printed a part out of multiple versions of these formulations, with different transition temperatures, and run it through a heating ramp, they would expand in a segmented fashion and unpack into something much more complex," she said.
Through a direct-ink writing 3D printing process, the team produced several types of structures -- a bent conductive device that morphed to a straight device when exposed to an electric current or heat, a collapsed stent that expanded after being exposed to heat and boxes that either opened or closed when heated.
The technology, the researchers said, could have applications in the medical field, in aerospace (in solar arrays or antennae that can unfold), as well as flexible circuits and robotic devices.
"We have these materials with 3D structures but they have extra smart properties; they can retain a memory of the previous structure," said Lab staff scientist James Lewicki. "It opens up a whole new property set. If you can print with these polymer composites you can build things and electrically activate them to unfold. Instead of a dumb lump, you are left with this sentient, responsive material."
The research derives from a Laboratory Directed Research & Development project to develop high-performance 3D-printed carbon fiber composites.Others contributing to the paper were Lab scientists and engineers Cheng Zhu, Eric Duoss, Thomas Wilson and Chris Spadaccini.
Testimonial
"The I-Connect007 team is outstanding—kind, responsive, and a true marketing partner. Their design team created fresh, eye-catching ads, and their editorial support polished our content to let our brand shine. Thank you all! "
Sweeney Ng - CEE PCBSuggested Items
Curtiss-Wright Partners With Averna to Elevate Aerospace Testing Capabilities
03/03/2026 | Curtiss-Wright CorporationAverna, a global leader in test and quality solutions, announced that it has partnered with Curtiss-Wright, to develop five custom aerospace test systems.
Amca Acquires Payne Magnetics, Strengthening its Power Electronics Capabilities
02/20/2026 | PRNewswireAmca, a Los Angeles-based aerospace and defense company, has acquired Payne Magnetics of Covina, California from its second-generation owner, Jon Payne.
Amca Acquires Electrocube to Expand Into Power Electronics
02/13/2026 | PRNewswireAmca, an El Segundo-based aerospace and defense company, has acquired Electrocube of Pomona, California from two of its founding families.
RTX to Invest $139 Million in Singapore, Signing Multiple MOUs with Economic Development
02/05/2026 | RTXAt the Singapore Air Show, RTX signed multiple memoranda of understanding with the Singapore Economic Development Board (EDB), further strengthening its long-term commitment to the country's aerospace ecosystem.
TTM Technologies Appoints Two New Independent Directors
02/05/2026 | TTM TechnologiesTTM Technologies announced that, after long and distinguished careers with TTM, Thomas Edman, the Company’s former President and Chief Executive Officer and a current Class I member of the Board of Directors, and John Mayer, a current Class III member of the Board, will retire from the Board effective as of May 7, 2026, immediately following the Company’s 2026 annual meeting of stockholders.