Categories: OUT OF THE BOX

Printing metal in midair

3D printing and laser annealing of conductive metallic inks without supports could lead to customized electronic and biomedical devices

(BOSTON) — “Flat” and “rigid” are terms typically used to describe electronic devices. But the increasing demand for flexible, wearable electronics, sensors, antennas and biomedical devices has led a team at Harvard’s Wyss Institute for Biologically Inspired Engineering and John A. Paulson School of Engineering and Applied Sciences (SEAS) to innovate an eye-popping new way of printing complex metallic architectures – as though they are seemingly suspended in midair.

Reported online May 16 in the Proceedings of the National Academy of Sciences, this laser-assisted direct ink writing method allows microscopic metallic, free-standing 3D structures to be printed in one step without auxiliary support material. The research was led by Wyss Core Faculty member Jennifer Lewis, Sc.D., who is also the Hansjörg Wyss Professor of Biologically Inspired Engineering at SEAS.

In this video, see the laser-assisted method developed by Wyss Core Faculty member Jennifer Lewis that allows metal to be 3D printed in midair. Credit: Lewis Lab / Wyss Institute at Harvard University

“I am truly excited by this latest advance from our lab, which allows one to 3D print and anneal flexible metal electrodes and complex architectures ‘on-the-fly,’ ” said Lewis.

Lewis’ team used an ink composed of silver nanoparticles, sending it through a printing nozzle and then annealing it using a precisely programmed laser that applies just the right amount of energy to drive the ink’s solidification. The printing nozzle moves along x, y, and z axes and is combined with a rotary print stage to enable freeform curvature. In this way, tiny hemispherical shapes, spiral motifs, even a butterfly made of silver wires less than the width of a hair can be printed in free space within seconds. The printed wires exhibit excellent electrical conductivity, almost matching that of bulk silver.

When compared to conventional 3D printing techniques used to fabricate conductive metallic features, laser-assisted direct ink writing is not only superior in its ability to produce curvilinear, complex wire patterns in one step, but also in the sense that localized laser heating enables electrically conductive silver wires to be printed directly on low-cost plastic substrates.

According to the study’s first author, Wyss Institute Postdoctoral Fellow Mark Skylar-Scott, Ph.D., the most challenging aspect of honing the technique was optimizing the nozzle-to-laser separation distance.

3D printed butterfly Laser-assisted direct ink writing allowed this delicate 3D butterfly to be printed without any auxiliary support structure. Credit: Lewis Lab / Wyss Institute at Harvard University

 

“If the laser gets too close to the nozzle during printing, heat is conducted upstream which clogs the nozzle with solidified ink,” said Skylar-Scott. “To address this, we devised a heat transfer model to account for temperature distribution along a given silver wire pattern, allowing us to modulate the printing speed and distance between the nozzle and laser to elegantly control the laser annealing process ‘on-the-fly.’ “

The result is that the method can produce not only sweeping curves and spirals but also sharp angular turns and directional changes written into thin air with silver inks, opening up near limitless new potential applications in electronic and biomedical devices that rely on customized metallic architectures.

“This sophisticated use of laser technology to enhance 3D printing capabilities not only inspires new kinds of products, it moves the frontier of solid free-form fabrication into an exciting new realm, demonstrating once again that previously-accepted design limitations can be overcome by innovation,” said Wyss Institute Founding Director Donald Ingber, M.D., Ph.D., who is also the Judah Folkman Professor of Vascular Biology at Harvard Medical School and the Vascular Biology Program at Boston Children’s Hospital, as well as Professor of Bioengineering at SEAS.

In addition to Lewis and Skylar-Scott, Suman Gunasekaran is a co-author on the study. Gunasekaran is undergraduate researcher studying chemistry and physics at SEAS.

The work was supported by the U.S. Department of Energy, Office of Science, Office of Basic Energy.

Liat

Recent Posts

Island Announces $400 Million Series F, Bringing Valuation to $6.4 Billion

The future of work belongs to people and AI agents. Island built the control plane…

4 hours ago

UltraSight Raises $24 Million to Scale Its AI-Guided Cardiac Workflow Platform Across U.S. Health Systems

Financing builds on FDA clearances, growing clinical evidence and commercial traction to advance the UltraSight…

7 hours ago

Valens Semiconductor to Collaborate with onsemi on a Cost-Optimized Integrated Sensor Based on the MIPI A-PHY Standard

Collaboration agreement to support the development of MIPI A-PHY solutions targeting high-volume 3MP automotive camera…

21 hours ago

Cognex to Acquire RealSense, Expanding Machine Vision Leadership into High-Growth Robotic Perception Market

Cognex Corporation (NASDAQ: CGNX), the global technology leader in industrial machine vision, today announced that…

2 days ago

Jura and SEALSQ Plan Swiss Post-Quantum Semiconductor Centre

The Republic and Canton of Jura has signed a memorandum of understanding with SEALSQ and…

2 days ago

Molex Announces VersaBeam Mini to Advance Ultra-Dense, Eye-Safe Optical Interconnects for Next-Generation AI Data Centers

Delivers 3x density improvement in an ultra-compact form factor, supporting up to 3,456 fibers in…

2 days ago