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Denis Cormier

Rochester Institute of Technology

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Denis Cormier | Rochester Institute of Technology: What modifications were necessary to enable copper jetting, given the original machine's temperature limitations?

00:06:16 - 00:06:32

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Summary of the clip:

What modifications were necessary to enable copper jetting, given the original machine's temperature limitations?

The speaker discusses the collaboration with A-Tech, the company that acquired the metal jetting technology from Xerox. The original machine was designed for materials with melting points below approximately 900Β°C, which posed a challenge for jetting copper, as copper requires significantly higher temperatures. A-Tech played a crucial role in redesigning the jetting fixture to overcome this limitation.

The redesign efforts successfully enabled the jetting of molten copper. The speaker presents a video demonstrating a stream of molten copper exiting a 250-micron diameter nozzle. This achievement represents a significant advancement, as it expands the range of materials that can be processed using this jetting technology.

The ability to jet copper opens up new possibilities for printed electronics applications, particularly those requiring high conductivity and current carrying capacity. The speaker also mentions the successful jetting of silver, which has a lower melting point than copper, further demonstrating the versatility of the modified system.

In this short video, you can learn:
* The temperature limitations of the original metal jetting machine.
* The collaborative effort with A-Tech to redesign the jetting fixture.
* The successful demonstration of molten copper jetting using the modified system.
πŸ“‹ **Clip Abstract** This segment details the collaborative effort to modify the metal jetting machine for high-temperature materials like copper, showcasing the successful jetting of molten copper through a redesigned nozzle.
πŸ”— Link in comments πŸ‘‡

#CopperJetting, #HighTemperatureJetting, #JettingFixtureRedesign, #MicroNozzle, #PrintedElectronics, #AdditiveManufacturing

This is a highlight of the presentation:

On-Demand Jetting of Molten Metal Droplets for Power Electronics Applications

The Future of Electronics RESHAPED USA | Boston 2173

UMass Boston

Organised By:

TechBlick

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00:01:09 - 00:02:40

Can We 3D-Print Solid Core Metal Traces Without Nanoparticles or Sintering?

Can We 3D-Print Solid Core Metal Traces Without Nanoparticles or Sintering?

Printed electronics typically rely on metal nanoparticle inks that require post-deposition drying, curing, and sintering to achieve electrical conductivity. This clip introduces an alternative approach that melts bulk metal wire directly within a miniature crucible and ejects molten droplets on demand using magneto hydrodynamic (MHD) jetting.

By leveraging MHD physics, the system acts as a molten metal inkjet printer. Instead of sintering fragile nanoparticles, the droplets solidify immediately upon landing on the substrate, creating high-purity, solid core metal traces with bulk-like electrical properties.

This technique, originally developed for aerospace-grade metal additive manufacturing, is now being adapted for printed electronics. By bypassing the chemical constraints of inks, it opens up a new paradigm of printing solid wire structures directly onto diverse substrates.

In this short video, you can learn:
* How magneto hydrodynamic (MHD) jetting utilizes electromagnetic fields to eject molten metal droplets on demand.
* Why bulk metal wire feedstock provides a low-cost, chemically stable alternative to traditional nanoparticle inks.
* The mechanical and structural transition of molten droplets as they cool down and solidify into solid metal lines.

πŸ“‹ **Clip Abstract** [Professor Denis Cormier introduces Magneto Hydrodynamic (MHD) jetting, a technique that melts bulk metal wire to print solid core traces without sintering or curing. Originally developed for 3D printing aerospace parts, this process offers a low-cost, high-conductivity alternative to nanoparticle-based printed electronics.]

#MHDJetting, #MoltenMetalJetting, #SinterlessPrinting, #BulkWireFeedstock, #AdditiveElectronics, #PrintedElectronics

00:09:19 - 00:10:59

Why Are Your 3D-Printed Metal Traces Exploding into Bubbles?

Why Are Your 3D-Printed Metal Traces Exploding into Bubbles?

When jetting high-temperature molten metal onto polymeric substrates like Kapton, unexpected structural defects can severely compromise trace integrity. This segment investigates the mystery of microscopic pinholes and large void bubbles discovered during cross-sectional analysis of printed aluminum lines.

The root cause of these voids is trace atmospheric moisture absorbed by the Kapton film. When the molten metal hits the damp polymer, the moisture vaporizes instantly, blowing steam bubbles into the solidifying metal trace and leaving micro-voids that initiate fatigue cracks under physical flexing.

By implementing a pre-drying step for the substrate, these pinholes are eliminated, ensuring high metallurgical density. Impressively, even with some micro-voids, the underlying metal maintains bulk-level conductivity, allowing printed traces to carry currents exceeding 10 Amps.

In this short video, you can learn:
* How atmospheric moisture absorption in Kapton films causes outgassing and void formation during high-temperature metal printing.
* The critical impact of microscopic pinholes on the mechanical fatigue life of printed traces subjected to flexing.
* Why metallurgical density and bulk conductivity are vital to running high-current applications (over 10 Amps) through printed electronic lines.

πŸ“‹ **Clip Abstract** [Professor Cormier diagnoses a common failure mode in printed electronics where moisture-induced outgassing on Kapton substrates creates void bubbles and pinholes in molten metal traces. He demonstrates how substrate pre-drying eliminates these defects, restoring mechanical fatigue resistance and enabling currents up to 10 Amps.]

#MoltenMetalJetting, #PolyimideOutgassing, #SubstratePreDrying, #HighCurrentPrintedTraces, #AdditiveElectronics, #FlexibleElectronics

00:03:40 - 00:05:03

Is the Era of Expensive Nanoparticle Silver Inks Dead?

Is the Era of Expensive Nanoparticle Silver Inks Dead?

Nanoparticle silver and copper inks are notoriously expensive and require energy-intensive photonic or thermal curing to become conductive. This segment analyzes the commercial and technical benefits of direct molten wire jetting, where a kilogram of raw copper wire costs a fraction of nanoparticle alternatives.

By printing solid-core metal wires directly from molten feedstocks, the traces achieve identical electrical conductivity to bulk metal without any drying, curing, or post-cleaning steps. However, processing molten metals introduces serious fluid dynamic challenges, particularly when scaling down features.

Currently, the process is limited to a minimum nozzle diameter of 150 microns. Transitioning to smaller, high-resolution traces requires significantly higher energy to overcome surface tension and viscous forces when pushing molten metal through micro-scale orifices.

In this short video, you can learn:
* The cost-comparison of raw metal wire feedstocks (around $30-$35 per kilogram) versus highly engineered nanoparticle formulations.
* Why direct solidification yields bulk conductivity immediately without thermal, chemical, or photonic sintering.
* The rheological and energetic limitations that currently constrain the minimum nozzle diameter of molten metal jets.

πŸ“‹ **Clip Abstract** [This clip evaluates the economics and physical limitations of molten metal jetting, highlighting its massive cost advantage over nanoparticle inks and its ability to achieve bulk metal conductivity without sintering. However, the speaker outlines the fluid dynamic constraints that currently limit nozzle diameters to a minimum of 150 microns.]

#MoltenMetalJetting, #ConductiveInks, #SinterlessPrinting, #RheologicalConstraints, #PrintedElectronics, #AdditiveElectronics

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