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Neil Chilton

Printed Electronics Ltd

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Neil Chilton | Printed Electronics Ltd: Why is a centuries-old printing method still the default choice for high-tech electronics?

00:05:05 - 00:06:15

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Summary of the clip:

Why is a centuries-old printing method still the default choice for high-tech electronics?

After 20 years of experience in the industry, screen printing remains the go-to process for printed electronics, especially when the ideal manufacturing method isn't immediately obvious. The primary reason for its dominance is the maturity and excellence of the available functional inks and the robustness of the associated manufacturing processes. It provides a well-understood, reliable, and scalable starting point for both development and high-volume production.

The capabilities of screen printing have been continuously pushed, largely driven by the demanding requirements of the photovoltaics industry. Groundbreaking work by institutions like Fraunhofer ISE has demonstrated that screen printing can achieve incredibly fine features, with line widths now reaching as low as 14 microns. This constant improvement in resolution keeps the technology at the forefront and competitive with other digital deposition methods for many high-resolution applications.

This ongoing advancement means that for commercial applications, achieving features from 100 microns down to 30 microns is now a standard, reliable capability, provided you use a high-quality ink and a suitable substrate. This combination of fine-line resolution, large-area coverage, high throughput, and process maturity gives screen printing a unique and powerful position in the additive electronics landscape.

In this short video, you can learn:
* Why screen printing is the default "first refusal" process in printed electronics.
* How the photovoltaics industry has driven screen printing resolution down to 14 microns.
* What feature sizes (30-100 microns) are realistically achievable in commercial production.

šŸ“‹ **Clip Abstract**
Neil Chilton of Printed Electronics Ltd. explains why screen printing, an ancient technology, remains the dominant and default process for manufacturing printed electronics. He highlights its robust ink ecosystem and how advancements in photovoltaics have pushed its resolution capabilities to an impressive 14 microns.
šŸ”— Link in comments šŸ‘‡

#ScreenPrinting, #PrintedElectronics, #FineLineResolution, #FunctionalInks, #FlexibleElectronics, #WearableElectronics

This is a highlight of the presentation:

Digital Additive Manufacturing of Electronics: Inkjet, Aerosol, EHD Printing, Microdispensing and Beyond

The Future of Electronics RESHAPED 2024

23-24 OCT 2024

Estrel Congress Centre, Berlin, Germany

Organised By:

TechBlick

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00:09:23 - 00:10:54

How does Electro Hydrodynamic Jetting defy conventional fluid dynamics to print 3D structures mid-air?

How does Electro Hydrodynamic Jetting defy conventional fluid dynamics to print 3D structures mid-air?

Traditional inkjet deposition faces limitations in droplet size and solvent evaporation control, often restricted by the physical properties of piezo or thermal printheads. Superfine inkjet (SIJ) technology bypasses these boundaries by utilizing electro hydrodynamics (EHD) to trigger droplet ejection, resulting in dramatically smaller droplet sizes and accelerated emission rates compared to conventional processes.

The true magic of EHD jetting lies in the physical behavior of sub-micron and low-picoliter droplets. Because the droplet size is so small, the surface-area-to-volume ratio increases exponentially, making the droplet mostly surface; this allows the solvent to evaporate rapidly during flight, even when using high-boiling-point solvents such as those rated up to 254 degrees Celsius.

This rapid in-flight drying mechanism alters how the material behaves upon hitting the substrate. Instead of forming a spreading liquid pool that requires post-cure stabilization, the partially dried nanomaterial stacks predictably, enabling the high-precision printing of 2.5D and fully 3D microscopic features such as vertical pillars and fine conductive lines.

In this short video, you can learn:
* The core mechanics of Electro Hydrodynamic (EHD) jetting versus piezo and thermal printheads.
* How high surface-area-to-volume ratios in micro-droplets enable rapid in-flight solvent evaporation.
* Techniques for utilizing pre-dried droplets to construct micro-scale 2.5D and 3D structures.

šŸ“‹ **Clip Abstract** This clip explains the physics behind Superfine Inkjet (SIJ) technology and its use of electro hydrodynamics to achieve sub-picoliter droplet volumes. It highlights how rapid in-flight solvent evaporation allows developers to print complex 3D microstructures directly onto non-absorbent substrates.

#ElectrohydrodynamicJetting, #SuperfineInkjet, #InFlightEvaporation, #Micro3DPrinting, #PrintedElectronics, #MicroLEDManufacturing

00:04:40 - 00:06:10

Why does low-tech screen printing remain the high-yield king of industrial printed electronics over digital inkjet?

Why does low-tech screen printing remain the high-yield king of industrial printed electronics over digital inkjet?

In the printed electronics landscape, choosing the correct deposition method requires balancing throughput, substrate compatibility, and material viscosity. While digital methods like inkjet receive significant attention, industrial production lines still heavily rely on traditional screen printing as their primary daily workhorse.

Screen printing excels in mass production because it accommodates high-viscosity pastes with highly predictable, well-characterized substrate interactions. This allows manufacturers to control wet-out behaviors and construct high-value, highly complex non-consumer components without the wetting and pooling risks associated with low-viscosity inkjets.

Even as technology pushes toward sub-micron features, modern screen printing systems can reliably deliver features down to 30 microns, with 200 microns being highly repeatable in daily production. It remains the most commercially viable starting point for high-reliability medical, sensor, and industrial electronic components.

In this short video, you can learn:
* The strategic criteria for selecting screen printing over flexographic, gravure, or digital inkjet methods.
* How utilizing high-viscosity pastes stabilizes substrate interactions to prevent trace deformation.
* The resolution limits of modern production-scale screen printing for complex, high-value components.

šŸ“‹ **Clip Abstract** This clip analyzes why screen printing remains the dominant manufacturing method in commercial printed electronics despite the rise of digital alternatives. It discusses the critical relationship between ink viscosity, substrate interaction, and long-term production reliability.

#IndustrialScreenPrinting, #HighViscosityPastes, #SubstrateWetting, #FineLinePrinting, #PrintedElectronics, #FlexibleElectronics

00:14:14 - 00:16:15

Can Electro Hydrodynamic printing scale up from single-nozzle R&D to high-throughput Quantum Dot display manufacturing?

Can Electro Hydrodynamic printing scale up from single-nozzle R&D to high-throughput Quantum Dot display manufacturing?

While electro hydrodynamic jetting is highly effective for micro-scale printing, transitioning the process from single-nozzle academic systems to industrial production has historically been a significant bottleneck. Addressing this scale-up challenge requires moving beyond single or dual nozzle arrays into massively parallel architectures designed for industrial high-volume applications.

The development of a multi-nozzle EHD head represents a major leap forward for display manufacturing, particularly in high-precision quantum dot patterning for color conversion layers. By integrating hundreds or potentially thousands of parallel nozzles, the system can rapidly deposit sub-20 micron droplets across a precise grid array in a single pass.

Operating with a stable pitch, such as 168 microns, this multi-nozzle configuration offers positioning accuracy and drop size control that conventional inkjet printing cannot replicate. This advancement bridges the gap between ultra-fine digital deposition and high-throughput semiconductor or display packaging lines.

In this short video, you can learn:
* The engineering hurdles of scaling up electro hydrodynamic jetting from R&D to mass production.
* How multi-nozzle arrays achieve high-throughput quantum dot patterning for advanced display color conversion.
* The spatial and volumetric advantages of EHD multi-nozzle systems over traditional industrial inkjet heads.

šŸ“‹ **Clip Abstract** This clip details the industrial scale-up of Superfine Inkjet (SIJ) technology using advanced multi-nozzle printing heads. It focuses on the strategic deployment of these multi-nozzle arrays for high-speed quantum dot patterning in display manufacturing.

#ElectrohydrodynamicPrinting, #MultiNozzleArrays, #QuantumDotPatterning, #SuperfineInkjet, #PrintedElectronics, #MicroLEDDisplays

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