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Lena Reinke

Panacol

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Lena Reinke | Panacol: How do you create a flexible electronic device that's also tough enough to survive in the real world?

00:04:43.215 - 00:05:29.875

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How do you create a flexible electronic device that's also tough enough to survive in the real world?

For OPV and perovskite solar cells, the lamination adhesive serves a critical protective function. These photovoltaic materials are highly sensitive to degradation from moisture and oxygen, so the adhesive must provide excellent barrier properties to prevent ingress and ensure long-term device stability and lifetime.

This high barrier performance is typically achieved through a densely cross-linked polymer network. However, a high degree of cross-linking often leads to a rigid, brittle material, which is fundamentally at odds with the primary requirement of flexible electronics: the ability to bend and conform without mechanical failure.

The core materials science challenge is therefore to engineer an adhesive that reconciles these conflicting properties. It requires developing a polymer chemistry that creates a sufficient barrier to water and oxygen while simultaneously incorporating molecular structures that impart inherent flexibility to the cured material. This balance is the key to enabling robust, long-lasting flexible solar cells.

In this short video, you can learn:
* The critical need for barrier properties in adhesives for OPV and perovskite encapsulation.
* The fundamental trade-off between high barrier performance (rigidity) and flexibility.
* The materials science challenge of designing polymers that are both flexible and protective.
πŸ“‹ **Clip Abstract** Explore the central materials science challenge in adhesives for flexible photovoltaics: achieving excellent moisture and oxygen barrier properties without sacrificing flexibility. This clip explains the inherent conflict between a rigid, protective polymer network and the need for a bendable end-product.
πŸ”— Link in comments πŸ‘‡

#FlexiblePhotovoltaics, #EncapsulationAdhesives, #MoistureOxygenBarrier, #PolymerDesign, #FlexibleElectronics, #PrintedElectronics

This is a highlight of the presentation:

The Future of Electronics RESHAPED 2024

23-24 OCT 2024

Estrel Congress Centre, Berlin, Germany

Organised By:

TechBlick

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02:45 - 03:54

Can you UV-cure protective barriers on solar cells without destroying the active materials underneath?

Can you UV-cure protective barriers on solar cells without destroying the active materials underneath?

Traditional photovoltaic materials must be shielded from degradation caused by UV radiation, creating a fundamental process paradox. When manufacturing flexible organic or perovskite solar cells, applying protective barrier foils requires an adhesive that can cure rapidly without exposing the sensitive active layers to damaging short-wavelength UV light.

The solution lies in wavelength-selective photoinitiators designed for the near-visible spectrum. By utilizing 405 nm irradiation systems instead of broad-spectrum UV, manufacturers can achieve rapid cross-linking of the adhesive while protecting the underlying semiconductor layers. This ensures high-throughput roll-to-roll processing without compromising device efficiency.

Hoenle Adhesives pairs these specialized formulations with high-intensity air-cooled LED curing units. These stackable line-curing systems deliver powerful milliwatt-scale output at targeted wavelengths, eliminating the need for complex water cooling while maintaining high processing speeds.

In this short video, you can learn:
* How to resolve the paradox of UV-curing adhesive barriers on UV-sensitive photovoltaic devices.
* The role of narrow-band 405 nm light sources in preventing photo-degradation during manufacturing.
* The integration of air-cooled LED line-curing systems into continuous industrial production.

πŸ“‹ **Clip Abstract** This clip explains how to safely use photopolymerization to seal flexible solar cells by shifting the curing wavelength to 405 nm. By avoiding short-wave UV, manufacturers can rapidly bond barrier foils without degrading sensitive active layers.

#WavelengthSelectiveCuring, #Photoinitiators, #RollToRollProcessing, #BarrierFoils, #PerovskiteSolarCells, #FlexibleElectronics

11:18 - 13:45

How do you balance high electrical conductivity with low-temperature curing for plastic substrates?

How do you balance high electrical conductivity with low-temperature curing for plastic substrates?

Electrically Conductive Adhesives (ECAs) rely on silver-filled percolative networks to achieve metallic-like performance in flexible circuits. While silver remains the industry standard despite environmental and cost concerns, achieving low volume resistivity requires high filler loading to ensure reliable particle-to-particle contact across the polymer matrix.

This formulation must also balance competing thermodynamic requirements during cure. For temperature-sensitive polymer substrates like PET used in flexible PCBs, curing must occur at low temperatures (as low as 80 degrees Celsius), which naturally extends processing times; however, raising the temperature to 150 degrees Celsius can accelerate cross-linking to under a minute.

These advanced silver-filled systems are engineered to yield a volume resistivity of 10 to the power of minus four Ohm-centimeters. This provides robust electrical pathways capable of withstanding subsequent reflow soldering temperatures and severe mechanical bending without losing conductivity.

In this short video, you can learn:
* The mechanics of silver-filled percolation conduction in high-performance polymer adhesives.
* The thermodynamic trade-offs between low-temperature curing at 80Β°C and ultra-fast cures at 150Β°C.
* The mechanical resilience of conductive paths on copper foil under extreme bending and creasing.

πŸ“‹ **Clip Abstract** This clip explores the performance metrics of silver-filled electrically conductive adhesives designed for flexible electronics. It highlights the balance between low volume resistivity, mechanical bending tolerance, and low-temperature thermal curing profiles.

#ElectricallyConductiveAdhesives, #LowTemperatureCuring, #PercolativeNetworks, #VolumeResistivity, #FlexibleElectronics, #PrintedElectronics

06:24 - 08:00

Why are the most flexible polymer barriers the worst at blocking moisture?

Why are the most flexible polymer barriers the worst at blocking moisture?

The physical chemistry of barrier adhesives presents an uncompromising trade-off between moisture protection and mechanical flexibility. Water Vapor Transmission Rate (WVTR) is highly dependent on cross-linking density; as a polymer network becomes more tightly knit, the free volume decreases, leaving smaller voids for tiny water molecules to diffuse through.

Conversely, achieving high mechanical flexibility or high elongation at break requires a looser polymeric network with lower cross-linking density. While a highly flexible adhesive prevents cracking under bending strain, the larger molecular gaps inherently allow water vapor to permeate much more easily, diminishing its performance as a barrier seal.

Understanding this inverse relationship is vital when selecting materials for flexible electronics and perovskite photovoltaics. To optimize both properties, engineers must balance chemical base formulations, cross-linking density, and thin-film geometry, as thinner adhesive layers can maintain flexibility even with stiffer, low-permeability polymers.

In this short video, you can learn:
* The inverse relationship between a polymer's cross-linking density and its Water Vapor Transmission Rate (WVTR).
* Why high mechanical flexibility in adhesives typically leads to higher moisture permeation.
* How thin-film packaging geometry can mitigate the brittleness of highly cross-linked, high-performance barrier materials.

πŸ“‹ **Clip Abstract** This clip breaks down the fundamental material science conflict between low water vapor permeability and high mechanical flexibility in barrier adhesives. It explains how cross-linking density dictates free volume, forcing a design compromise between moisture sealing and bending performance.

#WaterVaporTransmissionRate, #BarrierAdhesives, #CrossLinkingDensity, #ThinFilmPackaging, #FlexibleElectronics, #PerovskitePhotovoltaics

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