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Albert Schnieders

CNM Technologies

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Albert Schnieders | CNM Technologies: Why are carbon nano membranes a superior choice over graphene for industrial filtration and molecular sieving?

00:05:02 - 00:06:35

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Why are carbon nano membranes a superior choice over graphene for industrial filtration and molecular sieving?

While both CVD graphene and carbon nano membranes (CNMs) are carbon-based 2D sheet materials, pristine monolayer graphene acts as a perfect barrier. To use graphene for filtration, you must retroactively perforate it—a complex and defect-prone process—whereas CNMs possess controllable, intrinsic nanoporosity engineered directly during fabrication.

Furthermore, CNMs are highly amenable to chemical functionalization without degrading, whereas graphene typically loses its signature electronic properties during similar processes. This makes CNMs far more versatile for asymmetric chemical modifications on their top and bottom faces.

Mechanically, CNMs behave like a highly elastic, nanometer-thin film that easily conforms to support morphologies without rupturing. Unlike millimeter-scale freestanding graphene sheets which are highly fragile, CNMs can be handled reliably without structural failure.

In this short video, you can learn:
* The key material differences between pristine CVD graphene barriers and intrinsically porous carbon nano membranes.
* Why CNMs retain their integrity and support diverse chemical functionalization where graphene fails.
* The mechanical advantage of elastic, conformable CNMs over brittle freestanding graphene sheets.

📋 **Clip Abstract** Dr. Albert Schnieders compares carbon nano membranes (CNMs) to CVD graphene, highlighting why CNMs are better suited for filtration. He details the differences in intrinsic porosity, ease of chemical functionalization, and mechanical robustness during scaling.

#CarbonNanoMembranes, #MolecularSieving, #IntrinsicNanoporosity, #ChemicalFunctionalization, #MembraneTechnology, #IndustrialFiltration

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Graphene & 2D Materials 2021: End Users, Applications, Major Producers & Start Up 2021

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00:01:03 - 00:02:25

Why are conventional polymer membranes fundamentally limited in water filtration?

Why are conventional polymer membranes fundamentally limited in water filtration?

Conventional polymer membranes rely on solution-diffusion transport across a thickness of 10 to 100 micrometers, which inevitably imposes a strict trade-off between permeance and selectivity. High-selectivity filtration typically leads to extremely low permeance, requiring high operational pressures that drive up energy consumption and accelerate membrane fouling.

In contrast, deploying a molecularly thin membrane with sub-nanometer pores enables a true molecular sieving mechanism. This physical separation model can increase water permeance by up to three orders of magnitude while maintaining near-complete rejection of target solutes.

By operating at lower pressures, these ultra-thin membranes mimic biological cell membranes, dramatically reducing fouling issues and unlocking far more energy-efficient industrial separation processes.

In this short video, you can learn:
* The fundamental physics limitation of solution-diffusion in conventional 10-100 micrometer thick membranes.
* How sub-nanometer pores shift the separation mechanism from solution-diffusion to highly efficient molecular sieving.
* The operational advantages of nanometer-thin membranes, including up to 1,000x higher permeance and reduced fouling.

📋 **Clip Abstract** Dr. Albert Schnieders explains why conventional polymer membranes suffer from a trade-off between permeance and selectivity due to solution-diffusion mechanisms. He illustrates how transition to molecularly thin membranes with sub-nanometer pores enables highly efficient molecular sieving at lower operating pressures.

#MolecularSieving, #UltrathinMembranes, #SubNanometerPores, #SolutionDiffusion, #Nanofiltration, #IndustrialSeparation

00:13:05 - 00:14:11

How can we chemically functionalize graphene biosensors without destroying their legendary electronic properties?

How can we chemically functionalize graphene biosensors without destroying their legendary electronic properties?

Direct chemical functionalization of a graphene field-effect transistor (FET) typically degrades its exceptional electronic properties, rendering the sensor ineffective. To solve this, researchers are utilizing dielectric carbon nano membranes (CNMs) as a protective encapsulation layer.

This hybrid approach shields the underlying graphene to maintain its native electronic performance while exploiting the CNM's superior capacity for covalent functionalization. The outer CNM surface can be engineered to bind tough receptor molecules, including antibodies and aptamers, which are otherwise difficult to immobilize.

The resulting sensor achieves outstanding picomolar sensitivities when testing real-world clinical samples, such as nasal swabs, without requiring complex sample preparation steps.

In this short video, you can learn:
* The engineering challenge of functionalizing graphene FETs without degrading their carrier mobility.
* How a dielectric CNM encapsulation layer acts as a protective yet functionalizable shield for 2D sensors.
* The path to achieving picomolar diagnostic sensitivity in clinical nasal swab samples using hybrid 2D heterostructures.

📋 **Clip Abstract** Dr. Albert Schnieders demonstrates how encapsulating a graphene field-effect transistor with a dielectric CNM layer protects its electronic properties while enabling covalent functionalization. This hybrid device architecture allows the attachment of sensitive receptors, achieving picomolar detection limits in clinical samples.

#GrapheneFET, #CarbonNanomembranes, #CovalentFunctionalization, #2DHeterostructures, #Bioelectronics, #PointOfCareDiagnostics

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