Klaus Tauer Definitions Meaning & properties of polymer ... · „Polymer-Dispersionen“ Klaus...

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„Polymer-Dispersionen“ Klaus Tauer Definitions Meaning & properties of polymer dispersions Preparation of polymer dispersions

Transcript of Klaus Tauer Definitions Meaning & properties of polymer ... · „Polymer-Dispersionen“ Klaus...

Page 1: Klaus Tauer Definitions Meaning & properties of polymer ... · „Polymer-Dispersionen“ Klaus Tauer Definitions Meaning & properties of polymer dispersions Preparation of polymer

„Polymer-Dispersionen“

Klaus Tauer

Definitions

Meaning & properties of polymer dispersions

Preparation of polymer dispersions

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Polymer DispersionsPolymer:any of a class of natural or synthetic substances composed of very large molecules, called macromolecules, that are multiples of simpler chemical units called monomers. Polymers make up also many of the materials in living organisms, including, for example,proteins, cellulose, and nucleic acids.

Dispersion:(physical chemistry) a special form of a colloid: i.e. very fine particles (of a second phase) dispersed in a continuous medium

the most popular / famous / best-known case of a polymer dispersion is a LATEX

a latex is produced by heterophase polymerization, where the most important technique is emulsion polymerization

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*) 1 DM = 1.95583 €

*) *)

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Molecular Composition

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polymer dispersionen:

high concentration of polymer with low viscosity

thickener (BASF AG, Ludwigshafen)

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Virtual EASE 2003/1 „Thickening agent“

Sterocoll is an acidic aqueous polymer dispersion containingpolymer particles rich in caroxylic acid groups. It is used as thickening agent.

First the polymer dispersion is diluted with water to lower thepolymer content from 30 % to 5 %. It is still a white liquid having low viscosity.

By addition of a small amount of an aqueous sodium hydroxidesolution the pH is increased and the caroxylic acid groups arenegatively charged. This makes the polymer particles solublein water and a polymer solution is formed. At the same time the viscosity strongly increases due to the unfolding of thepolymer molecules. At the end a clear gel is obtained.

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important application properties:

viscosity

dilatancy (BASF AG, Ludwigshafen)

viscosity-psd

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„Dilatancy“Dilatancy is a rheological phenomenon. A dilatant liquid shows viscosity raise as the shear rate is increased. Or in other words when a rod or a stirrer is moved at higher velocity in the liquid it thickens.

With the polymer emulsion shown in the experiment the effect has been driven to an extreme. The emulsion consists of small polymer particles of ca. 300 nm. As long as the shear rate is low e.g. during pouring or slow stirring it stays thin. The particles order themselves into rows or planes that can pass each other with only little friction.

The liquid flows easily. As the rod is rapidly pulled out the applied shear rate increases, the order of the particles is completely destroyed. They interlock and can not move independently any more. The whole system is converted into a solid like state. It now can transmit forces that the beaker can be lifted.

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- stress shifts the particle layers in highly concentrated emulsions so thatthe space between the particles increases

- water cannot redistribute quickly enough- subsequently the latex solidifies (walking on the beach)

“stress makes tough”

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important application properties:

viscosity

dilatancyviscosity-psd (BASF AG, Ludwigshafen)

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„Diversity matters“

This experiment shows that the viscosity of a polymer colloidstrongly depends on particle size distribution.

The first polymer colloid contains small polymer particles witha diameter below 100 nm. The second consists of particleswith a diameter of bigger than 500 nm. Both polymer colloids are pasty, their viscosities are high.

After mixing the resulting dispersion has a bimodal particlesize distribution and the viscosity is much lower than eitherone before.

The small particles fill up the space between the big ones and the more diverse mixture is flowing more freely.

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+

- the smaller particles distribute evenly between the larger particles- subsequently water is “released” and the dispersion diluited

D ~ 500 nm

D ~ 100 nm

“thick + thick = thinner”

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benefits of latex particles for medicine & biotechnology

take advantage of the large interfacial area and the possibility to tailor both surface and volume properties

TargetCell separation by means of

magnetic latex particles with special surface functionalities

Biomedical Applications - Principle

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J. Ugelstad et al. Polymer Intern. 30 (1993) 157-168

R.M. Fitch “Polymer Colloids” , Academic Press, 1997, 164-172

- treatment of cancer of the nerve cells (neuroblastoma)

- bone marrow is taken from patient and slurried with magnetic, monosized4.5µm particles which are immunospecific for the neuroblastoma cell surface

Biomedical Applications - Examples

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Stabilization of Colloidal Particles - 1

electrostatic

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D.F. Evans, H. Wennerström "The Colloidal Domain", VCH 1994, p. 336

most important case:

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Polymer Dispersions

historical development

a family tree

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Heterophase Polymerization - A Simple Definition- a generic term for methods to produce different kinds of polymer particles:

350 nm

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monodisperse particles

color without dyes (BASF AG, Ludwigshafen)

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„Color by transparent latex particles“

Monodisperse polymer particles can arrange in a quasi crystalline ordered structure and produce an angle dependent color effect due to Bragg diffraction at the 'crystal' planes. When the lattice parameter is comparable with the wavelength of visible light and a refractive index difference between the particle and the matrix exists, an intensive iridescent color will be observed. The polymer films used here were made from an emulsion made by two step emulsion polymerisation. A crosslinked hard core particle is formed in the first step, followed by the film forming outer phase in the second step. Both the mechanical properties and the color effects of the films could be varied by changing the particle size and the thickness of the outer phase.

The color changes from red through yellow to green the more acute the viewing angle is. This is because the apparent distance between two particles decreases the more oblique the angle of observation. Also the amount of shell material and thus the distance between the nanoparticles is changed, and results in different colors. As the size of the core-shell particles decreases, the color, when observed from a vertical perspective, changes from red through yellow to green and even blue. Depending on the viewing angle, the same area appears for example either as glowing red or bright green. The particle size has to be accurately chosen, since even minor changes of about 20 nanometers have a clear effect on the color.

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reflexion (and color) depends on the wave length of incoming light and theobservation angle

Bragg’s equation for latex crystals

white light(sunlight)

“colors without dyes”

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Curriculum Vitae of a Latex Particle

nucleation

swelling

growthsome unusual examples(regarding morphology)

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Microsuspension Polymerization 2

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Polymerization of or in monomer emulsions

Question: whether or not it is possible to convert the characteristic features of monomer droplets into that of polymer particles???

Answer: yes, by seed and feed techniques, even in large scale

Suspension, miniemulsion and emulsion polymerization

to preserve the droplet properties during polymerization(in the sense to make a 1:1 copy)

?? ??

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Emulsion Polymerization 1

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Ideal Behavior of an EP

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Particle Morphologies – phase separation due to incompatibility 6

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Particle Morphologies – phase separation due to incompatibility 4

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Particle Morphologies – phase separation due to incompatibility 5

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Dispersion Polymerization 1

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Dispersion Polymerization 2

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Dispersion Polymerization 3

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µ-EP general

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µ-Emulsion Droplets

droplet thermodynamics (classical textbooks)

23 43

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(Helfrich, 1973)

r

F(r)

-F(0

)/kBT

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µ-EP scenario

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µ-EP common case

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Reactors 1

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Labscale Reactors

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lab-scale

D. Distler “Wäßrige Polymerdispersionen”Wiley-VCH, 1999

Reactors 3

Semi-Batch Reactors

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Summary

polymer dispersions are a fascinating area of colloid science

aqueous polymer dispersions are the future form of all polymers

eur82-h, polystyreneLmph2o2b, polystyrene

D. Distler “Wäßrige Polymerdispersionen”Wiley-VCH, 1999

poly(vinyl acetate)

MPI, Golm

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Literature

“Polymeric Dispersions: Principles and Applications”J. M. Asua, ed.; NATO ASI Series E: Vol. 335Kluwer Academic Publ. 1997

“Emulsion Polymerization and Emulsion Polymers”P. A. Lovell, M. S. El-Aasser eds.; Wiley 1997

“Polymer Colloids”R. M. Fitch; Academic Press 1997

Emulsion Polymerization: A Mechanistic Approach”R. G. Gilbert; Academic Press 1995

„Heterophase Polymerization“in „Encyclopedia of Polymer Science and Technology“, 3rd editionCopyright © 2003 by John Wiley & Sons, Inc. All rights reserved.K. Tauer