SlideShare una empresa de Scribd logo
1 de 32
Chapter 26
Copyright © 2010 Pearson Education, Inc.
Organic Chemistry, 7th
Edition
L. G. Wade, Jr.
Synthetic Polymers
Chapter 26 2
Introduction
 A polymer is a large molecule composed
of many smaller repeating units.
 First synthetic polymers:
 Poly(vinyl chloride) in 1838.
 Polystyrene in 1839.
 Now, 250 billion pounds are produced
annually, worldwide.
Chapter 26 3
Classes of Polymers
 Addition, or chain-growth, polymers.
 Condensation, or step-growth, polymers.
Chapter 26 4
Chapter 26 5
Addition Polymers
 Three kinds of intermediates:
 Free radicals
 Carbocations
 Carbanions
 Examples of addition polymers:
 Polypropylene plastics
 Polystyrene foam insulation
 Poly(acrylonitrile), Orlon®
fiber
 Poly(methyl α-methacrylate), Plexiglas®
Chapter 26 6
Free-Radical Polymerization
Initiation step:
Propagation step:
Chapter 26 7
Chain Branching
 Chain branching occurs when the growing end of a chain
abstracts a hydrogen atom from the middle of a chain. A new
branch grows off the chain at that point.
 Chain branching makes the polymer soft.
Chapter 26 8
Cationic Polymerization
 Strongly acidic catalysts are used to initiate cationic polymerization.
 BF3 is a particularly effective catalyst, requiring a trace of water or
methanol as a co-catalyst. Intermediate must be a stable
carbocation.
Chapter 26 9
Good Monomers for Cationic
Polymerization
Chapter 26 10
Anionic Polymerization
 Alkene must have an electron-withdrawing group like C═O,
C≡N, or NO2.
 The reaction is initiated by a Grignard or organolithium reagent.
Chapter 26 11
Chain-Growth Step in Anionic
Polymerization
 Effective anionic polymerization requires a monomer
that gives a stabilized carbanion when it reacts with
the anionic end of the growing chain.
Chapter 26 12
Stereochemistry of Polymers
Chapter 26 13
Properties of Polymers
 Isotactic and syndiotactic polymers are
stronger and stiffer due to their regular
packing arrangement.
 Anionic intermediate usually gives
isotactic or syndiotactic polymers.
 Free-radical polymerization is nearly
random, giving branched atactic
polymers.
Chapter 26 14
Ziegler–Natta Catalyst
 Polymerization is completely stereospecific.
 Either isotactic or syndiotactic, depending
on catalyst.
 Polymer is linear, not branched.
 Example of catalyst: Solution of TiCl4 mixed
with solution of (CH3CH2)3Al and heated for
an hour.
Chapter 26 15
Natural Rubber
 Soft and sticky, obtained from rubber tree.
 Long chains can be stretched, but then
return to original structure.
 Chains slide past each other and can be
pulled apart easily.
Structure is cis-1,4-polyisoprene
Latex
Chapter 26 16
 White latex drips out of
cuts in the bark of a
rubber tree in a
Malaysian rubber
plantation.
Chapter 26 17
Vulcanization
 Process was discovered accidentally by
Goodyear when he dropped rubber and
sulfur on a hot stove.
 Sulfur produces cross-linking that
strengthens the rubber.
 Hardness can be controlled by varying
the amount of sulfur.
Chapter 26 18
Vulcanization: Cross-Linking of
Rubber
Chapter 26 19
Synthetic Rubber
 With a Ziegler–Natta catalyst, a polymer of 1,3-
butadiene can be produced, in which all the additions
are 1,4 and the remaining double bonds are all cis.
 It may also be vulcanized.
Chapter 26 20
Copolymers of Two or More
Monomers
 Two or more different monomers.
 Saran®
: Alternating molecules of vinyl choride and
1,1-dichloroethylene.
 ABS plastic: Acrylonitrile, butadiene, and styrene.
Chapter 26 21
Condensation Polymers
 Polymer formed by ester or amide linkages
between difunctional molecules.
 Step growth: Monomers do not have to add
one at a time. Small chains may condense into
larger chains.
 Common types:
 Polyamides
 Polyesters
 Polycarbonates
 Polyurethanes
Chapter 26 22
Synthesis of Nylon 6,6
 Usually made from reaction of diacids with diamines,
but may also be made from a single monomer with
an amino group at one end and acid group at the
other.
Chapter 26 23
Nylon Stocking
 Scanning electron
micrograph of the
material in a nylon
stocking.
 Sheer stockings require
long, continuous fibers
of small diameter and
enormous strength.
Chapter 26 24
Nylon 6
 Nylon can also be made from a single monomer having an
amino group at one end and an acid at the other.
 The reaction is similar to the polymerization of α-amino acids to
give proteins.
Chapter 26 25
Polyesters
 Dacron®
and Mylar®
: Polymers of terephthalic acid
and ethylene glycol.
 Made by the transesterification of the methyl ester.
Chapter 26 26
Polycarbonates
 Esters of carbonic acid.
 Carbonic acid is in equilibrium with CO2 and water, but esters
are stable.
 React phosgene with bisphenol A to obtain Lexan®
for
bulletproof windows.
Chapter 26 27
Urethanes
 Urethanes are most commonly made by treating an
isocyanate with an alcohol or a phenol.
 The reaction is highly exothermic, and it gives a
quantitative yield of a carbamate ester.
Chapter 26 28
Polyurethanes
 Esters of carbamic acid, R—NH—COOH.
 Urethanes are prepared by reacting an alcohol with
isocyanate.
 Polyurethanes are prepared by reacting a diol with a
diisocyanate.
Chapter 26 29
Polymer Crystallinity
 Microscopic crystalline regions.
 A linear polymer will have a high degree of
crystallinity and will be stronger, more dense, and
more rigid.
Chapter 26 30
Thermal Properties
 Glasses at low temperature, fracture on
impact.
 At the glass transition temperature, Tg,
crystalline polymers become flexible.
 At the crystalline melting temperature,
Tm, crystalline polymers become a
viscous liquid and can be extruded to
form fibers.
Chapter 26 31
Crystalline vs. Amorphous
Phase transitions for long-chain polymers.
Chapter 26 32
Plasticizers
 Polymers can be too brittle for use even if their
other properties are desirable.
 Addition of a plasticizer can make the polymer
more flexible.
 A plasticizer lowers the attraction between
chains and makes the polymer more flexible.
 The plasticizer evaporates slowly, so “vinyl”
becomes hard and inflexible over time.

Más contenido relacionado

La actualidad más candente

La actualidad más candente (20)

Polymer degradation
Polymer degradationPolymer degradation
Polymer degradation
 
Ziegler natta catalyst
Ziegler natta catalyst Ziegler natta catalyst
Ziegler natta catalyst
 
Polymers
Polymers Polymers
Polymers
 
Polymer
PolymerPolymer
Polymer
 
Nitration
NitrationNitration
Nitration
 
PHASE TRANSFER CATALYSIS [PTC]
PHASE TRANSFER CATALYSIS [PTC] PHASE TRANSFER CATALYSIS [PTC]
PHASE TRANSFER CATALYSIS [PTC]
 
Polymer supported Synthesis
Polymer   supported Synthesis Polymer   supported Synthesis
Polymer supported Synthesis
 
synthesis of organocopper reagents
synthesis of organocopper reagentssynthesis of organocopper reagents
synthesis of organocopper reagents
 
polyamides
polyamidespolyamides
polyamides
 
4. Wilkinson's Catalyst
4. Wilkinson's Catalyst4. Wilkinson's Catalyst
4. Wilkinson's Catalyst
 
Polymers
PolymersPolymers
Polymers
 
C-C Cross Coupling Reactions in Organic chemistry by Anthony crasto
C-C Cross Coupling Reactions in Organic chemistry by Anthony crastoC-C Cross Coupling Reactions in Organic chemistry by Anthony crasto
C-C Cross Coupling Reactions in Organic chemistry by Anthony crasto
 
Lecture: Polymerization Reactions and Techniques
Lecture: Polymerization Reactions and TechniquesLecture: Polymerization Reactions and Techniques
Lecture: Polymerization Reactions and Techniques
 
Polymerization
PolymerizationPolymerization
Polymerization
 
Retro synthesis
Retro synthesisRetro synthesis
Retro synthesis
 
18 - Ketones and Aldehydes - Wade 7th
18 - Ketones and Aldehydes - Wade 7th18 - Ketones and Aldehydes - Wade 7th
18 - Ketones and Aldehydes - Wade 7th
 
15 - Conjugated Systems, Orbital Symmetry, and Ultraviolet Spectroscopy - Wad...
15 - Conjugated Systems, Orbital Symmetry, and Ultraviolet Spectroscopy - Wad...15 - Conjugated Systems, Orbital Symmetry, and Ultraviolet Spectroscopy - Wad...
15 - Conjugated Systems, Orbital Symmetry, and Ultraviolet Spectroscopy - Wad...
 
Polymer and polymer synthesis
Polymer and polymer synthesisPolymer and polymer synthesis
Polymer and polymer synthesis
 
Beckmann rearrangement reaction
Beckmann rearrangement reactionBeckmann rearrangement reaction
Beckmann rearrangement reaction
 
Polymers For Organic Chemistry
Polymers For Organic ChemistryPolymers For Organic Chemistry
Polymers For Organic Chemistry
 

Similar a 26 - Synthetic Polymers - Wade 7th

C18 polymers
C18 polymersC18 polymers
C18 polymers
Chemrcwss
 
STUDIES ON POLYMERIZATION AND RING FORMATION.pptx
STUDIES ON POLYMERIZATION AND RING FORMATION.pptxSTUDIES ON POLYMERIZATION AND RING FORMATION.pptx
STUDIES ON POLYMERIZATION AND RING FORMATION.pptx
Arjan Roy
 

Similar a 26 - Synthetic Polymers - Wade 7th (20)

Acrylic fiber
Acrylic fiberAcrylic fiber
Acrylic fiber
 
Addition polymerization, its examples and uses
Addition polymerization, its examples and usesAddition polymerization, its examples and uses
Addition polymerization, its examples and uses
 
C18 polymers
C18 polymersC18 polymers
C18 polymers
 
Polymers
PolymersPolymers
Polymers
 
NYLON
NYLONNYLON
NYLON
 
App phys chem 5 polymer chemistry
App phys chem 5 polymer chemistryApp phys chem 5 polymer chemistry
App phys chem 5 polymer chemistry
 
C18 polymers
C18 polymersC18 polymers
C18 polymers
 
Manufacturing of important polymers and polymer processing
Manufacturing of important polymers and polymer processing Manufacturing of important polymers and polymer processing
Manufacturing of important polymers and polymer processing
 
Polymers
PolymersPolymers
Polymers
 
21.2 - Part 2 Reactions of Carboxylic Acid Derivatives - Wade 7th
21.2 - Part 2 Reactions of Carboxylic Acid Derivatives - Wade 7th21.2 - Part 2 Reactions of Carboxylic Acid Derivatives - Wade 7th
21.2 - Part 2 Reactions of Carboxylic Acid Derivatives - Wade 7th
 
21 2-part2reactionsofcarboxylicacidderivatives-wade7th-140409033918-phpapp02
21 2-part2reactionsofcarboxylicacidderivatives-wade7th-140409033918-phpapp0221 2-part2reactionsofcarboxylicacidderivatives-wade7th-140409033918-phpapp02
21 2-part2reactionsofcarboxylicacidderivatives-wade7th-140409033918-phpapp02
 
C18 polymers
C18 polymersC18 polymers
C18 polymers
 
Polymers class 12 CBSE
Polymers class 12 CBSE Polymers class 12 CBSE
Polymers class 12 CBSE
 
Polyamide
PolyamidePolyamide
Polyamide
 
Poly
PolyPoly
Poly
 
STUDIES ON POLYMERIZATION AND RING FORMATION.pptx
STUDIES ON POLYMERIZATION AND RING FORMATION.pptxSTUDIES ON POLYMERIZATION AND RING FORMATION.pptx
STUDIES ON POLYMERIZATION AND RING FORMATION.pptx
 
Nylon 6 Fiber
Nylon 6 FiberNylon 6 Fiber
Nylon 6 Fiber
 
Polymerisation reactions and synthesis of important polymers
Polymerisation reactions and synthesis of important polymersPolymerisation reactions and synthesis of important polymers
Polymerisation reactions and synthesis of important polymers
 
Synthetic Resins used in Prosthodontics
Synthetic Resins used in ProsthodonticsSynthetic Resins used in Prosthodontics
Synthetic Resins used in Prosthodontics
 
Catalyst preparation methods
Catalyst preparation methodsCatalyst preparation methods
Catalyst preparation methods
 

Más de Nattawut Huayyai

Más de Nattawut Huayyai (20)

22 - Condensations and Alpha Substitutions of Carbonyl Compounds - Wade 7th
22 - Condensations and Alpha Substitutions of Carbonyl Compounds - Wade 7th22 - Condensations and Alpha Substitutions of Carbonyl Compounds - Wade 7th
22 - Condensations and Alpha Substitutions of Carbonyl Compounds - Wade 7th
 
24 - Amino Acids, Peptides, and Proteins - Wade 7th
24 - Amino Acids, Peptides, and Proteins - Wade 7th24 - Amino Acids, Peptides, and Proteins - Wade 7th
24 - Amino Acids, Peptides, and Proteins - Wade 7th
 
23 - Carbohydrates and Nucleic Acids - Wade 7th
23 - Carbohydrates and Nucleic Acids - Wade 7th23 - Carbohydrates and Nucleic Acids - Wade 7th
23 - Carbohydrates and Nucleic Acids - Wade 7th
 
25 - Lipids - Wade 7th
25 - Lipids - Wade 7th25 - Lipids - Wade 7th
25 - Lipids - Wade 7th
 
20 - Carboxylic Acids - Wade 7th
20 - Carboxylic Acids - Wade 7th20 - Carboxylic Acids - Wade 7th
20 - Carboxylic Acids - Wade 7th
 
21.1 - Part 1 Structure and Properties of Carboxylic Acid Derivatives - Wade 7th
21.1 - Part 1 Structure and Properties of Carboxylic Acid Derivatives - Wade 7th21.1 - Part 1 Structure and Properties of Carboxylic Acid Derivatives - Wade 7th
21.1 - Part 1 Structure and Properties of Carboxylic Acid Derivatives - Wade 7th
 
19 - Amines - Wade 7th
19 - Amines - Wade 7th19 - Amines - Wade 7th
19 - Amines - Wade 7th
 
16 - Aromatic Compounds - Wade 7th
16 - Aromatic Compounds - Wade 7th16 - Aromatic Compounds - Wade 7th
16 - Aromatic Compounds - Wade 7th
 
14 - Ethers, Epoxides, and Sulfides - Wade 7th
14 - Ethers, Epoxides, and Sulfides - Wade 7th14 - Ethers, Epoxides, and Sulfides - Wade 7th
14 - Ethers, Epoxides, and Sulfides - Wade 7th
 
12 - Infrared Spectroscopy and Mass Spectrometry - Wade 7th
12 - Infrared Spectroscopy and Mass Spectrometry - Wade 7th12 - Infrared Spectroscopy and Mass Spectrometry - Wade 7th
12 - Infrared Spectroscopy and Mass Spectrometry - Wade 7th
 
11 - Reactions of Alcohols - Wade 7th
11 - Reactions of Alcohols - Wade 7th11 - Reactions of Alcohols - Wade 7th
11 - Reactions of Alcohols - Wade 7th
 
10 - Structure and Synthesis of Alcohols - Wade 7th
10 - Structure and Synthesis of Alcohols - Wade 7th10 - Structure and Synthesis of Alcohols - Wade 7th
10 - Structure and Synthesis of Alcohols - Wade 7th
 
13 - Nuclear Magnetic Resonance Spectroscopy - Wade 7th
13 - Nuclear Magnetic Resonance Spectroscopy - Wade 7th13 - Nuclear Magnetic Resonance Spectroscopy - Wade 7th
13 - Nuclear Magnetic Resonance Spectroscopy - Wade 7th
 
17 - Reactions of Aromatic Compounds - Wade 7th
17 - Reactions of Aromatic Compounds - Wade 7th17 - Reactions of Aromatic Compounds - Wade 7th
17 - Reactions of Aromatic Compounds - Wade 7th
 
09 - Alkynes - Wade 7th
09 - Alkynes - Wade 7th09 - Alkynes - Wade 7th
09 - Alkynes - Wade 7th
 
08 - Reactions of Alkenes - Wade 7th
08 - Reactions of Alkenes - Wade 7th08 - Reactions of Alkenes - Wade 7th
08 - Reactions of Alkenes - Wade 7th
 
06 - Alkyl Halides ,Nucleophilic Substitution and Elimination - Wade 7th
06 - Alkyl Halides ,Nucleophilic Substitution and Elimination - Wade 7th06 - Alkyl Halides ,Nucleophilic Substitution and Elimination - Wade 7th
06 - Alkyl Halides ,Nucleophilic Substitution and Elimination - Wade 7th
 
02 - Structure and Properties of Organic Molecules - Wade 7th
02 - Structure and Properties of Organic Molecules - Wade 7th02 - Structure and Properties of Organic Molecules - Wade 7th
02 - Structure and Properties of Organic Molecules - Wade 7th
 
05 - Stereochemistry - Wade 7th
05 - Stereochemistry - Wade 7th05 - Stereochemistry - Wade 7th
05 - Stereochemistry - Wade 7th
 
04 - The Study of Chemical Reactions - Wade 7th
04 - The Study of Chemical Reactions - Wade 7th04 - The Study of Chemical Reactions - Wade 7th
04 - The Study of Chemical Reactions - Wade 7th
 

Último

The Mariana Trench remarkable geological features on Earth.pptx
The Mariana Trench remarkable geological features on Earth.pptxThe Mariana Trench remarkable geological features on Earth.pptx
The Mariana Trench remarkable geological features on Earth.pptx
seri bangash
 
Reboulia: features, anatomy, morphology etc.
Reboulia: features, anatomy, morphology etc.Reboulia: features, anatomy, morphology etc.
Reboulia: features, anatomy, morphology etc.
Silpa
 
CYTOGENETIC MAP................ ppt.pptx
CYTOGENETIC MAP................ ppt.pptxCYTOGENETIC MAP................ ppt.pptx
CYTOGENETIC MAP................ ppt.pptx
Silpa
 
(May 9, 2024) Enhanced Ultrafast Vector Flow Imaging (VFI) Using Multi-Angle ...
(May 9, 2024) Enhanced Ultrafast Vector Flow Imaging (VFI) Using Multi-Angle ...(May 9, 2024) Enhanced Ultrafast Vector Flow Imaging (VFI) Using Multi-Angle ...
(May 9, 2024) Enhanced Ultrafast Vector Flow Imaging (VFI) Using Multi-Angle ...
Scintica Instrumentation
 
biology HL practice questions IB BIOLOGY
biology HL practice questions IB BIOLOGYbiology HL practice questions IB BIOLOGY
biology HL practice questions IB BIOLOGY
1301aanya
 
Digital Dentistry.Digital Dentistryvv.pptx
Digital Dentistry.Digital Dentistryvv.pptxDigital Dentistry.Digital Dentistryvv.pptx
Digital Dentistry.Digital Dentistryvv.pptx
MohamedFarag457087
 
THE ROLE OF BIOTECHNOLOGY IN THE ECONOMIC UPLIFT.pptx
THE ROLE OF BIOTECHNOLOGY IN THE ECONOMIC UPLIFT.pptxTHE ROLE OF BIOTECHNOLOGY IN THE ECONOMIC UPLIFT.pptx
THE ROLE OF BIOTECHNOLOGY IN THE ECONOMIC UPLIFT.pptx
ANSARKHAN96
 
Module for Grade 9 for Asynchronous/Distance learning
Module for Grade 9 for Asynchronous/Distance learningModule for Grade 9 for Asynchronous/Distance learning
Module for Grade 9 for Asynchronous/Distance learning
levieagacer
 

Último (20)

Factory Acceptance Test( FAT).pptx .
Factory Acceptance Test( FAT).pptx       .Factory Acceptance Test( FAT).pptx       .
Factory Acceptance Test( FAT).pptx .
 
Zoology 5th semester notes( Sumit_yadav).pdf
Zoology 5th semester notes( Sumit_yadav).pdfZoology 5th semester notes( Sumit_yadav).pdf
Zoology 5th semester notes( Sumit_yadav).pdf
 
The Mariana Trench remarkable geological features on Earth.pptx
The Mariana Trench remarkable geological features on Earth.pptxThe Mariana Trench remarkable geological features on Earth.pptx
The Mariana Trench remarkable geological features on Earth.pptx
 
Reboulia: features, anatomy, morphology etc.
Reboulia: features, anatomy, morphology etc.Reboulia: features, anatomy, morphology etc.
Reboulia: features, anatomy, morphology etc.
 
FAIRSpectra - Enabling the FAIRification of Analytical Science
FAIRSpectra - Enabling the FAIRification of Analytical ScienceFAIRSpectra - Enabling the FAIRification of Analytical Science
FAIRSpectra - Enabling the FAIRification of Analytical Science
 
Chemistry 5th semester paper 1st Notes.pdf
Chemistry 5th semester paper 1st Notes.pdfChemistry 5th semester paper 1st Notes.pdf
Chemistry 5th semester paper 1st Notes.pdf
 
CYTOGENETIC MAP................ ppt.pptx
CYTOGENETIC MAP................ ppt.pptxCYTOGENETIC MAP................ ppt.pptx
CYTOGENETIC MAP................ ppt.pptx
 
Site Acceptance Test .
Site Acceptance Test                    .Site Acceptance Test                    .
Site Acceptance Test .
 
Human & Veterinary Respiratory Physilogy_DR.E.Muralinath_Associate Professor....
Human & Veterinary Respiratory Physilogy_DR.E.Muralinath_Associate Professor....Human & Veterinary Respiratory Physilogy_DR.E.Muralinath_Associate Professor....
Human & Veterinary Respiratory Physilogy_DR.E.Muralinath_Associate Professor....
 
300003-World Science Day For Peace And Development.pptx
300003-World Science Day For Peace And Development.pptx300003-World Science Day For Peace And Development.pptx
300003-World Science Day For Peace And Development.pptx
 
Atp synthase , Atp synthase complex 1 to 4.
Atp synthase , Atp synthase complex 1 to 4.Atp synthase , Atp synthase complex 1 to 4.
Atp synthase , Atp synthase complex 1 to 4.
 
Proteomics: types, protein profiling steps etc.
Proteomics: types, protein profiling steps etc.Proteomics: types, protein profiling steps etc.
Proteomics: types, protein profiling steps etc.
 
(May 9, 2024) Enhanced Ultrafast Vector Flow Imaging (VFI) Using Multi-Angle ...
(May 9, 2024) Enhanced Ultrafast Vector Flow Imaging (VFI) Using Multi-Angle ...(May 9, 2024) Enhanced Ultrafast Vector Flow Imaging (VFI) Using Multi-Angle ...
(May 9, 2024) Enhanced Ultrafast Vector Flow Imaging (VFI) Using Multi-Angle ...
 
biology HL practice questions IB BIOLOGY
biology HL practice questions IB BIOLOGYbiology HL practice questions IB BIOLOGY
biology HL practice questions IB BIOLOGY
 
Digital Dentistry.Digital Dentistryvv.pptx
Digital Dentistry.Digital Dentistryvv.pptxDigital Dentistry.Digital Dentistryvv.pptx
Digital Dentistry.Digital Dentistryvv.pptx
 
THE ROLE OF BIOTECHNOLOGY IN THE ECONOMIC UPLIFT.pptx
THE ROLE OF BIOTECHNOLOGY IN THE ECONOMIC UPLIFT.pptxTHE ROLE OF BIOTECHNOLOGY IN THE ECONOMIC UPLIFT.pptx
THE ROLE OF BIOTECHNOLOGY IN THE ECONOMIC UPLIFT.pptx
 
PATNA CALL GIRLS 8617370543 LOW PRICE ESCORT SERVICE
PATNA CALL GIRLS 8617370543 LOW PRICE ESCORT SERVICEPATNA CALL GIRLS 8617370543 LOW PRICE ESCORT SERVICE
PATNA CALL GIRLS 8617370543 LOW PRICE ESCORT SERVICE
 
Use of mutants in understanding seedling development.pptx
Use of mutants in understanding seedling development.pptxUse of mutants in understanding seedling development.pptx
Use of mutants in understanding seedling development.pptx
 
Genetics and epigenetics of ADHD and comorbid conditions
Genetics and epigenetics of ADHD and comorbid conditionsGenetics and epigenetics of ADHD and comorbid conditions
Genetics and epigenetics of ADHD and comorbid conditions
 
Module for Grade 9 for Asynchronous/Distance learning
Module for Grade 9 for Asynchronous/Distance learningModule for Grade 9 for Asynchronous/Distance learning
Module for Grade 9 for Asynchronous/Distance learning
 

26 - Synthetic Polymers - Wade 7th

  • 1. Chapter 26 Copyright © 2010 Pearson Education, Inc. Organic Chemistry, 7th Edition L. G. Wade, Jr. Synthetic Polymers
  • 2. Chapter 26 2 Introduction  A polymer is a large molecule composed of many smaller repeating units.  First synthetic polymers:  Poly(vinyl chloride) in 1838.  Polystyrene in 1839.  Now, 250 billion pounds are produced annually, worldwide.
  • 3. Chapter 26 3 Classes of Polymers  Addition, or chain-growth, polymers.  Condensation, or step-growth, polymers.
  • 5. Chapter 26 5 Addition Polymers  Three kinds of intermediates:  Free radicals  Carbocations  Carbanions  Examples of addition polymers:  Polypropylene plastics  Polystyrene foam insulation  Poly(acrylonitrile), Orlon® fiber  Poly(methyl α-methacrylate), Plexiglas®
  • 6. Chapter 26 6 Free-Radical Polymerization Initiation step: Propagation step:
  • 7. Chapter 26 7 Chain Branching  Chain branching occurs when the growing end of a chain abstracts a hydrogen atom from the middle of a chain. A new branch grows off the chain at that point.  Chain branching makes the polymer soft.
  • 8. Chapter 26 8 Cationic Polymerization  Strongly acidic catalysts are used to initiate cationic polymerization.  BF3 is a particularly effective catalyst, requiring a trace of water or methanol as a co-catalyst. Intermediate must be a stable carbocation.
  • 9. Chapter 26 9 Good Monomers for Cationic Polymerization
  • 10. Chapter 26 10 Anionic Polymerization  Alkene must have an electron-withdrawing group like C═O, C≡N, or NO2.  The reaction is initiated by a Grignard or organolithium reagent.
  • 11. Chapter 26 11 Chain-Growth Step in Anionic Polymerization  Effective anionic polymerization requires a monomer that gives a stabilized carbanion when it reacts with the anionic end of the growing chain.
  • 13. Chapter 26 13 Properties of Polymers  Isotactic and syndiotactic polymers are stronger and stiffer due to their regular packing arrangement.  Anionic intermediate usually gives isotactic or syndiotactic polymers.  Free-radical polymerization is nearly random, giving branched atactic polymers.
  • 14. Chapter 26 14 Ziegler–Natta Catalyst  Polymerization is completely stereospecific.  Either isotactic or syndiotactic, depending on catalyst.  Polymer is linear, not branched.  Example of catalyst: Solution of TiCl4 mixed with solution of (CH3CH2)3Al and heated for an hour.
  • 15. Chapter 26 15 Natural Rubber  Soft and sticky, obtained from rubber tree.  Long chains can be stretched, but then return to original structure.  Chains slide past each other and can be pulled apart easily. Structure is cis-1,4-polyisoprene
  • 16. Latex Chapter 26 16  White latex drips out of cuts in the bark of a rubber tree in a Malaysian rubber plantation.
  • 17. Chapter 26 17 Vulcanization  Process was discovered accidentally by Goodyear when he dropped rubber and sulfur on a hot stove.  Sulfur produces cross-linking that strengthens the rubber.  Hardness can be controlled by varying the amount of sulfur.
  • 18. Chapter 26 18 Vulcanization: Cross-Linking of Rubber
  • 19. Chapter 26 19 Synthetic Rubber  With a Ziegler–Natta catalyst, a polymer of 1,3- butadiene can be produced, in which all the additions are 1,4 and the remaining double bonds are all cis.  It may also be vulcanized.
  • 20. Chapter 26 20 Copolymers of Two or More Monomers  Two or more different monomers.  Saran® : Alternating molecules of vinyl choride and 1,1-dichloroethylene.  ABS plastic: Acrylonitrile, butadiene, and styrene.
  • 21. Chapter 26 21 Condensation Polymers  Polymer formed by ester or amide linkages between difunctional molecules.  Step growth: Monomers do not have to add one at a time. Small chains may condense into larger chains.  Common types:  Polyamides  Polyesters  Polycarbonates  Polyurethanes
  • 22. Chapter 26 22 Synthesis of Nylon 6,6  Usually made from reaction of diacids with diamines, but may also be made from a single monomer with an amino group at one end and acid group at the other.
  • 23. Chapter 26 23 Nylon Stocking  Scanning electron micrograph of the material in a nylon stocking.  Sheer stockings require long, continuous fibers of small diameter and enormous strength.
  • 24. Chapter 26 24 Nylon 6  Nylon can also be made from a single monomer having an amino group at one end and an acid at the other.  The reaction is similar to the polymerization of α-amino acids to give proteins.
  • 25. Chapter 26 25 Polyesters  Dacron® and Mylar® : Polymers of terephthalic acid and ethylene glycol.  Made by the transesterification of the methyl ester.
  • 26. Chapter 26 26 Polycarbonates  Esters of carbonic acid.  Carbonic acid is in equilibrium with CO2 and water, but esters are stable.  React phosgene with bisphenol A to obtain Lexan® for bulletproof windows.
  • 27. Chapter 26 27 Urethanes  Urethanes are most commonly made by treating an isocyanate with an alcohol or a phenol.  The reaction is highly exothermic, and it gives a quantitative yield of a carbamate ester.
  • 28. Chapter 26 28 Polyurethanes  Esters of carbamic acid, R—NH—COOH.  Urethanes are prepared by reacting an alcohol with isocyanate.  Polyurethanes are prepared by reacting a diol with a diisocyanate.
  • 29. Chapter 26 29 Polymer Crystallinity  Microscopic crystalline regions.  A linear polymer will have a high degree of crystallinity and will be stronger, more dense, and more rigid.
  • 30. Chapter 26 30 Thermal Properties  Glasses at low temperature, fracture on impact.  At the glass transition temperature, Tg, crystalline polymers become flexible.  At the crystalline melting temperature, Tm, crystalline polymers become a viscous liquid and can be extruded to form fibers.
  • 31. Chapter 26 31 Crystalline vs. Amorphous Phase transitions for long-chain polymers.
  • 32. Chapter 26 32 Plasticizers  Polymers can be too brittle for use even if their other properties are desirable.  Addition of a plasticizer can make the polymer more flexible.  A plasticizer lowers the attraction between chains and makes the polymer more flexible.  The plasticizer evaporates slowly, so “vinyl” becomes hard and inflexible over time.

Notas del editor

  1. Figure: 26_03-03UN.jpg Title: Rubber Tree Caption: White latex drips out of cuts in the bark of a rubber tree in a Malaysian rubber plantation. Notes:
  2. Figure: 26_04-04UN.jpg Title: Nylon Stocking Caption: Scanning electron micrograph of the material in a nylon stocking. Sheer stockings require long, continuous fibers of small diameter and enormous strength. Notes: