Segmented block copolymers of natural rubber and 1, 3-butanediol–toluene diisocyanate oligomers

Polymer ◽  
1998 ◽  
Vol 39 (26) ◽  
pp. 6861-6874 ◽  
Author(s):  
C.J. Paul ◽  
M.R. Gopinathan Nair ◽  
N.R. Neelakantan ◽  
Peter Koshy ◽  
Bhaskar B. Idage ◽  
...  
1998 ◽  
Vol 38 (3) ◽  
pp. 440-451 ◽  
Author(s):  
C. J. Paul ◽  
M. R. Gopinathan Nair ◽  
N. R. Neelakantan ◽  
Peter Koshy

Polymers ◽  
2021 ◽  
Vol 13 (20) ◽  
pp. 3579
Author(s):  
Ilsia M. Davletbaeva ◽  
Alexander Yu. Alentiev ◽  
Zulfiya Z. Faizulina ◽  
Ilnaz I. Zaripov ◽  
Roman Yu. Nikiforov ◽  
...  

Organosubstituted silica derivatives were synthesized and investigated as modifiers of block copolymers based on macroinitiator and 2,4-toluene diisocyanate. A peculiarity of the modified block copolymers is the existence in their structure of coplanar rigid polyisocyanate blocks of acetal nature (O-polyisocyanates). Organosubstituted silica derivatives have a non-additive effect on high-temperature relaxation and α-transitions of modified polymers and exhibit the ability to influence the supramolecular structure of block copolymers. The use of the developed modifiers leads to a change in the gas transport properties of block copolymers. The increase of the permeability coefficients is due to the increase of the diffusion coefficients. At the same time, the gas solubility coefficients do not change. An increase in the ideal selectivity for a number of gas pairs is observed. An increase in the selectivity for the CO2/N2 gas pair (from 25 to 39) by 1.5 times demonstrates the promising use of this material for flue gases separation.


2019 ◽  
Vol 26 (8) ◽  
Author(s):  
M. S. Mrudula ◽  
Nidhi Tiwari ◽  
Shambhu Nath Jha ◽  
Dibyendu Bhattacharyya ◽  
M. R. Gopinathan Nair

Membranes ◽  
2019 ◽  
Vol 9 (3) ◽  
pp. 42 ◽  
Author(s):  
Ilsiya M. Davletbaeva ◽  
Ilnaz I. Zaripov ◽  
Alexander I. Mazilnikov ◽  
Ruslan S. Davletbaev ◽  
Raphael R. Sharifullin ◽  
...  

Nowadays, block copolymers hold great promise for the design of novel membranes to be applied for the membrane gas separation. In this regard, microporous block copolymers based on a macroinitiator with an anionic nature, such as potassium-substituted block copolymers of propylene oxide and ethylene oxide (PPEG) and 2,4-toluene diisocyanate (TDI), were obtained and investigated as effective gas separation membranes. The key element of the macromolecular structure that determines the supramolecular organization of the studied polymers is the coplanar blocks of polyisocyanates with an acetal nature (O-polyisocyanate). In the present research, the influence of the content of peripheral polyoxyethylene (POE) blocks in PPEG on the supramolecular structure processes and gas transport characteristics of the obtained polymers based on PPEG and TDI was investigated. According to the study of polymers if the POE block content is 15 wt %, the polyoxypropylene segments are located in the internal cavity of voids formed by O-polyisocyanate blocks. When the POE block content is 30 wt %, the flexible chain component forms its own microphase outside the segregation zone of the rigid O-polyisocyanate blocks. The permeability for polar molecules, such as ammonia or hydrogen sulfide, significantly exceeds the permeability values obtained for non-polar molecules He, N2 and СН4. A relatively high permeability is also observed for carbon dioxide. At the same time, the content of POE blocks has a small effect on the permeability for all studied gases. The diffusion coefficient increases with an increase in the POE block content in PPEG for all studied gases.


1991 ◽  
Vol 42 (2) ◽  
pp. 325-333 ◽  
Author(s):  
T. Ravindran ◽  
M. R. Gopinathan Nayar ◽  
D. Joseph Francis

Membranes ◽  
2021 ◽  
Vol 11 (2) ◽  
pp. 94
Author(s):  
Ilsiya M. Davletbaeva ◽  
Ilgiz M. Dzhabbarov ◽  
Askhat M. Gumerov ◽  
Ilnaz I. Zaripov ◽  
Ruslan S. Davletbaev ◽  
...  

Amphiphilic poly(dimethylsiloxane-ethylene-propylene oxide)-polyisocyanurate cross-linked block copolymers based on triblock copolymers of propylene and ethylene oxides with terminal potassium-alcoholate groups (PPEG), octamethylcyclotetrasiloxane (D4) and 2,4-toluene diisocyanate (TDI) were synthesized and investigated. In the first stage of the polymerization process, a multiblock copolymer (MBC) was previously synthesized by polyaddition of D4 to PPEG. The usage of the amphiphilic branched silica derivatives associated with oligomeric medium (ASiP) leads to the structuring of block copolymers via the transetherification reaction of the terminal silanol groups of MBC with ASiP. The molar ratio of PPEG, D4, and TDI, where the polymer chains are packed in the “core-shell” supramolecular structure with microphase separation of the polyoxyethylene, polyoxypropylene and polydimethylsiloxane segments as the shell, was established. Polyisocyanurates build the “core” of the described macromolecular structure. The obtained polymers were studied as membrane materials for the separation of gas mixtures CO2/CH4 and CO2/N2. It was found that obtained polymers are promising as highly selective and productive membrane materials for the separation of gas mixtures containing CO2, CH4 and N2.


1960 ◽  
Vol 33 (4) ◽  
pp. 923-928 ◽  
Author(s):  
R. J. Ceresa

Abstract Degradation of natural rubber during mastication has been shown to proceed via two alternative mechanisms, oxidative scission at high temperatures and mechanical scission at lower temperatures. The low temperature process, cold mastication, has received the greater attention. The energy supplied to the extended rubber chains during mechanical deformation is sufficient to cause homolytic scission into polymeric free radicals. The degradation of high polymers by a rupture process via mechanical scission has been shown to occur during the cold mastication of synthetic elastomers and during the mechanical working of high molecular weight vinyl and acrylic polymers in the visco-elastic state. The application of shearing forces to certain polymers in the brittle glass state has provided evidence for both homolytic scission into polymeric free radicals and heterolytic scission into polymeric ions. Polymeric radicals, produced by mechanical chain scission, have been used as initiators of vinyl polymerization to give block copolymers of an essentially linear character. Thus the block copolymerizations of methyl methacrylate, styrene, vinyl acetate, acrylonitrile, and ethyl acrylate have been initiated by mechanically shearing natural rubber, polymethyl methacrylate, polystyrene, polyvinyl acetate, polyethylene, polyvinyl chloride and polyvinyl formal during the process of extrusion of the polymer plasticized to a viscoelastic state with the monomer. Many other polymer-monomer systems have yielded block copolymers by cold mastication. Cold mastication of elastomer blends, such as natural rubber and neoprene, also leads to block copolymer formation by both combinative and hydrogen abstractive processes between the different species of elastomer radicals present. If two polymers are completely compatible so that one continuous phase is present in the blend, and if the polymeric constituents have a common viscoelastic temperature range, then mechanical working during extrusion or internal mixing can lead to block copolymer formation. If the tendency of the polymeric radicals formed by mechanical rupture is to recombine rather than to disproportionate, then the chances of block copolymer formation are increased. The presence of sites for hydrogen or halogen abstraction upon one of the polymer constituents is also an aid to grafted block copolymer formation. Thus polyvinyl chloride-neoprene blends give grafted block copolymers on extrusion or internal mixing and polyethylene-polyvinyl acetate blends block copolymerize when masticated in the absence of oxygen. Block copolymerization is largely controlled by the viscoelastic properties of the systems chosen.


2004 ◽  
Vol 289 (10) ◽  
pp. 927-932 ◽  
Author(s):  
Gerhard Maier ◽  
Vendula Knopfova ◽  
Brigitte Voit ◽  
Pham Huu Ly ◽  
Bui Tien Dung ◽  
...  

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