Deposition of polymer complex layers onto nonwoven textiles

2006 ◽  
Vol 103 (3) ◽  
pp. 1700-1705 ◽  
Author(s):  
S. Połowiński
2003 ◽  
Vol 56 (8) ◽  
pp. 647-653 ◽  
Author(s):  
Lan Liu ◽  
Stan Duraj ◽  
Phillip E. Fanwick ◽  
Maria T. Andras ◽  
Aloysius F. Hepp

2021 ◽  
Author(s):  
Ruiting Li ◽  
Zhen Wang ◽  
Xinglei Tao ◽  
Shanzhi Lyu ◽  
Jichen Jia ◽  
...  

Solar energy is a renewable and natural alternative to fossil fuel. In order to efficiently use solar energy, photothermal conversion techniques and materials have been intensively investigated, which are raising...


2015 ◽  
Vol 1 (3) ◽  
pp. 332-340 ◽  
Author(s):  
Thomas Swift ◽  
Linda Swanson ◽  
Andrew Bretherick ◽  
Stephen Rimmer

A novel detection method for poly(acrylamide) flocculants was developed using interpolymer complexation between flocculants and a probe (poly(acrylic acid-co-acenaphthylene)).


2008 ◽  
Vol 34 (7) ◽  
pp. 1741-1746 ◽  
Author(s):  
Tanja Razpotnik ◽  
Marjan Marinšek ◽  
Barbara Novosel ◽  
Klementina Zupan ◽  
Vojmir Francetič ◽  
...  

2019 ◽  
Vol 485 (3) ◽  
pp. 306-310
Author(s):  
N. I. Gorshkov ◽  
A. Yu. Murko ◽  
I. I. Gavrilova ◽  
I. I. Malakhova ◽  
V. D. Krasikov ◽  
...  

A terpolymer with a molecular weight of 45 kDa containing 7 mol.% of vinylamine units, 80 mol.% of vinylpyrrolidone, and 3 mol.% of vinyliminodiacetic acid units has been synthesized. Its complexation with Ga3+ ion has been studied by HPLC. The resulting metal–polymer complex has been characterized by exclusion chromatography and spectral (IR, 1H NMR) data. The complex has a monomolecular structure where the metal ion acts as an anchor fragment between vinyliminodiacetic acid units and is stable in the reaction of interligand exchange with histidine.


Polymers ◽  
2021 ◽  
Vol 13 (16) ◽  
pp. 2781
Author(s):  
Natalia Sh. Lebedeva ◽  
Elena S. Yurina ◽  
Sabir S. Guseinov ◽  
Yury A. Gubarev ◽  
Anatoly I. V’yugin

Chitosan is a naturally occurring polysaccharide derived from chitin with a wide range of uses. Phthalocyanines are macroheterocyclic compounds that have a number of useful properties such as coloring and catalytic and antioxidant activity. Phthalocyanines are able to immobilize on chitosan, forming complexes with new useful properties. In this work, we evaluated the ability of phthalocyanines to increase the thermal stability of chitosan. Chitosan (CS) forms complexes with copper(II)-(CuPc) and cobalt(II)-(CoPc) tetrasulphophthalocyanines. The processes of destruction of chitosan (CS) and its complexes with sulphophthalocyanines CuPc and CoPc in oxidizing and inert atmospheres have been studied. It was established that, regardless of the atmosphere composition, the first chemical reactions taking place in the studied systems are elimination reactions. The latter ones in the case of chitosan and complex CS-CuPc lead to the formation of spatially crosslinked polymer structures, and it causes the release of CuPc from the polymer complex. It was found that in the case of CS-CoPc elimination reactions did not lead to the formation of crosslinked polymer structures but caused the destruction of the pyranose rings with a partial release of CoPc. Metallophthalocyanines showed antioxidant properties in the composition of complexes with chitosan, increasing the temperature of the beginning of glycosidic bond cleavage reaction by 30–35 °C in comparison with the similar characteristics for chitosan.


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