Crosslinked chitosan oligosaccharide-based binary and ternary blends for the removal of Cu(II) ions

Author(s):  
T. N. Balaji ◽  
S. M. A. Rahman ◽  
T. Gomathi ◽  
P. N. Sudha ◽  
A. K. S. I. Sheriff
Author(s):  
S.D. Smith ◽  
R.J. Spontak ◽  
D.H. Melik ◽  
S.M. Buehler ◽  
K.M. Kerr ◽  
...  

When blended together, homopolymers A and B will normally macrophase-separate into relatively large (≫1 μm) A-rich and B-rich phases, between which exists poor interfacial adhesion, due to a low entropy of mixing. The size scale of phase separation in such a blend can be reduced, and the extent of interfacial A-B contact and entanglement enhanced, via addition of an emulsifying agent such as an AB diblock copolymer. Diblock copolymers consist of a long sequence of A monomers covalently bonded to a long sequence of B monomers. These materials are surface-active and decrease interfacial tension between immiscible phases much in the same way as do small-molecule surfactants. Previous studies have clearly demonstrated the utility of block copolymers in compatibilizing homopolymer blends and enhancing blend properties such as fracture toughness. It is now recognized that optimization of emulsified ternary blends relies upon design considerations such as sufficient block penetration into a macrophase (to avoid block slip) and prevention of a copolymer multilayer at the A-B interface (to avoid intralayer failure).


2019 ◽  
Vol 3 (2) ◽  
pp. 27
Author(s):  
Emma Savitri ◽  
Natalia Suseno ◽  
Tokok Adiarto

Many mass-transfer applications have used chitosan membrane in separation processes. This research applied crosslinked chitosan membrane to sterillize bacterial growth media. Chitosan membranes having 79 % DD were produced by casting and drying chitosan solution. The images of the membrane were characterized by SEM and other characterizations such as permeability, permselectivity and tensile strength were investigated. The flux increased with longer submersion period but the rejection decreased. Otherwise, the flux decreased and rejection increased in line with an increase in curing temperature. Tensile strength increased with the increase of submersion period and curing temperature. The optimum conditions of crosslinking process are 2 hours of submersion periods and curing temperature at 90 oC.  It gives flux 5.8930 L/jam.m2, rejection 97.47 % and tensile strength 49640 kN/m2


2020 ◽  
Vol 35 (2) ◽  
pp. 169-183 ◽  
Author(s):  
P. Hadimani ◽  
H. N. Narasimha Murthy ◽  
R. Mudbidre
Keyword(s):  
Nylon 6 ◽  

2021 ◽  
Vol 183 ◽  
pp. 2293-2304
Author(s):  
Nahum Andrés Medellín-Castillo ◽  
Elizabeth Diane Isaacs-Páez ◽  
Itzia Rodríguez-Méndez ◽  
Raul González-García ◽  
Gladis Judith Labrada-Delgado ◽  
...  

2021 ◽  
Author(s):  
Madhvi Garg ◽  
Navneet Bhullar ◽  
Bharat Bajaj ◽  
Dhiraj Sud

The present manuscript reports the ultrasound radiation induced synthesis of grafted chitosan hydrogels (CAAT and CAAG) using terephthalaldehyde/glutaraldehyde as crosslinking agents and its application for removal of synthetic dyes from...


2011 ◽  
Vol 23 (35) ◽  
pp. 4093-4097 ◽  
Author(s):  
Toby A. M. Ferenczi ◽  
Christian Müller ◽  
Donal D. C. Bradley ◽  
Paul Smith ◽  
Jenny Nelson ◽  
...  
Keyword(s):  

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