Characterization of biopolymer Blend-based on alginate and Poly(vinyl Alcohol) as an application for polymer host in polymer electrolyte

Author(s):  
N.M. Ghazali ◽  
N.F. Mazuki ◽  
A.S. Samsudin
2016 ◽  
Vol 55 (30) ◽  
pp. 8341-8348 ◽  
Author(s):  
Shahriar Mufid Rahman ◽  
Suhana Binti Mohd Said ◽  
Balamurugan Subramanian ◽  
Bui Duc Long ◽  
Mukhtar A. Kareem ◽  
...  

Ionics ◽  
2020 ◽  
Vol 26 (6) ◽  
pp. 2941-2948 ◽  
Author(s):  
Camila M. Cholant ◽  
Luana U. Krüger ◽  
Raphael D. C Balboni ◽  
Marco P. Rodrigues ◽  
Fabiele C. Tavares ◽  
...  

2021 ◽  
pp. 50672
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Majid Alizadeh Moghadam ◽  
Reza Mohammadi ◽  
Ehsan Sadeghi ◽  
Mohammad Amin Mohammadifar ◽  
Mohammad Nejatian ◽  
...  

Polymers ◽  
2021 ◽  
Vol 13 (4) ◽  
pp. 623
Author(s):  
Talles Barcelos da Costa ◽  
Meuris Gurgel Carlos da Silva ◽  
Melissa Gurgel Adeodato Vieira

In a scenario of high demand, low availability, and high economic value, the recovery of rare-earth metals from wastewater is economically and environmentally attractive. Bioadsorption is a promising method as it offers simple design and operation. The aim of this study was to investigate lanthanum bioadsorption using a polymeric bioadsorbent of sericin/alginate/poly(vinyl alcohol)-based biocomposite. Batch system assays were performed to evaluate the equilibrium, thermodynamics, regeneration, and selectivity of bioadsorption. The maximum capture amount of lanthanum at equilibrium was 0.644 mmol/g at 328 K. The experimental equilibrium data were better fitted by Langmuir and Dubinin–Radushkevich isotherms. Ion exchange mechanism between calcium and lanthanum (2:3 ratio) was confirmed by bioadsorption isotherms. Thermodynamic quantities showed that the process of lanthanum bioadsorption was spontaneous (−17.586, −19.244, and −20.902 kJ/mol), endothermic (+15.372 kJ/mol), and governed by entropic changes (+110.543 J/mol·K). The reusability of particles was achieved using 0.1 mol/L HNO3/Ca(NO3)2 solution for up to five regeneration cycles. The bioadsorbent selectivity followed the order of lanthanum > cadmium > zinc > nickel. Additionally, characterization of the biocomposite prior to and post lanthanum bioadsorption showed low porosity (9.95 and 12.35%), low specific surface area (0.054 and 0.019 m2/g), amorphous character, and thermal stability at temperatures up to 473 K. This study shows that sericin/ alginate/poly(vinyl alcohol)-based biocomposites are effective in the removal and recovery of lanthanum from water.


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