Author:
Wijaya Anugrah Ricky,Syah Alif Alfarisyi,Hana Dhea Chelsea,Putra Helwani Fuadi Sujoko
Abstract
<abstract>
<p>Initial research was focused on the production of calcium-based alginate-chitosan membranes from coral skeletons collected from the Gulf of Prigi. The coral skeleton's composition was analyzed using XRF, revealing a calcium oxide content ranging from 90.86% to 93.41%. These membranes showed the significant potential for salt adsorption, as evidenced by FTIR analysis, which showed the presence of functional groups such as -OH, C = O, C-O, and N-H involved in the NaCl binding process. SEM analysis showed the particle size diameter of 185.96 nm, indicating a relatively rough and porous morphology. Under optimized conditions, the resulting calcium-based alginate-chitosan membrane achieved 40.5% Na<sup>+</sup> and 48.39% Cl<sup>-</sup> adsorptions, using 13.3 mL of 2% (w/v) chitosan and 26.6 mL of 2% (w/v) alginate with a 40-minutes contact time. The subsequent we applied for the desalination potential of calcium alginate, revealing the efficient reduction of NaCl levels in seawater. The calcium of coral skeletons collected was 90.86% and 93.41% before and after calcination, respectively, affirming the dominant calcium composition suitable for calcium alginate production. We identified an optimal 8-minute contact time for calcium alginate to effectively absorb NaCl, resulting in an 88.17% and 50% for Na<sup>+</sup> and Cl<sup>-</sup> absorptions. We applied the addition of chitosan into calcium-alginate membranes and its impact on enhancing salt adsorption efficiency for seawater desalination.</p>
</abstract>
Publisher
American Institute of Mathematical Sciences (AIMS)
Reference31 articles.
1. Bibi A, Ur-Rehman S, Akhtar T, et al. (2020) Effective removal of carcinogenic dye from aqueous solution by using alginate-based nanocomposites. Desalin Water Treatt 208: 386–398. https://doi.org/10.5004/dwt.2020.26432
2. Millero FJ, Feistel R, Wright DG, et al. (2008) The composition of Standard Seawater and the definition of the Reference-Composition Salinity Scale. Deep-Sea Res Part Ⅰ-Oceanogr Res Pap 55: 50–72. https://doi.org/10.1016/j.dsr.2007.10.001
3. Armid A, Shinjo R, Takwir A, et al. (2021) Spatial distribution and pollution assessment of trace elements Pb, Cu, Ni, Fe and as in the surficial water of Staring Bay, Indonesia. J Braz Chem Soc 32: 299–310. https://doi.org/10.21577/0103-5053.20200180
4. Wijaya AR, Khoerunnisa F, Armid A, et al. (2022) The best-modified BCR and Tessier with microwave-assisted methods for leaching of Cu/Zn and their δ65Cu/δ66Zn for tracing sources in marine sediment fraction. Environ Technol Innov 28.
5. Wijaya AR, Kusumaningrum IK, Hakim L, et al. (2022) Road-side dust from central Jakarta, Indonesia: Assessment of metal(loid) content, mineralogy, and bioaccessibility. Environ Technol Innov 28: 102934. https://doi.org/10.1016/j.eti.2022.102934