Research Article

Examining the hydrophobic properties of electrospun oxide-induced polystyrene nanofibers for application in oil-water separation

Volume: 6 Number: 2 August 15, 2022
EN

Examining the hydrophobic properties of electrospun oxide-induced polystyrene nanofibers for application in oil-water separation

Abstract

Nanofibers have great importance in the membrane technology used in hydrophobic surface filtration studies applied to water-oil separation products. This study improves upon the hydrophobic properties of electrospun polystyrene-based nanofibers by increasing surface contact angles. As a result, nanofibers have been produced by adding ZnO, MoO3, NiO, SiO2, and TiO2 additives to the polystyrene (PS)/dimethylformamide (DMF) polymer solution at 5% of the mass. Surface contact angle (CA), fourier-transform infrared spectroscopy (FTIR), and scanning electron microscope (SEM) images of the nanofibers were taken. The obtained results were evaluated and show the fiber diameter to range from 555 to 1553 nm. The addition process was observed to be able to affect the polystyrene fiber’s ability to retain water. Moreover, surface contact angle of polystyrene increased to 143° by TiO2 addition. Furthermore, the highest oil-carrying capacity is concluded to have been observed on the SiO2 and MoO3 doped fibers.

Keywords

References

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Details

Primary Language

English

Subjects

Engineering, Composite and Hybrid Materials

Journal Section

Research Article

Publication Date

August 15, 2022

Submission Date

February 17, 2022

Acceptance Date

June 21, 2022

Published in Issue

Year 2022 Volume: 6 Number: 2

APA
Doğan, K., Hussaını, A. A., Yıldırım, M., & Erdal, M. O. (2022). Examining the hydrophobic properties of electrospun oxide-induced polystyrene nanofibers for application in oil-water separation. International Advanced Researches and Engineering Journal, 6(2), 100-105. https://doi.org/10.35860/iarej.1075031
AMA
1.Doğan K, Hussaını AA, Yıldırım M, Erdal MO. Examining the hydrophobic properties of electrospun oxide-induced polystyrene nanofibers for application in oil-water separation. Int. Adv. Res. Eng. J. 2022;6(2):100-105. doi:10.35860/iarej.1075031
Chicago
Doğan, Kemal, Ali Akbar Hussaını, Murat Yıldırım, and Mehmet Okan Erdal. 2022. “Examining the Hydrophobic Properties of Electrospun Oxide-Induced Polystyrene Nanofibers for Application in Oil-Water Separation”. International Advanced Researches and Engineering Journal 6 (2): 100-105. https://doi.org/10.35860/iarej.1075031.
EndNote
Doğan K, Hussaını AA, Yıldırım M, Erdal MO (August 1, 2022) Examining the hydrophobic properties of electrospun oxide-induced polystyrene nanofibers for application in oil-water separation. International Advanced Researches and Engineering Journal 6 2 100–105.
IEEE
[1]K. Doğan, A. A. Hussaını, M. Yıldırım, and M. O. Erdal, “Examining the hydrophobic properties of electrospun oxide-induced polystyrene nanofibers for application in oil-water separation”, Int. Adv. Res. Eng. J., vol. 6, no. 2, pp. 100–105, Aug. 2022, doi: 10.35860/iarej.1075031.
ISNAD
Doğan, Kemal - Hussaını, Ali Akbar - Yıldırım, Murat - Erdal, Mehmet Okan. “Examining the Hydrophobic Properties of Electrospun Oxide-Induced Polystyrene Nanofibers for Application in Oil-Water Separation”. International Advanced Researches and Engineering Journal 6/2 (August 1, 2022): 100-105. https://doi.org/10.35860/iarej.1075031.
JAMA
1.Doğan K, Hussaını AA, Yıldırım M, Erdal MO. Examining the hydrophobic properties of electrospun oxide-induced polystyrene nanofibers for application in oil-water separation. Int. Adv. Res. Eng. J. 2022;6:100–105.
MLA
Doğan, Kemal, et al. “Examining the Hydrophobic Properties of Electrospun Oxide-Induced Polystyrene Nanofibers for Application in Oil-Water Separation”. International Advanced Researches and Engineering Journal, vol. 6, no. 2, Aug. 2022, pp. 100-5, doi:10.35860/iarej.1075031.
Vancouver
1.Kemal Doğan, Ali Akbar Hussaını, Murat Yıldırım, Mehmet Okan Erdal. Examining the hydrophobic properties of electrospun oxide-induced polystyrene nanofibers for application in oil-water separation. Int. Adv. Res. Eng. J. 2022 Aug. 1;6(2):100-5. doi:10.35860/iarej.1075031

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