TY - JOUR
T1 - Successful preparation of CeO2-modified 2D boron nitride for enhanced dye and humic acid separation with ultrafiltration membranes
AU - Jaber, Lubna
AU - Abushawish, Alaa
AU - Manawi, Yehia
AU - Shanableh, Abdallah
AU - Atieh, Muataz Ali
AU - Ulbricht, Mathias
AU - Almanassra, Ismail W.
N1 - Publisher Copyright:
© 2024 Elsevier Ltd
PY - 2024/12
Y1 - 2024/12
N2 - Water pollution poses critical global challenges, necessitating innovative water treatment solutions. This study presents a pioneering investigation into the well-prepared cerium oxide (CeO2) onto two-dimensional hexagonal boron nitride (H-BN) nanosheets for enhancing polymer-based ultrafiltration membranes. The polyethersulfone (PES) membranes modified with H-BN@CeO2 were successfully fabricated using different additive mass concentrations (0.2–3 wt%), showcasing substantial improvements in membrane properties, particularly at 2 wt%. Filtration and rejection assessments, for pure water, humic acid (HA), and Eriochrome Black-T dye (EBT) were conducted to evaluate membrane performance. Notably, M-2 membrane (with 2 wt% H-BN@CeO2) demonstrated exceptional pure water permeance, reaching 567.1 LMH/bar, a 4.2-fold increase over the pristine membrane. Additionally, it exhibited high permeance of 400.7 LMH/bar for 50 mg/L HA and 339.0 LMH/bar for 30 mg/L EBT solutions at 1 bar, maintaining over 90 % rejection rates for both pollutants. Excellent flux recovery ratios of 94.6 % for HA and 88.0 % for EBT ensured membrane longevity and reusability. Long-term filtration studies further validated the exceptional performance and efficiency of H-BN@CeO2/PES membranes. Characterization of used membrane suggests size exclusion and surface interaction as primary removal mechanisms. The optimized membrane demonstrated promising results as a pre-treatment unit for reverse osmosis seawater desalination. This study highlights the potential of H-BN@CeO2 nanocomposites in enhancing PES-based membranes for sustainable water filtration solutions.
AB - Water pollution poses critical global challenges, necessitating innovative water treatment solutions. This study presents a pioneering investigation into the well-prepared cerium oxide (CeO2) onto two-dimensional hexagonal boron nitride (H-BN) nanosheets for enhancing polymer-based ultrafiltration membranes. The polyethersulfone (PES) membranes modified with H-BN@CeO2 were successfully fabricated using different additive mass concentrations (0.2–3 wt%), showcasing substantial improvements in membrane properties, particularly at 2 wt%. Filtration and rejection assessments, for pure water, humic acid (HA), and Eriochrome Black-T dye (EBT) were conducted to evaluate membrane performance. Notably, M-2 membrane (with 2 wt% H-BN@CeO2) demonstrated exceptional pure water permeance, reaching 567.1 LMH/bar, a 4.2-fold increase over the pristine membrane. Additionally, it exhibited high permeance of 400.7 LMH/bar for 50 mg/L HA and 339.0 LMH/bar for 30 mg/L EBT solutions at 1 bar, maintaining over 90 % rejection rates for both pollutants. Excellent flux recovery ratios of 94.6 % for HA and 88.0 % for EBT ensured membrane longevity and reusability. Long-term filtration studies further validated the exceptional performance and efficiency of H-BN@CeO2/PES membranes. Characterization of used membrane suggests size exclusion and surface interaction as primary removal mechanisms. The optimized membrane demonstrated promising results as a pre-treatment unit for reverse osmosis seawater desalination. This study highlights the potential of H-BN@CeO2 nanocomposites in enhancing PES-based membranes for sustainable water filtration solutions.
KW - 2D materials
KW - Antifouling
KW - Dye rejection
KW - Humic acid removal
KW - Ultrafiltration
UR - http://www.scopus.com/inward/record.url?scp=85208333271&partnerID=8YFLogxK
U2 - 10.1016/j.jwpe.2024.106464
DO - 10.1016/j.jwpe.2024.106464
M3 - Article
AN - SCOPUS:85208333271
SN - 2214-7144
VL - 68
JO - Journal of Water Process Engineering
JF - Journal of Water Process Engineering
M1 - 106464
ER -