TY - JOUR
T1 - Design of CeO2/CuBi2O4 nanocomposites enabling efficient photocatalytic degradation of organic dyes and antibacterial functions
AU - Priyadharsan, Arumugam
AU - Abimannan, Gomathi
AU - Shanmugam, Paramasivam
AU - Ranjith, Rajendran
AU - Maadeswaran, Palanisamy
AU - Gnanasekaran, Lalitha
AU - D, Shanmugapriya
AU - Rojviroon, Thammasak
AU - Boonyuen, Supakorn
N1 - Publisher Copyright:
© 2026 Elsevier B.V.
PY - 2026/7/15
Y1 - 2026/7/15
N2 - The recent research involves the photocatalytic bustle of organic pollutants discharged by the leather, textile, and medical industries. The CeO2/CuBi2O4 nanocomposite was equipped by the wet chemical method, and the physiochemical behaviors, like structural, optical, functional groups, chemical composition of elements, and morphology of as-prepared bare and composite materials, were characterized by various analytical instruments. The CeO2 absorption edge in the UV region is moved after being coupled with CuBi2O4 in the visible spectrum. The absorption wavelengths of the pristine materials, namely CeO2 and CuBi2O4, were observed at 474 nm and 510 nm, respectively. The Eg for single CeO2, CuBi2O4, and CeO2/CuBi2O4 nanocomposites are 2.74, 2.53, and 1.75 eV, respectively. The photocatalytic bustle of CeO2/CuBi2O4 nanocomposite attained 94 %, which is obviously enhanced compared to the pristine CeO2 (68 %) and CuBi2O4 (74 %). Also examined was the CeO2/CuBi2O4 nanocomposite kinetics rate, which is 2.4 and 1.8 times higher than bare materials. The CeO2/CuBi2O4 nanocomposites degradation rate constant of RhB dye (0.05548 min−1) was significantly greater than those of CeO2 (0.023271 min−1) and CuBi2O4 (0.03062 min−1), showing better photocatalytic efficiency. Stability and reusability test certificates indicate that the CeO2/CuBi2O4 nanocomposite was more stable after the five cycles. The major free radical species were OH radicals and superoxide anions involved in RhB dye degradation. The trapping analysis suggests a potential photocatalytic mechanism that plays a dynamic role in RhB dye degradation.
AB - The recent research involves the photocatalytic bustle of organic pollutants discharged by the leather, textile, and medical industries. The CeO2/CuBi2O4 nanocomposite was equipped by the wet chemical method, and the physiochemical behaviors, like structural, optical, functional groups, chemical composition of elements, and morphology of as-prepared bare and composite materials, were characterized by various analytical instruments. The CeO2 absorption edge in the UV region is moved after being coupled with CuBi2O4 in the visible spectrum. The absorption wavelengths of the pristine materials, namely CeO2 and CuBi2O4, were observed at 474 nm and 510 nm, respectively. The Eg for single CeO2, CuBi2O4, and CeO2/CuBi2O4 nanocomposites are 2.74, 2.53, and 1.75 eV, respectively. The photocatalytic bustle of CeO2/CuBi2O4 nanocomposite attained 94 %, which is obviously enhanced compared to the pristine CeO2 (68 %) and CuBi2O4 (74 %). Also examined was the CeO2/CuBi2O4 nanocomposite kinetics rate, which is 2.4 and 1.8 times higher than bare materials. The CeO2/CuBi2O4 nanocomposites degradation rate constant of RhB dye (0.05548 min−1) was significantly greater than those of CeO2 (0.023271 min−1) and CuBi2O4 (0.03062 min−1), showing better photocatalytic efficiency. Stability and reusability test certificates indicate that the CeO2/CuBi2O4 nanocomposite was more stable after the five cycles. The major free radical species were OH radicals and superoxide anions involved in RhB dye degradation. The trapping analysis suggests a potential photocatalytic mechanism that plays a dynamic role in RhB dye degradation.
KW - Active species
KW - Antibacterial Activity
KW - CeO/CuBiO nanocomposite
KW - Mechanism
KW - Photocatalyst
KW - Stability
KW - Super oxide anions
UR - https://www.scopus.com/pages/publications/105037745884
U2 - 10.1016/j.surfin.2026.109415
DO - 10.1016/j.surfin.2026.109415
M3 - Article
AN - SCOPUS:105037745884
SN - 2468-0230
VL - 93
JO - Surfaces and Interfaces
JF - Surfaces and Interfaces
M1 - 109415
ER -