TY - JOUR
T1 - Nano-cerium zinc molybdate embedded with activated graphene for detection of levofloxacin in polluted water resources
AU - Alagumalai, Krishnapandi
AU - Mishra, Vijayalaxmi
AU - Bharathi, Arumugam
AU - Palanisamy, Selvakumar
AU - Bharath, G.
AU - Kim, Seong Cheol
AU - Chiesa, Matteo
AU - Aldossari, Samar A.
N1 - Publisher Copyright:
© 2024 Elsevier Ltd
PY - 2024/8
Y1 - 2024/8
N2 - Antibiotics have widespread applications in personal care, animal muscle growth, and aquaculture, yet their pervasive use gives rise to substantial risks for human health and the ecosystem. Consequently, the imperative lies in developing accurate and highly sensitive detection techniques for analyzing levofloxacin (LFX). This research focuses on the hydrothermal synthesis of unique three-dimensional cubical-like ternary cerium-doped zinc molybdate (Ce@ZnMoO4) nanostructures. Ultrasonic methods were used to integrate Ce@ZnMoO4 with activated graphene (AGr) for LFX detection. X-ray diffraction, Raman spectroscopy, and field emission scanning electron microscopy were used to carefully analyze the resultant Ce@ZnMoO4/AGr composite's physical characteristics. The covalent integration of cubic-like Ce@ZnMoO4 with AGr produced a four-fold increase in sensor response compared to a Ce@ZnMoO4-modified electrode and displayed remarkable electrocatalytic activity. Due to its unique electronic and catalytic properties, Ce@ZnMoO4 synergistically interacts with the AGr layers. This synergy enhances conductivity, facilitating efficient electron transfer during electrochemical processes. Additionally, the composite offers a high surface area and numerous active sites, enabling more significant interaction between the electrode and the target analyte, LFX, thereby enhancing sensor response. The sensor demonstrated outstanding lower limits of detection (0.0031 µM), good sensitivity (0.3327 µA/µM cm-2), and a quantification limit (0.0375 µM) under optimal conditions. Along with high specificity and outstanding storage stability, a broad linear range spanning from 0.025 to 845 µM was also found. The effectiveness of the sensor is further confirmed by the successful detection of LFX in aquatic samples.
AB - Antibiotics have widespread applications in personal care, animal muscle growth, and aquaculture, yet their pervasive use gives rise to substantial risks for human health and the ecosystem. Consequently, the imperative lies in developing accurate and highly sensitive detection techniques for analyzing levofloxacin (LFX). This research focuses on the hydrothermal synthesis of unique three-dimensional cubical-like ternary cerium-doped zinc molybdate (Ce@ZnMoO4) nanostructures. Ultrasonic methods were used to integrate Ce@ZnMoO4 with activated graphene (AGr) for LFX detection. X-ray diffraction, Raman spectroscopy, and field emission scanning electron microscopy were used to carefully analyze the resultant Ce@ZnMoO4/AGr composite's physical characteristics. The covalent integration of cubic-like Ce@ZnMoO4 with AGr produced a four-fold increase in sensor response compared to a Ce@ZnMoO4-modified electrode and displayed remarkable electrocatalytic activity. Due to its unique electronic and catalytic properties, Ce@ZnMoO4 synergistically interacts with the AGr layers. This synergy enhances conductivity, facilitating efficient electron transfer during electrochemical processes. Additionally, the composite offers a high surface area and numerous active sites, enabling more significant interaction between the electrode and the target analyte, LFX, thereby enhancing sensor response. The sensor demonstrated outstanding lower limits of detection (0.0031 µM), good sensitivity (0.3327 µA/µM cm-2), and a quantification limit (0.0375 µM) under optimal conditions. Along with high specificity and outstanding storage stability, a broad linear range spanning from 0.025 to 845 µM was also found. The effectiveness of the sensor is further confirmed by the successful detection of LFX in aquatic samples.
KW - Activated graphene
KW - Ce@ZnMoO
KW - Electrochemical approach
KW - Levofloxacin
KW - Nanocomposites
KW - Real time monitoring
UR - http://www.scopus.com/inward/record.url?scp=85195059992&partnerID=8YFLogxK
U2 - 10.1016/j.jece.2024.113192
DO - 10.1016/j.jece.2024.113192
M3 - Article
AN - SCOPUS:85195059992
SN - 2213-3437
VL - 12
JO - Journal of Environmental Chemical Engineering
JF - Journal of Environmental Chemical Engineering
IS - 4
M1 - 113192
ER -