98%
921
2 minutes
20
The authors have fabricated reduced graphene oxide nanosheets (rGO) supported with FeO nanoparticles and Ag/Au hollow nanoshells. The material was placed on a glassy carbon electrode which is shown to enable highly sensitive determination of As(III) which is first preconcentrated from solution at a potential of -0.35 V (versus Ag/AgCl) for 100 s. The electrode, typically operated at a working potential as low as 0.06 V, has a linear response in the 0.1 to 20 ppb As(III) concentration range and a 0.01 ppb detection limit. The electrochemical sensitivity is 52 μA ppb. The high sensitivity is assumed to be the result of various synergistic effects. The method was applied to ultratrace (0.1 ppt) determination of As(III) in real water samples. Graphical abstract The hybrid displays a wide linear response in the 0.1 to 20 ppb As(III) concentration range and a 0.01 ppb detection limit. The high sensitivity is attributed to various synergistic effects. The method was applied to ultratrace determination of As(III) in real water samples.
Download full-text PDF |
Source |
---|---|
http://dx.doi.org/10.1007/s00604-019-3328-6 | DOI Listing |
Water Res
August 2025
The Second Affiliated Hospital and Yuying Children's Hospital of Wenzhou Medical University, Wenzhou 325035, PR China. Electronic address:
Constructed wetlands (CWs) face dual challenges of arsenic contamination and greenhouse gas (GHG) emissions, particularly concerning the competing processes of As(III) immobilization and methane-dependent As(V) reduction (AOM-AsR). To address this dilemma, we developed a novel microbial-nitrate-zero valent iron/manganese synergy (MNZS) system that establishes dynamic redox gradients through Fe/Mn-mediated electron flux regulation. The MNZS mechanism leverages zero valent iron/manganese (ZVI/ZVM) oxidation to create oxygen-depleted microzones, generating bioavailable Fe(II)/Mn(II) species while initiating microbial nitrate-reducing-coupled Fe(II)/Mn(II) oxidation (NRFO/NRMO).
View Article and Find Full Text PDFChem Asian J
August 2025
Electrochemistry & Catalysis Research Laboratory (ECRL), Department of Chemistry, School of Physical Sciences, Shahjalal University of Science and Technology, Sylhet, 3114, Bangladesh.
In this study, we present a comprehensive theoretical and experimental investigation of the electrocatalytic oxidation of arsenite on Au immobilized Pt surfaces in a neutral medium. Theoratically, density functional theory (DFT) calculations revealed that thePt-Au bimetallic system exhibits superior adsorption energy (E = -2.045 eV) compared to bare Au (-0.
View Article and Find Full Text PDFEnviron Geochem Health
August 2025
Department of Environmental Science and Technology, Faculty of Forestry and Environment, Universiti Putra Malaysia, 43400 UPM Serdang, Selangor, Malaysia.
Arsenic (As) contamination in rice poses significant health risks due to the toxicity of certain arsenicals. This study presents an improved, time-efficient method for quantifying arsenite (As), arsenate (As), dimethylarsinic acid (DMA), and monomethylarsonic acid (MMA) in commercial white and brown rice using high-performance liquid chromatography coupled with inductively coupled plasma mass-spectrometry (HPLC-ICP-MS). The method incorporates chromatographic modifiers and ion-pairing agents in the mobile phase, reducing overall retention time to less than 4 minutes while enhancing peak separation.
View Article and Find Full Text PDFAnal Methods
August 2025
Institute of Public Health, Guangzhou Medical University & Guangzhou Center for Disease Control and Prevention, Guangzhou, 510440, China.
Arsenic is a widely studied toxic element that exists in various species with different oxidation states and forms in the environment and biological systems. The different physicochemical properties, environmental behaviors, and toxicities of these arsenic species make speciation analysis essential for environmental monitoring and human health risk assessment. In this study, we demonstrated the determination and monitoring of six arsenic species, including arsenite (AsIII), arsenate (AsV), monomethylarsonic acid (MMA), dimethylarsinic acid (DMA), arsenocholine (AsC), and arsenobetaine (AsB) in seafood using high-performance liquid chromatography coupled with inductively coupled plasma mass spectrometry (HPLC-ICP-MS).
View Article and Find Full Text PDFJ Hazard Mater
August 2025
Henan Key Laboratory of Rice Molecular Breeding and High Efficiency Production / Collaborative Innovation Center of Henan Grain Crops / Henan Center of Crop Genomics and Rice Engineering, Henan Agricultural University, Zhengzhou 450046, PR China. Electronic address:
Arsenic (As) contamination severely limits plant growth and poses a significant threat to human health due to its accumulation in crops like rice. Phytochrome B (PhyB) regulates plant development and responses to abiotic stress, but its role in modulating As stress and regulating As accumulation in rice remains unclear. In this study, we examined the physiological and molecular responses of rice phytochrome B (OsPHYB) knockout (OsPHYB-KO) lines compared with wild-type (WT) plants under arsenite [As(III)] stress.
View Article and Find Full Text PDF