Energy Research Centre, Panjab University, Chandigarh, India.
Energy Research Centre, Panjab University, Chandigarh, India; Institute of Nano Science and Technology, Mohali, Punjab, India.
J Hazard Mater. 2022 Feb 15;424(Pt D):127722. doi: 10.1016/j.jhazmat.2021.127722. Epub 2021 Nov 20.
Besides presence of heavy metals, especially arsenic in water bodies, northern India is striving to obliterate crop residue, which is otherwise burnt to make the fields ready for subsequent crop, causing acute air pollution. Through this study, an effort has been made to utilize wheat-straw cellulose to develop inexpensive and efficacious sensing cum annihilation system for deleterious arsenite ions As(III) in water by grafting a novel fluorophore, 3-bromofluoranthene on cellulose (BF@CFs). BF@CFs were characterized for structural, morphological and thermal properties using FTIR, XRD, TGA, FESEM, EDS and TEM, which confirmed the successful insertion of fluoranthene molecule on cellulose while preserving its crystalline nanofibrous structure. Fluorescent studies indicated strong affinity of BF@CFs towards arsenite ions exhibiting "turn on" fluorescence response attributed to inhibition of photo induced electron transfer (PET) and metal ion chelation with a limit of detection of 2.8 ng L, lower than WHO prescribed limit of 10 μg L. Besides sensing, the porous fibrous network of BF@CFs exhibited good adsorption of As(III) ions with maximum adsorption of 171.2 μg g at 35 min under optimized conditions. BF@CFs displayed 95.2% removal efficiency with 2 μg L concentration of As (III) ions at room temperature and neutral pH observed by atomic absorption spectrophotometer coupled with hydride generation assembly (HG-AAS) measurements. BF@CFs retained adsorption 97.3% efficiency after five adsorption/ desorption cycles displaying excellent reusability and stability, strengthening its potential as dual functional sensor and adsorbent.
除了水体中重金属(尤其是砷)的存在外,印度北部还努力消除农作物残留,否则这些残留将被焚烧,以使田地为后续作物做好准备,从而造成严重的空气污染。通过这项研究,我们努力利用小麦秸秆纤维素开发一种廉价且有效的传感和消除系统,用于通过接枝新型荧光团 3-溴荧蒽来开发廉价且有效的传感和消除系统水中对人体有害的亚砷酸盐离子 As(III)。BF@CFs 进行了结构、形态和热性能的表征,使用 FTIR、XRD、TGA、FESEM、EDS 和 TEM,证实了成功地将芴分子插入纤维素,同时保留其结晶纳米纤维结构。荧光研究表明,BF@CFs 对亚砷酸盐离子具有很强的亲和力,表现出“开启”荧光响应,归因于光诱导电子转移(PET)的抑制和金属离子螯合,检测限为 2.8ng L,低于世界卫生组织规定的 10μg L。除了传感,BF@CFs 的多孔纤维网络对 As(III)离子表现出良好的吸附性能,在最佳条件下,35 分钟内最大吸附量为 171.2μg g。在室温下和中性 pH 下,BF@CFs 对 2μg L 浓度的 As (III)离子的去除效率达到 95.2%,通过原子吸收分光光度计与氢化物发生组件(HG-AAS)测量。BF@CFs 在五次吸附/解吸循环后保持 97.3%的吸附效率,显示出优异的可重复使用性和稳定性,这增强了其作为双功能传感器和吸附剂的潜力。