Singhaal Richa, Tashi Lobzang, Nisa Zaib Ul, Ashashi Nargis Akhter, Sen Charanjeet, Devi Swaita, Sheikh Haq Nawaz
Department of Chemistry, University of Jammu Baba Sahib Ambedkar Road Jammu-180006 India
RSC Adv. 2021 May 27;11(32):19333-19350. doi: 10.1039/d1ra02910j.
This work reports an eco-friendly hydrothermal approach for the synthesis of hexagonal NaCeF:Tb/Eu nanophosphors. The phase, morphology and optical properties were characterized by Powder X-ray diffraction (PXRD), field emission scanning electron microscopy (FE-SEM), transmission electron microscopy (TEM), Fourier transform infrared (FT-IR) spectroscopy and photoluminescence (PL) spectroscopy respectively. Herein, the as-synthesized nanophosphor was functionalized with amine rich polyethylenimine (PEI) resulting in development of a luminescent nanoprobe bearing dual sensing functions for hazardous nitroaromatics and heavy metal ions. The strong photoluminescence emission of Eu ions was selectively quenched upon addition of toxic analytes at concentrations from 10 to 100 ppm due to complex formation between the analytes and PEI functionalized nanostructure. The synthesized nanomaterial shows sharp emission peaks at 493, 594, 624, 657 and 700 nm. Significantly, the peak at 594 nm shows a noticeable quenching effect on addition of toxic analytes to the aqueous solution of the nanocrystals. The nanophosphors are sensitive and efficient for the PA and Fe ion detection with an LOD of 1.32 ppm and 1.39 ppm. The Stern-Volmer (SV) quenching constant ( ) is found to be 2.25 × 10 M for PA and 3.8 × 10 M for Fe ions. The high value and low LOD suggest high selectivity and sensitivity of the nanosensor towards PA and Fe ions over other analytes. Additionally, a reduced graphene oxide and nanophosphor based nanocomposite was also synthesized to investigate the role of energy transfer involving delocalized energy levels of reduced graphene oxide in regulating the luminescence properties of the nanophosphor. It was observed that PEI plays central role in inhibiting the quenching effect of reduced graphene oxide on the nanophosphor.
本工作报道了一种用于合成六方相NaCeF:Tb/Eu纳米磷光体的环保水热法。分别通过粉末X射线衍射(PXRD)、场发射扫描电子显微镜(FE-SEM)、透射电子显微镜(TEM)、傅里叶变换红外(FT-IR)光谱和光致发光(PL)光谱对其相、形态和光学性质进行了表征。在此,合成的纳米磷光体用富含胺的聚乙烯亚胺(PEI)进行功能化,从而开发出一种对有害硝基芳烃和重金属离子具有双重传感功能的发光纳米探针。由于分析物与PEI功能化纳米结构之间形成络合物,当加入浓度为10至100 ppm的有毒分析物时,Eu离子的强光致发光发射被选择性猝灭。合成的纳米材料在493、594、624、657和700 nm处显示出尖锐的发射峰。值得注意的是,在纳米晶体水溶液中加入有毒分析物时,594 nm处的峰显示出明显的猝灭效应。该纳米磷光体对PA和Fe离子检测灵敏且高效,检测限分别为1.32 ppm和1.39 ppm。发现PA的斯特恩-沃尔默(SV)猝灭常数( )为2.25×10 M,Fe离子的为3.8×10 M。高 值和低检测限表明该纳米传感器对PA和Fe离子的选择性和灵敏度高于其他分析物。此外,还合成了一种基于还原氧化石墨烯和纳米磷光体的纳米复合材料,以研究涉及还原氧化石墨烯离域能级的能量转移在调节纳米磷光体发光性质中的作用。观察到PEI在抑制还原氧化石墨烯对纳米磷光体的猝灭效应中起核心作用。