Characterization and application of fluorescent carbon NANODOTS from dragon fruit peel as probes for detection of metal ions

IF 4.2 Q2 CHEMISTRY, MULTIDISCIPLINARY
Zakarias Seba Ngara , Refli , Redi Kristian Pingak , Minsyahril Bukit , Bernandus , Jhonson Tarigan , Reiner Ishaq Lerrick
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Abstract

In this work, we demonstrate the production of highly fluorescent carbon nanodots (C-dots) from dragon fruit peel using carbonization method. The as-prepared C-dots have been characterized and applied as probes to detect zinc (Zn2+) ions. The characterization of the as-produced C-dots was conducted through the measurement of their absorption (Abs), photoluminescence (PL), and FTIR spectra before and after synthesis with Zn2+ ions, X-ray diffraction (XRD) patterns and transmission electron microscopy (TEM) image. The Abs spectrum of these C-dots demonstrated two Abs peaks at 250 and 292 nm corresponding with π → π* and n → π* transitions, respectively. The appearance of these two Abs peaks confirmed the formation of the C-dots from dragon fruit peel in ethanol solution. By using an excitation wavelength of 350 nm, the PL peak at 434 nm corresponds to the blue emission color of typical C-dots. Thus, the FTIR spectrum strongly displayed OH and CO bonds as hydroxyl and carbonyl groups on the surface of the C-dots, respectively. The characterization of XRD patterns and TEM image displayed an amorphous state and dispersed spherical shape of C-dots, respectively. Fortunately, the PL intensity of these C-dots quenched after coordination with Zn2+ ions with the enhancement of the concentration of Zn2+ ions. The quenching of the PL intensity of these C-dots through Zn2+ chelation demonstrated their sensing system up to the detecting limit of 3.2 μM.

Abstract Image

火龙果皮纳米碳荧光探针的表征及应用
在这项工作中,我们展示了用炭化方法从火龙果皮生产高荧光碳纳米点(C-dots)。对制备的c点进行了表征,并应用于锌离子的探测。通过测量合成前后的吸收(Abs)、光致发光(PL)和FTIR光谱(Zn2+)、x射线衍射(XRD)图和透射电子显微镜(TEM)图对合成的c点进行表征。这些c点的Abs谱在250 nm和292 nm处分别对应于π→π*和n→π*跃迁。这两个ab峰的出现证实了火龙果皮在乙醇溶液中形成c点。采用350 nm激发波长,434 nm处的PL峰对应典型c点的蓝色发射色。因此,FTIR光谱强烈显示OH和CO键分别在C-dots表面作为羟基和羰基。XRD表征和TEM表征分别显示c点呈非晶态和分散球形。幸运的是,随着Zn2+离子浓度的增加,这些c点与Zn2+离子配位后的PL强度被淬灭。通过Zn2+螯合作用使c点的PL强度猝灭,证明了其传感系统可达到3.2 μM的检测限。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Results in Chemistry
Results in Chemistry Chemistry-Chemistry (all)
CiteScore
2.70
自引率
8.70%
发文量
380
审稿时长
56 days
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