| Literature DB >> 36080034 |
Nur Afifah Ahmad Nazri1, Nur Hidayah Azeman1, Mohd Hafiz Abu Bakar1, Nadhratun Naiim Mobarak2, Tg Hasnan Tg Abd Aziz3, Ahmad Rifqi Md Zain3, Norhana Arsad1, Yunhan Luo4, Ahmad Ashrif A Bakar1,5.
Abstract
An optical sensor-based localized surface plasmon resonance (LSPR) sensor was demonstrated for sensitive and selective chlorophyll detection through the integration of amino-functionalized carbon quantum dots (NCQD) and triangle silver nanoparticles (AgNPs). The additions of amino groups to the CQD enhance the detection of chlorophyll through electrostatic interactions. AgNPs-NCQD composite was fabricated on the surface of the silanized glass slide using the self-assembly technique. The experimental results showed that the AgNPs-NCQD film-based LSPR sensor detects better than AgNPs and AgNPs-CQD films with a good correlation coefficient (R2 = 0.9835). AgNPs-NCQD showed a high sensitivity response of 2.23 nm ppm-1. The detection and quantification limits of AgNPs-NCQD are 1.03 ppm and 3.40 ppm, respectively, in the range of 0.05 to 6 ppm. Throughout this study, no significant interference was observed among the other ionic species (NO2-, PO4-, NH4+, and Fe3+). This study demonstrates the applicability of the proposed sensor (AgNPs-NCQD) as a sensing material for chlorophyll detection in oceans.Entities:
Keywords: carbon quantum dots; chlorophyll; optical sensor; silver nanoparticles; surface plasmon resonance
Year: 2022 PMID: 36080034 PMCID: PMC9457568 DOI: 10.3390/nano12172999
Source DB: PubMed Journal: Nanomaterials (Basel) ISSN: 2079-4991 Impact factor: 5.719
Scheme 1Synthesis of NCQD.
Scheme 2Schematic diagram for fabrication process of AgNPs-NCQD composite.
Figure 1Experimental setup for detection of chlorophyll using LSPR setup.
Figure 2FTIR absorption of CQD (red) and NCQD (black).
Figure 3(a) UV-Vis absorbance and (b) photoluminescence excitation (red) and emission spectra (black) wavelength, respectively.
Figure 4HRTEM images scale bar of 50 nm of (a) AgNPs and (c) NCQD, and scale bar of 10 nm (b) AgNPs and (d) NCQD.
Figure 5The reflectance spectra of the LSPR sensor in the presence of chlorophyll solution with different concentrations ranging from 0.05 to 6 ppm of (a) AgNPs, (b) AgNPs-CQD, and (c) AgNPs-NCQD.
Figure 6The LSPR calibration curve of bare AgNPs, AgNPs-CQD, and AgNPs-NCQD.
The performance and correlation coefficient R2 of AgNPs, AgNPs-CQD, and an AgNPs–NCQD composite for chlorophyll detection.
| Compound Film | R2 | Sensitivity | Range | LOD | LOQ |
|---|---|---|---|---|---|
| AgNPs | 0.0168 | 0.40 | 0.05-6 | 79.21 | 264.05 |
| AgNPs-CQD | 0.3923 | 0.70 | 0.05-6 | 12.31 | 41.04 |
| AgNPs-NCQD | 0.9835 | 2.23 | 0.05-6 | 1.02 | 3.40 |
Figure 7Proposed chemical interaction scheme between NCQD with chlorophyll.
Figure 8Selectivity test of the assay toward chlorophyll including NO2−, PO4−, NH4+, and Fe3+.
Comparison of chlorophyll detections using various methods.
| Methods | Analytes | Sensitivity | Range (ppm) | LOD (ppm) | References |
|---|---|---|---|---|---|
| Fluorescence | Green algae | - | - | 1 | [ |
| Fluorescence | Chlorophyll-a | - | - | 0.001 | [ |
| Fluorescence | Chlorophyll-a | - | 0.025–0.15 | - | [ |
| Fluorescence | Chlorophyll-a | 1 mV 2.5 μg L−1 | 0–0.2 | - | [ |
| LSPR | Chlorophyll | 0.80 nm ppm−1 | 0.2–10 | 4.71 | [ |
| LSPR | Chlorophyll | 2.23 nm ppm−1 | 0.05–6 | 1.02 | This work |