<?xml version="1.0" encoding="UTF-8"?><?xml-stylesheet type="text/xsl" href="static/style.xsl"?><OAI-PMH xmlns="http://www.openarchives.org/OAI/2.0/" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xsi:schemaLocation="http://www.openarchives.org/OAI/2.0/ http://www.openarchives.org/OAI/2.0/OAI-PMH.xsd"><responseDate>2026-09-19T03:47:42Z</responseDate><request verb="GetRecord" identifier="oai:openscholar.dut.ac.za:10321/3826" metadataPrefix="oai_dc">https://openscholar.dut.ac.za/server/oai/request</request><GetRecord><record><header><identifier>oai:openscholar.dut.ac.za:10321/3826</identifier><datestamp>2025-04-03T01:01:12Z</datestamp><setSpec>com_10321_5</setSpec><setSpec>col_10321_6</setSpec></header><metadata><oai_dc:dc xmlns:oai_dc="http://www.openarchives.org/OAI/2.0/oai_dc/" xmlns:dc="http://purl.org/dc/elements/1.1/" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xmlns:doc="http://www.lyncode.com/xoai" xsi:schemaLocation="http://www.openarchives.org/OAI/2.0/oai_dc/ http://www.openarchives.org/OAI/2.0/oai_dc.xsd">
   <dc:title>Development of CIELAB colour system for colorimetric detection of heavy metals in wastewater using metal nanoparticles</dc:title>
   <dc:creator>Shange, Sindisiwe Fortunate</dc:creator>
   <dc:contributor>Mdluli, Phumlane Selby</dc:contributor>
   <dc:contributor>Mbambo, Mbuso</dc:contributor>
   <dc:subject>Colorimetric analysis</dc:subject>
   <dc:subject>Heavy metals--Assaying</dc:subject>
   <dc:subject>Heavy metals--Toxicity testing--Equipment and supplies</dc:subject>
   <dc:subject>Sewage--Composition</dc:subject>
   <dc:subject>Metal nanoparticles</dc:subject>
   <dc:description>Thesis submitted in fulfilment of the requirements for the degree of Doctor of Philosophy in Chemistry in the Faculty of Applied Sciences at Durban University of Technology, 2021.</dc:description>
   <dc:description>This study presents a simple colorimetric assay that was used to develop gold nanoparticles&#xd;
(AuNPs) enabled optical sensor. The sensor was fabricated using 3-(p-tolyl)-2,3-&#xd;
dihydropyrazolo[3,4-b] indole-1(4H)-carbothioamide (TRPIDA_CH3) complex synthesized&#xd;
through one pot reaction of toluidine, thio-semi-carbazide and indole in the presence of indium&#xd;
chloride as a catalyst under reflux. The attained product was then characterized fully by Fourier&#xd;
Transform Infrared (FT-IR), 1H and 13C Nuclear Magnetic Resonance (NMR), Time of flight&#xd;
(Mass Spectroscopy (TOF-MS) and elemental analysis for selective detection of hexavalent&#xd;
chromium (Cr(VI)). Two well-separated Surface Plasmon Resonance (SPR) peaks were&#xd;
observed in the spectra at 520 nm and 645 nm, respectively. The introduction of Cr(VI) into&#xd;
TRPIDA_CH3-AuNPs solution resulted in a decrease of SPR intensity at 520 nm with an&#xd;
increase of the peak at 645 nm. ImageJ software version 1.8.0_172 was used to measure the&#xd;
colour dynamics between the reaction of TRPIDA_CH3-AuNPs and Cr(VI) for image&#xd;
processing. The CIE L*a*b* colour system was utilized to analyse the digital images obtained&#xd;
which were converted to CIE Yxy chromaticity diagram. The chromaticity diagram of gold&#xd;
nanoparticle TRPIDA_CH3 complex was in agreement with colour change as observed from&#xd;
RGB values after addition of different concentration of the chromium standards. The obtained&#xd;
recoveries for both tap and river water which was spiked with chromium ranged from 72 to&#xd;
101 % with a limit of detection (LOD) and limit of quantification (LOQ) of 0.14 and 0.47 µM,&#xd;
respectively. Nine possible interfering ions (Cr, Cu, Fe, Ni, Zn, Pb and Mn) were investigated&#xd;
and showed low detection, thus, indicating low interference with the analyte of choice.&#xd;
Additionally, a significant feature of this method is that it involves a simple technique&#xd;
exhibiting high selectivity to Cr(VI) over other heavy metal ions that were tested.&#xd;
The application of CIE L*a*b*/Yxy colour space based on the TRPIDA_CH3-AuNPs&#xd;
aggregation to quantify Cr(VI) in wastewater effluent was studied. The colorimetric sensor&#xd;
showed an excellent linear range of 0.01-100.0 µM (R2=0.9856). Additionally, the residual plot&#xd;
showed that residual errors were randomly distributed, meaning we should accept the results&#xd;
of a linear regression. The wastewater effluent samples were collected over a period of 10 days&#xd;
and each sample was analysed in triplicate for statistical purposes. The concentration in the&#xd;
collected wastewater effluent samples were in the range of 0.5-25.0 µM. Furthermore, the&#xd;
measured concentrations of Cr(VI) in wastewater effluent samples using the proposed&#xd;
colorimetric method agreed with those obtained when using the traditional 1,5-diphenyl carbazide (DPC) method. The DPC method also showed an excellent linear range of 10.0-100.0&#xd;
µg/L (R2=0.9955) with a residual plot showing random distribution of residual errors. The RGB&#xd;
colour coordinates of the TRPIDA_CH3-AuNPs with wastewater effluent were compared with&#xd;
one without TRPIDA_CH3-AuNPs to determine the effect of the TRPIDA_CH3-AuNPs on the&#xd;
water samples.&#xd;
Development of a Smartphone and spectrophotometric based systems for colorimetric&#xd;
detection of Cr(VI) using functionalized AuNPs supported by CIEL*a*b*/Yxy colour space&#xd;
and molecular dynamics was also conducted in this study. This demonstrated the comparative&#xd;
study of the application of smartphone as well as spectrophotometer as tools to detect colour&#xd;
variation of functionalized DPC-AuNPs. These tools were demonstrated for their potential use&#xd;
as a colorimetric device for detecting Cr(VI) in wastewater. Color Grab 3.6.1 app was used to&#xd;
capture and recognize colours from samples containing gold nanoparticles with different&#xd;
concentrations of chromium standards. The RGB values obtained were compared with those&#xd;
obtained from spectrophotometer. It was observed that DPC-AuNPs aggregated in the&#xd;
presence of Cr(VI), with clear colour change from pink to blue due SPR of AuNPs. This&#xd;
resulted in a decrease in the intensity of the SPR band at 520 nm and the formation of a new&#xd;
red-shifted band at 670 nm and a colour change from red to blue from UV-Visible spectra. The&#xd;
R colour coordinates decreased as Cr(VI) concentration was increased to 16 µM then a rapid&#xd;
decreased was noted between 18–25 µM and G and B colour coordinates followed the same&#xd;
trend. Colour difference (∆E) increased significantly as the Cr(VI) concentration was&#xd;
increased. A rapid decrease was noticed in hue angle between 16-25 µM while chroma&#xd;
decreased significantly as the Cr(VI) concentration increased. Molecular dynamics using gold&#xd;
cluster was used to simulate the aggregation process. The radial distribution [g(r)] was&#xd;
calculated from cluster models. The radial distribution of Cr-DPC complex was more than twofold than for Cr-AuNPs. This was associated with the aggregation of AuNPs leading to the&#xd;
appearance of blue colour of AuNPs solution which was also supported by the intensity&#xd;
obtained from Color Grab.&#xd;
The other case study presented herein is on the development of a simple and facile colorimetric&#xd;
method for the detection of lead (Pb(II)) ions using silver nanoparticles (AgNPs) functionalized&#xd;
with 1-methyl-6-phenyl-6, 7-dihydro-5H-indolo [3, 2-c] [1, 8] naphthyridine (TRPIDB_H)&#xd;
ligand. The synthesized AgNPs were characterized by UV-Vis, TEM and Dynamic Light&#xd;
Scattering (DLS). The UV–Vis spectrum displayed a local surface Plasmon resonance (LSPR)&#xd;
absorption with a peak maximum at 410 nm and TEM results image showed that the synthesised AgNPs were well dispersed in aqueous solution. The TRPIDB_H complex was&#xd;
synthesized through Povarov reaction [4+2] cycloaddition and yielded 80% of the product&#xd;
which was characterized by FT-IR, 1H and 13C NMR, TOF-MS. The Pb(II) ions induced&#xd;
aggregation of the TRPIDB_H-AgNPs in solution from 60-100 mg/L. This resulted in a colour&#xd;
change from yellow to reddish brown which was accompanied by the appearance of the second&#xd;
surface plasmon absorption peak at 505 nm.&#xd;
Moreover, further study reported herein focus on the development of a rapid and efficient&#xd;
colorimetric method for the detection of Mn(II) with high selectivity and sensitivity using 3-&#xd;
(4-hydroxy-3-methoxyphenyl)-2, 3-dihydropyrazolo [3, 4-b] indole-1(4H)-carbothioamide&#xd;
(TRPIDA_V) modified gold nanoparticles (TRPIDA_V-AuNPs). The TRPIDA_V-AuNPs&#xd;
aggregated upon the introduction of 2 mg/L, this led to a change in colour of the dispersed&#xd;
TRPIDA_V-AuNPs from red to blue and a decrease of the surface plasmon absorption intensity&#xd;
at 520 nm. The TRPIDA_V-AuNPs aggregated between 2-10 mg/L resulting in the formation&#xd;
of a second peak at 655 nm. The colorimetric detection showed high selectivity to Mn(II) ions&#xd;
and was not selective to other investigated metal ions as there was no aggregation induced upon&#xd;
addition of 2 mg/L of other metal ions. Furthermore, only Mn(II) ion resulted in colour change&#xd;
from wine red to blue and forming a second absorption peak at 655 nm. Additionally, the&#xd;
colorimetric detection system yielded a detection limit of 0.00691 mg/L showing excellent&#xd;
sensitivity towards Mn(II). The results obtained on the spiked river and tap water samples&#xd;
further confirmed that the TRPIDA_V-AuNPs colorimetric detection system is applicable for&#xd;
Mn(II).</dc:description>
   <dc:description>D</dc:description>
   <dc:date>2022-01-28T08:03:35Z</dc:date>
   <dc:date>2022-01-28T08:03:35Z</dc:date>
   <dc:date>2021</dc:date>
   <dc:type>Thesis</dc:type>
   <dc:identifier>https://hdl.handle.net/10321/3826</dc:identifier>
   <dc:identifier>https://doi.org/10.51415/10321/3826</dc:identifier>
   <dc:language>en</dc:language>
   <dc:format>153 p.</dc:format>
   <dc:format>application/pdf</dc:format>
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