M.Phil / MS
Permanent URI for this collectionhttps://repository.cuilahore.edu.pk/handle/123456789/30
This collection archives the complete set of theses produced by students of the COMSATS University Islamabad, Lahore Campus.
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Item Synthesis and Characterization of PANI@cellulose Nanocomposite based Electrochemical Sensor for Environmental Remediation(Library Information Services COMSATS University Islamabad Lahore Campus, 2021-02-26) Nageen Shoukat; SP20-R06-010; Dr. Lubna Sherin; LHR TP 7564In this work, porous CuO-NiO/CA/PANI@Ni-foam sensor electrode has been designed using electospinning of CA/PANI composite on Ni-foam and then drop casting of CuO-NiO nanoparticles for detection of bisphenol A (BPA). 3D nickel foam has been chosen as electrode substrate for the direct growth of CA/PANI since Ni-foam has the advantages of excellent electrical conductivity, low cost, commercial availability, and porous structure, which provides large surface area for synthesis of nanofibers. This direct grown structure of CuO-NiO/CA/PANI@Ni-foam provides exceptional properties, such as reduced resistance, good electron transport, better adhesion stability and the excellent electrical conductivity as compared with non-direct synthesized electrode. Furthermore, a synergetic effect between CuO-NiO/CA/PANI and Ni-foam substrate enables the electrode for excellent sensing behavior towards BPA. The resultant CuO-NiO/CA/PANI@Ni-foam was analyzed using Fourier transform infrared spectroscopy, X-ray diffraction, Raman spectroscopy and scanning electron microscopy. Different electrochemical methods such as cyclic voltammetry, electrochemical impedance and differential pulse voltammetry were used for evaluation of synthesized sensor’s performance against BPA. Under optimal conditions, a linear response was observed against BPA and very low limit of detection as well (LOD=0.6uM). The CuO-NiO/CA/PANI@Ni-foam electrode demonstrated high reproducibility, consistency, and stability when used to detect BPA in water. The synthesized sensor's results demonstrated that it was extremely selective for the detection of BPA, suggesting that it could be useful in environmental based surveillances.Item Synthesis and Characterization of Polysaccharide-MOF Composites for Environmental Remediation(Library Information Services COMSATS University Islamabad Lahore Campus, 2021-02-25) Osama Kokab; SP20-R06-002; Dr. M. Shahid Nazir; LHR TP 7557MOFs are porous co-ordination networks/polymers which are highly crystalline substances with enhanced porosity, large surface area and improved overall attributes. These cages comprise of metal ion clusters which serve as the secondary building units (SBUs). Based on the coordination geometry of the organic linkers with metal ions; their structure and unique attributes can vary accordingly. Zeolitic Imidazole Framework-8 (ZIF-8) have improved structural porosity, flexibility, surface functionality and crystalline nature making it feasible to be utilized in various applications including the gas storage, CO2 adsorption, alkane/alkene separation and the catalysis. The biodegradability, higher surface area, and flexible binding interaction between the cellulose and ZIF-8 have made it an ideal choice for the various water remediation applications. The poor wet chemistry of the ZIF8-Cellulose composite is reported previously as the cellulose swells and loose dimensional stability in aqueous media. To overcome this problem, the ZIF8-APTES-Cellulose composite is synthesized which have high hydrophobicity and aqueous stability. The wet chemistry is tested by measuring the water contact angle which is 139.5°. The FTIR analysis shows a significant peak at 450cm-1 confirming the Zn-N bond along with peaks at 1550cm-1, 1480 cm-1, 1080cm-1, and 1020 cm-1 confirming the N-H bending of APTES, C=N vibration, C-N vibration of imidazole and C-O vibration of the composite respectively. Moreover, XRD analysis of the composite shows characteristic peak positions at 7.3°, 10.3°, 12.7°, 18°, 22.7° and 35.02° confirming the presence of ZIF8, APTES and cellulose. The dye degradation efficiency for the composite is explored at different conditions such as pH, dose of adsorbent, and concentration of dyes to achieve the optimized results. The maximum efficiency for the degradation of Congo Red dye is achieved 95% with 4mg dose of adsorbent at pH 4.0. This study opens up avenue for the dye remediation of wastewater.