Synthesis of doped metal sulfide nanoparticles and their graphene reinforced nanohybrid for Pb(II) detection

Author:

Nazik Ghulam1,Aadil Muhammad2,Zulfiqar Sonia34,Hassan Warda5,Rahman Abdur6,Ibrahim Sobhy M.7,Naseem Khalida8,Sheikh Tahir Ali1,Akhtar Muhammad Nadeem1

Affiliation:

1. Institute of Chemistry , The Islamia University of Bahawalpur , Bahawalpur 63100 , Pakistan

2. Department of Chemistry, Rahim Yar Khan Campus , The Islamia University of Bahawalpur , Rahim Yar Khan , 64200 , Pakistan

3. Department of Chemistry, Faculty of Science , University of Ostrava , 30. Dubna 22 , Ostrava , 701 03 , Czech Republic

4. Department of Chemical and Biological Engineering , Iowa State University , Sweeney Hall, 618 Bissell Road , Ames , IA 50011 , USA

5. Department of Chemistry , The Women University Multan , Multan 60000 , Pakistan

6. Hefei National Laboratory for Physical Sciences and Microscale , Department of Chemistry , University of Science and Technology of China , Hefei , Anhui 230026 , China

7. Department of Biochemistry, College of Science , King Saud University , P.O. Box 2455 , Riyadh, 11451 , Saudi Arabia

8. Department of Basic and Applied Chemistry, Faculty of Science and Technology , University of Central Punjab , Lahore , Pakistan

Abstract

Abstract This paper explores different techniques to combine and improve the electrochemical sensing activities of the transition metal chalcogenide. The transition metal chalcogenide was doped with a suitable dopant to tune the band structure. Surface-assisted nanotechnology was used to enrich the superficial properties of the doped material. Lastly, the nanostructured doped materials were physically mixed with the graphene nanoplates (GNPs) to improve the flow of charges and the stability of the electrochemistry. The most electrically conductive and common metal sulfides in nature were chosen and prepared using a cheap and easy wet-route method. Crystal structure, chemical functionality, texture, composition, and thermal stability of undoped, doped, and composite materials were determined using physicochemical techniques such as X-ray diffraction, FTIR, SEM, EDX, and TGA. N2-adsorption-desorption, current-voltage, and impedance studies show that the composite sample’s surface area, electrical conductivity, and charge transport properties are superior to those of the undoped and doped samples. Regarding electrochemical applications, the composite material supported a glassy carbon electrode (Co–Cu2S/Gr@GCE) with excellent Pb(II) ion sensing activity. Moreover, the sensitivity, detection, and quantification limits of the modified electrode for Pb(II) detection were computed to be 88.68 μAμMcm−2, 0.091 μM, and 0.30 μM, respectively. The key features developed in the metal sulfide for its enhancement of electrochemical sensing activity are a high surface area, good conductivity, and fast electron transport by adopting nanotechnology, metal doping, and composite formation methodologies. Based on the results of the experiments, we can say that using multiple inputs to integrate the feature we want is an excellent way to make electrochemical systems for the next generation.

Publisher

Walter de Gruyter GmbH

Subject

Physical and Theoretical Chemistry

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