Please use this identifier to cite or link to this item: http://hdl.handle.net/20.500.12188/33232
Title: SYNTHESIS, CHARACTERIZATION, AND VOLTAMMETRIC STUDY OF DIMETHYLAMMONIUM LEAD IODIDE PEROVSKITE
Authors: Sela, Jeta; Stojanov, Leon; Cheliku Ramadani, Besarta; Bukleski, Miha; Reka, Arianit; Dimitrovska-Lazova, Sandra; Mirceski, Valentin; Aleksovska, Slobotka
Keywords: dimethylammonium lead iodide; cyclic voltammetry; PXRD; vibrational spectroscopy; SEM-EDX
Issue Date: 26-Apr-2024
Abstract: In the last decade, the most investigated perovskite materials are the hybrid organic-inorganic per ovskites (HOIPs) due to their optoelectronic properties and possible application in the production of photovoltaics. This interest has led to an ongoing search for new HOIP variants, alongside thorough investigations of the properties of existing HOIPs. That is why our research in the field of organic-inorganic perovskites is aimed at the synthesis, characterization, and investigation of the electrochemical properties of dimethylammonium lead iodide (DMAPbI3) using voltammetric studies. A modified synthesis of DMAPbI3, differing slightly from the one described in the literature, was performed by combining stoichiometric amounts of lead iodide (PbI2) and dimethylammonium iodide (DMAI) dissolved in acetonitrile. After conducting controlled evaporation, a yellow crystalline powder of DMAPbI3 was obtained. The identity and purity of the obtained compound were confirmed by powder X-ray diffraction (PXRD), infrared (IR) and Raman spectroscopy, and scanning electron microscopy (SEM) with energy dispersive X-ray spectroscopy (EDX). Investigations on the electrochemical properties of DMAPbI3 by cyclic voltammetry were performed with dichloromethane (DCM) and tetrabutylammonium chloride (TBAC) as the electrolyte. A paraffin-impregnated graphite electrode (PIGE) was used as a working electrode, on which the perovskite microparticles were immobilized. The electrochemical activity of DMAPbI3 is recognized through an intense, broad, and irreversible anodic peak attributed to the oxidation of the constituents to different possible products and the decomposition of the perovskite structure.
URI: http://hdl.handle.net/20.500.12188/33232
DOI: 10.20450/mjcce.2024.2861
Appears in Collections:Faculty of Natural Sciences and Mathematics, Institute of Chemistry: Journal Articles

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