Defect-induced measurements of semi-organic ammonium hydrogen oxalate oxalic acid dihydrate single crystals using gamma irradiation

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Date

2022

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Taylor and Francis Ltd.

Abstract

The structural, optical, mechanical and electrical properties of pure and 5—20-kGy gamma-irradiated semi-organic single crystals of ammonium hydrogen oxalate oxalic acid dihydrate (NH<inf>4</inf>H<inf>3</inf>(C<inf>4</inf>O<inf>8</inf>).2H<inf>2</inf>O) are presented. The crystals were synthesized at room temperature using facile solvent evaporation technique. Powder XRD measurements indicate gradual enhancement in crystallinity and lattice defect annihilation for low radiation dosage. Radiation-induced increase in optical band gap (4.01–4.16 eV) indicates high damage threshold of the crystals. Quenching of photoluminescence is attributed to the lowering of surface defect density with radiation. The influence of gamma radiation on the functional vibrations of the crystals is studied using FTIR-Raman spectroscopy. Vickers microhardness measurements show gradual enhancement in crystal hardness with the increase in radiation. An increase in forward resistance with irradiation is observed from I–V measurements and is attributed to high transparency of the crystals. These results indicate the viability of NH<inf>4</inf>H<inf>3</inf>(C<inf>4</inf>O<inf>8</inf>) 2H<inf>2</inf>O crystals in potential space optoelectronic applications. © 2022 Informa UK Limited, trading as Taylor & Francis Group.

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Keywords

Crystallinity, Energy gap, Fourier transform infrared spectroscopy, Hydrogen, Irradiation, Oxalic acid, Photodegradation, Single crystals, Surface defects, Ammonium hydrogen oxalate oxalic acid dihydrate, Defect annihilation, Defects induced, Gamma irradiation, Measurements of, Mechanical and electrical properties, Optoelectronic applications, Oxalic acid dihydrate, Semi organic, Space optoelectronic application, Gamma rays

Citation

Radiation Effects and Defects in Solids, 2022, 177, 46304, pp. 928-942

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