Dielectric and Impedance Spectroscopic Investigation of (3-Nitrophenol) -2,4,6-Triamino-1,3,5- Triazine: An Organic Crystalline Material

IF 1.5 4区 物理与天体物理 Q3 PHYSICS, CONDENSED MATTER Advances in Condensed Matter Physics Pub Date : 2022-09-05 DOI:10.1155/2022/6002025
N. Kanagathara, S. Sankar, L. Saravanan, V. Natarajan, S. Elangovan
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Abstract

This article presents the investigation of dielectric and impedance spectroscopic properties of an organic product of 3-nitrophenol -2,4,6-tri amino-1,3,5- triazine (3NPTAT) single crystal, synthesized from melamine and m-nitrophenol. Comprehensive dielectric studies and charge transportation properties of the grown 3NPTAT crystal are given. The dielectric characteristics of the specimen were carried out in the frequency range of 50 Hz and 5 MHz at different temperatures, namely, 313 K, 333 K, 353 K, and 373 K. From the spectra, it was observed that the slowdown occurs at low temperatures, and the hopping mechanism takes place based on localized charge carriers. The impedance spectroscopic results indicate that there is a single relaxation process that occurs at high frequencies. The variation detected in the material properties of 3NPTAT corresponding to the temperature and frequency has been discussed in detail.
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有机晶体材料(3-硝基苯酚)-2,4,6-三氨基-1,3,5-三嗪的介电和阻抗光谱研究
本文研究了由三聚氰胺和间硝基苯酚合成的3-硝基苯酚-2,4,6-三氨基-1,3,5-三嗪(3NPTAT)单晶有机产物的介电和阻抗光谱性质。对生长的3NPTAT晶体的介电性质和电荷输运性质进行了全面的研究。在50 Hz和5 MHz的频率范围内,分别在313 K、333 K、353 K和373 K温度下,对试样的介电特性进行了研究。从光谱上观察到,这种减速发生在低温下,跳跃机制是基于局域载流子的。阻抗谱结果表明,在高频处存在单一的弛豫过程。详细讨论了检测到的3NPTAT材料性能随温度和频率的变化。
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来源期刊
Advances in Condensed Matter Physics
Advances in Condensed Matter Physics PHYSICS, CONDENSED MATTER-
CiteScore
2.30
自引率
0.00%
发文量
33
审稿时长
6-12 weeks
期刊介绍: Advances in Condensed Matter Physics publishes articles on the experimental and theoretical study of the physics of materials in solid, liquid, amorphous, and exotic states. Papers consider the quantum, classical, and statistical mechanics of materials; their structure, dynamics, and phase transitions; and their magnetic, electronic, thermal, and optical properties. Submission of original research, and focused review articles, is welcomed from researchers from across the entire condensed matter physics community.
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