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Published on: April 16, 2017
Tailoring morphological and electrical properties of nanoplate-ZnO varistors via sintering temperature
Huy Nguyen Trung1,2, Trang Nguyen Van1, Kieu Anh Vo Thi1
1Institute for Tropical Technology, Vietnam Academy of Science and Technology 18 Hoang Quoc Viet Street, Cau Giay District Hanoi City Vietnam dqtham@itt.vast.vn.
Abstract:
In this study, ZnO nanoplates (crystallite size: 100 nm, thickness: 15 nm) were synthesized via a hydrothermal route. Varistors were then fabricated using these ZnO nanoplates incorporated with five oxide dopants (Bi2O3, Sb2O3, MnO2, Co3O4, and Cr2O3) and sintered at 1000, 1100, and 1200 °C. A control varistor sample using micro-sized ZnO was also prepared. The effects of sintering temperature on the structural, mechanical, and electrical properties of ZnO-based varistors were systematically studied. Increasing the sintering temperature from 1000 °C to 1200 °C enlarged the grain size (1.7-6.8 μm), enhanced hardness (200-280 HV), and resulted in 17-19% shrinkage. At 1100 °C, the varistor achieved a balance of high nonlinearity (α = 48.5), low leakage current (J L = 9.7 μA cm-2), and high breakdown threshold (E b = 689 V mm-1). Impedance analysis showed a resistive-capacitive transition at higher frequencies, while grain boundary resistivity at low frequencies (106.5-108 Ω m) aligned with DC resistivity at the low applied electric fields. These results highlight the advantages of ZnO nanoplates in enhancing the electrical performance of varistors, making them promising for high-voltage applications.

