AI Article Synopsis

  • A ZrAl-GNS MAX phase ceramic was developed using a low-cost, pressureless sintering method at temperatures of 1000, 1150, and 1300 °C, with the optimal results achieved at 1150 °C.
  • Key characterization techniques such as X-ray diffraction and electron microscopy confirmed a high purity of the ceramic with a significant 49.0% yield of the ZrAl-GNS phase and notable changes in surface area and porosity when graphene nanosheets were included.
  • The study explored the electrical properties of the ceramic, finding improvements in capacitance and phase angle, which could enhance its suitability for various electronic applications.

Article Abstract

A unique ZrAl-GNS MAX phase ceramic supported nanographene sheet was prepared using a cost-effective pressureless sintering technique under relatively low temperature. An experimental investigation was conducted to explore the lattice parameters using different temperatures, such as 1000, 1150, and 1300 °C. To characterize the crystal structure of the MAX phase ceramic, X-ray diffraction, field emission scanning electron microscopy imaging, energy-dispersive X-ray spectroscopy (EDX), high-resolution transmission electron microscopy (HRTEM), and selected area diffraction (SAED) were utilized. The results revealed that the pressureless sintering technique was successfully utilized to synthesize the ZrAl-GNS MAX phase ceramic under 1150 °C with a low impurity ratio of secondary phases such as ZrAL, ZrAL, and ZrC components. The high percentage of the ZrAl-GNS MAX phase ceramic was obtained at 49.0% at 1150 °C compared with different temperatures. The BET surface area (S), pore volume, and pore size were also investigated. The S of the prepared ZrAl-GNS MAX phase was increased to 30% using graphene nanosheet, while the porosity was highly decreased to 8% from its original value. The electrical properties were also studied in this research for potential applications, such as the absolute value of impedance (Z), absolute value of admittance (Y), induction (L), capacitance (C), resistance (R), conductance (G), susceptibility (B), and phase angle (ϴ). It was found that the capacitance and the phase angle were improved using the prepared ZrAl-GNS MAX phase ceramic, depending on the frequencies. The results presented here may facilitate the improvements in the features of the MAX phase type of ZrAl-GNS-enhanced one-layer nanographene sheet for electrical applications ceramic.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10760547PMC
http://dx.doi.org/10.55730/1300-0527.3577DOI Listing

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