Teja P Ravi, Annamalai A Raja, Evangeline T Gecil, Srikanth Muthe, Agrawal Dinesh K, Jen Chun-Ping
Department of Manufacturing Engineering, School of Mechanical Engineering, VIT Vellore, Vellore 632014, India.
Centre for Innovative Manufacturing Research, VIT Vellore 632014, India.
Materials (Basel). 2021 Jan 7;14(2):273. doi: 10.3390/ma14020273.
The traditional solid-state reaction method was employed to synthesize bulk calcium cobaltite (Ca349/CaCoO) ceramics via ball milling the precursor mixture. The samples were compacted using conventional sintering (CS) and spark plasma sintering (SPS) at 850, 900, and 950 °C. The X-ray diffraction (XRD) pattern indicates the presence of the Ca349 phase for samples sintered at 850 and 900 °C. In addition, SPS fosters higher densification (81.18%) than conventional sintering (50.76%) at elevated sintering temperatures. The thermo-gravimetric analysis (TGA) and differential thermal analysis (DTA) performed on the precursor mixture reported a weight loss of ~25.23% at a temperature range of 600-820 °C. This current work aims to analyze the electrical properties (Seebeck coefficient (s), electrical resistivity (ρ), and power factor) of sintered samples as a function of temperature (35-500 °C). It demonstrates that the change in sintering temperature (conventional sintering) did not evince any significant change in the Seebeck coefficient (113-142 μV/K). However, it reported a low resistivity of 153-132 μΩ-m and a better power factor (82-146.4 μW/mK) at 900 °C. On the contrary, the SPS sintered samples recorded a higher Seebeck coefficient of 121-181 μV/K at 900 °C. Correspondingly, the samples sintered at 950 °C delineated a low resistivity of 145-158 μΩ-m and a better power factor (97-152 μW/mK).
采用传统的固态反应法,通过对前驱体混合物进行球磨来合成块状钙钴矿(Ca349/CaCoO)陶瓷。使用传统烧结(CS)和放电等离子烧结(SPS)在850、900和950℃下对样品进行压实。X射线衍射(XRD)图谱表明,在850和900℃烧结的样品中存在Ca349相。此外,在较高的烧结温度下,SPS比传统烧结(50.76%)具有更高的致密化程度(81.18%)。对前驱体混合物进行的热重分析(TGA)和差示热分析(DTA)表明,在600-820℃的温度范围内重量损失约25.23%。本研究旨在分析烧结样品的电学性能(塞贝克系数(s)、电阻率(ρ)和功率因数)随温度(35-500℃)的变化。结果表明,烧结温度(传统烧结)的变化并未使塞贝克系数(113-142μV/K)发生任何显著变化。然而,在900℃时,其电阻率较低,为153-132μΩ·m,功率因数较好(82-146.4μW/mK)。相反,SPS烧结的样品在900℃时记录到更高的塞贝克系数,为121-181μV/K。相应地,在950℃烧结的样品显示出较低的电阻率,为145-158μΩ·m,功率因数较好(97-152μW/mK)。