| Literature DB >> 31405198 |
Jie Liu1, Jianghao Liu2, Yuan Zeng1, Haijun Zhang3, Zhi Li1.
Abstract
A molten-salt and microwave co-facilitated boro/carbothermal reduction methodology was developed for low temperature high-efficiency synthesis of TiB2 powders. By using relatively inexpensive titanium oxide (TiO2), boron carbide (B4C) and amorphous carbon (C) as raw materials, single-phase TiB2 powders were prepared after 60 min at as low as 1150 °C or after only 20 min at 1200 °C. Such synthesis conditions were remarkably milder than those required by the conventional reduction routes using the identical reducing agent. As-synthesized TiB2 powders exhibited single-crystalline nature and well-grown hexagonal-platelet-like morphology. The achievement of low temperature high-efficiency preparation of high-quality TiB2 microplatelets in the present work was mainly attributable to the synergistic effects of molten-salt medium and microwave heating.Entities:
Keywords: TiB2; hexagonal microplatelet; microwave heating; molten-salt synthesis
Year: 2019 PMID: 31405198 PMCID: PMC6719016 DOI: 10.3390/ma12162555
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.623
Batch Compositions and Processing Parameters for Manufacturing TiB2 Powders by the MSM-BCTR method.
| Sample No. | Molar Ratio | Heating Mode | Temperature (°C) | Dwelling Time (min) | Salt Medium | ||
|---|---|---|---|---|---|---|---|
| TiO2 | B4C | C | |||||
| MSMBC-1 | 1.0 | 0.8 | 1.5 | MWH † | 1150 | 20 | NaCl/KCl |
| MSMBC-2 | 1.0 | 0.8 | 1.5 | MWH | 1150 | 60 | NaCl/KCl |
| MSMBC-3 | 1.0 | 0.8 | 1.5 | MWH | 1200 | 0 | NaCl/KCl |
| MSMBC-4 | 1.0 | 0.8 | 1.5 | MWH | 1200 | 20 | NaCl/KCl |
| MSMBC-5 | 1.0 | 0.8 | 1.5 | CH† | 1200 | 20 | NaCl/KCl |
| MSMBC-6 | 1.0 | 0.8 | 1.5 | MWH | 1200 | 20 | – |
| MSMBC-7 | 1.0 | 0.7 | 1.5 | MWH | 1200 | 20 | NaCl/KCl |
† MWH and CH denote microwave heating and conventional heating, respectively.
Figure 1Phase formation in samples prepared by MSM-BCTR at 1150 °C for respectively 20 and 60 min.
Figure 2Phase formation in samples after MSM-BCTR treatments at 1200 °C for 0 and 20 min, respectively.
Figure 3Phase formation in MSM-BCTR samples resultant from 20 min firing at 1200 °C, using solely microwave heating or molten-salt medium.
Figure 4XRD patterns of samples containing initially 40 and 60 mol% excessive B4C, after MSM-BCTR treatments at 1200 °C for 20 min.
Figure 5SEM images of (a) monodispersed TiB2 microplatelet and (b) interlaced TiB2 microplatelets, (c) corresponding EDS results of TiB2 microplatelets, (d) a lower magnification SEM image with EDS mappings of (e) Ti element and (f) B element prepared via MSM-BCTR at 1200 °C for 20 min. (Au and Al peaks in Figure 5b were from the gold coating and aluminum foil used for enhancing electrical conductivity of the powder sample.)
Figure 6(a) Low-magnification TEM image and (b) SAED pattern of a representative TiB2 microplatelet in the sample prepared via MSM-BCTR at 1200 °C for 20 min, and (c) high-resolution TEM image taken in the area defined by the red circle in (a).