| Literature DB >> 30791626 |
Fei Liu1,2, Shaojun Liu3,4, Xuejiao Cui5, Lijin Cheng6, Hao Li7, Jie Wang8, Weidong Rao9.
Abstract
The degree of Zn2+ and Ta5+ ions ordering could play an important role in the dielectric loss in Ba(Zn1/3Ta2/3)O₃ (BZT) ceramics. However, the influence of the grain size of Ba(B'1/3B″2/3)O₃ ceramics with nano or sub-micron grains on the ordering domains structure is still not clear. In the present paper, highly dense (~98%) BZT microwave dielectric ceramics with homogeneous sub-micron structure (~330 nm) were prepared through spark plasma sintering (SPS). High resolution transmission electron microscopy combined with X-ray diffraction (XRD)clearly showed that the B-site ordering structure of sintered BZT samples by SPS becomes the B-site long-range 1:2 ordering as annealing proceeds. In contrast, the short-range 1:2 ordering in non-annealed counterparts was also present, which was not detectable by XRD. The size of B-site ordering domains enlarged with annealing temperature. The sub-micron structure of sintered BZT ceramics by SPS remained stable at up to 1400 C; however, the size of B-site 1:2 ordering domain was more than five times larger, which led to a significant increase of the quality factor (Q·f) to 37,700 GHz from 15,000 GHz.Entities:
Keywords: B-site ordering; domains; microwave ceramics; quality factor; spark plasma sintering; sub-micron sized grains
Year: 2019 PMID: 30791626 PMCID: PMC6419716 DOI: 10.3390/ma12040638
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.623
Figure 1The size and size distribution of calcined powder.
Figure 2The microstructure of Ba(Zn1/3Ta2/3)O3 (BZT) ceramics by spark plasma sintering at different temperature for 10 min with 30 MPa applied pressure: (a) 1300 °C; (b) 1350 °C; (c) 1400 °C; (d) 1450 °C.
Figure 3The microstructure of sintered BZT ceramics by spark plasma sintering (SPS) and annealed BZT ceramics at different temperature: (a) the sintered sample without annealing; (b) 1200 °C-12 h; (c) 1250 °C-12 h; (d) 1300 °C-12 h; (e) 1350 °C-12 h; (f) 1400 °C-12 h.
Figure 4The grain size of sintered BZT ceramics by SPS at 1300 °C and annealed BZT ceramics at different temperatures.
Figure 5X-ray powder diffraction patterns of the calcined BZT powder and the sintered BZT ceramics by SPS.
Figure 6X-ray powder diffraction patterns (2θ=15°–23°) of sintered BZT ceramics by SPS at 1300 °C and annealed BZT ceramics at different temperatures. Superlattice reflections from 1:2 order are highlighted.
Figure 7The different intensities of electron diffraction patterns collected along the [110] zone axis for the ordered BZT ceramics: (a) the sintered sample without annealing; (b) the annealed sample at 1300 °C for 12 h; (c) the annealed sample at 1400 °C for 12 h.
Figure 8Lattice image viewed along the [110] zone axis for the ordered BZT ceramics: (a) the sintered sample without annealing; (b) the annealed sample at 1300 °C for 12 h; (c) the annealed sample at 1400 °C for 12 h.
Summary of high resolution transmission electron (HRTEM) results and microwave dielectric properties of Ba(Zn1/3Ta2/3)O3 prepared by spark plasma sintering and annealed at different temperature for 12 h.
| Anneal Temperature (°C) and Time (12 h) | Grain Size (nm) | Domain Size (nm) | |
|---|---|---|---|
| / | 340 | ~5 | 15,000 |
| 1200 °C | 350 | / | 18,300 |
| 1250 °C | 360 | / | 21,000 |
| 1300 °C | 550 | ~8 | 23,600 |
| 1350 °C | 650 | / | 30,100 |
| 1400 °C | 670 | >40 | 37,700 |