Effects of Calcination Temperature on the Synthesis of One-Pot Sol-Gelled Barium Titanate Powder and Its Performance as an Endodontic Radiopacifier

Author:

Chang Pei-Jung12,Chen May-Show234,Cheng Chi-Han5,Chiou Yuh-Jing26ORCID,Chen Chin-Yi27ORCID,Su Cherng-Yuh128ORCID,Lin Chung-Kwei25ORCID

Affiliation:

1. Graduate Institute of Manufacturing Technology, National Taipei University of Technology, Taipei 106, Taiwan

2. Research Center of Digital Oral Science and Technology, College of Oral Medicine, Taipei Medical University, Taipei 110, Taiwan

3. School of Dentistry, College of Oral Medicine, Taipei Medical University, Taipei 110, Taiwan

4. Division of Prosthodontics, Department of Dentistry, Taipei Medical University Hospital, Taipei 110, Taiwan

5. School of Dental Technology, College of Oral Medicine, Taipei Medical University, Taipei 110, Taiwan

6. Department of Chemical Engineering and Biotechnology, Tatung University, Taipei 104, Taiwan

7. Department of Materials Science and Engineering, Feng Chia University, Taichung 407, Taiwan

8. Department of Mechanical Engineering, National Taipei University of Technology, Taipei 106, Taiwan

Abstract

Barium titanate (BaTiO3, BTO), conventionally used for dielectric and ferroelectric applications, has been assessed for biomedical applications, such as its utilization as a radiopacifier in mineral trioxide aggregates (MTA) for endodontic treatment. In the present study, BTO powders were prepared using the sol-gel process, followed by calcination at 400–1100 °C. The X-ray diffraction technique was then used to examine the as-prepared powders to elucidate the effect of calcination on the phase composition and crystalline size of BTO. Calcined BTO powders were then used as radiopacifiers for MTA. MTA-like cements were investigated to determine the optimal calcination temperature based on the radiopacity and diametral tensile strength (DTS). The experimental results showed that the formation of BTO phase was observed after calcination at temperatures of 600 °C and above. The calcined powders were a mixture of BaTiO3 phase with residual BaCO3 and/or Ba2TiO4 phases. The performance of MTA-like cements with BTO addition increased with increasing calcination temperature up to 1000 °C. The radiopacity, however, decreased after 7 days of simulated oral environmental storage, whereas an increase in DTS was observed. Optimal MTA-like cement was obtained by adding 40 wt.% 1000 °C-calcined BTO powder, with its resulting radiopacity and DTS at 4.83 ± 0.61 mmAl and 2.86 ± 0.33 MPa, respectively. After 7 days, the radiopacity decreased slightly to 4.69 ± 0.51 mmAl, accompanied by an increase in DTS to 3.13 ± 0.70 MPa. The optimal cement was biocompatible and verified using MG 63 and L929 cell lines, which exhibited cell viability higher than 95%.

Funder

National Science and Technology Council of Taiwan

Publisher

MDPI AG

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