Journal of Inorganic Materials ›› 2022, Vol. 37 ›› Issue (4): 436-444.DOI: 10.15541/jim20210158
• RESEARCH ARTICLE • Previous Articles Next Articles
TANG Jieyin1,2(), WANG Gang3,4, LIU Cong1,2, ZOU Xuenong3,4, CHEN Xiaofeng1,2(
)
Received:
2021-03-12
Revised:
2021-04-08
Published:
2022-04-20
Online:
2021-04-30
Contact:
CHEN Xiaofeng, professor. E-mail: chenxf@scut.edu.cnAbout author:
TANG Jieyin (1989-), female, Master. E-mail: 1720175343@qq.com
Supported by:
CLC Number:
TANG Jieyin, WANG Gang, LIU Cong, ZOU Xuenong, CHEN Xiaofeng. Dentin Remineralization Induced by Micro-nano Bioactive Glass Spheres[J]. Journal of Inorganic Materials, 2022, 37(4): 436-444.
Sample | SiO2 : CaO : P2O5 (molar ratio) | DDA/g | TEOS/mL | |
---|---|---|---|---|
Theoretical | Measured | |||
MNBGs-1 | 80 : 16 : 4 | 87.637 : 12.363 : 0 | 3 | 8 |
MNBGs-2 | 86.289 : 13.696 : 0.015 | 6 | 16 | |
MNBGs-3 | 89.071 : 10.875 : 0.054 | 6 | 24 |
Table 1 Theoretical and measured chemical composition, reagent dosage of MNBGs with different particle sizes
Sample | SiO2 : CaO : P2O5 (molar ratio) | DDA/g | TEOS/mL | |
---|---|---|---|---|
Theoretical | Measured | |||
MNBGs-1 | 80 : 16 : 4 | 87.637 : 12.363 : 0 | 3 | 8 |
MNBGs-2 | 86.289 : 13.696 : 0.015 | 6 | 16 | |
MNBGs-3 | 89.071 : 10.875 : 0.054 | 6 | 24 |
Samples | C/% | O/% | Ca/% | P/% | Ca/P |
---|---|---|---|---|---|
Without etching | 0 | 65.77 | 20.26 | 13.97 | 1.45 |
With etching | 66.82 | 32.99 | 0.05 | 0.14 | 0.35 |
Table 2 Chemical components (molar percent) and Ca/P ratio on the surface of dentin before and after EDTA etching
Samples | C/% | O/% | Ca/% | P/% | Ca/P |
---|---|---|---|---|---|
Without etching | 0 | 65.77 | 20.26 | 13.97 | 1.45 |
With etching | 66.82 | 32.99 | 0.05 | 0.14 | 0.35 |
Fig. 3 SEM images of the dentin surface without (a) and with (b) EDTA-etching, magnified photo of dentin tubules (insert in (b)), and photo of bioactive glass paste (c)
Fig. 5 ATR-FTIR spectra of demineralized dentin surface before and after coating with MNBGP, and after rinsing with water (a) MNBGP-1; (b) MNBGP-2; (c) MNBGP-3
Fig. 6 SEM images of the surfaces of demineralized dentin slices without (a) (control) and with treatment by MNBGP-1 (b), MNBGP-2 (c), and MNBGP-3 (d) after soaking in AS for 1 d (a1-d1), 7 d (a2-d2), 14 d (a3-d3) and 28 d (a4-d4)
Fig. 7 SEM images of the longitudinal section of demineralized dentin samples without (a) (control) and with treatment by MNBGP-1 (b), MNBGP-2 (c), and MNBGP-3 (d) after soaking in AS for 1 d (a1-d1), 7 d (a2-d2), 14 d (a3-d3) and 28 d (a4-d4)
Fig. 8 EDS analyses of the surface of demineralized dentin slices without (a) (control) and with treatment by MNBGP-1 (b), MNBGP-2 (c), and MNBGP-3 (d) after soaking in AS for 28 d
Sample | Ca/% | P/% | Ca/P |
---|---|---|---|
Control | 2.49 | 1.82 | 1.37 |
MNBGP-1 | 16.64 | 11.69 | 1.42 |
MNBGP-2 | 18.37 | 12.97 | 1.42 |
MNBGP-3 | 6.16 | 6.12 | 1.01 |
Table 3 Chemical components ( molar percent) and Ca/P ratio in molar on the surface of remineralized dentin
Sample | Ca/% | P/% | Ca/P |
---|---|---|---|
Control | 2.49 | 1.82 | 1.37 |
MNBGP-1 | 16.64 | 11.69 | 1.42 |
MNBGP-2 | 18.37 | 12.97 | 1.42 |
MNBGP-3 | 6.16 | 6.12 | 1.01 |
Fig. 9 XRD patterns of the surface of intact dentin, demineralized dentin and slices without treatment (control) and being treated with MNBGP after being soaked in AS for 28 d
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