Related Experiment Video
Updated: Aug 16, 2025

06:48
Fluid-cell Raman Spectroscopy for operando Studies of Reaction and Transport Phenomena during Silicate Glass Corrosion
Published on: May 9, 2025
557
Structure and dissolution of silicophosphate glass
Kazuya Takada1, Tomoyuki Tamura2, Toshihiro Kasuga1
1Division of Advanced Ceramics, Nagoya Institute of Technology Gokiso-cho, Showa-ku Nagoya 466-8555 Japan kasuga.toshihiro@nitech.ac.jp.
RSC Advances
|December 21, 2022
Summary
This study reveals that phosphorus induces six-fold-coordinated silicon ([6]Si) in P2O5-SiO2-Na2O-CaO glasses, enhancing their stability. The presence of CaO and Na2O suppresses ion dissolution, making these glasses promising for therapeutic applications.
Area of Science:
- Materials Science
- Solid State Chemistry
- Biomaterials
Background:
- Phosphate-silicate glasses containing sodium and calcium oxides are explored for therapeutic ion-releasing applications.
- Understanding the structural role of silicon is crucial for tailoring glass properties.
Purpose of the Study:
- To investigate the coordination state of silicon (Si) in P2O5-SiO2-Na2O-CaO glasses.
- To correlate the structure, particularly the presence of six-fold-coordinated silicon ([6]Si), with glass dissolution behavior.
Main Methods:
- Classical molecular dynamics simulations and first-principles calculations were used to model glass structure.
- Experimental glass preparation involved substituting sodium oxide (Na2O) with calcium oxide (CaO).
- 31P and 29Si magic-angle-spinning-nuclear-magnetic-resonance (MAS-NMR) spectroscopy characterized the glass structure.
- Dissolution tests were performed in a tris-HCl buffer at 37 °C.
Main Results:
- The model predicted that phosphorus (P) induces [6]Si formation by elongating Si-O bonds, with [6]Si acting as a network former.
- [6]Si preferentially coordinated with phosphate tetrahedra (Q P 3).
- Experimental results showed an increase in Q P 3 and [6]Si with increasing Na2O content.
- Glass dissolution rates were suppressed by the coexistence of CaO and Na2O.
Conclusions:
- The formation of [6]Si, influenced by P and stabilized by Na+, plays a key role in the glass network.
- The reduced hydrolysis due to electron delocalization in [6]Si-coordinated Q P 3 units contributes to suppressed ion dissolution.
- These findings highlight the potential of P2O5-SiO2-Na2O-CaO glasses as stable therapeutic ion-releasing materials.

