Related Experiment Video
Updated: May 5, 2026

Synthesis of Non-uniformly Pr-doped SrTiO3 Ceramics and Their Thermoelectric Properties
Published on: August 15, 2015
Raman, Dilatometric, and Dielectric Insights into Pr3+-Doped Pb-Sb Silicate Glasses toward Ion-Conducting Glass
Yeti Dana Rao1, Vandana Ravi Kumar1, Luka Pavić2
1Department of Physics, Acharya Nagarjuna University, Nagarjuna Nagar, Guntur 522 510, India.
Abstract:
This work reports new physical insights concerning the effect of red lead (Pb3O4) addition (10-35 mol %) on the structural, dilatometric, dielectric, and conductivity properties of Sb2O3-SiO2:Pr2O3 glasses for potential solid-state electrolyte applications. The melt-quenched glasses were scrutinized via Raman spectroscopy including a temperature-dependent evaluation revealing progressive polymerization of the glass network up to 30 mol % Pb3O4, followed by depolymerization at 35 mol %. Harmonizing with the structural evolution, thermal analysis by dilatometry showed that the thermal expansion coefficients/softening temperatures first decreased/increased from 10 to 30 mol % Pb3O4 and then increased/decreased for 35 mol % Pb3O4. The dielectric properties and ac conductivity were measured over 0.02-1 MHz and 20-240 °C. An increase in Pb3O4 from 10 to 30 mol % led to reduced dielectric constant and conductivity, which is attributed to a more compact and polymerized structure that limits ion mobility. Here, conduction is primarily polaronic, supported by mixed-valence Pb2+/Pb4+ and Sb3+/Sb5+ ions. At 35 mol % Pb3O4, network depolymerization introduced nonbridging oxygens and structural disorder, enhancing the free volume and ion migration pathways. Consequently, ionic conduction, particularly of Pb2+, becomes dominant, significantly boosting the conductivity. Although Pb2+ ions are relatively immobile compared to Li+ or Na+, the insights gained offer a foundational understanding and guide the development of similar glass systems doped with lighter and more mobile alkali ions for practical battery applications.
Related Concept Videos
Ionic Association
Theory of Strong Electrolytes

