TY - JOUR
T1 - Raman, Dilatometric, and Dielectric Insights into Pr3+-Doped Pb–Sb Silicate Glasses toward Ion-Conducting Glass Electrolytes
AU - Rao, Yeti Dana
AU - Ravi Kumar, Vandana
AU - Pavić, Luka
AU - Bafti, Arijeta
AU - Jiménez, José A.
AU - Venkata Sekhar, Ayyagari
AU - Kapuśniak, Paulina
AU - Brągiel, Piotr
AU - Piasecki, Michal
AU - Veeraiah, Nalluri
N1 - Publisher Copyright:
© 2025 The Authors. Published by American Chemical Society
PY - 2025/10/2
Y1 - 2025/10/2
N2 - 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:Pr2O3glasses 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 % Pb3O4and 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 Pb3O4from 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.
AB - 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:Pr2O3glasses 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 % Pb3O4and 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 Pb3O4from 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.
UR - https://www.scopus.com/pages/publications/105017784128
U2 - 10.1021/acs.jpcb.5c05304
DO - 10.1021/acs.jpcb.5c05304
M3 - Article
C2 - 40983994
AN - SCOPUS:105017784128
SN - 1520-6106
VL - 129
SP - 10193
EP - 10205
JO - Journal of Physical Chemistry B
JF - Journal of Physical Chemistry B
IS - 39
ER -