TY - JOUR
T1 - Enhanced energy storage performance and phase stability in Sm-modified 0.90NaNbO3–0.10BiFeO3 ceramics
AU - Abbas, Muhammad
AU - Sufyan, Muhammad
AU - Ilyas, Mubashar
AU - Jan, Fahim Ullah
AU - Zhu, Xinying
AU - Hussain, Mukhtiar
AU - Wang, Dingxin
AU - Hussain, Kashif
AU - Kong, Xi
AU - Yang, Letao
AU - Huang, Houbing
N1 - Publisher Copyright:
© 2026 Elsevier Ltd. All rights are reserved, including those for text and data mining, AI training, and similar technologies.
PY - 2026/9/1
Y1 - 2026/9/1
N2 - NaNbO3 is a promising, emerging lead-free antiferroelectric (AFE) ceramic due to its high bandgap and low density. However, irreversible phase transitions often lead to significant hysteresis, resulting in an unfavorable trade-off between recoverable energy density (Urec) and energy efficiency (η). Herein, a composition-design route that balances polarizability, tolerance factor, and phase structure is proposed to stabilize a relaxor antiferroelectric R phase and enhance energy storage. First, BiFeO3 is optimized in NaNbO3 to obtain 0.90NaNbO3–0.10BiFeO3 with linear-like P-E loops but limited breakdown strength due to volatile Bi/Na-induced oxygen vacancies. Then, partial substitution of Bi3+ with Sm3+ improves electrostatic/structural stability via unit-cell contraction and stronger A-O bonding, suppressing vacancies and increasing insulation. The optimal composition, 0.90NaNbO3-0.10Bi0.8Sm0.2FeO3, exhibits an excellent Urec of 6.6 J cm−3 and an η of 80% at 500 kV cm−1, with good thermal stability from 25 °C to 125 °C and fatigue endurance up to 106 cycles. Therefore, this ceramic with a thoroughly optimized Bi3+/Sm3+ ratio is a potential candidate for practical energy storage applications.
AB - NaNbO3 is a promising, emerging lead-free antiferroelectric (AFE) ceramic due to its high bandgap and low density. However, irreversible phase transitions often lead to significant hysteresis, resulting in an unfavorable trade-off between recoverable energy density (Urec) and energy efficiency (η). Herein, a composition-design route that balances polarizability, tolerance factor, and phase structure is proposed to stabilize a relaxor antiferroelectric R phase and enhance energy storage. First, BiFeO3 is optimized in NaNbO3 to obtain 0.90NaNbO3–0.10BiFeO3 with linear-like P-E loops but limited breakdown strength due to volatile Bi/Na-induced oxygen vacancies. Then, partial substitution of Bi3+ with Sm3+ improves electrostatic/structural stability via unit-cell contraction and stronger A-O bonding, suppressing vacancies and increasing insulation. The optimal composition, 0.90NaNbO3-0.10Bi0.8Sm0.2FeO3, exhibits an excellent Urec of 6.6 J cm−3 and an η of 80% at 500 kV cm−1, with good thermal stability from 25 °C to 125 °C and fatigue endurance up to 106 cycles. Therefore, this ceramic with a thoroughly optimized Bi3+/Sm3+ ratio is a potential candidate for practical energy storage applications.
KW - Antiferroelectrics
KW - Dielectrics
KW - Energy storage capacitors
KW - Ferroelectrics
KW - NaNbO
UR - https://www.scopus.com/pages/publications/105040737938
U2 - 10.1016/j.est.2026.122991
DO - 10.1016/j.est.2026.122991
M3 - Article
AN - SCOPUS:105040737938
SN - 2352-152X
VL - 171
JO - Journal of Energy Storage
JF - Journal of Energy Storage
M1 - 122991
ER -