It is crucial to discover lead-free materials with ultrahigh recoverable energy density (Wrec) that can be employed in future pulse power capacitors. In this work, a high Wrec of 4.51 J/cm3 was successfully obtained in lead-free Nd-doped AgNb0.8Ta0.2O3 antiferroelectric ceramics at an applied electric field of 290 kV/cm. It is discovered that Nd doping paired with Nb-site vacancies could stabilize the antiferroelectric phase by lowering the temperatures of the M1–M2 and M2–M3 phase transitions, which leads to higher energy storage efficiency. Furthermore, Nd and Ta co-doping will contribute to the electrical homogeneity and low electrical conductivity, resulting in large breakdown strengths. Aliovalent doping in Ag-site with Nb-site vacanc...
Dielectric ceramic materials have been actively studied for advanced pulsed power capacitor applicat...
Antiferroelectric (AFE) ceramics based on Pb(Zr,Sn,Ti)O3 (PZST) have shown great potential for appli...
In this work, (1 [Formula: see text])(0.92NaNbO3–0.08BaTiO3)–[Formula: see text]Ca[Formula: see text...
It is crucial to discover lead-free materials with ultrahigh recoverable energy density (Wrec) that ...
It is crucial to discover lead-free materials with ultrahigh recoverable energy density ([Formula: s...
Uncovering lead-free materials with an exceptionally high recoverable energy density is vital for th...
The mechanisms underpinning high energy storage density in lead-free Ag1–3xNdxTayNb1-yO3 antiferroel...
Electrical field dependence of permittivity in (1 − x)AN-xBZN ceramics. Arrow directions down, up an...
Lead-free dielectric ceramics with high recoverable energy density are highly desired to sustainably...
Antiferroelectric materials that display double ferroelectric hysteresis loops are receiving increas...
Dielectric materials with high energy density have attracted much attention due to their potential a...
Ceramic dielectrics are reported with superior energy storage performance for applications, such as ...
© 2020 Author(s). The development of electronic materials for storing electrical energy is a thrivin...
AgNbO3 based antiferroelectric (AFE) ceramics have large maximum polarization and low remanent polar...
© 2020, The Author(s). Dielectric capacitors with high energy storage density (Wrec) and efficiency ...
Dielectric ceramic materials have been actively studied for advanced pulsed power capacitor applicat...
Antiferroelectric (AFE) ceramics based on Pb(Zr,Sn,Ti)O3 (PZST) have shown great potential for appli...
In this work, (1 [Formula: see text])(0.92NaNbO3–0.08BaTiO3)–[Formula: see text]Ca[Formula: see text...
It is crucial to discover lead-free materials with ultrahigh recoverable energy density (Wrec) that ...
It is crucial to discover lead-free materials with ultrahigh recoverable energy density ([Formula: s...
Uncovering lead-free materials with an exceptionally high recoverable energy density is vital for th...
The mechanisms underpinning high energy storage density in lead-free Ag1–3xNdxTayNb1-yO3 antiferroel...
Electrical field dependence of permittivity in (1 − x)AN-xBZN ceramics. Arrow directions down, up an...
Lead-free dielectric ceramics with high recoverable energy density are highly desired to sustainably...
Antiferroelectric materials that display double ferroelectric hysteresis loops are receiving increas...
Dielectric materials with high energy density have attracted much attention due to their potential a...
Ceramic dielectrics are reported with superior energy storage performance for applications, such as ...
© 2020 Author(s). The development of electronic materials for storing electrical energy is a thrivin...
AgNbO3 based antiferroelectric (AFE) ceramics have large maximum polarization and low remanent polar...
© 2020, The Author(s). Dielectric capacitors with high energy storage density (Wrec) and efficiency ...
Dielectric ceramic materials have been actively studied for advanced pulsed power capacitor applicat...
Antiferroelectric (AFE) ceramics based on Pb(Zr,Sn,Ti)O3 (PZST) have shown great potential for appli...
In this work, (1 [Formula: see text])(0.92NaNbO3–0.08BaTiO3)–[Formula: see text]Ca[Formula: see text...