High recoverable energy density (Wrec ~ 2.1 J/cm3) was obtained in (0.7-x)BiFeO3-0.3BaTiO3-xBi(Zn2/3Nb1/3)O3 + 0.1wt% Mn2O3 (BF-BT-xBZN, x = 0.05) lead-free ceramics at < 200 kV/cm. Fast discharge speeds (< 0.5 μs), low leakage (~ 10-7 A/cm2) and small temperature variation in Wrec (~ 25% from 23 to 150 °C) confirmed the potential for these BiFeO3 based compositions for use in high energy density capacitors. A core-shell microstructure composed of a BiFeO3-rich core and BaTiO3-rich shell was observed by scanning and transmission electron microscopy which may contribute to the high value of energy density. In addition, for x = 0.005, a large electromechanical strain was observed with Spos = 0.463% and effective d33* ~ 424 pm/V, suggesting th...
Dielectric ceramics with high energy storage density and energy efficiency play an important role in...
Lead-free (1-x)BaTiO3-xBi(Mg1/2Zr1/2)O3 ((1-x)BT-xBMZ) ceramics with peroskite structure were synthe...
Ultrahigh discharge energy density (Wdis = 10.5 J cm−3) and efficiency (η = 87%) have been obtained ...
High recoverable energy density (Wrec ∼ 2.1 J/cm3) was obtained in (0.7 – x)BiFeO3-0.3BaTiO3-xBi(Zn2...
High recoverable energy density (<i>W</i><sub>rec</sub> ∼ 2.1 J/cm<sup>3</sup>) was obtained in (0.7...
An increasing number of new dielectrics are being reported for the development of next-generation ce...
Lead-free ceramics with high recoverable energy density (Wrec) and energy storage efficiency (η) are...
The critical role of electrical homogeneity in optimising electric-field breakdown strength (BDS) an...
2020 by the authors. Due to the enhanced demand for numerous electrical energy storage applications,...
BaTiO3-based materials show great promise for energy storage capacitors, but their low breakdown str...
Ceramic dielectrics are reported with superior energy storage performance for applications, such as ...
With the development of renewable energy sources such as wind and solar to potentially replace the t...
In step with the development of energy storage technology and the power electronic industry, dielect...
The Gerson–Marshall (1959) relationship predicts an increase in dielectric breakdown strength (BDS) ...
In this work, Mn-doped 0.9BaTiO3-0.1Bi(Mg2/3Nb1/3)O3 ceramics were prepared by the conventional soli...
Dielectric ceramics with high energy storage density and energy efficiency play an important role in...
Lead-free (1-x)BaTiO3-xBi(Mg1/2Zr1/2)O3 ((1-x)BT-xBMZ) ceramics with peroskite structure were synthe...
Ultrahigh discharge energy density (Wdis = 10.5 J cm−3) and efficiency (η = 87%) have been obtained ...
High recoverable energy density (Wrec ∼ 2.1 J/cm3) was obtained in (0.7 – x)BiFeO3-0.3BaTiO3-xBi(Zn2...
High recoverable energy density (<i>W</i><sub>rec</sub> ∼ 2.1 J/cm<sup>3</sup>) was obtained in (0.7...
An increasing number of new dielectrics are being reported for the development of next-generation ce...
Lead-free ceramics with high recoverable energy density (Wrec) and energy storage efficiency (η) are...
The critical role of electrical homogeneity in optimising electric-field breakdown strength (BDS) an...
2020 by the authors. Due to the enhanced demand for numerous electrical energy storage applications,...
BaTiO3-based materials show great promise for energy storage capacitors, but their low breakdown str...
Ceramic dielectrics are reported with superior energy storage performance for applications, such as ...
With the development of renewable energy sources such as wind and solar to potentially replace the t...
In step with the development of energy storage technology and the power electronic industry, dielect...
The Gerson–Marshall (1959) relationship predicts an increase in dielectric breakdown strength (BDS) ...
In this work, Mn-doped 0.9BaTiO3-0.1Bi(Mg2/3Nb1/3)O3 ceramics were prepared by the conventional soli...
Dielectric ceramics with high energy storage density and energy efficiency play an important role in...
Lead-free (1-x)BaTiO3-xBi(Mg1/2Zr1/2)O3 ((1-x)BT-xBMZ) ceramics with peroskite structure were synthe...
Ultrahigh discharge energy density (Wdis = 10.5 J cm−3) and efficiency (η = 87%) have been obtained ...