TY - JOUR
T1 - Enhanced Energy-Storage Density by Reversible Domain Switching in Acceptor-Doped Ferroelectrics
AU - Wang, Zhiyang
AU - Xue, Deqing
AU - Zhou, Yumei
AU - Wang, Nan
AU - Ding, Xiangdong
AU - Sun, Jun
AU - Lookman, Turab
AU - Xue, Dezhen
N1 - Publisher Copyright:
© 2021 American Physical Society.
PY - 2021/3
Y1 - 2021/3
N2 - By doping and aging in a ferroelectric, we realize a "reversible domain switching"that produces the desirable double hysteresis loop typical of an antiferroelectric with a small remnant polarization and consequently large storage densities. We use Ginzburg-Landau modeling to demonstrate our concept theoretically, and then our predictions are experimentally validated in BaTiO3-based single crystals (K+ doped) and ceramics (Nb5+ and Mn3+ doped), where we measure the enhancement of energy storage due to aging. Based on our experimental results, we estimate that our proposed strategy of doping and aging will result in storage energy density increases of 5 to 35% depending on the ferroelectric system. Thus, our proposed concept can be widely employed across the range of ferroelectric systems. Moreover, as energy dissipation and output efficiency are useful in energy-storage applications, we show how our hybrid doping with acceptor and donor is an efficient way to decrease dissipation and increase output efficiency. In terms of fatigue, we show that even after 106 cycles, the double hysteresis loop of the aged acceptor-doped ferroelectric material yields an energy-storage density and efficiency that is quite robust.
AB - By doping and aging in a ferroelectric, we realize a "reversible domain switching"that produces the desirable double hysteresis loop typical of an antiferroelectric with a small remnant polarization and consequently large storage densities. We use Ginzburg-Landau modeling to demonstrate our concept theoretically, and then our predictions are experimentally validated in BaTiO3-based single crystals (K+ doped) and ceramics (Nb5+ and Mn3+ doped), where we measure the enhancement of energy storage due to aging. Based on our experimental results, we estimate that our proposed strategy of doping and aging will result in storage energy density increases of 5 to 35% depending on the ferroelectric system. Thus, our proposed concept can be widely employed across the range of ferroelectric systems. Moreover, as energy dissipation and output efficiency are useful in energy-storage applications, we show how our hybrid doping with acceptor and donor is an efficient way to decrease dissipation and increase output efficiency. In terms of fatigue, we show that even after 106 cycles, the double hysteresis loop of the aged acceptor-doped ferroelectric material yields an energy-storage density and efficiency that is quite robust.
UR - https://www.scopus.com/pages/publications/85103450364
U2 - 10.1103/PhysRevApplied.15.034061
DO - 10.1103/PhysRevApplied.15.034061
M3 - 文章
AN - SCOPUS:85103450364
SN - 2331-7019
VL - 15
JO - Physical Review Applied
JF - Physical Review Applied
IS - 3
M1 - 034061
ER -