Superior Energy Storage Density and Giant Negative Electrocaloric Effects in (Pb 0.98La 0.02)(Zr, Sn)O 3 Antiferroelectric Ceramics

Pengfei Zhao, Shibin Wang, Hui Tang, Xiaodong Jian, Xiaobo Zhao, Yingbang Yao, T. Tao, B. Liang, Shengguo Lu
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引用次数: 2

Abstract

Antiferroelectric materials are demanded in energy storage and solid-state cooling devices due to their distinct hysteresis loops and phase transition behaviors. In this work, (Pb0.98La0.02)(ZrxSn1-x)0.995O3 (PLZSx) antiferroelectric bulk ceramics with x=0.45-0.60 were prepared via the conventional solid-state reaction approach. The recoverable energy storage density of 4.8 J cm-3 and energy storage efficiency of 82.5% were procured in PLZS0.6 ceramics. In addition, the hysteresis loops were measured over a broad range of temperature/electric field and the electrocaloric effects were calculated using the Maxwell relation. The linear parts occurred in the polarization – electric field (P-E) hysteresis loop were fitted, and a power function of Em with m>2 for antiferroelectrics, while m<2 for normal ferroelectrics and relaxor ferroelectrics were procured. A giant negative electrocaloric effect (ΔT=-10.2 K) was also obtained at an operating temperature of 383 K and 20 MV m-1.
(Pb 0.98La 0.02)(Zr, Sn) o3反铁电陶瓷的优越储能密度和巨大负热效应
由于反铁电材料具有明显的磁滞回线和相变特性,因此在储能和固态冷却器件中需要反铁电材料。本文采用常规固相反应法制备了x=0.45-0.60的(Pb0.98La0.02)(ZrxSn1-x) 0.9950 o3 (PLZSx)反铁电体陶瓷。PLZS0.6陶瓷的可回收储能密度为4.8 J cm-3,储能效率为82.5%。此外,在较宽的温度/电场范围内测量了磁滞回线,并利用麦克斯韦关系计算了电热效应。拟合极化电场(P-E)磁滞回线中的线性部分,得到反铁电体Em的幂函数m>2,而正常铁电体和弛豫铁电体Em的幂函数m<2。在383 K和20 MV m-1的工作温度下,也获得了巨大的负热效应(ΔT=-10.2 K)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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