极化
材料科学
热导率
铁电性
压电
调制(音乐)
热的
大气温度范围
磁畴壁(磁性)
光电子学
复合材料
凝聚态物理
电介质
热力学
磁场
声学
物理
磁化
量子力学
作者
Ankit Negi,Hwang Pill Kim,Zilong Hua,Anastasia Timofeeva,Xuanyi Zhang,Yong Zhu,Kara Peters,Divine P. Kumah,Xiaoning Jiang,Jùn Líu
标识
DOI:10.1002/adma.202211286
摘要
Acting like thermal resistances, ferroelectric domain walls can be manipulated to realize dynamic modulation of thermal conductivity (k), which is essential for developing novel phononic circuits. Despite the interest, little attention has been paid to achieving room-temperature thermal modulation in bulk materials due to challenges in obtaining a high thermal conductivity switching ratio (khigh /klow ), particularly in commercially viable materials. Here, room-temperature thermal modulation in 2.5 mm-thick Pb(Mg1/3 Nb2/3 )O3 -xPbTiO3 (PMN-xPT) single crystals is demonstrated. With the use of advanced poling conditions, assisted by the systematic study on composition and orientation dependence of PMN-xPT, a range of thermal conductivity switching ratios with a maximum of ≈1.27 is observed. Simultaneous measurements of piezoelectric coefficient (d33 ) to characterize the poling state, domain wall density using polarized light microscopy (PLM), and birefringence change using quantitative PLM reveal that compared to the unpoled state, the domain wall density at intermediate poling states (0< d33
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