多铁性
铁电性
凝聚态物理
八面体
铁磁性
极化(电化学)
化学
电场
相变
过渡金属
结晶学
材料科学
晶体结构
物理
光电子学
电介质
物理化学
量子力学
生物化学
催化作用
作者
Kaihui Mao,Jinlei Zhang,Zijing Guo,Lizhe Liu,He Ma,Yi‐Ying Chin,Hong‐Ji Lin,Song‐Song Bao,Hangqing Xie,Run Yang,Zhao-Yang Jing,Jiancang Shen,Guoliang Yuan,Jian Chen,Peiheng Wu,Xinglong Wu
摘要
Layered metal–organic structures (LMOSs) as magnetoelectric (ME) multiferroics have been of great importance for realizing new functional devices in nanoelectronics. Until now, however, achieving such room-temperature and single-phase ME multiferroics in LMOSs have proven challenging due to low transition temperature, poor spontaneous polarization, and weak ME coupling effect. Here, we demonstrate the construction of a LMOS in which four Ni-centered {NiN2O4} octahedra form in layer with asymmetric distortions using the coordination bonds between diphenylalanine molecules and transition metal Ni(II). Near room-temperature (283 K) ferroelectricity and ferromagnetism are observed to be both spontaneous and hysteretic. Particularly, the multiferroic LMOS exhibits strong magnetic-field-dependent ME polarization with low-magnetic-field control. The change in ME polarization with increasing applied magnetic field μ0H from 0 to 2 T decreases linearly from 0.041 to 0.011 μC/cm2 at the strongest ME coupling temperature of 251 K. The magnetic domains can be manipulated directly by applied electric field at 283 K. The asymmetrical distortion of Ni-centered octahedron in layer spurs electric polarization and ME effect and reduces spin frustration in the octahedral geometry due to spin-charge-orbital coupling. Our results represent an important step toward the production of room-temperature single-phase organic ME multiferroics.
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