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首页> 外文期刊>Physical chemistry chemical physics: PCCP >A theoretical strategy for pressure-driven ferroelectric transition associated with critical behavior and magnetoelectric coupling in organic multiferroics
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A theoretical strategy for pressure-driven ferroelectric transition associated with critical behavior and magnetoelectric coupling in organic multiferroics

机译:具有有机多法性临界行为和磁电耦合相关的压力驱动铁电转变的理论策略

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摘要

In organic multiferroics, the charge or spin coupled to the lattice induces lattice symmetry breaking, which is responsible for the ferroelectric (FE) transition. We propose a quantum spin model to describe the ferroelectricity of organic multiferroics, in which the pressure-driven spin-lattice coupling is controlled both by a jump function and a pressure power function. TheT-pphase diagram shows different scaling relationships at low and high pressure regions, respectively, which is in accordance with the experimental observation. It is found that the pressure can not only enhance the FE polarization, but also enhance the transition temperatureT(c)as well as the electrocaloric effect (ECE). The electrocaloric critical scaling laws are proposed to verify the order and universality of the FE transition based on the Banerjee and Franco's criteria. In addition, we propose a temperature mediated mechanism within an isentropic process based on the ECE combined with the pyromagnetic effect, together with multiple physically (magnetic field and pressure jointly) controlled means, to enhance the magnetoelectric coupling around room-temperature, which will provide thermodynamic and quantum controlled means for realizing multi-state logic memory.
机译:在有机多法层中,与晶格耦合的电荷或旋转引起晶格对称性断裂,这负责铁电(Fe)转变。我们提出了一种量子旋转模型来描述有机多法的铁电,其中通过跳跃功能和压力功率功能来控制压力驱动的旋转晶格耦合。 Thet-Pphase图分别在低压区域下显示了不同的缩放关系,这是根据实验观察的。发现压力不仅可以增强Fe偏振,还可以增强过渡温度(C)以及电热量(ECE)。建议基于Banerjee和Franco标准验证FE转换的订单和普遍性的电热量缩放法律。此外,我们提出了一种基于ECE与偏磁效应的常规术治疗内的温度介导机制,以及多个物理(磁场和压力共同)控制装置,以增强室温的磁电联轴器,这将提供用于实现多状态逻辑存储器的热力学和量子控制装置。

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