论文标题

cr $ _3 $ x $ _4 $(x = se,te)单层作为新平台,以实现强大的自旋滤波器,自旋二极管和旋转阀

Cr$_3$X$_4$ (X=Se, Te) monolayers as new platform to realize robust spin filter, spin diode and spin valve

论文作者

Wu, Qihong, Liu, Rongkun, Qiu, Zhanjun, Li, Dengfeng, Li, Jie, Wang, Xiaotian, Ding, Guangqian

论文摘要

二维铁磁(FM)半米是具有小规模和大容量的晚期自旋装置的有前途的候选者。在最新报告中,关于控制FM Cr $ _3 $ _4 $ nanosheet的综合报告,以探索SpinTronics中的潜在应用,我们设计了基于CR $ _3 $ _3 $ X $ _4 $(X = SE,TE)单层单层的Spintronic设备,并研究了他们的Spin Transporties。我们发现,在应用偏置电压时,Cr $ _3 $ te $ _4 $单层设备显示自旋过滤和双旋转二极管效果,而Cr $ _3 $ s $ _4 $单层是实现旋转阀的绝佳平台。不同的传输属性主要归因于半导体旋转频道,该旋转通道分别靠近cr $ _3 $ te $ _4 $和cr $ _3 $ _3 $ se $ _4 $单层。有趣的是,基于单层CR $ _3 $ SE $ _4 $设备的当前设备还显示负差分电阻效应(NDRE)和高磁场抗性比(高达2*10 $^3 $)。此外,我们发现在施加温度梯度而不是偏置电压时,发现热诱导的自旋滤波效果和cr $ _3 $ se $ _4 $交界处的ndre。这些理论发现突出了Cr $ _3 $ x $ _4 $(X = SE,TE)单层中的潜力,并提出了逼真的材料以实现纳米壁自旋设备。

Two-dimensional ferromagnetic (FM) half-metals are promising candidates for advanced spintronic devices with small-size and high-capacity. Motivated by recent report on controlling synthesis of FM Cr$_3$Te$_4$ nanosheet, herein, to explore the potential application in spintronics, we designed spintronic devices based on Cr$_3$X$_4$ (X=Se, Te) monolayers and investigated their spin transport properties. We found that Cr$_3$Te$_4$ monolayer based device shows spin filtering and dual spin diode effect when applying bias voltage, while Cr$_3$S$_4$ monolayer is an excellent platform to realize a spin valve. The different transport properties are primarily ascribed to the semiconducting spin channel, which is close to and away from the Fermi level in Cr$_3$Te$_4$ and Cr$_3$Se$_4$ monolayers, respectively. Interestingly, the current in monolayer Cr$_3$Se$_4$ based device also displays a negative differential resistance effect (NDRE) and a high magnetoresistance ratio (up to 2*10$^3$). Moreover, we found thermally induced spin filtering effect and NDRE in Cr$_3$Se$_4$ junction when applying temperature gradient instead of bias voltage. These theoretical findings highlight the potential of Cr$_3$X$_4$ (X=Se, Te) monolayers in spintronic applications and put forward realistic materials to realize nanosale spintronic device.

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