Niu Haibo, Liu Yachao, Shi Jing, Wang Vei
Department of Physics, Xi'an Jiaotong University City College, Xi'an 710018, China.
Department of Applied Physics, School of Science, Xi'an University of Technology, Xi'an 710054, China.
Materials (Basel). 2022 Jun 22;15(13):4418. doi: 10.3390/ma15134418.
Two-dimensional (2D) materials have potential applications in nanoscale sensors and spintronic devices. Herein, motivated by experimental synthesis of a CrI3 monolayer possessing intrinsic magnetism and a Janus MoSSe monolayer with piezoelectricity, we propose a 2D Janus Cr2I3F3 monolayer as a multifunctional material exhibiting both piezoelectricity and ferromagnetism. Using density functional theory calculations, we systematically investigated the structural stability and the electronic, magnetic, and piezoelectric properties of the Janus Cr2I3F3 monolayer. We predicted that a vertical polarization of up to -0.155 × 10-10 C/m is induced in the Cr2I3F3 monolayer due to the breaking of symmetry. The origination mechanism of polarization was demonstrated in terms of a local dipole moment calculated by maximally localized Wannier functions. Meanwhile, it was found that a remarkable piezoelectric response can be produced under a uniaxial strain in the basal plane. The calculated piezoelectric coefficients of the Cr2I3F3 monolayer compare favorably with those of the frequently used bulk piezoelectric materials such as α-quartz and wurtzite AlN. Particularly, the 31 and 31 values of the Cr2I3F3 monolayer are nearly 10 times as large as that of Mo-based transition metal dichalcogenides. We also found that the magnitude of 31 mainly arises from the ionic contribution, while the electronic contribution can be nearly neglected. The considerable piezoelectric response combined with the intrinsic magnetism make the Janus Cr2I3F3 monolayer a potential candidate for novel multifunctional devices integrating both piezoelectric and spintronic applications.
二维(2D)材料在纳米级传感器和自旋电子器件中具有潜在应用。在此,受具有本征磁性的CrI3单层和具有压电性的Janus MoSSe单层的实验合成启发,我们提出二维Janus Cr2I3F3单层作为一种兼具压电性和铁磁性的多功能材料。使用密度泛函理论计算,我们系统地研究了Janus Cr2I3F3单层的结构稳定性以及电子、磁性和压电性质。我们预测,由于对称性破缺,Cr2I3F3单层中会诱导出高达 -0.155×10-10 C/m的垂直极化。通过由最大局域化Wannier函数计算的局域偶极矩来证明极化的起源机制。同时,发现在基面单轴应变下可产生显著的压电响应。计算得到的Cr2I3F3单层的压电系数与常用的块状压电材料如α-石英和纤锌矿型AlN的压电系数相比具有优势。特别是,Cr2I3F3单层的d31和d31值几乎是基于Mo的过渡金属二硫属化物的10倍。我们还发现d31的大小主要源于离子贡献,而电子贡献几乎可以忽略不计。可观的压电响应与本征磁性相结合,使Janus Cr2I3F3单层成为集成压电和自旋电子应用的新型多功能器件的潜在候选材料。