Structure effect on intrinsic piezoelectricity in septuple-atomic-layer $\mathrm{MSi_2N_4}$ (M=Mo and W)
San-Dong Guo, Yu-Tong Zhu, Wen-Qi Mu, Lei Wang, Xing-Qiu Chen

TL;DR
This study uses ab initio calculations to explore how different structural phases affect the intrinsic piezoelectric properties of septuple-atomic-layer $ ext{MSi}_2 ext{N}_4$ (M=Mo, W) and related $ ext{MA}_2 ext{Z}_4$ monolayers, revealing phase-dependent piezoelectricity and the influence of element composition.
Contribution
It provides the first detailed analysis of structure-dependent piezoelectricity in $ ext{MSi}_2 ext{N}_4$ and $ ext{MA}_2 ext{Z}_4$ monolayers, highlighting the role of phase and element type in enhancing piezoelectric response.
Findings
All considered structures are indirect band gap semiconductors.
MoSi_2N_4 and WSi_2N_4 have similar structural dependence on piezoelectric coefficients.
P-containing $ ext{MA}_2 ext{Z}_4$ monolayers exhibit stronger piezoelectric polarization.
Abstract
The recently experimentally synthesized monolayer and (\textcolor[rgb]{0.00,0.00,1.00}{Science 369, 670-674 (2020})) lack inversion symmetry, which allows them to become piezoelectric. In this work, based on ab initio calculations, we report structure effect on intrinsic piezoelectricity in septuple-atomic-layer (M=Mo and W), and six structures ( (=1 to 6)) are considered with the same space group.It is found that (M=Mo and W) with (=1 to 6) all are indirect band gap semiconductors. Calculated results show that and monolayers have the same structural dependence on piezoelectric strain and stress coefficients ( and ), together with the ionic and electronic contributions to .Finally, we investigate the intrinsic…
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Taxonomy
TopicsMXene and MAX Phase Materials · 2D Materials and Applications · Metal and Thin Film Mechanics
