Biaxial strain tuned electronic structures and power factor in Janus Transition Metal Dichalchogenide monolayers
San-Dong Guo

TL;DR
This study investigates how biaxial strain affects the electronic structures and thermoelectric power factor of Janus TMD monolayers, revealing strain-induced band convergence and SOC effects that can enhance thermoelectric performance.
Contribution
It provides a systematic analysis of strain effects on Janus TMD monolayers' electronic and transport properties, highlighting the role of SOC and band convergence in thermoelectric enhancement.
Findings
SOC reduces power factor in certain p-type monolayers.
Strain modifies band gap and induces band convergence.
Optimal strain can enhance Seebeck coefficient and power factor.
Abstract
Tuning physical properties of transition metal dichalcogenide (TMD) monolayers by strain engineering have most widely studied, and recently Janus TMD monolayer MoSSe has been synthesized. In this work, we systematically study biaxial strain dependence of electronic structures and transport properties of Janus TMD MXY (M = Mo or W, X/Y = S, Se, or Te) monolayer by using generalized gradient approximation (GGA) plus spin-orbit coupling (SOC). It is found that SOC has a noteworthy detrimental influence on power factor in p-type MoSSe, WSSe, n-type WSTe, p-type MoSeTe and WSeTe, and has a negligible influence on one in n-type MoSSe, MoSTe, p-type WSTe and n-type MoSeTe. These can be understood by considering SOC effects on their valence and conduction bands. For all six monolayers, the energy band gap firstly increases, and then decreases, when strain changes from compressive one to tensile…
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