Electrical transport properties driven by unique bonding configuration in gamma-GeSe
arXiv:2304.06954 · doi:10.1021/acs.nanolett.2c04425
Abstract
Group-IV monochalcogenides have recently shown great potential for their thermoelectric, ferroelectric, and other intriguing properties. The electrical properties of group-IV monochalcogenides exhibit a strong dependence on the chalcogen type. For example, GeTe exhibits high doping concentration, whereas S/Se-based chalcogenides are semiconductors with sizable bandgaps. Here, we investigate the electrical and thermoelectric properties of gamma-GeSe, a recently identified polymorph of GeSe. gamma-GeSe exhibits high electrical conductivity (~106 S/m) and a relatively low Seebeck coefficient (9.4 uV/K at room temperature) owing to its high p-doping level (5x1021 cm-3), which is in stark contrast to other known GeSe polymorphs. Elemental analysis and first-principles calculations confirm that the abundant formation of Ge vacancies leads to the high p-doping concentration. The magnetoresistance measurements also reveal weak-antilocalization because of spin-orbit coupling in the crystal. Our results demonstrate that gamma-GeSe is a unique polymorph in which the modified local bonding configuration leads to substantially different physical properties.
References in corpus (7)
- Transport Properties of Topological Insulators: Band Bending, Bulk Metal-to-Insulator Transition, and Weak Anti-Localization
- Recent Advances in Two-Dimensional Metal Monochalcogenides
- High-Pressure Synthesis and Characterization of -GeSe - A Semiconductor with Six-Rings in an Uncommon Boat Conformation
- Evidence of surface transport and weak anti-localization in single crystal of Bi2Te2Se topological insulator
- Experimental formation of monolayer group-IV monochalcogenides
- Highly Modulated Dual Semimetal and Semiconducting Gamma-GeSe with Strain Engineering
- Quasiparticle band structures, spontaneous polarization, and spin-splitting in noncentrosymmetric few-layer and bulk -GeSe