Engineering the structural and electronic phases of MoTe2 through W substitution
arXiv:1610.02480 · doi:10.1021/acs.nanolett.6b04814
Abstract
MoTe is an exfoliable transition metal dichalcogenide (TMD) which crystallizes in three symmetries, the semiconducting trigonal-prismatic phase, the semimetallic monoclinic phase, and the semimetallic orthorhombic structure. The phase displays a band gap of eV making it appealing for flexible and transparent optoelectronics. The phase is predicted to possess unique topological properties which might lead to topologically protected non-dissipative transport channels. Recently, it was argued that it is possible to locally induce phase-transformations in TMDs, through chemical doping, local heating, or electric-field to achieve ohmic contacts or to induce useful functionalities such as electronic phase-change memory elements. The combination of semiconducting and topological elements based upon the same compound, might produce a new generation of high performance, low dissipation optoelectronic elements. Here, we show that it is possible to engineer the phases of MoTe through W substitution by unveiling the phase-diagram of the MoWTe solid solution which displays a semiconducting to semimetallic transition as a function of . We find that only \% of W stabilizes the phase at room temperature. Photoemission spectroscopy, indicates that this phase possesses a Fermi surface akin to that of WTe.
10 paged, 5 pages, supplementary information not included