Controlling the H to T′ structural phase transition via chalcogen substitution in MoTe2 monolayers
文献信息
Joshua Young, Thomas L. Reinecke
New materials exhibiting reversible structural transitions are desired for a variety of applications, yet they are difficult to identify and stabilize. Monolayer MoTe2 has emerged as a good candidate as it displays a small energy difference between a semiconducting H and semimetallic T′ phase; however, switching between the two phases is difficult. Here, we propose using chalcogen alloying to overcome this challenge. Using first principles density functional theory calculations, we investigate 7 MoTe2−xXx alloys (X = N, P, Sb, F, Br, I, and Se) at three concentrations. We find that the energy difference between the H and T′ phases is dependent on the chemistry, size, and concentration of the dopant atom, providing significant control over the stability of the two phases. From the thermodynamic stability of these compounds, we show that several can be stabilized under the appropriate experimental conditions. We also find that P-alloying enhances the chemical reactivity of the basal plane towards a variety of adsorbates. Finally, we show that mechanical strain makes it is easier to stabilize and dynamically switch between the two states than in unalloyed MoTe2. Our results suggest that Te substitution in monolayer MoTe2 is a way to induce and control a reversible structural phase transition in this two-dimensional material system.
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Physical Chemistry Chemical Physics

Physical Chemistry Chemical Physics (PCCP) is an international journal co-owned by 19 physical chemistry and physics societies from around the world. This journal publishes original, cutting-edge research in physical chemistry, chemical physics and biophysical chemistry. To be suitable for publication in PCCP, articles must include significant innovation and/or insight into physical chemistry; this is the most important criterion that reviewers and Editors will judge against when evaluating submissions. The journal has a broad scope and welcomes contributions spanning experiment, theory, computation and data science. Topical coverage includes spectroscopy, dynamics, kinetics, statistical mechanics, thermodynamics, electrochemistry, catalysis, surface science, quantum mechanics, quantum computing and machine learning. Interdisciplinary research areas such as polymers and soft matter, materials, nanoscience, energy, surfaces/interfaces, and biophysical chemistry are welcomed if they demonstrate significant innovation and/or insight into physical chemistry. Joined experimental/theoretical studies are particularly appreciated when complementary and based on up-to-date approaches.














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