4.3 Article

Limitations of ab initio methods to predict the electronic-transport properties of two-dimensional semiconductors: the computational example of 2H-phase transition metal dichalcogenides

Journal

JOURNAL OF COMPUTATIONAL ELECTRONICS
Volume 20, Issue 1, Pages 49-59

Publisher

SPRINGER
DOI: 10.1007/s10825-020-01526-1

Keywords

Two-dimensional materials; Electron-phonon interactions; Deformation potentials; Density functional theory

Funding

  1. Semiconductor Research Corporation (SRC nCORE)
  2. Taiwan Semiconductor Manufacturing Company, Ltd (TSMC)

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Ab initio methods have become popular in evaluating intrinsic carrier transport properties in 2D semiconductors, but a large discrepancy exists in literature due to physical approximations and different 'flavors' of DFT used. The limitations of current ab initio methods in calculating carrier transport properties still need further research.
Over the last few years, ab initio methods have become an increasingly popular tool to evaluate intrinsic carrier transport properties in 2D semiconductors. The lack of experimental information, and the progress made in the development of DFT tools to evaluate electronic band structures, phonon dispersions, and electron-phonon scattering matrix-elements, have made them a favored choice. However, a large discrepancy is observed in the literature among the ab initio calculated carrier mobility in 2D semiconductors. Some of the discrepancies are a result of the physical approximations made in calculating the electron-phonon coupling constants and the carrier mobility. These approximations can be avoided by using a sophisticated transport model. However, despite using appropriate transport models, the uncertainty in the reported carrier mobility is still quite large in some materials. The major differences observed between these refined model calculations are the 'flavors' of DFT (exchange-correlation functional, pseudopotential, and the effect of spin-orbit coupling) used. Here, considering several monolayer 2H-TMDs as examples, we calculate the low- and high-field transport properties using different 'flavors' of DFT, and calculate a range for the electron mobility values. We observe that in some materials the values differ by orders of magnitude (For example, in monolayer WS2 the electron low-field mobility varies between 37 cm(2)/(Vs) and 767 cm(2)/(Vs)). We analyze critically these discrepancies, and try to understand the limitations of the current ab initio methods in calculating carrier transport properties.

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