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Dawid Ciszewski

Publications and source records attributed to Dawid Ciszewski.

3 recordsLinked to original sources

Huge hole injection in tungsten dichalcogenide heterostructures without electric gating: a DFT study

Van der Waals heterostructures based on transition metal dichalcogenides, TMDs, provide a versatile platform for tailoring electronic properties through interlayer charge transfer, CT. Precise control of CT is essential because it directly determines the electronic structure and carrier concentration in atomically thin materials. Recently, the concept of a chemical capacitor has been proposed as a route to achieving exceptionally high carrier densities through CT across insulating separator layers. Here, we extend this concept to van der Waals heterostructures by investigating TMD hBN OX, oxidizer, systems using density functional theory, DFT. Following the screening of candidate TMDs and electron acceptors, XeF2 and KrF2 were identified as suitable acceptors exhibiting type III broken gap band alignment with WS2 and WSe2, respectively. Periodic DFT calculations of large supercells reveal CT corresponding to hole concentrations of up to 0.23 h+ and 0.35 h+ per W atom in WS2 hBN XeF2 and WSe2 hBN KrF2 heterostructures, respectively. The resulting charge redistribution demonstrates that noble gas fluorides provide an efficient route for noncontact engineering of carrier density in TMD heterostructures, offering a new strategy for tuning correlated electronic phases in two dimensional materials.

cond-mat.mtrl-sci

Chemical capacitor: its concept, functionalities and limits

We use density functional theory calculations to study simple but diverse stoichiometries within the novel chemical capacitor (CC) setup. We look at main effects occurring in this device, extremes of the physicochemical properties, and we study limits of applicability of this nano-object. In the cases studied, CC permits achieving charge transfer of up to 1.74 e per atom. Tuning of the charge transfer may be achieved via judicious choice of chemical constituents of the CC as well as use of a ferroelectric material as a separator layer. Different classes of chemical systems may be doped, including metallic and nonmetallic elements, and chemical compounds, in certain cases leading to the appearance of superconductivity.

cond-mat.mtrl-sci

Theoretical limits of electron and hole doping in single layer graphene from DFT calculations

Density functional theory calculations suggest a pronounced hole electron doping asymmetry in a single layer graphene. It turns out that a single graphene sheet can sustain doping levels up to 0.1 holes or up to a remarkably large 1.9 electrons per atom while maintaining dynamical [phonon] stability. Estimates of the superconducting critical temperature in the electron doped regime based on McMillans formula reveal two local maxima in the function of doping level which correlate with the local maxima of the electron phonon coupling constant.

cond-mat.supr-con