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Electronic Transport in Twisted Bilayer Tungsten Diselenides

This thesis investigates density waves (DWs) in twisted bilayer tungsten diselenide (tWSe₂) using a mean field approximation, with a focus on electron-electron interactions, and the system’s free energy at zero temperature. For the mean field approximation, the study initially employed same-spin nes...

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Main Author: Zaher, Walid
Format: Thesis
Published: AUC Knowledge Fountain 2026
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access_status_str Open Access
author Zaher, Walid
author_browse Zaher, Walid
author_facet Zaher, Walid
author_sort Zaher, Walid
collection Thesis
description This thesis investigates density waves (DWs) in twisted bilayer tungsten diselenide (tWSe₂) using a mean field approximation, with a focus on electron-electron interactions, and the system’s free energy at zero temperature. For the mean field approximation, the study initially employed same-spin nesting vectors, which were found insufficient to induce DWs formation. In contrast, when opposite-spin nesting vectors were used, DWs emerged, indicating that these vectors can support DWs formation. The plots were produced under perfect nesting conditions, where van Hove singularities (VHS) occur. At zero temperature, perfect nesting provides a complete picture of the upper limit of DWs formation, as DWs’ strength peaks under these conditions. The plots were in terms of the applied displacement field and electronic filling, showing both the order parameter (OP) and the modulation of the electronic charge density. The plots revealed that DWs’ strength increases as the system moves away from half-filling and weakens near half-filling. The modulation patterns showed that the DWs state comprises coupled charge density waves (CDWs) and spin density waves (SDWs), with no evidence of competition between them. These findings from the mean field approximation offer valuable insights for future experimental and theoretical investigations of DWs in tWSe₂. To complement this, McMillan’s free energy framework was applied to model DWs, including a formulation for incommensurate order. This free energy analysis was then used to assess the viability of commensurate orders predicted by earlier theoretical studies. Corresponding formulations were developed for these potential commensurate states. Finally, the competition between superconductivity (SC) and DWs was explored using a Ginzburg-Landau free energy approach for SC. Together, the free energy formulations for DWs and SC provide a theoretical foundation to map out a complete phase diagram of their interactions in tWSe₂ using experimental results.
format Thesis
id oai:fount.aucegypt.edu:etds-3660
institution American University in Cairo (Egypt)
last_indexed 2026-06-10T12:35:59.828Z
license_str Not specified — see source repository
provenance_str_mv Harvested via OAI-PMH from AUC Knowledge Fountain — bepress
publishDate 2026
publishDateRange 2026
publishDateSort 2026
publisher AUC Knowledge Fountain
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source_str AUC Knowledge Fountain — bepress
spelling oai:fount.aucegypt.edu:etds-3660 Electronic Transport in Twisted Bilayer Tungsten Diselenides Zaher, Walid This thesis investigates density waves (DWs) in twisted bilayer tungsten diselenide (tWSe₂) using a mean field approximation, with a focus on electron-electron interactions, and the system’s free energy at zero temperature. For the mean field approximation, the study initially employed same-spin nesting vectors, which were found insufficient to induce DWs formation. In contrast, when opposite-spin nesting vectors were used, DWs emerged, indicating that these vectors can support DWs formation. The plots were produced under perfect nesting conditions, where van Hove singularities (VHS) occur. At zero temperature, perfect nesting provides a complete picture of the upper limit of DWs formation, as DWs’ strength peaks under these conditions. The plots were in terms of the applied displacement field and electronic filling, showing both the order parameter (OP) and the modulation of the electronic charge density. The plots revealed that DWs’ strength increases as the system moves away from half-filling and weakens near half-filling. The modulation patterns showed that the DWs state comprises coupled charge density waves (CDWs) and spin density waves (SDWs), with no evidence of competition between them. These findings from the mean field approximation offer valuable insights for future experimental and theoretical investigations of DWs in tWSe₂. To complement this, McMillan’s free energy framework was applied to model DWs, including a formulation for incommensurate order. This free energy analysis was then used to assess the viability of commensurate orders predicted by earlier theoretical studies. Corresponding formulations were developed for these potential commensurate states. Finally, the competition between superconductivity (SC) and DWs was explored using a Ginzburg-Landau free energy approach for SC. Together, the free energy formulations for DWs and SC provide a theoretical foundation to map out a complete phase diagram of their interactions in tWSe₂ using experimental results. 2026-01-31T08:00:00Z thesis application/pdf https://fount.aucegypt.edu/etds/2604 https://fount.aucegypt.edu/context/etds/article/3660/viewcontent/Electronic_Transport_in_Twisted_Bilayer_Tungsten_Diselenides.pdf Theses and Dissertations AUC Knowledge Fountain transition metal dichalcogenides charge density waves superconductivity twisted bilayer transition metal dichalcogenides spin density waves twisted bilayer tungsten diselenide Density waves Mean field approximation Free energy Condensed Matter Physics
spellingShingle transition metal dichalcogenides
charge density waves
superconductivity
twisted bilayer transition metal dichalcogenides
spin density waves
twisted bilayer tungsten diselenide
Density waves
Mean field approximation
Free energy
Condensed Matter Physics
Zaher, Walid
Electronic Transport in Twisted Bilayer Tungsten Diselenides
title Electronic Transport in Twisted Bilayer Tungsten Diselenides
title_full Electronic Transport in Twisted Bilayer Tungsten Diselenides
title_fullStr Electronic Transport in Twisted Bilayer Tungsten Diselenides
title_full_unstemmed Electronic Transport in Twisted Bilayer Tungsten Diselenides
title_short Electronic Transport in Twisted Bilayer Tungsten Diselenides
title_sort electronic transport in twisted bilayer tungsten diselenides
topic transition metal dichalcogenides
charge density waves
superconductivity
twisted bilayer transition metal dichalcogenides
spin density waves
twisted bilayer tungsten diselenide
Density waves
Mean field approximation
Free energy
Condensed Matter Physics
url https://fount.aucegypt.edu/etds/2604
https://fount.aucegypt.edu/context/etds/article/3660/viewcontent/Electronic_Transport_in_Twisted_Bilayer_Tungsten_Diselenides.pdf
work_keys_str_mv AT zaherwalid electronictransportintwistedbilayertungstendiselenides