Atomistic study of electrostatics and carrier transport properties of CNT@MS2 (M= Mo,W) and CNT@BN core-shell nanotubes
Amretashis Sengupta

TL;DR
This study uses ab-initio methods to analyze the electronic, electrostatic, and optical properties of CNT@MS2 and CNT@BN core-shell nanotubes, revealing their potential for nanoelectronic applications.
Contribution
It provides a comprehensive first-principles analysis of the electronic and optical properties of CNT@MS2 and CNT@BN core-shell nanotubes, highlighting their tunable features.
Findings
CNT@MS2 has a moderate indirect band gap; CNT@BN exhibits metallic behavior.
Carrier effective masses are strongly affected by CNT chirality.
Distinct optical absorption peaks are observed for CNT@BN and CNT@MS2.
Abstract
In this work we present an ab-initio study of electronic properties of 1 dimensional (1D) core-shell nanostructures made of MS2 (MoS2, WS2) or BN armchair nanotube encapsulated carbon nanotubes (CNT). With local density approximation (LDA) in density functional theory (DFT) we calculate the bandstructure, carrier effective masses, various fundamental electrostatic features and optical absorption in such core-shell tubes. The carrier transport in these structures are important for nanoelectronics applications and are studied with the Greens function formalism. Simulations show a moderate indirect band gap in the core-shell CNT@MS2 tubes while the CNT@BN shows metallic nature. The varying chirality of CNT strongly affects the carrier effective masses of the CNT@MS2 structure. Electron density is found to be much more localized near the atom cores and stronger in magnitude for the CNT@BN…
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