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Charge Transfer and Interface Engineering of the Pentacene and MoS 2 Monolayer Complex
Author(s) -
Shen Na,
Tao Guohua
Publication year - 2017
Publication title -
advanced materials interfaces
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.671
H-Index - 65
ISSN - 2196-7350
DOI - 10.1002/admi.201601083
Subject(s) - pentacene , monolayer , materials science , chemical physics , doping , substrate (aquarium) , work function , density functional theory , dipole , fermi level , adsorption , organic semiconductor , molecule , optoelectronics , nanotechnology , computational chemistry , chemistry , layer (electronics) , organic chemistry , electron , oceanography , physics , quantum mechanics , geology , thin film transistor
Molecular doping of monolayer MoS 2 provides a great opportunity to modulate its electronic properties for the potential applications in high performance devices. Density functional theory computations are performed to investigate the charge transfer and electrostatic potential modulation upon the adsorption of pentacene molecule on the surface of MoS 2 monolayer (ML). Theoretical calculations indicate that interfacial charge transfer is negligible between pentacene and 2H‐MoS 2 ML while significant in the pentacene/1T‐MoS 2 ML complex, which is attributed to the match of energy levels near the Fermi level in the latter case. Moreover, molecular doping of pentacene induces substantial structure changes of the substrate resulting in large adsorption energy, which helps stabilize the 1T‐MoS 2 ML. Depending on different substrate phases and doping configurations, the interfacial dipole barrier and related work function of MoS 2 ML may be modulated in a wide range of the order of about 1 eV. The findings therefore shed light on the possibility of developing the desired organic/inorganic complex for electrical and optoelectronic devices by molecular doping via charge transfer modulation and interface engineering.

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