Javascript must be enabled to continue!
Phosphorene–Fullerene Nanostructures: A First-Principles Study
View through CrossRef
Hybrid materials formed by carbon fullerenes and layered materials have emerged due to their advantages for several technological applications, and phosphorene arises as a promising two-dimensional semiconductor for C60 adsorption. However, the properties of phosphorenefullerene hybrids remain mainly unexplored. In this work, we employed density functional theory to obtain structures, adsorption energies, electronic/optical properties, binding (AIM, NBO), and energy decomposition analyses (ALMO-EDA) of nanostructures formed by phosphorene and fullerenes (C24 to C70). We find fullerenes form covalent and non-covalent complexes with phosphorene depending on the molecular size, showing remarkable stability even in solution. Two classes of covalent complexes arise by cycloaddition-like reactions: the first class, where short-range effects (charge-transfer and polarization) determines the stability; and the second one, where short-range effects decay to avoid steric repulsion, and balanced longrange forces (electrostatics and dispersion) favors the stability. Otherwise, high-size fullerenes (C50 to C70) only form non-covalent complexes due to strong repulsion at shorter intermolecular distances and lack of dissociation barriers. In terms of electronic properties, fullerenes act as mild p-dopants for phosphorene, increasing its polar character and ability to acquire induced dipole moments (polarizability). Also, small energy-bandgap fullerenes (<0.8 eV) largely increase the phosphorene metallic character. We also note fullerenes retain their donor/acceptor properties upon adsorption, acting as active sites for orbital-controlled interactions and maximizing the phosphorene light absorbance at the UV-Vis region. Finally, we strongly believe our study will inspire future experimental/theoretical studies focused on phosphorene-fullerene uses for storage, anode materials, sensing, phosphorene bandgap engineering, and optoelectronics.
Title: Phosphorene–Fullerene Nanostructures: A First-Principles Study
Description:
Hybrid materials formed by carbon fullerenes and layered materials have emerged due to their advantages for several technological applications, and phosphorene arises as a promising two-dimensional semiconductor for C60 adsorption.
However, the properties of phosphorenefullerene hybrids remain mainly unexplored.
In this work, we employed density functional theory to obtain structures, adsorption energies, electronic/optical properties, binding (AIM, NBO), and energy decomposition analyses (ALMO-EDA) of nanostructures formed by phosphorene and fullerenes (C24 to C70).
We find fullerenes form covalent and non-covalent complexes with phosphorene depending on the molecular size, showing remarkable stability even in solution.
Two classes of covalent complexes arise by cycloaddition-like reactions: the first class, where short-range effects (charge-transfer and polarization) determines the stability; and the second one, where short-range effects decay to avoid steric repulsion, and balanced longrange forces (electrostatics and dispersion) favors the stability.
Otherwise, high-size fullerenes (C50 to C70) only form non-covalent complexes due to strong repulsion at shorter intermolecular distances and lack of dissociation barriers.
In terms of electronic properties, fullerenes act as mild p-dopants for phosphorene, increasing its polar character and ability to acquire induced dipole moments (polarizability).
Also, small energy-bandgap fullerenes (<0.
8 eV) largely increase the phosphorene metallic character.
We also note fullerenes retain their donor/acceptor properties upon adsorption, acting as active sites for orbital-controlled interactions and maximizing the phosphorene light absorbance at the UV-Vis region.
Finally, we strongly believe our study will inspire future experimental/theoretical studies focused on phosphorene-fullerene uses for storage, anode materials, sensing, phosphorene bandgap engineering, and optoelectronics.
Related Results
Growth of phosphorene by epitaxy on Au(110), Ni(111) and Ni(110)
Growth of phosphorene by epitaxy on Au(110), Ni(111) and Ni(110)
Croissance du phosphorène par épitaxie sur Au(110), Ni(111) et Ni(110)
Ces dernières années, les matériaux bidimensionnels (2D) ont suscité un intérêt croissant en ...
Phosphorene–Fullerene Nanostructures: A First-Principles Study
Phosphorene–Fullerene Nanostructures: A First-Principles Study
Hybrid materials formed by carbon fullerenes and layered materials have emerged due to their advantages for several technological applications, and phosphorene arises as a promisin...
Signature of excitonic insulators in phosphorene nanoribbons
Signature of excitonic insulators in phosphorene nanoribbons
Abstract
Phosphorene is a recently developed two-dimensional (2D) material that has attracted tremendous attention because of its unique anisotropic optical properti...
Synthèse, caractérisation et simulation de matériaux d’anode à base de phosphorene pour l’application batterie à ion de lithium
Synthèse, caractérisation et simulation de matériaux d’anode à base de phosphorene pour l’application batterie à ion de lithium
Dans les présents travaux de thèse, nous avons présenté une étude ab-initio basé sur la Théorie de la Fonctionnelle de la Densité (DFT), pour explorer les propriétés structurales, ...
Electronic and adsorption characteristics of hydrogen cyanide (HCN) and isocyanide (HNC) on intrinsic and doped phosphorene
Electronic and adsorption characteristics of hydrogen cyanide (HCN) and isocyanide (HNC) on intrinsic and doped phosphorene
Density functional theory calculations are performed to investigate the electronic properties of the phosphorene that is substituted with the non-metals in different patterns and c...
Electrochemically Exfoliated Phosphorene–Graphene Hybrid for Sodium‐Ion Batteries
Electrochemically Exfoliated Phosphorene–Graphene Hybrid for Sodium‐Ion Batteries
AbstractBlack phosphorus, an attractive anode material for sodium‐ion batteries (SIBs), has aroused grand attention because of its high theoretical capacity. Nevertheless, its prac...
A First-Principles Study of the Reactivity and Layer-Dependent Properties of Phosphorene
A First-Principles Study of the Reactivity and Layer-Dependent Properties of Phosphorene
Phosphorene exhibits promising tribological application due to its layered structure that imparts intrinsic lubricating properties. Understanding the mechanisms by which oxygen and...
Recent Progress on Fullerene–Based Functional Materials for Energy Conversion
Recent Progress on Fullerene–Based Functional Materials for Energy Conversion
ABSTRACT
Efficient energy conversion and environmental protection are still constrained by rapid carrier recombination, unstable interfaces, ...

