Metal doped armchair graphene nanoribbons: electronic structure, carrier mobility and device properties
Literature Information
J. N. Han, X. He, Z. Q. Fan, Z. H. Zhang
Functionalizing graphene to develop on-demand nanodevices is highly desirable, but still remains challenging. Here, we theoretically propose the functionalization of armchair graphene nanoribbons by low-concentration metal (M) atom (M = Ti, Ni, Sn, or Hg) doping and investigate the structural stability and electronic behaviors of these doped systems in depth. The calculated binding energy and formation energy as well as the molecular dynamics simulation show that the geometries of these hybridized ribbons are rather stable. With metal doping, the ribbons present rich and flexibly tunable bandgaps, depending on the metal atom and doping position, which can be attributed to newly emerged hybridized subbands near the Fermi level and the entire energy band structure shifting upward due to the increased electron number in the ribbon donated from the dopant. These bandgaps can also be further tuned substantially by the stress. And the carrier mobility is calculated based on the deformation potential theory, which shows that the different metal doping can effectively control the carrier mobility, and a large carrier polarity can also be clearly observed. Furthermore, the metal doping can significantly enhance the device properties of the ribbon as compared with those of the pristine ribbon, such as creating a large negative differential resistance phenomenon. These studies demonstrate that these doping systems might hold promising applications in nano-electronics.
Related Literature
Regulation of α-chymotrypsin activity on the surface of substrate-functionalized gold nanoparticles
Chang-Cheng You, Rochelle R. Arvizo, Vincent M. Rotello
DOI: 10.1039/B605508G
Notable norbornene (NBE) incorporation in ethylene–NBE copolymerization catalysed by nonbridged half-titanocenes: better correlation between NBE incorporation and coordination energy
Kotohiro Nomura, Wei Wang, Michiya Fujiki, Jingyu Liu
DOI: 10.1039/B605005K
Stereoselective coordination of ditopic phospholyl-azahelicenes: a novel approach towards structural diversity in chiral π-conjugated assemblies
Wenting Shen, Sébastien Graule, Jeanne Crassous, Christophe Lescop, Heinz Gornitzka, Régis Réau
DOI: 10.1039/B714340K
High capacity carbon-coated Si70Sn30 nanoalloys for lithium battery anode material
YooJeong Kwon, Jaephil Cho
DOI: 10.1039/B716694J
Hydrogen adsorption in microporous hypercrosslinked polymers
Jun-Young Lee, Colin D. Wood, Darren Bradshaw, Matthew J. Rosseinsky, Andrew I. Cooper
DOI: 10.1039/B604625H
How to achieve self-assembly in polar solvents based on specific interactions? Some general guidelines
Thomas Rehm, Carsten Schmuck
DOI: 10.1039/B710951M
Diastereoselective diaza-Cope rearrangement reaction
Hyunwoo Kim, Doo Seoung Choi, Cindy Pai-Hui Yen, Alan J. Lough, Choong Eui Song, Jik Chin
DOI: 10.1039/B716253G
Dendrimer-assisted low-temperature growth of carbon nanotubes by plasma-enhanced chemical vapor deposition
Placidus B. Amama, Oluwaseyi Ogebule
DOI: 10.1039/B602623K
First C-3 lithiation of DMAP: a new entry into chemical tuning of acylation catalysts
Philippe C. Gros, Abdelatif Doudouh, Christopher Woltermann
DOI: 10.1039/B605170G
Amorphous oxide as a novel efficient catalyst for direct selective oxidation of methanol to dimethoxymethane
Sébastien Royer, Xavier Sécordel, Markus Brandhorst, Franck Dumeignil, Sylvain Cristol, Christophe Dujardin, Mickaël Capron, Edmond Payen, Jean-Luc Dubois
DOI: 10.1039/B714260A
You might also like
Are there alternatives to 1-(4-Chlorophenyl)-N-hydroxymethanimine (CAS: 3848-36-0) in synthesis?
When considering alternatives to 1-(4-Chlorophenyl)-N-hydroxymethanimine (CAS: 3...
How should (1R,9S,10S,12S,14E,16S,19R,20R,21S,22R)-3,9,21-Trihydroxy-5,10,12,14,16,20,22-heptamethyl-23,24-dioxatetracyclo[17.3.1.1~6,9~.0~2,7~]tetracosa-2,5,7,14-tetraen-4-one (CAS: 183202-73-5) be stored?
This compound should be stored in a cool, dry place away from direct sunlight. I...
How is 3-(4-Bromophenyl)-5-(2-fluorophenyl)-1,2,4-oxadiazole (CAS: 419553-16-5) typically synthesized?
3-(4-Bromophenyl)-5-(2-fluorophenyl)-1,2,4-oxadiazole is synthesized through a m...
How is 5-Chloro-2-(4-chlorophenyl)-4-methyl-6-[3-(1-piperidinyl)propoxy]pyrimidine (CAS: 1639220-19-1) typically synthesized?
5-Chloro-2-(4-chlorophenyl)-4-methyl-6-[3-(1-piperidinyl)propoxy]pyrimidine (CAS...
What industries use 2-Chloro-4-(difluoromethoxy)pyridine (CAS: 1206978-15-5)?
2-Chloro-4-(difluoromethoxy)pyridine is used in the pharmaceutical industry for ...
What regulatory guidelines apply to 3-Chloro-6-methylpyridazine (CAS: 1121-79-5)?
3-Chloro-6-methylpyridazine (CAS: 1121-79-5) is classified under the Globally Ha...
Are there alternatives to Methyl 4,5-dimethyl-2-nitrobenzoate in synthesis?
Several alternatives can be used in the synthesis of Methyl 4,5-dimethyl-2-nitro...
Are there alternatives to (2E,2'E)-3,3'-(1,4-Phenylene)bisacrylaldehyde in synthesis?
Alternatives to (2E,2'E)-3,3'-(1,4-Phenylene)bisacrylaldehyde include other acry...
What is 3-Amino-5-chloropyridin-2-ol hydrochloride (CAS: 1261906-29-9)?
3-Amino-5-chloropyridin-2-ol hydrochloride is an organic compound with the CAS n...
What precautions should be taken when handling 6,7-Difluoro-2,3-dihydro-4H-chromen-4-one (CAS: 1092349-93-3)?
When handling 6,7-Difluoro-2,3-dihydro-4H-chromen-4-one, it is essential to wear...
Source Journal
Physical Chemistry Chemical Physics

Physical Chemistry Chemical Physics (PCCP) is an international journal co-owned by 19 physical chemistry and physics societies from around the world. This journal publishes original, cutting-edge research in physical chemistry, chemical physics and biophysical chemistry. To be suitable for publication in PCCP, articles must include significant innovation and/or insight into physical chemistry; this is the most important criterion that reviewers and Editors will judge against when evaluating submissions. The journal has a broad scope and welcomes contributions spanning experiment, theory, computation and data science. Topical coverage includes spectroscopy, dynamics, kinetics, statistical mechanics, thermodynamics, electrochemistry, catalysis, surface science, quantum mechanics, quantum computing and machine learning. Interdisciplinary research areas such as polymers and soft matter, materials, nanoscience, energy, surfaces/interfaces, and biophysical chemistry are welcomed if they demonstrate significant innovation and/or insight into physical chemistry. Joined experimental/theoretical studies are particularly appreciated when complementary and based on up-to-date approaches.













![6-Bromo-2,3-dihydro-1H-pyrido[2,3-b][1,4]oxazine structure 6-Bromo-2,3-dihydro-1H-pyrido[2,3-b][1,4]oxazine structure](https://static.chemtradehub.com/structs/120/1203499-17-5-b4d1.webp)
