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Band gap formation of 2D materialin graphene: Future prospect and  challenges - ScienceDirect
Band gap formation of 2D materialin graphene: Future prospect and challenges - ScienceDirect

Lasers could produce much sought-after band gaps in graphene
Lasers could produce much sought-after band gaps in graphene

Synthesis of graphene oxide with a lower band gap and study of charge  transfer interactions with perylenediimide - New Journal of Chemistry (RSC  Publishing)
Synthesis of graphene oxide with a lower band gap and study of charge transfer interactions with perylenediimide - New Journal of Chemistry (RSC Publishing)

Band gap opening in graphene: a short theoretical study | SpringerLink
Band gap opening in graphene: a short theoretical study | SpringerLink

How to create a band gap in graphene using lead - Mapping Ignorance
How to create a band gap in graphene using lead - Mapping Ignorance

A modular synthetic approach for band-gap engineering of armchair graphene  nanoribbons | Nature Communications
A modular synthetic approach for band-gap engineering of armchair graphene nanoribbons | Nature Communications

Hydrogenated monolayer graphene with reversible and tunable wide band gap  and its field-effect transistor | Nature Communications
Hydrogenated monolayer graphene with reversible and tunable wide band gap and its field-effect transistor | Nature Communications

Graphene Makes Transistors Tunable - IEEE Spectrum
Graphene Makes Transistors Tunable - IEEE Spectrum

Band Gap Opening of Graphene by Forming Heterojunctions with the 2D  Carbonitrides Nitrogenated Holey Graphene, g-C3N4, and g-CN: Electric Field  Effect | The Journal of Physical Chemistry C
Band Gap Opening of Graphene by Forming Heterojunctions with the 2D Carbonitrides Nitrogenated Holey Graphene, g-C3N4, and g-CN: Electric Field Effect | The Journal of Physical Chemistry C

Band gap formation of 2D materialin graphene: Future prospect and  challenges - ScienceDirect
Band gap formation of 2D materialin graphene: Future prospect and challenges - ScienceDirect

A modular synthetic approach for band-gap engineering of armchair graphene  nanoribbons | Nature Communications
A modular synthetic approach for band-gap engineering of armchair graphene nanoribbons | Nature Communications

Band Gap Opening of Graphene by Forming Heterojunctions with the 2D  Carbonitrides Nitrogenated Holey Graphene, g-C3N4, and g-CN: Electric Field  Effect | The Journal of Physical Chemistry C
Band Gap Opening of Graphene by Forming Heterojunctions with the 2D Carbonitrides Nitrogenated Holey Graphene, g-C3N4, and g-CN: Electric Field Effect | The Journal of Physical Chemistry C

Opening an Electrical Band Gap of Bilayer Graphene with Molecular Doping |  ACS Nano
Opening an Electrical Band Gap of Bilayer Graphene with Molecular Doping | ACS Nano

Band Gap Opening of Graphene by Forming Heterojunctions with the 2D  Carbonitrides Nitrogenated Holey Graphene, g-C3N4, and g-CN: Electric Field  Effect | The Journal of Physical Chemistry C
Band Gap Opening of Graphene by Forming Heterojunctions with the 2D Carbonitrides Nitrogenated Holey Graphene, g-C3N4, and g-CN: Electric Field Effect | The Journal of Physical Chemistry C

Band Gap Opening of Graphene by Forming Heterojunctions with the 2D  Carbonitrides Nitrogenated Holey Graphene, g-C3N4, and g-CN: Electric Field  Effect | The Journal of Physical Chemistry C
Band Gap Opening of Graphene by Forming Heterojunctions with the 2D Carbonitrides Nitrogenated Holey Graphene, g-C3N4, and g-CN: Electric Field Effect | The Journal of Physical Chemistry C

Band gap opening in graphene: a short theoretical study | SpringerLink
Band gap opening in graphene: a short theoretical study | SpringerLink

Band gap | Graphene-Info
Band gap | Graphene-Info

Band Gap Opening of Graphene by Forming Heterojunctions with the 2D  Carbonitrides Nitrogenated Holey Graphene, g-C3N4, and g-CN: Electric Field  Effect | The Journal of Physical Chemistry C
Band Gap Opening of Graphene by Forming Heterojunctions with the 2D Carbonitrides Nitrogenated Holey Graphene, g-C3N4, and g-CN: Electric Field Effect | The Journal of Physical Chemistry C

Electronic structure tuning and band gap opening of nitrogen and boron  doped holey graphene flake: The role of single/dual doping - ScienceDirect
Electronic structure tuning and band gap opening of nitrogen and boron doped holey graphene flake: The role of single/dual doping - ScienceDirect

Band gap formation of 2D materialin graphene: Future prospect and  challenges - ScienceDirect
Band gap formation of 2D materialin graphene: Future prospect and challenges - ScienceDirect

Bandgap Opening by Patterning Graphene | Scientific Reports
Bandgap Opening by Patterning Graphene | Scientific Reports

Band gap formation of 2D materialin graphene: Future prospect and  challenges - ScienceDirect
Band gap formation of 2D materialin graphene: Future prospect and challenges - ScienceDirect

Band Gap Opening of Graphene by Forming Heterojunctions with the 2D  Carbonitrides Nitrogenated Holey Graphene, g-C3N4, and g-CN: Electric Field  Effect | The Journal of Physical Chemistry C
Band Gap Opening of Graphene by Forming Heterojunctions with the 2D Carbonitrides Nitrogenated Holey Graphene, g-C3N4, and g-CN: Electric Field Effect | The Journal of Physical Chemistry C

Band gap opening in graphene: a short theoretical study | SpringerLink
Band gap opening in graphene: a short theoretical study | SpringerLink

A modular synthetic approach for band-gap engineering of armchair graphene  nanoribbons | Nature Communications
A modular synthetic approach for band-gap engineering of armchair graphene nanoribbons | Nature Communications

Breakthrough in Creating a Band Gap for Graphene Promises Huge Potential  for Electronic Applications - IEEE Spectrum
Breakthrough in Creating a Band Gap for Graphene Promises Huge Potential for Electronic Applications - IEEE Spectrum

PDF) Graphene Synthesis and Band Gap Opening
PDF) Graphene Synthesis and Band Gap Opening