A proper understanding of the role that molecular doping plays is essential to research on the modulation of the optical and electronic properties of graphene. The adsorption of R6G molecules onto defect-rich reduced graphene oxide nanosheets results in a shift of the Fermi energy and, consequently, a variation in the optical constants. This optical variation in the graphene nanosheets is used to develop an ultrasensitive surface plasmon resonance biosensor with a detection limit of 10-17M (0.01 fM) at the molecular level. A density functional theory calculation shows that covalent bonds were formed between the R6G molecules and the defect sites on the graphene nanosheets. Our study reveals the important role that defects play in tailoring ...
Infrared spectroscopy is the technique of choice for chemical identification of biomolecules through...
Surface plasmons at a metal/dielectric interface resonate with incident light, generating an evanesc...
Plasmons are collective excitations of electrons in solids. The ability to change their properties b...
A proper understanding of the role that molecular doping plays is essential to research on the modul...
Surface plasmons at metal/dielectric interface can resonate with the incident light depending on the...
Extraordinary electrical and optical features of graphene-based materials attract researchers to imp...
In this work, we propose a new configuration of surface plasmon resonance (SPR) sensor that is based...
Graphene and its derivatives show great potential for biosensing due to their extraordinary optical,...
Graphene is suitable for use as a high-performance sensor material due to its unique atomically-thin...
This paper numerically presents a highly sensitive surface plasmon resonance (SPR) graphene-based bi...
This paper theoretically presents an improved sensitive surface plasmon resonance (SPR) biosensor us...
Infrared spectroscopy is the technique of choice for chemical identification of biomolecules through...
In this report, a silver@graphene oxide (Ag@GO) nanocomposite-based optical sensor was developed for...
Herein, we report on a facile, low-cost, and efficient method to tune the structure and properties o...
The use of graphene in conventional plasmonic devices was suggested by several theoretic research st...
Infrared spectroscopy is the technique of choice for chemical identification of biomolecules through...
Surface plasmons at a metal/dielectric interface resonate with incident light, generating an evanesc...
Plasmons are collective excitations of electrons in solids. The ability to change their properties b...
A proper understanding of the role that molecular doping plays is essential to research on the modul...
Surface plasmons at metal/dielectric interface can resonate with the incident light depending on the...
Extraordinary electrical and optical features of graphene-based materials attract researchers to imp...
In this work, we propose a new configuration of surface plasmon resonance (SPR) sensor that is based...
Graphene and its derivatives show great potential for biosensing due to their extraordinary optical,...
Graphene is suitable for use as a high-performance sensor material due to its unique atomically-thin...
This paper numerically presents a highly sensitive surface plasmon resonance (SPR) graphene-based bi...
This paper theoretically presents an improved sensitive surface plasmon resonance (SPR) biosensor us...
Infrared spectroscopy is the technique of choice for chemical identification of biomolecules through...
In this report, a silver@graphene oxide (Ag@GO) nanocomposite-based optical sensor was developed for...
Herein, we report on a facile, low-cost, and efficient method to tune the structure and properties o...
The use of graphene in conventional plasmonic devices was suggested by several theoretic research st...
Infrared spectroscopy is the technique of choice for chemical identification of biomolecules through...
Surface plasmons at a metal/dielectric interface resonate with incident light, generating an evanesc...
Plasmons are collective excitations of electrons in solids. The ability to change their properties b...