Probing the Thermal Deoxygenation of Graphene Oxide using High Resolution In Situ X-Ray based Spectroscopies
arXiv:1108.5911 · doi:10.1021/jp203741y
Abstract
Despite the recent developments in Graphene Oxide due to its importance as a host precursor of Graphene, the detailed electronic structure and its evolution during the thermal reduction remain largely unknown, hindering its potential applications. We show that a combination of high resolution in situ X-ray photoemission and X-ray absorption spectroscopies offer a powerful approach to monitor the deoxygenation process and comprehensively evaluate the electronic structure of Graphene Oxide thin films at different stages of the thermal reduction process. It is established that the edge plane carboxyl groups are highly unstable, whereas carbonyl groups are more difficult to remove. The results consistently support the formation of phenol groups through reaction of basal plane epoxide groups with adjacent hydroxyl groups at moderate degrees of thermal activation (~400 °C). The phenol groups are predominant over carbonyl groups and survive even at a temperature of 1000 °C. For the first time a drastic increase in the density of states (DOS) near the Fermi level at 600 °C is observed, suggesting a progressive restoration of aromatic structure in the thermally reduced graphene oxide
Pagona Papakonstantinou as Corresponding author, E-mail: [email protected]
References in corpus (5)
Cited by in corpus (26)
- Chemistry with Graphene and Graphene Oxide - Challenges for Synthetic Chemists
- Ultrathin graphene-based membrane with precise molecular sieving and ultrafast solvent permeation
- Observation of Active Sites for Oxygen Reduction Reaction on Nitrogen-doped Multilayer Graphene
- Electrically controlled water permeation through graphene oxide membranes
- MoS2 Quantum Dot/Graphene Hybrids for Advanced Interface Engineering of CH3NH3PbI3 Perovskite Solar Cell with Efficiency over 20%
- Physical properties and device applications of graphene oxide
- Controllable selective exfoliation of high-quality graphene nanosheets and nanodots by ionic liquid assisted grinding
- Tuning the catalytic activity of graphene nanosheets for oxygen reduction reaction via size and thickness reduction
- Revisiting Graphene Oxide Chemistry via Spatially-Resolved Electron Energy Loss Spectroscopy
- Linearly polarized, Q-switched Er-doped fiber laser based on reduced graphene oxide saturable absorber
- Nitrogen-doped graphene based triboelectric nanogenerators
- Detailed thermal reduction analyses of Graphene Oxide via in-situ TEM/EELS studies
- Effect of thermal annealing on the heat transfer properties of reduced graphite oxide flakes: a nanoscale characterization via scanning thermal microscopy
- Thermal stability study of nitrogen functionalities in a graphene network
- Photocatalytic water splitting ability of Fe/MgO-rGO nanocomposites towards hydrogen evolution
- Proton and molecular permeation through the basal plane of monolayer graphene oxide
- Chemically edge-carboxylated graphene enhances thermal conductivity of polyetherimide-graphene nanocomposites
- In-situ reduction by Joule heating and measurement of electrical conductivity of graphene oxide in a transmission electron microscope
- Fast detection of water nanopockets underneath wet-transferred graphene
- Atomic and electronic structure of graphene oxide/Cu interface
- Valence band electronic structure evolution of graphene oxide upon thermal annealing for optoelectronics
- Machine learning of microscopic ingredients for graphene oxide/cellulose interaction
- Ion mobility and segregation in seed surfaces subjected to cold plasma treatments
- The effect of the thermal reduction on the kinetics of low temperature 4He sorption and the structural characteristics of graphene oxide
- Evidence of hydrogen termination at grain boundaries in ultrananocrystalline diamond/hydrogenated amorphous carbon composite thin films synthesized via coaxial arc plasma
- Effect of UV radiation on the structure of graphene oxide in water and its impact on cytotoxicity and As(III) adsorption