Title :
Large scale synthetic method for free standing graphene film and graphene sponges
Author :
Liu, Fei ; Tae Seok Seo
Author_Institution :
Dept. of Chem. & Biomol. Eng., KAIST, Daejeon, South Korea
Abstract :
He re we present a simple method to prepare large-scale graphene sponges and free-standing graphene films using a speed vacuum concentrator. During a centrifugal evaporation process, suspended graphene oxide (GO) sheets in an aqueous solution have been assembled to generate network-linked GO sponges or a series of multilayer GO films depending on the temperature of a centrifugal vacuum chamber. While sponge-like bulk GO materials (GO sponges) have been produced at 40°C, uniform free-standing GO films which size were up to 9 cm2 were generated at 80°C. The thickness of GO films can be controlled from 200 nm to 1 μm based on the concentration of the GO colloidal suspension and evaporation temperature. The synthesized GO films exhibit high flexibility with a smooth surface and condensed density. Reduced GO sponges and films have been produced through a thermal annealing process at 800°C with H2/Ar flow. Scanning electron microscope (SEM), High resolution transmission electron microscope (HRTEM) and x-ray photoelectron spectroscope (XPS) were employed to charaterize the reduced GO sponges and films.
Keywords :
X-ray photoelectron spectra; annealing; bending; carbon compounds; colloids; foams; materials preparation; multilayers; scanning electron microscopy; surface structure; thin films; transmission electron microscopy; vacuum deposition; CHO; HRTEM; SEM; X-ray photoelectron spectroscope; XPS; aqueous solution; centrifugal evaporation process; centrifugal vacuum chamber temperature; evaporation temperature; free standing graphene film; graphene oxide colloidal suspension; graphene oxide flexibility; graphene oxide surface; graphene sponges; high resolution transmission electron microscope; large scale synthetic method; multilayer graphene oxide films; network linked graphene oxide sponges; scanning electron microscope; speed vacuum concentrator; suspended graphene oxide sheets; temperature 40 degC; temperature 80 degC; temperature 800 degC; thermal annealing process;
Conference_Titel :
Nanotechnology (IEEE-NANO), 2010 10th IEEE Conference on
Conference_Location :
Seoul
Print_ISBN :
978-1-4244-7033-4
Electronic_ISBN :
1944-9399
DOI :
10.1109/NANO.2010.5697936