On the roles of graphene oxide doping for enhanced supercurrent in MgB2 based superconductors
arXiv:1405.4619 · doi:10.1039/C4NR00415A
Abstract
Due to their graphene-like properties after oxygen reduction, incorporation of graphene oxide (GO) sheets into correlated-electron materials offers a new pathway for tailoring their properties. Fabricating GO nanocomposites with polycrystalline MgB2 superconductors leads to an order of magnitude enhancement of the supercurrent at 5 K/8 T and 20 K/4 T. Herein, we introduce a novel experimental approach to overcome the formidable challenge of performing quantitative microscopy and microanalysis of such composites, so as to unveil how GO doping influences the structure and hence the material properties. Atom probe microscopy and electron microscopy were used to directly image the GO within the MgB2, and we combined these data with computational simulations to derive the property-enhancing mechanisms. Our results reveal synergetic effects of GO, namely, via localized atomic (carbon and oxygen) doping as well as texturing of the crystals, which provide both inter and intra granular flux pinning. This study opens up new insights into how low-dimensional nanostructures can be integrated into composites to modify the overall properties, using a methodology amenable to a wide range of applications.
References in corpus (10)
- Scale-free structural organization of oxygen interstitials in La2CuO4+y
- High intergrain critical current density in fine-grain (Ba0.6K0.4)Fe2As2 wires and bulks
- Effect of carbon nanotube doping on critical current density of MgB2 superconductor
- Electromagnetic, atomic-structure and chemistry changes induced by Ca-doping of low-angle grain boundaries
- Strong Pinning Enhancement in MgB2 Using Very Small Dy2O3 Additions
- The critical current density of advanced internal-Mg-diffusion-processed MgB2 wires
- Direct observation of local K variation and its correlation to electronic inhomogeneity in (Ba1-xKx)Fe2As2 Pnictide
- Interface-driven phase separation in multifunctional materials: the case of GeMn ferromagnetic semiconductor
- Strongly Enhanced Current-Carrying Performance in MgB2 Tape Conductors by Novel C60 Doping
- Effect of oxygen incorporation on normal and superconducting properties of MgB2 films