We report production of nanostructured magnetic carbon foam by a high-repetition-rate, high-power laser ablation of glassy carbon in Ar atmosphere. A combination of characterization techniques revealed that the system contains both sp2 and sp3 bonded carbon atoms. The material is a form of carbon containing graphite-like sheets with hyperbolic curvature, as proposed for "schwarzite." The foam exhibits ferromagnetic-like behavior up to 90 K, with a narrow hysteresis curve and a high saturation magnetization. Such magnetic properties are very unusual for a carbon allotrope. Detailed analysis excludes impurities as the origin of the magnetic signal. We postulate that localized unpaired spins occur because of topological and bonding defects ass...
Riemann surfaces are deformed versions of the complex plane in mathematics. Locally they look like p...
Cluster-assembled carbon nanofoam produced by high-repetition-rate laser ablation of graphite in Ar ...
| openaire: EC/H2020/785219/EU//GrapheneCore2 | openaire: EC/H2020/696656/EU//GrapheneCore1 | openai...
We report production of nanostructured magnetic carbon foam by a high-repetition-rate, high-power la...
We report the production of a hierarchically nanostructured magnetic carbon foam by high-repetition-...
Carbon nanoclusters produced by high-repetition-rate laser ablation of glassy carbon in Ar exhibits ...
A range of carbon nanofoam samples was prepared by using a high-repetition-rate laser ablation techn...
The electronic and magnetic properties of an sp2 bonded all-carbon nanostructure, consisting of a na...
Journal ArticleAn explanation is proposed for spontaneous magnetism in the material, "carbon nanofoa...
Carbon nanoclusters produced by high-repetition-rate laser ablation of graphite and glassy carbon in...
Carbon nanoclusters produced by high-repetition-rate laser ablation of graphite and glassy carbon in...
Magnetism is a phenomenon that has been known for a very long time. Iron, cobalt, and nickel are kno...
Abstract: Carbon films and foams were obtained by the controlled pyrolysis of saccharose. Their irre...
This chapter discusses the magnetism of the nano-sized graphite using—the activated carbon fibers (A...
Carbon scientists throughout the world have been attracted to the study of the structure, texture an...
Riemann surfaces are deformed versions of the complex plane in mathematics. Locally they look like p...
Cluster-assembled carbon nanofoam produced by high-repetition-rate laser ablation of graphite in Ar ...
| openaire: EC/H2020/785219/EU//GrapheneCore2 | openaire: EC/H2020/696656/EU//GrapheneCore1 | openai...
We report production of nanostructured magnetic carbon foam by a high-repetition-rate, high-power la...
We report the production of a hierarchically nanostructured magnetic carbon foam by high-repetition-...
Carbon nanoclusters produced by high-repetition-rate laser ablation of glassy carbon in Ar exhibits ...
A range of carbon nanofoam samples was prepared by using a high-repetition-rate laser ablation techn...
The electronic and magnetic properties of an sp2 bonded all-carbon nanostructure, consisting of a na...
Journal ArticleAn explanation is proposed for spontaneous magnetism in the material, "carbon nanofoa...
Carbon nanoclusters produced by high-repetition-rate laser ablation of graphite and glassy carbon in...
Carbon nanoclusters produced by high-repetition-rate laser ablation of graphite and glassy carbon in...
Magnetism is a phenomenon that has been known for a very long time. Iron, cobalt, and nickel are kno...
Abstract: Carbon films and foams were obtained by the controlled pyrolysis of saccharose. Their irre...
This chapter discusses the magnetism of the nano-sized graphite using—the activated carbon fibers (A...
Carbon scientists throughout the world have been attracted to the study of the structure, texture an...
Riemann surfaces are deformed versions of the complex plane in mathematics. Locally they look like p...
Cluster-assembled carbon nanofoam produced by high-repetition-rate laser ablation of graphite in Ar ...
| openaire: EC/H2020/785219/EU//GrapheneCore2 | openaire: EC/H2020/696656/EU//GrapheneCore1 | openai...