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Highly porous graphene aerogels with excellent flexibility were fabricated via simultaneous reduction and assembly of graphene oxides in various alcohols.
The spontaneous reduction and assembly of graphene oxide via zinc foil was completed at room temperature, followed by washing with diluted hydrogen chloride solution, to produce 3DRGO.
Cu@PtCu core shell microspheres were first prepared by reaction of Cu with platinum (IV), which subsequently induced the reduction and assembly of ox-GQDs on them at room temperature.
The novel graphene nanowires were synthesized via a template strategy involving reduction and assembly process of nanosized graphene oxides (nGO), pyrolysis of polystyrene spheres (PS) template and catalytic reaction between GO and PS decomposition products.
Here, we present a simple universal strategy toward assembling of graphene aerogels into the three-dimensional N-doping cotton-derived carbon frameworks, utilizing spontaneous reduction and assembly of graphene oxide on the Cu surface.
The unique hybrid capsules of graphene quantum dots (GQDs) with platinum (Pt)–copper (Cu) nanoparticles have been prepared by a dually spontaneous reduction and assembly process of oxidized graphene quantum dots (ox-GQDs) and Pt precursor by galvanic displacement reaction on Cu microspheres.
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The hierarchically structured graphene fibers were prepared by a facile chemical reduction and self-assembly strategy.
The reduced graphene oxide/carbon nanotube hybrid fibers (G/CNTs) were prepared by a facile chemical reduction and self-assembly strategy at low temperature.
The three-dimensional multiscale reinforcement of graphene aerogel-carbon fibers (GA-CF) was prepared by one-step reduction and self-assembly of graphene oxide with L-ascorbic acid followed by freeze-drying.
Biplane fluoroscopy was used during reduction, pin insertion and assembly of the frame.
Co-curing/co-bonding techniques enabled significant reduction in part count and assembly time thus resulting in significant cost saving in the fabrication of stiffened composite structures.
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com