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State-of-the-Art Graphene Synthesis Methods

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State-of-the-Art Graphene Synthesis Methods ( state-of-the-art-graphene-synthesis-methods )

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8 Applied and Environmental Soil Science Shear force (a) Hole region Jet region Jet cavitation (b) Random collision Edge collision (c) reduced graphene oxide was highly electrochemical stable and 1000 times more conductive than gra- phene oxide [41]. (4) Sodium compounds: A multitude of sodium based reductants have been utilized to produce reduced graphene oxide. So- dium borohydride has been used to reduced gra- phene oxide dispersions in ambient conditions in the presence of silver nano particles. Te sodium borohydride hydrolyses to form borohydride which oxidizes on the surface of the silver nano particles which leads to the transfer of electrons on said silver nanoparticles. Te electrons are then trans- ferred to graphene oxide and initiates reduction resulting in reduced graphene oxide. When sodium borohydride reacts in an alkaline condition, that is, in the presence of sodium hydroxide, a stable dis- persion of reduced graphene oxide which can be formed into flms through vacuum fltration with an electrical conductivity range from 10 to 1500S cm−1 [42]. (5) Laser: A laser with a spot diameter of 1064 nanometres and power of 50 microwatts most efciently reduced graphene oxide at a scan speed of 30 mm/s under nitrogen along with potassium hydroxide. Teoret- ically, the laser is capable of inducing ocalized annealing temperatures of up to 1273K for a few nanoseconds which is the causation oxygen- containing functional group decomposition on Stator Rotor Drain hole Liquid layer Rotor swept region Figure 5: Rotor-stator mixing [28]. Primary way Secondary way (fragmentation-dominated) Exfoliation and fragmentation Figure 6: Ball milling mechanism [26].

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