Abstract:
A method of making activated carbon including: drying a carbon source having a volatile organic compound (VOC) content of 10 to 30 wt %, as defined herein; and milling the resulting dried carbon source to a powder. The method can further include a first heating of the resulting milled powder at from 200 to 450° C., for from 10 mins to 24 hrs. The method can further include making a mixture of the resulting first heated milled powder and an alkali metal hydroxide, and accomplishing a second heating of the milled powder and alkali metal hydroxide mixture, as defined herein.
Abstract:
Carbon particles are exposed to an activating gas to form activated carbon. The morphology of the carbon particles is controlled prior to activation. Efficient activation can be achieved by minimizing the elongation and maximizing the circularity of the carbon particles.
Abstract:
A method for making activated carbon includes heating a mixture of a carbon precursor or a carbonized precursor and a chemical activating agent in a furnace. The furnace includes an internal surface either formed from or lined with a corrosion resistant material such as high purity silicon carbide or silicon nitride.
Abstract:
An activated carbon composition having a relatively high transition metal content and a low covalent oxygen as defined herein. Also disclosed is a method of making and using the disclosed activated carbon composition, and an EDLC article incorporating the activated carbon composition.
Abstract:
A method of making activated carbon including: compressing a mixture of carbonaceous source material and an alkali source material into a first solid form; and activating the first solid form to a form an activated carbon having a second solid form.
Abstract:
An electrode in an energy storage device, including: an activated carbon, including: a surface area of from 1000 to 1700 m2/g; a pore volume from 0.3 to 0.6 cc/g; a chemically bonded oxygen content of 0.01 to 1.5 wt %; and a pH of from 7.5 to 10. Also disclosed is a method of making the activated carbon, the electrode, and the energy storage device.
Abstract:
An electrode in an energy storage device, including: an activated carbon, including: a surface area of from 1000 to 1700 m2/g; a pore volume from 0.3 to 0.6 cc/g; a chemically bonded oxygen content of 0.01 to 1.5 wt %; and a pH of from 7.5 to 10. Also disclosed is a method of making the activated carbon, the electrode, and the energy storage device.
Abstract:
A method of making activated carbon including: compressing a mixture of an alkali metal hydroxide, a carbon source, and a solid thermosetting polymer precursor into a pellet; and a first heating of the compressed mixture, as defined herein; and optionally crushing, washing, or both, the resulting first heated mixture, as defined herein; and optionally a second heating, as defined herein.
Abstract:
Porous structures are made from compositions that include hollow glass bodies and an inorganic powder. The inorganic powder may act as a rigid frame member, a crystallization agent, or both, which reduces the shrinkage of the porous structures during firing. The porous structures made therefrom have an open porosity of greater than 70% and reduced shrinkage of less than 10% compared to the green structures prior to firing. Methods for firing the green structures made from the compositions are also disclosed, the firing methods including reducing a temperature ramping rate of the green structures during a crystallization temperature range of the glass of the hollow bodies.
Abstract:
A cathode in a lithium ion capacitor, including: a carbon composition comprising: an activated carbon; a conductive carbon; and a binder in in amounts as defined herein; and a current collector that supports the carbon composition, wherein the activated carbon has: a surface area of from 500 to 3000 m2/g; a pore volume where from 50 to 80% of the void volume is in pores less than 10 Å; a pore volume higher than 0.3 cm3/gm occupied by the micropores less than 10 Å; and a microporosity of greater than 60% of the total pore volume. Also disclosed is a method of making the cathode and using the cathode in a lithium ion capacitor.