Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
1413404 | Carbon | 2015 | 15 Pages |
Abstract
A new approach, based on a combination of salt and hard templating for producing multi-modal porous carbons is demonstrated. The hard template, silica nanoparticles, generate mesopores (â¼22 nm), and in some cases borderline-macropores (â¼64 nm), resulting in high pore volume (â¼3.9 cm3/g) while the salt template, zinc chloride, generates borderline-mesopores (â¼2 nm), thus imparting high surface area (â¼2100 m2/g). The versatility of the proposed synthesis technique is demonstrated using: (i) dual salt templates with hard template resulting in magnetic, nanostructured-clay embedded (â¼27% clay content), high surface area (â¼1527 m2/g) bimodal carbons (â¼2 and 70 nm pores), (ii) multiple hard templates with salt template resulting in tri-modal carbons (â¼2, 12 and 28 nm pores), (iii) low temperature (450 °C) synthesis of bimodal carbons afforded by the presence of hygroscopic salt template, (iv) easy coupling with physical activation approaches. A selected set of thus synthesized carbons were used to evaluate, for the first time, the simultaneous effects of carbon porosity and pressure applied during electrode fabrication on EDLC performance. Electrode pressing was found to be more favorable for carbons containing hard-templated mesopores (â¼87% capacitance retention at current density of 40 A/g) as compared to those without (â¼54% capacitance retention).
Related Topics
Physical Sciences and Engineering
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Energy (General)
Authors
Nidhi Bhandari, Rubal Dua, Luis Estevez, Ritu Sahore, Emmanuel P. Giannelis,