Environmental Engineering Reference
In-Depth Information
29. Cao, D., et al., Determination of pore size distribution and adsorption of methane and CCl 4
on activated carbon by molecular simulation. Carbon, 2002, 40(13), 2359-2365.
30. Py, X., Guillot, A., & Cagnon, B. Activated carbon porosity tailoring by cyclic sorption/
decomposition of molecular oxygen. Carbon, 2003, 41(8), 1533-1543.
31. Tanaike, O., et al., Preparation and pore control of highly mesoporous carbon from defluo-
rinated PTFE. Carbon, 2003, 41(9), 1759-1764.
32. Zhao, J., et al., Pore structure control of mesoporous carbon as super-capacitor material.
Materials Letters, 2007, 61(23), 4639-4642.
33. Chmiola, J., et al., Anomalous increase in carbon capacitance at pore sizes less than 1
nanometer. Science, 2006, 3135794, 1760-1763.
34. Lin, C., Ritter, J. A., & Popov, B. N. Correlation of Double
Layer Capacitance with the
Pore Structure of Sol Gel Derived Carbon Xerogels. Journal of the Electrochemical Soci-
ety, 1999, 146(10), 3639-3643.
35. Gogotsi, Y., et al., Nanoporous carbide-derived carbon with tunable pore size. Nature ma-
terials, 2003, 2(9), 591-594.
36. Ustinov, E., Do, D., & Fenelonov, V. Pore size distribution analysis of activated carbons:
Application of density functional theory using non-graphitized carbon black as a reference
system. Carbon, 2006, 44(4), 653-663.
37. Han, S., et al., The effect of silica template structure on the pore structure of mesoporous
carbons. Carbon, 2003, 41(5), 1049-1056.
38. Pérez-Mendoza, M., et al., Analysis of the microporous texture of a glassy carbon by ad-
sorption measurements and Monte Carlo simulation. Evolution with chemical and physical
activation. Carbon, 2006, 44(4), 638-645.
39. Dombrowski, R. J., Hyduke, D. R., & Lastoskie, C. M. Pore size analysis of activated
carbons from argon and nitrogen porosimetry using density functional theory. Langmuir,
2000, 16(11), 5041-5050.
40. Khalili, N. R., et al., Production of micro and mesoporous activated carbon from paper mill
sludge: I. Effect of zinc chloride activation. Carbon, 2000, 38(14), 1905-1915.
41. Dandekar, A., Baker, R., & Vannice, M., Characterization of activated carbon, graphi-
tized carbon fibers and synthetic diamond powder using TPD and DRIFTS. Carbon, 1998,
36(12), 1821-1831.
42. Lastoskie, C., Gubbins, K. E., & Quirke, N. Pore size distribution analysis of microporous
carbons: a density functional theory approach. The Journal of Physical Chemistry, 1993,
97(18), 4786-4796.
43. Kakei, K., et al., Multi-stage micropore filling mechanism of nitrogen on microporous and
micrographitic carbons. J. Chem. Soc., Faraday Trans., 1990, 86(2), 371-376.
44. Sing, K. S., Adsorption methods for the characterization of porous materials. Advances in
colloid and interface science, 1998, 76, 3-11.
45. Barranco, V., et al., Amorphous carbon nanofibers and their activated carbon nanofibers as
super-capacitor electrodes. The Journal of Physical Chemistry C, 2010, 114(22), 10302-
10307.
46. Kawabuchi, Y., et al., Chemical vapor deposition of heterocyclic compounds over active
carbon fiber to control its porosity and surface function. Langmuir, 1997, 13(8), 2314-
2317.
47. Miura, K., Hayashi, J. & Hashimoto, K. Production of molecular sieving carbon through
carbonization of coal modified by organic additives. Carbon, 1991, 29(4), 653-660.
48. Kawabuchi, Y., et al., The modification of pore size in activated carbon fibers by chemi-
cal vapor deposition and its effects on molecular sieve selectivity. Carbon, 1998,36(4),
377-382.
Search WWH ::




Custom Search