Comparison of Selected Procedures for Generating Activated Carbon. . .
179
Ioannidou, O., & Zabaniotou, A. (2007). Agricultural residues as precursors for activated carbon
production: A review. Renewable and Sustainable Energy Reviews, 1, 1966–2005.
Janoš, P., Coskun, S., Pilaˇ rová, V., & Rejnek, J. (2009). Removal of basic (methylene blue) and
acid (Egacid Orange) dyes from waters by sorption on chemically treated wood shavings.
Bioresource Technology, 100, 1450–1453.
Kundu, A., Redzwan, G., Sahu, J. N., Mukherjee, S., Gupta, B. S., & Hashim, M. A. (2014). Hexavalent chromium adsorption by a novel activated carbon prepared by microwave activation.
Bio Resources, 9, 1498–1518.
Laine, J., Calafat, A., & Labady, M. (1989). Preparation and characterization of activated carbons
from coconut shell impregnated with phosphoric acid. Carbon, 27, 191–195.
Laine, J., & Yunes, S. (1992). Effect of the preparation method on the pore size distribution of
activated carbon from coconut shell. Carbon, 30, 601–604.
Langtangen, H. P. (2008). Python scripting for computational science. Berlin: Springer.
Lopez, M., Labady, M., & Laine, J. (1996). Preparation of activated carbon from wood monolith.
Carbon, 34, 825–827.
Menéndez-Díaza, J. A., & Martín-Gullónb, I. (2006). Types of carbon adsorbents and their
production, in: Activated carbon surfaces in environmental remediation, T. Bandosz, ed.
Interface Science and Technology, 7, 1–47.
NATO. (2017). New phytotechnology for cleaning contaminated military sites. Project of NATO
contaminated-military-sites-is-granted-to-the-institute-as-multy-year-research-project-bynato-science-for-peace-and-security-program/
Nsanganwimana, F., Pourrut, B., Mench, M., & Douay, F. (2014). Suitability of Miscanthus species
for managing inorganic and organic contaminated land and restoring ecosystem services. A
review. Journal of Environmental Management, 143, 123–134.
Nurzhanova, A., Pidlisnyuk, V., Abit, K., Nurzhanov, C., Kenessov, B., Stefanovsk, T., & Ericson,
L. (2019). Comparative assessment of using Miscanthus × giganteus for remediation of soils
contaminated by heavy metals: A case of military and mining sites. Environmental Science and
Pollution Research, 26, 13320–13333.
Pastor-Villegas, J., Valenzuela-Calahorro, C., & Gomez-Serrano, V. (1994). Preparation of activated carbon from rockrose char. Influence of activation temperature. Biomass and Bioenergy,
6, 453–460.
Phan, N. H., Rio, S., Faur, C., Le Coq, L., Le Cloirec, P., & Nguyen, T. H. (2006). Production
of fibrous activated carbons from natural cellulose (jute, coconut) fibers for water treatment
applications. Carbon, 44, 2569–2577.
Pidlisnyuk, B., Erickson, L., Kharchenko, S., & Stefanovska, T. (2014). Sustainable land management: Growing miscanthus in soils contaminated with heavy metals. Journal of Environmental
Protection, Special Issue in Environmental Remediation, 5, 723–730.
Python. (2015). Python, https://www.python.org/
Reddad, Z., Gerente, C., Andres, Y., & Le Cloirec, P. (2003). Mechanisms of Cr(III) and Cr(VI)
removal from aqueous solutions by sugar beet pulp. Environmental Technology, 24, 257–264.
Teng, H., & Wang, S.-C. (2000). Preparation of porous carbons from phenol-formaldehyde resins
with chemical and physical activation. Carbon, 38, 817–824.
Thommes, M., Kaneko, K., Neimark, A. V., Olivier, J. P., Rodriguez-Reinoso, F., Rouquerol, J.,
& Sing, K. S. W. (2015). Physisorption of gases, with special reference to the evaluation of
surface area and pore size distribution (IUPAC Technical Report). Pure and Applied Chemistry,
87, 1051–1069.
Yang, J., & Qiu, K. (2010). Preparation of activated carbons from walnut shells via vacuum
chemical activation and their application for methylene blue removal. Chemical Engineering
Journal, 165, 209–217.
Wang, B., Gaob, B., & Fang, J. (2017). Recent advances in engineered biochar productions and
applications. Critical Reviews in Environmental Science and Technology, 47, 2158–2207.
Weigend, M. (2006). Objektorientierte Programmierung mit Python. Bonn: mitp-Verlag.
179
Ioannidou, O., & Zabaniotou, A. (2007). Agricultural residues as precursors for activated carbon
production: A review. Renewable and Sustainable Energy Reviews, 1, 1966–2005.
Janoš, P., Coskun, S., Pilaˇ rová, V., & Rejnek, J. (2009). Removal of basic (methylene blue) and
acid (Egacid Orange) dyes from waters by sorption on chemically treated wood shavings.
Bioresource Technology, 100, 1450–1453.
Kundu, A., Redzwan, G., Sahu, J. N., Mukherjee, S., Gupta, B. S., & Hashim, M. A. (2014). Hexavalent chromium adsorption by a novel activated carbon prepared by microwave activation.
Bio Resources, 9, 1498–1518.
Laine, J., Calafat, A., & Labady, M. (1989). Preparation and characterization of activated carbons
from coconut shell impregnated with phosphoric acid. Carbon, 27, 191–195.
Laine, J., & Yunes, S. (1992). Effect of the preparation method on the pore size distribution of
activated carbon from coconut shell. Carbon, 30, 601–604.
Langtangen, H. P. (2008). Python scripting for computational science. Berlin: Springer.
Lopez, M., Labady, M., & Laine, J. (1996). Preparation of activated carbon from wood monolith.
Carbon, 34, 825–827.
Menéndez-Díaza, J. A., & Martín-Gullónb, I. (2006). Types of carbon adsorbents and their
production, in: Activated carbon surfaces in environmental remediation, T. Bandosz, ed.
Interface Science and Technology, 7, 1–47.
NATO. (2017). New phytotechnology for cleaning contaminated military sites. Project of NATO
contaminated-military-sites-is-granted-to-the-institute-as-multy-year-research-project-bynato-science-for-peace-and-security-program/
Nsanganwimana, F., Pourrut, B., Mench, M., & Douay, F. (2014). Suitability of Miscanthus species
for managing inorganic and organic contaminated land and restoring ecosystem services. A
review. Journal of Environmental Management, 143, 123–134.
Nurzhanova, A., Pidlisnyuk, V., Abit, K., Nurzhanov, C., Kenessov, B., Stefanovsk, T., & Ericson,
L. (2019). Comparative assessment of using Miscanthus × giganteus for remediation of soils
contaminated by heavy metals: A case of military and mining sites. Environmental Science and
Pollution Research, 26, 13320–13333.
Pastor-Villegas, J., Valenzuela-Calahorro, C., & Gomez-Serrano, V. (1994). Preparation of activated carbon from rockrose char. Influence of activation temperature. Biomass and Bioenergy,
6, 453–460.
Phan, N. H., Rio, S., Faur, C., Le Coq, L., Le Cloirec, P., & Nguyen, T. H. (2006). Production
of fibrous activated carbons from natural cellulose (jute, coconut) fibers for water treatment
applications. Carbon, 44, 2569–2577.
Pidlisnyuk, B., Erickson, L., Kharchenko, S., & Stefanovska, T. (2014). Sustainable land management: Growing miscanthus in soils contaminated with heavy metals. Journal of Environmental
Protection, Special Issue in Environmental Remediation, 5, 723–730.
Python. (2015). Python, https://www.python.org/
Reddad, Z., Gerente, C., Andres, Y., & Le Cloirec, P. (2003). Mechanisms of Cr(III) and Cr(VI)
removal from aqueous solutions by sugar beet pulp. Environmental Technology, 24, 257–264.
Teng, H., & Wang, S.-C. (2000). Preparation of porous carbons from phenol-formaldehyde resins
with chemical and physical activation. Carbon, 38, 817–824.
Thommes, M., Kaneko, K., Neimark, A. V., Olivier, J. P., Rodriguez-Reinoso, F., Rouquerol, J.,
& Sing, K. S. W. (2015). Physisorption of gases, with special reference to the evaluation of
surface area and pore size distribution (IUPAC Technical Report). Pure and Applied Chemistry,
87, 1051–1069.
Yang, J., & Qiu, K. (2010). Preparation of activated carbons from walnut shells via vacuum
chemical activation and their application for methylene blue removal. Chemical Engineering
Journal, 165, 209–217.
Wang, B., Gaob, B., & Fang, J. (2017). Recent advances in engineered biochar productions and
applications. Critical Reviews in Environmental Science and Technology, 47, 2158–2207.
Weigend, M. (2006). Objektorientierte Programmierung mit Python. Bonn: mitp-Verlag.
