Hsu, L. Y., & Teng, H. (2000). Influence of different chemical reagents on the preparation of activated carbons from
bituminous coal. Fuel Process. Tecnol. 64(1–3), 155–166.
Huang, C., Chen, C., & Chu, S. (2006). Effect of moisture on
H 2 S adsorption by copper impregnated activated carbon.
J. Hazard. Mater. 136, 866–873.
Igalavithana, A. D., Choi, S. W., Shang, J., Hanif, A., Dissanayake, P. D., Tsang, D. C. W., Kwon, J.-H., Lee, K. B.,
& Ok,Y. S. (2020). Carbon dioxide capture in biochar produced from pine sawdust and paper mill sludge: Effect of
porous structure and surface chemistry. Sci. Tot. Environ.
139845.
Jung, S., Park, Y., & Kwon, E. E. (2019). Strategic use
of biochar for CO 2 capture and sequestration. J. CO 2
Utilizatio 32, 128–139.
Kalyani, P., & Anitha, A. (2013). Biomass carbon & its
prospects in electrochemical energy systems. Int. J.
Hydrogen Energy 38(10), 4034–4045.
Kanjanarong, J., Giri, B. S., Jaisi, D. P., Oliveira, F. R., Boonsawang, P., Chaiprapat, S., Singh, R. S., Balakrishna,
A., & Khanal, S. K. (2017). Removal of hydrogen sulfide generated during anaerobic treatment of sulfate-laden
wastewater using biochar: Evaluation of efficiency and
mechanisms. Bioresour. Technol. 234, 115–121.
Khan, I. U., Othman, M. H. D., Hashim, H., Matsuura, T.,
Ismail, A. F., Rezaei-DashtArzhandi, M., & Azelee, I. W.
(2017). Biogas as a renewable energy fuel – A review of
biogas upgrading , utilisation and storage. Energy Conver.
Manage. 150, 277–294.
Lahijani, P., Mohammadi, M., & Mohamed, A. R. (2018).
Metal incorporated biochar as a potential adsorbent for
high capacity CO 2 capture at ambient condition. J. CO 2
Utilization 26, 281–293.
Li, D., Ma, T., Zhang, R., Tian,Y., & Qiao,Y. (2015). Preparation of porous carbons with high low-pressure CO 2 uptake
by KOH activation of rice husk char. Fuel. 139, 68–70.
Li, Y., Li, D., Rao, Y., Zhao, X., & Wu, M. (2016).
Superior CO 2 , CH 4 , and H 2 uptakes over ultrahighsurface-area carbon spheres prepared from sustainable
biomass-derived char by CO 2 activation. Carbon 105,
454–462.
Locke, D. C. (2001). Sewage Sludge-Derived Materials as
Efficient Adsorbents for Removal of Hydrogen Sulfide.
Environ. Sci. Technol. 1537–1543.
Madzaki, H., Karimghani, W. A. W. A. B., Nurzalikharebitanim, & Azilbaharialias. (2016). Carbon Dioxide Adsorption on Sawdust Biochar. Procedia Eng. 148,
718–725.
Magomnang, A. S. M., Villanueva, P. E. P., & Ph, D. (2014).
Removal of Hydrogen Sulfide from Biogas Using a Fixed
Bed of Regenerated Steel Wool. Int. Conf. Agri. Biol.
Environ. Sci. 14–17.
Méndez, A., Paz-Ferreiro, J., Araujo, F., & Gascó, G. (2014).
Biochar from pyrolysis of deinking paper sludge and its
use in the treatment of a nickel polluted soil. J. Anal. Appl.
Pyrol. 107, 46–52.
Munusamy, K., Sethia, G., Patil, D. V, Rallapalli, P. B. S.,
Somani, R. S., & Bajaj, H. C. (2012). Sorption of carbon dioxide , methane , nitrogen and carbon monoxide on
MIL-101 ( Cr ): Volumetric measurements and dynamic
adsorption studies. Chem. Eng. J. 196, 359–368.
Murphy, J. D., & Thamsiriroj, T. (2013). Fundamental science
and engineering of the anaerobic digestion process for
biogas production. In Th biogas handbook (pp. 104-130).
Woodhead Pulishing.
Na, B., Lee, H., Koo, K., & Song, H. K. (2002). Effect
of Rinse and Recycle Methods on the Pressure Swing
Adsorption Process To Recover CO 2 from Power Plant
Flue Gas Using Activated Carbon. Ind. Eng. Chem. Res.
5498–5503.
Nor, N. M., Campus, P. P., Lau, L. C., Tunku, U., Rahman, A., Lee, K. T., & Mohamed, A. R. (2013). Synthesis
of activated carbon from lignocellulosic biomass and its
applications in air pollution control - A review. J. Environ.
Chem. Eng. 1(4), 658–666.
Nowicki, P., Skibiszewska, P., & Pietrzak, R. (2014). Hydrogen sulphide removal on carbonaceous adsorbents prepared from coffee industry waste materials. Chem. Eng.
J. 248, 208–215.
Ortiz, F. J. G., Aguilera, P. G., & Ollero, P. (2014). Biogas
desulfurization by adsorption on thermally treated. Sep.
Purif. Technol. 123, 200–213.
Pallarés, J., González-cencerrado, A., & Arauzo, I. (2018).
Biomass and Bioenergy Production and characterization
of activated carbon from barley straw by physical activation with carbon dioxide and steam. Biomass Bioenergy.
115, 64–73.
Paolini, V., Petracchini, F., Guerriero, E., Bencini, A., &
Drigo, S. (2016). Biogas cleaning and upgrading with
natural zeolites from tuffs. Environ. Technol. 37(11),
1418–1427.
Ping Zhang, J., Sun, Y., Woo, M. W., Zhang, L., & Xu,
K. Z. (2016). Preparation of steam activated carbon
from black liquor by flue gas precipitation and its performance in hydrogen sulfide removal: Experimental
and simulation works. J. Taiwan Inst. Chem. Eng. 59,
395–404.
Porpatham, E., Ramesh, A., & Nagalingam, B. (2008). Investigation on the effect of concentration of methane in biogas
when used as a fuel for a spark ignition engine. Fuel 87,
1651–1659.
Presser, V., McDonough, J., Yeon, S. H., & Gogotsi, Y.
(2011). Effect of pore size on carbon dioxide sorption
by carbide derived carbon. Energy Environ. Sci. 4(8),
3059–3066.
Promraksa, A., & Rakmak, N. (2020). Biochar production
from palm oil mill residues and application of the biochar
to adsorb carbon dioxide. Heliyon 6(5).
Qambrani, N. A., Rahman, M. M., Won, S., Shim, S., & Ra, C.
(2017). Biochar properties and eco-friendly applications
for climate change mitigation, waste management, and
wastewater treatment: A review. Renew. Sustain Energy
Rev. 79, 255–273.
Qian, K., Kumar, A., Zhang, H., Bellmer, D., & Huhnke, R.
(2015). Recent advances in utilization of biochar. Renew.
Sustain. Energy Rev. 42, 1055–1064.
Rashidi, N. A., Yusup, S., & Hameed, B. H. (2013). Kinetic
studies on carbon dioxide capture using lignocellulosic
based activated carbon. Energy 61, 440–446.
Razbani, O., Mirzamohammad, N., & Assadi, M. (2011).
Literature review and road map for using biogas in
internal combustion engines. Third Int. Conf. Appl.
Energy. 10.
Rodriguez-reinoso, F., Prauchner, M. J., & Rodríguezreinoso, F. (2008). Preparation of Granular Activated
Carbons for Adsorption of Natural Gas Microporous and
Mesoporous Materials Chemical versus physical activation of coconut shell: A comparative study. Micropor
Mesopor Material. 152, 163–171.
Saifullah, Dahlawi, S., Naeem, A., Rengel, Z., & Naidu,
R. (2018). Biochar application for the remediation of
salt-affected soils: Challenges and opportunities. Sci. Tot.
Environ. 625, 320–335.
Scarlat, N., Dallemand, J., & Fahl, F. (2018). Biogas: Developments and perspectives in Europe. Renew. Energy. 129,
457–472.
294
bituminous coal. Fuel Process. Tecnol. 64(1–3), 155–166.
Huang, C., Chen, C., & Chu, S. (2006). Effect of moisture on
H 2 S adsorption by copper impregnated activated carbon.
J. Hazard. Mater. 136, 866–873.
Igalavithana, A. D., Choi, S. W., Shang, J., Hanif, A., Dissanayake, P. D., Tsang, D. C. W., Kwon, J.-H., Lee, K. B.,
& Ok,Y. S. (2020). Carbon dioxide capture in biochar produced from pine sawdust and paper mill sludge: Effect of
porous structure and surface chemistry. Sci. Tot. Environ.
139845.
Jung, S., Park, Y., & Kwon, E. E. (2019). Strategic use
of biochar for CO 2 capture and sequestration. J. CO 2
Utilizatio 32, 128–139.
Kalyani, P., & Anitha, A. (2013). Biomass carbon & its
prospects in electrochemical energy systems. Int. J.
Hydrogen Energy 38(10), 4034–4045.
Kanjanarong, J., Giri, B. S., Jaisi, D. P., Oliveira, F. R., Boonsawang, P., Chaiprapat, S., Singh, R. S., Balakrishna,
A., & Khanal, S. K. (2017). Removal of hydrogen sulfide generated during anaerobic treatment of sulfate-laden
wastewater using biochar: Evaluation of efficiency and
mechanisms. Bioresour. Technol. 234, 115–121.
Khan, I. U., Othman, M. H. D., Hashim, H., Matsuura, T.,
Ismail, A. F., Rezaei-DashtArzhandi, M., & Azelee, I. W.
(2017). Biogas as a renewable energy fuel – A review of
biogas upgrading , utilisation and storage. Energy Conver.
Manage. 150, 277–294.
Lahijani, P., Mohammadi, M., & Mohamed, A. R. (2018).
Metal incorporated biochar as a potential adsorbent for
high capacity CO 2 capture at ambient condition. J. CO 2
Utilization 26, 281–293.
Li, D., Ma, T., Zhang, R., Tian,Y., & Qiao,Y. (2015). Preparation of porous carbons with high low-pressure CO 2 uptake
by KOH activation of rice husk char. Fuel. 139, 68–70.
Li, Y., Li, D., Rao, Y., Zhao, X., & Wu, M. (2016).
Superior CO 2 , CH 4 , and H 2 uptakes over ultrahighsurface-area carbon spheres prepared from sustainable
biomass-derived char by CO 2 activation. Carbon 105,
454–462.
Locke, D. C. (2001). Sewage Sludge-Derived Materials as
Efficient Adsorbents for Removal of Hydrogen Sulfide.
Environ. Sci. Technol. 1537–1543.
Madzaki, H., Karimghani, W. A. W. A. B., Nurzalikharebitanim, & Azilbaharialias. (2016). Carbon Dioxide Adsorption on Sawdust Biochar. Procedia Eng. 148,
718–725.
Magomnang, A. S. M., Villanueva, P. E. P., & Ph, D. (2014).
Removal of Hydrogen Sulfide from Biogas Using a Fixed
Bed of Regenerated Steel Wool. Int. Conf. Agri. Biol.
Environ. Sci. 14–17.
Méndez, A., Paz-Ferreiro, J., Araujo, F., & Gascó, G. (2014).
Biochar from pyrolysis of deinking paper sludge and its
use in the treatment of a nickel polluted soil. J. Anal. Appl.
Pyrol. 107, 46–52.
Munusamy, K., Sethia, G., Patil, D. V, Rallapalli, P. B. S.,
Somani, R. S., & Bajaj, H. C. (2012). Sorption of carbon dioxide , methane , nitrogen and carbon monoxide on
MIL-101 ( Cr ): Volumetric measurements and dynamic
adsorption studies. Chem. Eng. J. 196, 359–368.
Murphy, J. D., & Thamsiriroj, T. (2013). Fundamental science
and engineering of the anaerobic digestion process for
biogas production. In Th biogas handbook (pp. 104-130).
Woodhead Pulishing.
Na, B., Lee, H., Koo, K., & Song, H. K. (2002). Effect
of Rinse and Recycle Methods on the Pressure Swing
Adsorption Process To Recover CO 2 from Power Plant
Flue Gas Using Activated Carbon. Ind. Eng. Chem. Res.
5498–5503.
Nor, N. M., Campus, P. P., Lau, L. C., Tunku, U., Rahman, A., Lee, K. T., & Mohamed, A. R. (2013). Synthesis
of activated carbon from lignocellulosic biomass and its
applications in air pollution control - A review. J. Environ.
Chem. Eng. 1(4), 658–666.
Nowicki, P., Skibiszewska, P., & Pietrzak, R. (2014). Hydrogen sulphide removal on carbonaceous adsorbents prepared from coffee industry waste materials. Chem. Eng.
J. 248, 208–215.
Ortiz, F. J. G., Aguilera, P. G., & Ollero, P. (2014). Biogas
desulfurization by adsorption on thermally treated. Sep.
Purif. Technol. 123, 200–213.
Pallarés, J., González-cencerrado, A., & Arauzo, I. (2018).
Biomass and Bioenergy Production and characterization
of activated carbon from barley straw by physical activation with carbon dioxide and steam. Biomass Bioenergy.
115, 64–73.
Paolini, V., Petracchini, F., Guerriero, E., Bencini, A., &
Drigo, S. (2016). Biogas cleaning and upgrading with
natural zeolites from tuffs. Environ. Technol. 37(11),
1418–1427.
Ping Zhang, J., Sun, Y., Woo, M. W., Zhang, L., & Xu,
K. Z. (2016). Preparation of steam activated carbon
from black liquor by flue gas precipitation and its performance in hydrogen sulfide removal: Experimental
and simulation works. J. Taiwan Inst. Chem. Eng. 59,
395–404.
Porpatham, E., Ramesh, A., & Nagalingam, B. (2008). Investigation on the effect of concentration of methane in biogas
when used as a fuel for a spark ignition engine. Fuel 87,
1651–1659.
Presser, V., McDonough, J., Yeon, S. H., & Gogotsi, Y.
(2011). Effect of pore size on carbon dioxide sorption
by carbide derived carbon. Energy Environ. Sci. 4(8),
3059–3066.
Promraksa, A., & Rakmak, N. (2020). Biochar production
from palm oil mill residues and application of the biochar
to adsorb carbon dioxide. Heliyon 6(5).
Qambrani, N. A., Rahman, M. M., Won, S., Shim, S., & Ra, C.
(2017). Biochar properties and eco-friendly applications
for climate change mitigation, waste management, and
wastewater treatment: A review. Renew. Sustain Energy
Rev. 79, 255–273.
Qian, K., Kumar, A., Zhang, H., Bellmer, D., & Huhnke, R.
(2015). Recent advances in utilization of biochar. Renew.
Sustain. Energy Rev. 42, 1055–1064.
Rashidi, N. A., Yusup, S., & Hameed, B. H. (2013). Kinetic
studies on carbon dioxide capture using lignocellulosic
based activated carbon. Energy 61, 440–446.
Razbani, O., Mirzamohammad, N., & Assadi, M. (2011).
Literature review and road map for using biogas in
internal combustion engines. Third Int. Conf. Appl.
Energy. 10.
Rodriguez-reinoso, F., Prauchner, M. J., & Rodríguezreinoso, F. (2008). Preparation of Granular Activated
Carbons for Adsorption of Natural Gas Microporous and
Mesoporous Materials Chemical versus physical activation of coconut shell: A comparative study. Micropor
Mesopor Material. 152, 163–171.
Saifullah, Dahlawi, S., Naeem, A., Rengel, Z., & Naidu,
R. (2018). Biochar application for the remediation of
salt-affected soils: Challenges and opportunities. Sci. Tot.
Environ. 625, 320–335.
Scarlat, N., Dallemand, J., & Fahl, F. (2018). Biogas: Developments and perspectives in Europe. Renew. Energy. 129,
457–472.
294
