Chandra RP, Bura R, Mabee WE, Berlin DA, Pan X, Saddler JN (2007) Substrate pretreatment: The
key to effective enzymatic hydrolysis of lignocellulosics? In: Biofuels. Springer, Berlin
Heidelberg, pp 67–93
Chandra RP, Esteghlalian AR, Saddler JN (2008) Assessing substrate accessibility to enzymatic
hydrolysis by cellulases. In: Characterization of lignocellulosic materials, pp 60–80. https://doi.
org/10.1002/9781444305425.ch4
Chandel AK, Kapoor RK, Singh A, Kuhad RC (2007) Detoxification of sugarcane bagasse
hydrolysate improves ethanol production by Candida shehatae NCIM 3501. Bioresour Technol
98(10):1947–1950
Chen JH, Wang K, Xu F, Sun RC (2015) Effect of hemicellulose removal on the structural and
mechanical properties of regenerated fibers from bamboo. Cellulose 22(1):63–72
Chundawat SP, Beckham GT, Himmel ME, Dale BE (2011) Deconstruction of lignocellulosic
biomass to fuels and chemicals. Annual Review Chem Biomolecular Eng 2:121–145
CONAB, National Supply Company (2018) Análise mensal sorgo Março de 2018. https://www.
conab.gov.br/info-agro/analises-do-mercadoagropecuarioextrativista/analises-do-mercado/
historico-mensal-de-sorgo. Accessed 5 Jan 2019
CONAB, National Supply Company. Produção total de etanol no Brasil bate recorde com 32,3
bilhões de litros (2018). https://www.conab.gov.br/ultimas-noticias/2630-producao-total-deetanol-no-brasil-bate-recorde-com-32-3-bilhoes-de-litros. Accessed 3 Jan 2019
Cosgrove DJ (2005) Growth of the plant cell wall. Na Rev Mol Cell Biol 6(11):850
Crowe JD, Zarger RA, Hodge DB (2017) Relating nanoscale accessibility within plant cell walls to
improved enzyme hydrolysis yields in corn stover subjected to diverse pretreatments. J Agric
Food Chem 65(39):8652–8662
De Bhowmick G, Sarmah AK, Sen R (2018) Lignocellulosic biorefinery as a model for sustainable
development of biofuels and value added products. Bioresour Technol 247:1144–1154. https://
doi.org/10.1016/j.biortech.2017.09.163
Defanti LS, Siqueira NS, Linhares PC (2010) Produção de biocombustíveis a partir de algas
fotossintetizantes. Bolsista de Valor 1:11–21
Demirbas A (2009) Progress and recent trends in biodiesel fuels. Energy Convers Manag 50
(1):14–34
Demirbas A (2011) Competitive liquid biofuels from biomass. Appl Energy 88(1):17–28
Dotsenko AS, Gusakov AV, Rozhkova AM et al (2018) Enzymatic hydrolysis of cellulose using
mixes of mutant forms of cellulases from Penicillium verruculosum. Moscow Univ Chem Bull
73:58–62. https://doi.org/10.3103/S0027131418020037
du Preez JC (2016) Editorial: chemicals and bioproducts from biomass. Biotechnol Biofuels 9:233.
https://doi.org/10.1186/s13068-016-0637-4
EMBRAPA, Brazilian Agricultural Research Corporation (2014) Cultivo de Pínus. https://www.
spo.cnptia.embrapa.br/conteudo?p_p_id¼conteudoportlet_WAR_sistemasdeproducaolf6_
1ga1ceportlet&p_p_lifecycle¼0&p_p_state¼normal&p_p_mode¼view&p_p_col_
id¼column1&p_p_col_count¼1&p_r_p_76293187_sistemaProducaoId¼3715&p_r_p_996514994_topicoId¼3229. Accessed 17 Jan 2019
EMBRAPA, Brazilian Agricultural Research Corporation (2015) Pesquisa investe em capim como
fonte de energia. https://www.embrapa.br/busca-de-noticias/-/noticia/2422024/pesquisainveste-em-capim-como-fonte-de-energia. Accessed 5 Feb 2019
EMBRAPA, Brazilian Agricultural Research Corporation (2018) Embrapa soja. https://www.
embrapa.br/soja/cultivos/soja1/dados-economicos. Accessed 19 Jan 2019
Espinosa L, Tapanes NLCOM, Aranda DAG, Cruz YR (2014) As microalgas como fonte de
produção de biodiesel: discussão de sua viabilidade. Acta Sci Techn 2(1):1–10
Fengel D, Wegener G (1984) Wood: Chemistry, Ultrastructure, React 613:1960–1982
Flores RA et al (2012) Yield and quality of elephant grass biomass produced in the cerrados region
for bioenergy. Eng. Agríc 32(5):831–839
Franco ALC (2013) Biodiesel de microalgas: avanços e desafios. Química Nova 36(3):437–448
2 Biofuels Generation Based on Technical Process and Biomass Quality
59
key to effective enzymatic hydrolysis of lignocellulosics? In: Biofuels. Springer, Berlin
Heidelberg, pp 67–93
Chandra RP, Esteghlalian AR, Saddler JN (2008) Assessing substrate accessibility to enzymatic
hydrolysis by cellulases. In: Characterization of lignocellulosic materials, pp 60–80. https://doi.
org/10.1002/9781444305425.ch4
Chandel AK, Kapoor RK, Singh A, Kuhad RC (2007) Detoxification of sugarcane bagasse
hydrolysate improves ethanol production by Candida shehatae NCIM 3501. Bioresour Technol
98(10):1947–1950
Chen JH, Wang K, Xu F, Sun RC (2015) Effect of hemicellulose removal on the structural and
mechanical properties of regenerated fibers from bamboo. Cellulose 22(1):63–72
Chundawat SP, Beckham GT, Himmel ME, Dale BE (2011) Deconstruction of lignocellulosic
biomass to fuels and chemicals. Annual Review Chem Biomolecular Eng 2:121–145
CONAB, National Supply Company (2018) Análise mensal sorgo Março de 2018. https://www.
conab.gov.br/info-agro/analises-do-mercadoagropecuarioextrativista/analises-do-mercado/
historico-mensal-de-sorgo. Accessed 5 Jan 2019
CONAB, National Supply Company. Produção total de etanol no Brasil bate recorde com 32,3
bilhões de litros (2018). https://www.conab.gov.br/ultimas-noticias/2630-producao-total-deetanol-no-brasil-bate-recorde-com-32-3-bilhoes-de-litros. Accessed 3 Jan 2019
Cosgrove DJ (2005) Growth of the plant cell wall. Na Rev Mol Cell Biol 6(11):850
Crowe JD, Zarger RA, Hodge DB (2017) Relating nanoscale accessibility within plant cell walls to
improved enzyme hydrolysis yields in corn stover subjected to diverse pretreatments. J Agric
Food Chem 65(39):8652–8662
De Bhowmick G, Sarmah AK, Sen R (2018) Lignocellulosic biorefinery as a model for sustainable
development of biofuels and value added products. Bioresour Technol 247:1144–1154. https://
doi.org/10.1016/j.biortech.2017.09.163
Defanti LS, Siqueira NS, Linhares PC (2010) Produção de biocombustíveis a partir de algas
fotossintetizantes. Bolsista de Valor 1:11–21
Demirbas A (2009) Progress and recent trends in biodiesel fuels. Energy Convers Manag 50
(1):14–34
Demirbas A (2011) Competitive liquid biofuels from biomass. Appl Energy 88(1):17–28
Dotsenko AS, Gusakov AV, Rozhkova AM et al (2018) Enzymatic hydrolysis of cellulose using
mixes of mutant forms of cellulases from Penicillium verruculosum. Moscow Univ Chem Bull
73:58–62. https://doi.org/10.3103/S0027131418020037
du Preez JC (2016) Editorial: chemicals and bioproducts from biomass. Biotechnol Biofuels 9:233.
https://doi.org/10.1186/s13068-016-0637-4
EMBRAPA, Brazilian Agricultural Research Corporation (2014) Cultivo de Pínus. https://www.
spo.cnptia.embrapa.br/conteudo?p_p_id¼conteudoportlet_WAR_sistemasdeproducaolf6_
1ga1ceportlet&p_p_lifecycle¼0&p_p_state¼normal&p_p_mode¼view&p_p_col_
id¼column1&p_p_col_count¼1&p_r_p_76293187_sistemaProducaoId¼3715&p_r_p_996514994_topicoId¼3229. Accessed 17 Jan 2019
EMBRAPA, Brazilian Agricultural Research Corporation (2015) Pesquisa investe em capim como
fonte de energia. https://www.embrapa.br/busca-de-noticias/-/noticia/2422024/pesquisainveste-em-capim-como-fonte-de-energia. Accessed 5 Feb 2019
EMBRAPA, Brazilian Agricultural Research Corporation (2018) Embrapa soja. https://www.
embrapa.br/soja/cultivos/soja1/dados-economicos. Accessed 19 Jan 2019
Espinosa L, Tapanes NLCOM, Aranda DAG, Cruz YR (2014) As microalgas como fonte de
produção de biodiesel: discussão de sua viabilidade. Acta Sci Techn 2(1):1–10
Fengel D, Wegener G (1984) Wood: Chemistry, Ultrastructure, React 613:1960–1982
Flores RA et al (2012) Yield and quality of elephant grass biomass produced in the cerrados region
for bioenergy. Eng. Agríc 32(5):831–839
Franco ALC (2013) Biodiesel de microalgas: avanços e desafios. Química Nova 36(3):437–448
2 Biofuels Generation Based on Technical Process and Biomass Quality
59
