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Improvement of hydrogen production from Chlorella sp. biomass by acid-thermal pretreatment

BACKGROUND: Owing to the high growth rate, high protein and carbohydrate contents, and an ability to grow autotrophically, microalgal biomass is regarded as a promising feedstock for fermentative hydrogen production. However, the rigid cell wall of microalgae impedes efficient hydrolysis of the biom...

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Autores principales: Giang, Tran T., Lunprom, Siriporn, Liao, Qiang, Reungsang, Alissara, Salakkam, Apilak
Formato: Online Artículo Texto
Lenguaje:English
Publicado: PeerJ Inc. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6431539/
https://www.ncbi.nlm.nih.gov/pubmed/30923655
http://dx.doi.org/10.7717/peerj.6637
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author Giang, Tran T.
Lunprom, Siriporn
Liao, Qiang
Reungsang, Alissara
Salakkam, Apilak
author_facet Giang, Tran T.
Lunprom, Siriporn
Liao, Qiang
Reungsang, Alissara
Salakkam, Apilak
author_sort Giang, Tran T.
collection PubMed
description BACKGROUND: Owing to the high growth rate, high protein and carbohydrate contents, and an ability to grow autotrophically, microalgal biomass is regarded as a promising feedstock for fermentative hydrogen production. However, the rigid cell wall of microalgae impedes efficient hydrolysis of the biomass, resulting in low availability of assimilable nutrients and, consequently, low hydrogen production. Therefore, pretreatment of the biomass is necessary in order to achieve higher hydrogen yield (HY). In the present study, acid-thermal pretreatment of Chlorella sp. biomass was investigated. Conditions for the pretreatment, as well as those for hydrogen production from the pretreated biomass, were optimized. Acid pretreatment was also conducted for comparison. RESULTS: Under optimum conditions (0.75% (v/v) H(2)SO(4), 160 °C, 30 min, and 40 g-biomass/L), acid-thermal pretreatment yielded 151.8 mg-reducing-sugar/g-biomass. This was around 15 times that obtained from the acid pretreatment under optimum conditions (4% (v/v) H(2)SO(4), 150 min, and 40 g-biomass/L). Fermentation of the acid-thermal pretreated biomass gave 1,079 mL-H(2)/L, with a HY of 54.0 mL-H(2)/g-volatile-solids (VS), while only 394 mL/L and 26.3 mL-H(2)/g-VS were obtained from the acid-pretreated biomass. CONCLUSIONS: Acid-thermal pretreatment was effective in solubilizing the biomass of Chlorella sp. Heat exerted synergistic effect with acid to release nutrients from the biomass. Satisfactory HY obtained with the acid-thermal pretreated biomass demonstrates that this pretreatment method was effective, and that it should be implemented to achieve high HY.
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spelling pubmed-64315392019-03-28 Improvement of hydrogen production from Chlorella sp. biomass by acid-thermal pretreatment Giang, Tran T. Lunprom, Siriporn Liao, Qiang Reungsang, Alissara Salakkam, Apilak PeerJ Biotechnology BACKGROUND: Owing to the high growth rate, high protein and carbohydrate contents, and an ability to grow autotrophically, microalgal biomass is regarded as a promising feedstock for fermentative hydrogen production. However, the rigid cell wall of microalgae impedes efficient hydrolysis of the biomass, resulting in low availability of assimilable nutrients and, consequently, low hydrogen production. Therefore, pretreatment of the biomass is necessary in order to achieve higher hydrogen yield (HY). In the present study, acid-thermal pretreatment of Chlorella sp. biomass was investigated. Conditions for the pretreatment, as well as those for hydrogen production from the pretreated biomass, were optimized. Acid pretreatment was also conducted for comparison. RESULTS: Under optimum conditions (0.75% (v/v) H(2)SO(4), 160 °C, 30 min, and 40 g-biomass/L), acid-thermal pretreatment yielded 151.8 mg-reducing-sugar/g-biomass. This was around 15 times that obtained from the acid pretreatment under optimum conditions (4% (v/v) H(2)SO(4), 150 min, and 40 g-biomass/L). Fermentation of the acid-thermal pretreated biomass gave 1,079 mL-H(2)/L, with a HY of 54.0 mL-H(2)/g-volatile-solids (VS), while only 394 mL/L and 26.3 mL-H(2)/g-VS were obtained from the acid-pretreated biomass. CONCLUSIONS: Acid-thermal pretreatment was effective in solubilizing the biomass of Chlorella sp. Heat exerted synergistic effect with acid to release nutrients from the biomass. Satisfactory HY obtained with the acid-thermal pretreated biomass demonstrates that this pretreatment method was effective, and that it should be implemented to achieve high HY. PeerJ Inc. 2019-03-21 /pmc/articles/PMC6431539/ /pubmed/30923655 http://dx.doi.org/10.7717/peerj.6637 Text en ©2019 Giang et al. http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, reproduction and adaptation in any medium and for any purpose provided that it is properly attributed. For attribution, the original author(s), title, publication source (PeerJ) and either DOI or URL of the article must be cited.
spellingShingle Biotechnology
Giang, Tran T.
Lunprom, Siriporn
Liao, Qiang
Reungsang, Alissara
Salakkam, Apilak
Improvement of hydrogen production from Chlorella sp. biomass by acid-thermal pretreatment
title Improvement of hydrogen production from Chlorella sp. biomass by acid-thermal pretreatment
title_full Improvement of hydrogen production from Chlorella sp. biomass by acid-thermal pretreatment
title_fullStr Improvement of hydrogen production from Chlorella sp. biomass by acid-thermal pretreatment
title_full_unstemmed Improvement of hydrogen production from Chlorella sp. biomass by acid-thermal pretreatment
title_short Improvement of hydrogen production from Chlorella sp. biomass by acid-thermal pretreatment
title_sort improvement of hydrogen production from chlorella sp. biomass by acid-thermal pretreatment
topic Biotechnology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6431539/
https://www.ncbi.nlm.nih.gov/pubmed/30923655
http://dx.doi.org/10.7717/peerj.6637
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