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Science Press, Cambridge, UK
Amin SA, Green DH, Hart MC, Küpper FC, Sunda WG, Carrano CJ (2009) Photolysis of iron–
siderophore chelates promotes bacterial–algal mutualism. Proc Natl Acad Sci 106
(40):17071–17076
Antal TK, Krendeleva TE, Laurinavichene TV, Makarova VV, Ghirardi ML, Rubin AB et al (2003)
The dependence of algal H2 production on photosystem II and O2 consumption activities in
sulfur-deprived Chlamydomonas reinhardtii cells. Biochim Biophys Acta (BBA)—Bioenergetics 1607:153–160
Antal TK, Volgusheva AA, Kukarskih GP, Krendeleva TE, Rubin AB (2009) Relationships
between H2 photoproduction and different electron transport pathways in sulfur deprived
Chlamydomonas reinhardtii. Int J Hydrog Energy 34(22):9087–9094
Antal TK, Kukarskikh GP, Volgusheva AA, Krendeleva TE, Tyystjärvi E, Rubina AB (2016)
Hydrogen photoproduction by immobilized S-deprived Chlamydomonas reinhardtii: effect of
light intensity and spectrum, and initial medium pH. Algal Res 17:38–45
Antal T, Petrova E, Slepnyova V, Kukarskikh G, Volgusheva A, Dubini A, Baizhumanov A,
Tyystjärvi T, Gorelova O, Baulina O, Chivkunova O, Solovchenko A, Rubin A (2020)
Photosynthetic hydrogen production as acclimation mechanism in nutrient-deprived
Chlamydomonas. Algal Res 49:101951
Anto S, Subhra SM, Muthappa R, Mathimani T, Deviram G, Kumar SS, Verma TN, Pugazhendhi A
(2020) Algae as green energy reserve: technological outlook on biofuel production.
Chemosphere 242:125079
Aresta M, Dibenedetto A, Barberio G (2005) Utilization of macro-algae for enhanced CO2 fixation
and biofuels production: development of a computing software for an LCA study. Fuel Process
Technol 86(14–15):1679–1693
Asadi N, Alavijeh MK, Zilouei H (2017) Development of a mathematical methodology to investigate biohydrogen production from regional and national agricultural crop residues: Acase
study of Iran. Int J Hydrogen Energ 42:1989–2007
Ashen JB, Goff LJ (2000) Molecular and ecological evidence for species specificity and coevolution in a group of marine algal-bacterial symbioses. Appl Environ Microbiol 66(7):3024–3030
Aslam M, Ahmad R, Yasin M et al (2018) Anaerobic membrane bioreactors for biohydrogen
production: recent developments, challenges and perspectives. Bioresour Technol 269:452–464
Avagyan AB (2008) Microalgae: big feed potential in a small package. Feed Int 25:16–18
Azman NF, Abdeshahian P, Kadier A et al (2016) Biohydrogen production from de-oiled rice bran
as sustainable feedstock in fermentative process. Int J Hydrogen Energ 41:145–156
Azwar MY, Hussain MA, Abdul-Wahab AK (2014) Development of biohydrogen production by
photobiological: fermentation and electrochemical processes: a review. Renew Sust Energ Rev
31:158–173
Bai X, Lant P, Pratt S (2015a) The contribution of bacteria to algal growth by carbon cycling.
Biotechnol Bioeng 112(4):688–695
Bai Y, Li X, Peng F, Wang X, Ouyang Y (2015b) Effects of disruption risks on biorefinery location
design. Energies 8(2):1468–1486
Bala Amutha K, Murugesan AG (2011) Biological hydrogen production by the algal biomass
Chlorella vulgaris MSU 01 strain isolated from pond sediment. Bioresour Technol 102
(1):194–199
Balina K, Romagnoli F, Blumberga D (2017) Seaweed biorefinery concept for sustainable use of
marine resources. Energy Procedia 128:504–511
Banu JR, Eswari AP, Kavitha S, Kannah RY, Kumar G, Jamal MT et al (2018a) Energetically
efficient microwave disintegration of waste activated sludge for biofuel production by zeolite:
quantification of energy and biodegradability modelling. Int J Hydrog Energy 44:1–15
Banu JR, Kannah RY, Kavitha S, Gunasekaran M, Kumar G (2018b) Novel insights into scalability
of biosurfactant combined microwave disintegration of sludge at alkali pH for achieving
7 Sustainable Production of Hydrogen by Algae: Current Status and Future. . .
209
Science Press, Cambridge, UK
Amin SA, Green DH, Hart MC, Küpper FC, Sunda WG, Carrano CJ (2009) Photolysis of iron–
siderophore chelates promotes bacterial–algal mutualism. Proc Natl Acad Sci 106
(40):17071–17076
Antal TK, Krendeleva TE, Laurinavichene TV, Makarova VV, Ghirardi ML, Rubin AB et al (2003)
The dependence of algal H2 production on photosystem II and O2 consumption activities in
sulfur-deprived Chlamydomonas reinhardtii cells. Biochim Biophys Acta (BBA)—Bioenergetics 1607:153–160
Antal TK, Volgusheva AA, Kukarskih GP, Krendeleva TE, Rubin AB (2009) Relationships
between H2 photoproduction and different electron transport pathways in sulfur deprived
Chlamydomonas reinhardtii. Int J Hydrog Energy 34(22):9087–9094
Antal TK, Kukarskikh GP, Volgusheva AA, Krendeleva TE, Tyystjärvi E, Rubina AB (2016)
Hydrogen photoproduction by immobilized S-deprived Chlamydomonas reinhardtii: effect of
light intensity and spectrum, and initial medium pH. Algal Res 17:38–45
Antal T, Petrova E, Slepnyova V, Kukarskikh G, Volgusheva A, Dubini A, Baizhumanov A,
Tyystjärvi T, Gorelova O, Baulina O, Chivkunova O, Solovchenko A, Rubin A (2020)
Photosynthetic hydrogen production as acclimation mechanism in nutrient-deprived
Chlamydomonas. Algal Res 49:101951
Anto S, Subhra SM, Muthappa R, Mathimani T, Deviram G, Kumar SS, Verma TN, Pugazhendhi A
(2020) Algae as green energy reserve: technological outlook on biofuel production.
Chemosphere 242:125079
Aresta M, Dibenedetto A, Barberio G (2005) Utilization of macro-algae for enhanced CO2 fixation
and biofuels production: development of a computing software for an LCA study. Fuel Process
Technol 86(14–15):1679–1693
Asadi N, Alavijeh MK, Zilouei H (2017) Development of a mathematical methodology to investigate biohydrogen production from regional and national agricultural crop residues: Acase
study of Iran. Int J Hydrogen Energ 42:1989–2007
Ashen JB, Goff LJ (2000) Molecular and ecological evidence for species specificity and coevolution in a group of marine algal-bacterial symbioses. Appl Environ Microbiol 66(7):3024–3030
Aslam M, Ahmad R, Yasin M et al (2018) Anaerobic membrane bioreactors for biohydrogen
production: recent developments, challenges and perspectives. Bioresour Technol 269:452–464
Avagyan AB (2008) Microalgae: big feed potential in a small package. Feed Int 25:16–18
Azman NF, Abdeshahian P, Kadier A et al (2016) Biohydrogen production from de-oiled rice bran
as sustainable feedstock in fermentative process. Int J Hydrogen Energ 41:145–156
Azwar MY, Hussain MA, Abdul-Wahab AK (2014) Development of biohydrogen production by
photobiological: fermentation and electrochemical processes: a review. Renew Sust Energ Rev
31:158–173
Bai X, Lant P, Pratt S (2015a) The contribution of bacteria to algal growth by carbon cycling.
Biotechnol Bioeng 112(4):688–695
Bai Y, Li X, Peng F, Wang X, Ouyang Y (2015b) Effects of disruption risks on biorefinery location
design. Energies 8(2):1468–1486
Bala Amutha K, Murugesan AG (2011) Biological hydrogen production by the algal biomass
Chlorella vulgaris MSU 01 strain isolated from pond sediment. Bioresour Technol 102
(1):194–199
Balina K, Romagnoli F, Blumberga D (2017) Seaweed biorefinery concept for sustainable use of
marine resources. Energy Procedia 128:504–511
Banu JR, Eswari AP, Kavitha S, Kannah RY, Kumar G, Jamal MT et al (2018a) Energetically
efficient microwave disintegration of waste activated sludge for biofuel production by zeolite:
quantification of energy and biodegradability modelling. Int J Hydrog Energy 44:1–15
Banu JR, Kannah RY, Kavitha S, Gunasekaran M, Kumar G (2018b) Novel insights into scalability
of biosurfactant combined microwave disintegration of sludge at alkali pH for achieving
7 Sustainable Production of Hydrogen by Algae: Current Status and Future. . .
209
