Page 259 - Lignocellulosic Biomass to Liquid Biofuels
P. 259
Syngas fermentation to bioethanol 215
[30] F. Liew, A.M. Henstra, M. Köpke, K. Winzer, S.D. Simpson, N.P. Minton,
Metabolic engineering of Clostridium autoethanogenum for selective alcohol produc-
tion, Metab. Eng. 40 (2017) 104 114.
[31] H. Xu, C. Liang, Z. Yuan, J. Xu, Q. Hua, Y. Guo, A study of CO/syngas biocon-
version by Clostridium autoethanogenum with a flexible gas-cultivation system, Enzyme
Microb. Technol. 101 (2017) 24 29.
[32] P.C. Munasinghe, S.K. Khanal, Biomass-derived syngas fermentation into biofuels,
Biofuels 101 (13) (2011) 79 98.
[33] S. Hoffmeister, M. Gerdom, F.R. Bengelsdorf, S. Linder, S. Flüchter, H. Öztürk,
et al., Acetone production with metabolically engineered strains of Acetobacterium
woodii, Metab. Eng. 36 (2016) 37 47.
[34] H.N. Abubackar, M.C. Veiga, C. Kennes, Production of acids and alcohols from
syngas in a two-stage continuous fermentation process, Bioresour. Technol. 253
(2018) 227 234.
[35] X. Sun, H.K. Atiyeh, A. Kumar, H. Zhang, Enhanced ethanol production by
Clostridium ragsdalei from syngas by incorporating biochar in the fermentation
medium, Bioresour. Technol. 247 (2018) 291 301.
[36] Y.-K. Kim, S.E. Park, H. Lee, J.Y. Yun, Enhancement of bioethanol production in
syngas fermentation with Clostridium ljungdahlii using nanoparticles, Bioresour.
Technol. 159 (2014) 446 450.
[37] R.S. Lewis, R.S. Tanner, R.L. Huhnke, Indirect or Direct Fermentation of Biomass
to Fuel Alcohol, Google Patents, 2007.
[38] L. Tian, B. Papanek, D.G. Olson, T. Rydzak, E.K. Holwerda, T. Zheng, et al.,
Simultaneous achievement of high ethanol yield and titer in Clostridium thermocellum,
Biotechnol. Biofuels 9 (1) (2016) 116.
[39] B. Molitor, E. Marcellin, L.T. Angenent, Overcoming the energetic limitations of
syngas fermentation, Curr. Opin. Chem. Biol. 41 (2017) 84 92.
[40] S. Sakai, Y. Nakashimada, H. Yoshimoto, S. Watanabe, H. Okada, N. Nishio,
Ethanol production from H 2 and CO 2 by a newly isolated thermophilic bacterium,
Moorella sp. HUC22-1, Biotechnol. Lett. 26 (20) (2004) 1607 1612.
[41] R.M. Atlas, Handbook of Microbiological Media, CRC Press, 2010.
[42] D.J. Holland, Chapter 18—Applications of tomography in bubble column and
trickle bed reactors A2, in: M. Wang (Ed.), Industrial Tomography, Woodhead
Publishing, 2015, pp. 477 507.
[43] Y. Shen, R. Brown, Z. Wen, Enhancing mass transfer and ethanol production in
syngas fermentation of Clostridium carboxidivorans P7 through a monolithic biofilm
reactor, Appl. Energy 136 (2014) 68 76.
[44] O. Pardo-Planas, H.K. Atiyeh, J.R. Phillips, C.P. Aichele, S. Mohammad, Process
simulation of ethanol production from biomass gasification and syngas fermentation,
Bioresour. Technol. 245 (2017) 925 932.
[45] D.K. Kundiyana, R.L. Huhnke, M.R. Wilkins, Syngas fermentation in a 100-L pilot
scale fermentor: design and process considerations, J. Biosci. Bioeng. 109 (5) (2010)
492 498.
[46] J. Chen, M.A. Henson, In silico metabolic engineering of Clostridium ljungdahlii for
synthesis gas fermentation, Metab. Eng. 38 (2016) 389 400.
[47] A. Ramos, E. Monteiro, V. Silva, A. Rouboa, Co-gasification and recent develop-
ments on waste-to-energy conversion: a review, Renew. Sustain. Energy Rev. 81
(2018) 380 398.
[48] S. Adhikari, N. Abdoulmoumine, H. Nam, O. Oyedeji, Chapter 16—Biomass gasifi-
cation producer gas cleanup, Bioenergy Systems for the Future, Woodhead
Publishing, 2017, pp. 541 557.