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anaerobic treatment, microbial fuel cells, and microbial electrolysis cells. Environ Sci Technol
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249. Azuma M, Ojima Y (2018) Catalyst development of microbial fuel cells for renewable-energy
production. In: Shiomi N (ed) Current topics in biochemical engineering. IntechOpen,
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250. Li XM, Cheng KY, Wong JW (2013) Bioelectricity production from food waste leachate using
microbial fuel cells: effect of NaCl and pH. Bioresour Technol 149:452–458
251. Jayashree C, Tamilarasan K, Rajkumar M, Arulazhagan P, Yogalakshmi KN, Srikanth M et al
(2016) Treatment of seafood processing wastewater using upflow microbial fuel cell for power
generation and identification of bacterial community in anodic biofilm. J Environ Manage
180:351–358
252. Mamo G, Mattiasson B (2019) Alkaliphiles: the emerging biological tools enhancing concrete
durability. Adv Biochem Eng Biotechnol. https://doi.org/10.1007/10_2019_94
253. Ferris F, Stehmeier L, Kantzas A, Mourits FM (1997) Bacteriogenic mineral plugging. J Can
Petrol Technol 36:56–61
254. Gollapudi UK, Knutson CL, Bang SS, Islam MR (1995) A new method for controlling
leaching through permeable channels. Chemosphere 30:695–705
255. Ivanov V, Chu J (2008) Applications of microorganisms to geotechnical engineering for
bioclogging and biocementation of soil in situ. Rev Environ Sci Biotechnol 7:139–153
256. Dejong JT, Fritzges MB, Nüsslein K (2006) Microbially induced cementation to control sand
response to undrained shear. J Geotech Geoenviron Eng 132:1381–1392
257. Canakci H, Sidik W, HalilKili I (2015) Effect of bacterial calcium carbonate precipitation on
compressibility and shear strength of organic soil. Soils Found 55:1211–1221
258. Stabnikov V, Ivanov V, Chu J (2015) Construction biotechnology: a new area of biotechnological research and applications. World J Microbiol Biotechnol 31:1303–1314
259. Plank J (2004) Application of biopolymers and other biotechnological products in building
material. Appl Microbiol Biotechnol 66:1–9
260. Ye Q, Roh Y, Carroll SL, Blair B, Zhou JZ, Zhang CL et al (2004) Alkaline anaerobic
respiration: isolation and characterization of a novel alkaliphilic and metal-reducing bacterium. Appl Environ Microbiol 70:5595–5602
261. Roh Y, Chon CH, Moon JW (2007) Metal reduction and biomineralization by an alkaliphilic
metal-reducing bacterium, Alkaliphilus metalliredigens (QYMF). Geosci J 11:415–423
262. Ibrahim A, Eltayeb M, Elbadawi Y, Alsalamah A (2011) Isolation and characterization of
novel potent Cr(VI) reducing alkaliphilic Amphibacillus sp. KSUCR3 from hypersaline soda
lakes. Electron J Biotechnol 14:4–4. https://doi.org/10.2225/vol14-issue4-fulltext-4
263. Balls PW, Liss PS (1983) Exchange of H 2 S between water and air. Atmos Environ
187:735–742
264. de Rink R, Klok JBM, van Heeringen GJ, Keesman KJ, Janssen AJH, Ter Heijne A, Buisman
CJN (2020) Biologically enhanced hydrogen sulfide absorption from sour gas under
haloalkaline conditions. J Hazard Mater 383:121104. https://doi.org/10.1016/j.jhazmat.2019.
121104
265. Sorokin DY, Van Den Bosch PLF, Abbas B, Janssen AJH, Muyzer G (2008) Microbiological
analysis of the population of extremely haloalkaliphilic sulfur-oxidizing bacteria dominating
in lab-scale sulfide-removing bioreactors. Appl Microbiol Biotechnol 80:965–975
266. Nikolova C, Gutierrez T (2020) Use of microorganisms in the recovery of oil from recalcitrant
oil reservoirs: current state of knowledge, technological advances and future perspectives.
Front Microbiol 10:2996. https://doi.org/10.3389/fmicb.2019.02996
267. Zhang B, Huston A, Whipple L, Barrett H, Wall M, Hutchins R, Mirakyan A (2013) A
superior, high-performance enzyme for breaking borate crosslinked fracturing fluids under
extreme well conditions. SPE Prod Oper 28:210–216
Alkaliphiles: The Versatile Tools in Biotechnology
49
anaerobic treatment, microbial fuel cells, and microbial electrolysis cells. Environ Sci Technol
44:3629–3637
249. Azuma M, Ojima Y (2018) Catalyst development of microbial fuel cells for renewable-energy
production. In: Shiomi N (ed) Current topics in biochemical engineering. IntechOpen,
London. https://doi.org/10.5772/intechopen.81442
250. Li XM, Cheng KY, Wong JW (2013) Bioelectricity production from food waste leachate using
microbial fuel cells: effect of NaCl and pH. Bioresour Technol 149:452–458
251. Jayashree C, Tamilarasan K, Rajkumar M, Arulazhagan P, Yogalakshmi KN, Srikanth M et al
(2016) Treatment of seafood processing wastewater using upflow microbial fuel cell for power
generation and identification of bacterial community in anodic biofilm. J Environ Manage
180:351–358
252. Mamo G, Mattiasson B (2019) Alkaliphiles: the emerging biological tools enhancing concrete
durability. Adv Biochem Eng Biotechnol. https://doi.org/10.1007/10_2019_94
253. Ferris F, Stehmeier L, Kantzas A, Mourits FM (1997) Bacteriogenic mineral plugging. J Can
Petrol Technol 36:56–61
254. Gollapudi UK, Knutson CL, Bang SS, Islam MR (1995) A new method for controlling
leaching through permeable channels. Chemosphere 30:695–705
255. Ivanov V, Chu J (2008) Applications of microorganisms to geotechnical engineering for
bioclogging and biocementation of soil in situ. Rev Environ Sci Biotechnol 7:139–153
256. Dejong JT, Fritzges MB, Nüsslein K (2006) Microbially induced cementation to control sand
response to undrained shear. J Geotech Geoenviron Eng 132:1381–1392
257. Canakci H, Sidik W, HalilKili I (2015) Effect of bacterial calcium carbonate precipitation on
compressibility and shear strength of organic soil. Soils Found 55:1211–1221
258. Stabnikov V, Ivanov V, Chu J (2015) Construction biotechnology: a new area of biotechnological research and applications. World J Microbiol Biotechnol 31:1303–1314
259. Plank J (2004) Application of biopolymers and other biotechnological products in building
material. Appl Microbiol Biotechnol 66:1–9
260. Ye Q, Roh Y, Carroll SL, Blair B, Zhou JZ, Zhang CL et al (2004) Alkaline anaerobic
respiration: isolation and characterization of a novel alkaliphilic and metal-reducing bacterium. Appl Environ Microbiol 70:5595–5602
261. Roh Y, Chon CH, Moon JW (2007) Metal reduction and biomineralization by an alkaliphilic
metal-reducing bacterium, Alkaliphilus metalliredigens (QYMF). Geosci J 11:415–423
262. Ibrahim A, Eltayeb M, Elbadawi Y, Alsalamah A (2011) Isolation and characterization of
novel potent Cr(VI) reducing alkaliphilic Amphibacillus sp. KSUCR3 from hypersaline soda
lakes. Electron J Biotechnol 14:4–4. https://doi.org/10.2225/vol14-issue4-fulltext-4
263. Balls PW, Liss PS (1983) Exchange of H 2 S between water and air. Atmos Environ
187:735–742
264. de Rink R, Klok JBM, van Heeringen GJ, Keesman KJ, Janssen AJH, Ter Heijne A, Buisman
CJN (2020) Biologically enhanced hydrogen sulfide absorption from sour gas under
haloalkaline conditions. J Hazard Mater 383:121104. https://doi.org/10.1016/j.jhazmat.2019.
121104
265. Sorokin DY, Van Den Bosch PLF, Abbas B, Janssen AJH, Muyzer G (2008) Microbiological
analysis of the population of extremely haloalkaliphilic sulfur-oxidizing bacteria dominating
in lab-scale sulfide-removing bioreactors. Appl Microbiol Biotechnol 80:965–975
266. Nikolova C, Gutierrez T (2020) Use of microorganisms in the recovery of oil from recalcitrant
oil reservoirs: current state of knowledge, technological advances and future perspectives.
Front Microbiol 10:2996. https://doi.org/10.3389/fmicb.2019.02996
267. Zhang B, Huston A, Whipple L, Barrett H, Wall M, Hutchins R, Mirakyan A (2013) A
superior, high-performance enzyme for breaking borate crosslinked fracturing fluids under
extreme well conditions. SPE Prod Oper 28:210–216
Alkaliphiles: The Versatile Tools in Biotechnology
49
