159. Kumar VR, Bhuvaneshwari B, Maheswaran S, Palani GS, Ravisankar K, Iyer NR (2011) An
overview of techniques based on biomimetics for sustainable development of concrete. Curr
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160. Sarayu K, Iyer NR, Murthy AR (2014) Exploration on the biotechnological aspect of the
ureolytic bacteria for the production of the cementitious materials – a review. Appl Biochem
Biotechnol 172:2308–2323
161. De Belie N, Gruyaert E, Al-Tabbaa A, Antonaci P, Baera C, Bajare D, Darquennes A,
Davies R, Ferrara L, Jefferson T, Litina C, Miljevic B, Otlewska A, Ranogajec J, RoigFlores M, Paine K, Lukowski P, Serna P, Tulliani JM, Vucetic S, Wang J, Jonker HM (2018)
A review of self-healing concrete for damage management of structures. Adv Mater Interfaces
5:1–28
162. Bang SS, Galinat JK, Ramakrishnan V (2001) Calcite precipitation induced by polyurethane
immobilized Sporosarcina pasteurii. Enzym Microb Technol 28:404–409
163. Ramakrishnan V, Ramesh KP, Bang SS (2001) Bacterial concrete. In: Wilson AR, Asanuma H
(eds) Smart materials. Proceedings of the Society of Photo-Optical Instrumentation Engineers
(SPIE) 4234, pp 168–176
164. Krishnapriya S, Venkatesh Babu DLV, Arulraj GP (2015) Isolation and identification of
bacteria to improve the strength of concrete. Microbiol Res 174:48–55
165. Seifan M, Samani AK, Berenjian A (2016) Bioconcrete: next generation of self-healing
concrete. Appl Microbiol Biotechnol 100:2591–2602
166. Irwan JM, Anneza LH, Othman N, Alshalif AF, Zamer MM, Teddy T (2017) Mechanical
properties of concrete with Enterococcus Faecalis and calcium lactate. Procedia Eng
171:592–597
167. Ramakrishnan V, Deo KS, Duke EF, Bang SS (1999) SEM investigation of microbial calcite
precipitation in cement. In: Proceeding of the 21st international conference on cement microscopy, Las Vegas, NV, pp 406–414
168. Achal V, Mukherjee A, Reddy MS (2010) Biocalcification by Sporosarcina pasteurii using
corn steep liquor as nutrient source. Ind Biotechnol 6:170–174
169. Sharma TK, Alazhari M, Heath A, Paine K, Cooper RM (2017) Alkaliphilic Bacillus species
show potential application in concrete crack repair by virtue of rapid spore production and
germination then extracellular calcite formation. J Appl Microbiol 122:1233–1244
170. Achal V, Mukerjee A, Reddy MS (2013) Biogenic treatment improves the durability and
remediates the cracks of concrete structures. Constr Build Mater 48:1–5
171. Jonkers HM, Schlangen E (2009) A two component bacteria-based self-healing concrete. In:
Alexander NG, Beaushausen H-D, Dehn F, Moyo P (eds) Proceedings of 2nd international
conference on concrete repair, rehabilitation and retrofitting II (ICCRRR-2), Cape Town,
2008 November 24–26. Taylor & Frances, London, pp 215–220
172. Wang JY, Soens H, Verstraete W, De Belie N (2014) Self-healing concrete by use of
microencapsulated bacterial spores. Cem Concr Res 56:139–152
173. Sarode DD, Mukherjee A (2009) Microbial precipitation for repairs of concrete structures. In:
Grantham M, Majorana C, Salomoni V (eds) Concrete solutions. CRC Press, Boca Raton, pp
191–198
174. Wiktor V, Jonkers HM (2015) Field performance of bacteria-based repair system: pilot study
in a parking garage. Case Stud Constr Mater 2:11–17
175. Tziviloglou E, van Tittelboom K, Palin D, Wang J, Sierra Beltran MG, Ersan YC, Mors M,
Wiktor VAC, Jonkers HM, Schlangen E, de Belie N (2016) Bio-based self-healing concrete:
from research to field application. Adv Polym Sci 273:346–385
176. Basheer L, Kropp J, Cleland DJ (2001) Assessment of the durability of concrete from its
permeation properties: a review. Constr Build Mater 15:93–103
177. Perez JL, Villegas R, Vale JF, Bello MA, Alcade M (1995) Effects of consolidant and water
repellent treatments on the porosity and pore size distribution of limestones. In: Proceedings of
international colloquium: methods of evaluating products for conservation of porous building
materials in monuments, ICCROM, Rome, pp 203–211
Alkaliphiles: The Emerging Biological Tools Enhancing Concrete Durability
337
overview of techniques based on biomimetics for sustainable development of concrete. Curr
Sci 101:741–747
160. Sarayu K, Iyer NR, Murthy AR (2014) Exploration on the biotechnological aspect of the
ureolytic bacteria for the production of the cementitious materials – a review. Appl Biochem
Biotechnol 172:2308–2323
161. De Belie N, Gruyaert E, Al-Tabbaa A, Antonaci P, Baera C, Bajare D, Darquennes A,
Davies R, Ferrara L, Jefferson T, Litina C, Miljevic B, Otlewska A, Ranogajec J, RoigFlores M, Paine K, Lukowski P, Serna P, Tulliani JM, Vucetic S, Wang J, Jonker HM (2018)
A review of self-healing concrete for damage management of structures. Adv Mater Interfaces
5:1–28
162. Bang SS, Galinat JK, Ramakrishnan V (2001) Calcite precipitation induced by polyurethane
immobilized Sporosarcina pasteurii. Enzym Microb Technol 28:404–409
163. Ramakrishnan V, Ramesh KP, Bang SS (2001) Bacterial concrete. In: Wilson AR, Asanuma H
(eds) Smart materials. Proceedings of the Society of Photo-Optical Instrumentation Engineers
(SPIE) 4234, pp 168–176
164. Krishnapriya S, Venkatesh Babu DLV, Arulraj GP (2015) Isolation and identification of
bacteria to improve the strength of concrete. Microbiol Res 174:48–55
165. Seifan M, Samani AK, Berenjian A (2016) Bioconcrete: next generation of self-healing
concrete. Appl Microbiol Biotechnol 100:2591–2602
166. Irwan JM, Anneza LH, Othman N, Alshalif AF, Zamer MM, Teddy T (2017) Mechanical
properties of concrete with Enterococcus Faecalis and calcium lactate. Procedia Eng
171:592–597
167. Ramakrishnan V, Deo KS, Duke EF, Bang SS (1999) SEM investigation of microbial calcite
precipitation in cement. In: Proceeding of the 21st international conference on cement microscopy, Las Vegas, NV, pp 406–414
168. Achal V, Mukherjee A, Reddy MS (2010) Biocalcification by Sporosarcina pasteurii using
corn steep liquor as nutrient source. Ind Biotechnol 6:170–174
169. Sharma TK, Alazhari M, Heath A, Paine K, Cooper RM (2017) Alkaliphilic Bacillus species
show potential application in concrete crack repair by virtue of rapid spore production and
germination then extracellular calcite formation. J Appl Microbiol 122:1233–1244
170. Achal V, Mukerjee A, Reddy MS (2013) Biogenic treatment improves the durability and
remediates the cracks of concrete structures. Constr Build Mater 48:1–5
171. Jonkers HM, Schlangen E (2009) A two component bacteria-based self-healing concrete. In:
Alexander NG, Beaushausen H-D, Dehn F, Moyo P (eds) Proceedings of 2nd international
conference on concrete repair, rehabilitation and retrofitting II (ICCRRR-2), Cape Town,
2008 November 24–26. Taylor & Frances, London, pp 215–220
172. Wang JY, Soens H, Verstraete W, De Belie N (2014) Self-healing concrete by use of
microencapsulated bacterial spores. Cem Concr Res 56:139–152
173. Sarode DD, Mukherjee A (2009) Microbial precipitation for repairs of concrete structures. In:
Grantham M, Majorana C, Salomoni V (eds) Concrete solutions. CRC Press, Boca Raton, pp
191–198
174. Wiktor V, Jonkers HM (2015) Field performance of bacteria-based repair system: pilot study
in a parking garage. Case Stud Constr Mater 2:11–17
175. Tziviloglou E, van Tittelboom K, Palin D, Wang J, Sierra Beltran MG, Ersan YC, Mors M,
Wiktor VAC, Jonkers HM, Schlangen E, de Belie N (2016) Bio-based self-healing concrete:
from research to field application. Adv Polym Sci 273:346–385
176. Basheer L, Kropp J, Cleland DJ (2001) Assessment of the durability of concrete from its
permeation properties: a review. Constr Build Mater 15:93–103
177. Perez JL, Villegas R, Vale JF, Bello MA, Alcade M (1995) Effects of consolidant and water
repellent treatments on the porosity and pore size distribution of limestones. In: Proceedings of
international colloquium: methods of evaluating products for conservation of porous building
materials in monuments, ICCROM, Rome, pp 203–211
Alkaliphiles: The Emerging Biological Tools Enhancing Concrete Durability
337
