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Ứng dụng của sự lắng đọng canxi cacbonat do vi sinh vật trong bê tông thông qua quá trình khử nitrat: một bài tổng hợp
Tóm tắt
Nghiên cứu này nhằm xem xét tiềm năng của sự lắng đọng canxi cacbonat do vi sinh vật (MCP) như một phương pháp hiệu quả cho việc cải thiện môi trường và ứng dụng của nó trong phục hồi công trình. Bài tổng hợp này nhằm cung cấp kiến thức sâu rộng về quá trình lắng đọng canxi cacbonat do vi sinh vật thông qua quá trình khử nitrat trong bê tông. Một trong những thông số quan trọng được xem xét trong nghiên cứu này là sự lựa chọn vi khuẩn khử nitrat có thể được sử dụng cho việc bổ sung vào bê tông. Hiện có rất ít báo cáo về vi khuẩn khử nitrat được sử dụng trong bê tông để nâng cao đặc tính cơ học và độ bền của nó. Do đó, nghiên cứu này xem xét các loại vi khuẩn khử nitrat khác nhau có thể được sử dụng trong bê tông. Diaphorobacter nitroreducens và Pseudomonas aeruginosa với nồng độ tế bào trong khoảng 105–109 CFU/ml cùng với canxi formate và canxi nitrat như là các chất dinh dưỡng được tìm thấy là hiệu quả. Đối với các bổ sung vi khuẩn này, hiệu quả tự phục hồi vết nứt được tìm thấy dao động từ 350 đến 590 µm trong 28 ngày tùy thuộc vào chất mang bảo vệ được sử dụng. Một thông số quan trọng khác được xem xét trong nghiên cứu này là kỹ thuật phù hợp để bổ sung vi sinh vật vào bê tông. Để xác định hiệu quả của quá trình tự phục hồi, nồng độ tế bào vi khuẩn cần thiết và các chất dinh dưỡng cần thiết cũng được xem xét. Thêm vào đó, khả năng của vi khuẩn khử nitrat như một công cụ tự phục hồi chống lại sự hình thành vết nứt cũng được đánh giá. Cuối cùng, các ứng dụng rộng rãi của sự lắng đọng canxi cacbonat do vi sinh vật thông qua quá trình khử nitrat được thảo luận trong nhiều lĩnh vực khác nhau, và những hạn chế trong ứng dụng trong bê tông cũng được đề cập. Tổng thể, nghiên cứu phát hiện rằng con đường khử nitrat thân thiện với môi trường hơn đồng thời vẫn đạt hiệu quả như các kỹ thuật hiện tại trong việc nâng cao các đặc tính cơ học của bê tông.
Từ khóa
#sự lắng đọng canxi cacbonat vi sinh vật #khử nitrat #bê tông #phục hồi công trình #vi khuẩn khử nitratTài liệu tham khảo
Olson P, Wessel D (2017) The case for spending more on infrastructure maintenance. The Brookings Institution. Jan 31
Statista (2019) Global investments on the construction and maintenance of infrastructure as share of GDP in 2019, bycountry.
BEEINDIA (2021) “Cement”, by Bureau of Energy Efficiency, Government of India, Ministry of Power
Ghosh P, Mandal S, Chattopadhyay BD, Pal S (2005) Use of microorganism to improve the strength of cement mortar. Cem Concr Res 35(10):1980–1983
Jonkers HM, Schlangen E (2008) A two component bacteria-based self-healing concrete. In: Concrete repair, rehabilitation and retrofitting II. CRC Press, pp 137–138
Jonkers HM, Thijssen A, Muyzer G, Copuroglu O, Schlangen E (2010) Application of bacteria as self-healing agent for the development of sustainable concrete. Ecol Eng 36(2):230–235
Majumdar S, Sarkar M, Chowdhury T, Chattopadhyay B, Mandal S (2012) Use of bacterial protein powder in commercial fly ash pozzolana cements for high-performance construction materials. Open J Civ Eng 2(4):218–228
Vekariya MS, Pitroda J (2013) Bacterial concrete: new era for construction industry. II J E TT 4(9):4128–4137
Rao M, Reddy VS, Hafsa M, Veena P, Anusha P (2013) Bioengineered concrete-a sustainable self-healing construction material. Res J Eng Sci 2(6):45–51
Rais MS, Khan RA (2022) Development of sustainable admixture-based recycled aggregate concrete using ureolytic bacteria. Innov Infrastruct Solut 7(2):1–27
Qian C, Cheng L, Wang R, Wang J (2010) Theory and application of cement-based materials remediation by carbonate precipitation (MCP) induced by microorganism. In: Miao C, Ye, G, Chen H (Eds.) The 50-year teaching and research anniversary of Prof. Sun Wei on Advances in Civil Engineering Materials, pp 81–98
Bansal R, Dhami NK, Mukherjee A, Reddy MS (2016) Biocalcification by halophilic bacteria for remediation of concrete structures in marine environment. J Ind Microbiol 43(11):1497–1505
Ghazy MF, Maaty AA, Mohamed GR (2022) The effect of self-healing by bio- precipitation by bacteria on the properties cement-based materials—a review. Am J Eng Res 11(6):182–201
Riad IM, Elshami AA, Elshikh MMY (2022) Influence of concentration and proportion prepared bacteria on properties of self-healing concrete in sulfate environment. Innov Infrastruct Solut 7(1):1–16
Erşan YÇ, Da Silva FB, Boon N, Verstraete W, De Belie N (2015) Screening of bacteria and concrete compatible protection materials. Constr Build Mater 88:196–203
Erşan YÇ, De Belie N Boon N (2015) Microbially induced CaCO3 precipitation through denitrification: an optimization study in minimal nutrient environment. Biochem Eng J 108–118.
Ehrlich HL (1997) Microbes and metals. Appl Microbiol Biotechnol 48(6):687–692
Gadd GM (2010) Metals, minerals and microbes: geomicrobiology and bioremediation. Microbiology 156(3):609–643
Bosak T (2011) Calcite precipitation, microbially induced. In: Reitner JThiel V, (ed) Encyclopedia of geobiology. Encyclopedia of earth sciences series. Springer, Dordrecht, pp 223–227
Simkiss K (1964) Variations in the crystalline form of calcium carbonate precipitated from artificial seawater. Nature 201(4918):492–493
Boquet E, Boronat A, Ramos-Cormenzana A (1973) Production of calcite (calcium carbonate) crystals by soil bacteria is a general phenomenon. Nature 246(5434):527–529
Schraer H (2012) Biological calcification: cellular and molecular aspects. SSBM Softcover reprint of the originaled. 1970 edition (12 December 2012), 1st edn. Springer, New York
Jain SK, Khan AA, Rai MK (2016) Geomicrobiology. CRC Press, Boca Raton
Kiranmaye BR, Dutta JR, Kar A, Parimi C, Raju S (2020) Optimization of culture parameters of Pseudomonas alcaligenes for crack healing in concrete. Mater Today Proc 28:713–716
Li VC, Wu C, Wang S, Ogawa A, Saito T (2002) Interface tailoring for strain- hardening polyvinyl alcohol-engineered cementitious composite (PVA-ECC). Mater J 99(5):463–472
Dessy A, Abyor N, Hadi H (2011) An overview of biocement production from microalgae. Int J sci eng 2(2):31–33
Hammes F, Verstraete W (2002) Key roles of pH and calcium metabolism in microbial carbonate precipitation. Rev Environ Sci Biotechnol 1(1):3–7
Mindess S, Young JF, Darwin D (2003) Concrete, 2nd edn. Pearson Education Inc, Upper Saddle River
Gomez MG, Graddy CM, DeJong JT, Nelson DC (2019) Biogeochemical changes during bio-cementation mediated by stimulated and augmented ureolytic microorganisms. Sci Rep 9(1):1–15
Baumgartner LK, Reid RP, Dupraz C, Decho AW, Buckley DH, Spear JR, Visscher PT (2006) Sulfate-reducing bacteria in microbial mats: changing paradigms, new discoveries. Sediment Geol 185(3–4):131–145
Achal V, Pan X, Fu Q, Zhang D (2012) Biomineralization based remediation of As (III) contaminated soil by Sporosarcina ginsengisoli. J Hazard Mater 201:178–184
Grotzinger JP, Knoll AH (1999) Stromatolites in Precambrian carbonates: evolutionary mileposts or environmental dipsticks? Annu Rev Earth Planet Sci 27(1):313–358
Reeburgh WS (2007) Oceanic methane biogeochemistry. Chem Rev 107(2):486–513
Robertson GP, Groffman PM (2007) Nitrogen transformations. In: Soil microbiology, ecology and biochemistry. Academic Press, pp 341–364
Martin D, Dodds K, Butler IB, Ngwenya B (2013) Carbonate precipitation under pressure for bioengineering in the anaerobic subsurface via denitrification. Environ Sci Technol 47(15):8692–8699
Kavazanjian E Jr, Karatas I (2008) Microbiological improvement of the physical properties of soil. international conference on case histories in geotechnical engineering. In: 6th International conference on case histories in geotechnical engineering, Missouri University of Science and Technology, Missouri, USA, pp 1–11
DeJong JT, Fritzges MB, Nüsslein K (2006) Microbially induced cementation to control sand response to undrained shear. J Geotech Geoenviron 132(11):1381–1392
Van Paassen LA, Daza CM, Staal M, Sorokin DY, van der Zon W, Van Loosdrecht MC (2010) Potential soil reinforcement by biological denitrification. Ecol Eng 36(2):168–175
Lin W, Lin W, Cheng X, Chen G, Ersan YC (2021) Microbially induced desaturation and carbonate precipitation through denitrification: a review. Appl Sci 11(17):7842
Broadbent FE, Clark F (1965) Denitrification. Soil Nitrogen 10:344–359
Albina P, Durban N, Bertron A, Albrecht A, Robinet JC, Erable B (2019) Influence of hydrogen electron donor, alkaline pH, and high nitrate concentrations on microbial denitrification: a review. Int J Mol Sci 20(20):5163
Thomas KL, Lloyd D, Boddy L (1994) Effects of oxygen, pH and nitrate concentration on denitrification by Pseudomonas species. FEMS Microbiol Lett 118(1–2):181–186
Prakasam TBS, Loehr RC (1972) Microbial nitrification and denitrification in concentrated wastes. Water Res 6(7):859–869
Gilbert P, Allison DG, Evans DJ, Handley PS, Brown MR (1989) Growth rate control of adherent bacterial populations. Appl Environ Microbiol 55(5):1308–1311
Almeida JS, Julio SM, Reis MAM, Carrondo MJT (1995) Nitrite inhibition of denitrification by Pseudomonas fluorescens. Biotechnol Bioeng 46(3):194–201
Söylev TA, Richardson MG (2008) Corrosion inhibitors for steel in concrete: state-of-the-art report. Constr Build Mater 22(4):609–622
Mamo G, Mattiasson B (2019) Alkaliphiles: the emerging biological tools enhancing concrete durability. Alkaliphiles Biotechnol 293–342
Achal V, Pan X (2014) Influence of calcium sources on microbially induced calcium carbonate precipitation by Bacillus sp. CR2 Biotechnol Appl Biochem 173:307–317
Kang CH, Han SH, ShinYJ OhSJ, So JS (2014) Bioremediation of Cd by microbially induced calcite precipitation. Biotechnol Appl Biochem 172:1929–1937
Dhami NK, Reddy MS, Mukherjee A (2013) Biomineralization of calcium carbonate polymorphs by the bacterial strains isolated from calcareous sites. J Microbiol Biotechnol 23(5):707–714
Dhami NK, Reddy MS, Mukherjee A (2014) Synergistic role of bacterial urease and carbonic anhydrase in carbonate mineralization. Biotechnol Appl Biochem 172(5):2552–2561
Ambus P, Zechmeister-Boltenstern S (2007) Denitrification and N-cycling in forest ecosystems. In Biology of the nitrogen cycle, pp 343–358
Jaouen T, Dé E, Chevalier S, Orange N (2004) Pore size dependence on growth temperature is a common characteristic of the major outer membrane protein OprF in psychrotrophic and mesophilic Pseudomonas species. Appl Environ Microbiol 70(11):6665–6669
Kodama T, Shimada K, Mori T (1969) Studies on anaerobic biphasic growth of a denitrifying bacterium, Pseudomonas stutzeri. Plant Cell Physiol 10(4):855–865
Weil X, Xiwu L (2011) Study on the influencing factors and mathematical model of denitrification phosphate uptake process. Chin J Environ Eng 10
Zamarreño DV, Inkpen R, May E (2009) Carbonate crystals precipitated by freshwater bacteria and their use as a limestone consolidant. Appl Environ Microbiol 75(18):5981–5990
Fishman MR, Giglio K, Fay D, Filiatrault MJ (2018) Physiological and genetic characterization of calcium phosphate precipitation by Pseudomonas species. Sci Rep 8(1):1–14
He H, Serres N, Meylheuc T, Wynns JT, Feugeas F (2020) Modifying mechanical strength and capillary porosity of portland cement-based mortar using a biosurfactant from Pseudomonas fluorescens. Adv Mater Sci Eng
Castro-Alonso MJ, Montañez-Hernandez LE, Sanchez-Muñoz MA, Macias Franco MR, Narayanasamy R, Balagurusamy N (2019) Microbially induced calcium carbonate precipitation (MICP) and its potential in bioconcrete: microbiological and molecular concepts. Front Mater Sci 6:126
Erşan YÇ, Gruyaert E, Louis G, Lors C, De Belie N, Boon N (2015) Self- protected nitrate reducing culture for intrinsic repair of concrete cracks. Front Microbiol 6:1228
Seifan M, Ebrahiminezhad A, Ghasemi Y, Samani AK, Berenjian A (2018) Amine-modified magnetic iron oxide nanoparticle as a promising carrier for application in bio self-healing concrete. Appl Microbiol Biotechnol 102(1):175–184
Dry C (1996) Procedures developed for self-repair of polymer matrix composite materials. Compos Struct 35(3):263–269
Motuku MJGM, Vaidya UK, Janowski (1999) Parametric studies on self- repairing approaches for resin infused composites subjected to low velocity impact. Smart Mater Struct 8(5):623
Bleay SM, Loader CB, Hawyes VJ, Humberstone L, Curtis PT (2001) A smart repair system for polymer matrix composites. Compos A Appl Sci 32(12):1767–1776
Pang JWC, Bond IP (2005) ‘Bleeding composites’—damage detection and self- repair using a biomimetic approach. Compos A Appl Sci 36(2):183–188
Aïssa B, Therriault D, Haddad E, Jamroz W (2012) Self-healing materials systems: overview of major approaches and recent developed technologies. Adv Mater Sci Eng
Joseph C, Jefferson AD, Isaacs B, Lark R, Gardner D (2010) Experimental investigation of adhesive-based self-healing of cementitious materials. Mag Concr Res 62(11):831–843
Sangadji S (2015) Porous network concrete: a bio-inspired building component to make concrete structures self-healing
Gupta S, Dai Pang S, Kua HW (2017) Autonomous healing in concrete by bio-based healing agents—a review. Constr Build Mater 146:419–428
Van Tittelboom K, De Belie N, Van Loo D, Jacobs P (2011) Self-healing efficiency of cementitious materials containing tubular capsules filled with healing agent. Cem Concr Compos 33(4):497–505
Khaliq W, Ehsan MB (2016) Crack healing in concrete using various bio influenced self-healing techniques. Constr Build Mater 102:349–357
Wang J, Van Tittelboom K, De Belie N, Verstraete W (2012) Use of silica gel or polyurethane immobilized bacteria for self-healing concrete. Constr Build Mater 26(1):532–540
Van Tittelboom K, De Belie N (2013) Self-healing in cementitious materials—A review. Mater 6(6):2182–2217
Minnebo P, Van Tittelboom K, Van Hemelrijck D (2015) Ideal material properties for capsules or vascular system used in cementitious self-healing materials. In 5th International Conference on Self-Healing Materials (ICSHM), Durham, NC, USA, pp 1–4
Souza LR, Kanellopoulos A, Al-Tabbaa PA (2015). Synthesis and characterization of acrylate microcapsules using microfluidics for self-healing in cementitious materials. In: Proceedings of the 5th international conference on self-healing materials, Durham, NC, USA, pp 22–24
Hilloulin B, Van Tittelboom K, Gruyaert E, De Belie N, Loukili A (2015) Design of polymeric capsules for self-healing concrete. Cem Concr Compos 55:298–307
Tsangouri E (2015) Experimental assessment of fracture and autonomous healing of concrete and polymer systems. March. Vrije Universiteit Brussel, Brussels
Van Tittelboom K, Wang J, Araújo M, Snoeck D, Gruyaert E, Debbaut B, De Belie N (2016) Comparison of different approaches for self-healing concrete in a large- scale lab test. Constr Build Mater 107:125–137
Araújo M, Chatrabhuti S, Gurdebeke S, Alderete N, Van Tittelboom K, Raquez JM, Gruyaert E (2018) Poly (methyl methacrylate) capsules as an alternative to the “proof-of-concept” glass capsules used in self-healing concrete. Cem Concr Compos 89:260–271
Wang XF, Yang ZH, Fang C, Han NX, Zhu GM, Tang JN, Xing F (2019) Evaluation of the mechanical performance recovery of self-healing cementitious materials–its methods and future development: a review. Constr Build Mater 212:400–421
Van Belleghem B, Kessler S, Van den Heede P, Van Tittelboom K, De Belie N (2018) Chloride induced reinforcement corrosion behavior in self-healing concrete with encapsulated polyurethane. Cem Concr Res 113:130–139
Wu M, Johannesson B, Geiker M (2012) A review: self-healing in cementitious materials and engineered cementitious composite as a self-healing material. Constr Build Mater 28(1):571–583
Gao D, Liu L, Liang H, Wu WM (2011) Aerobic granular sludge: characterization, mechanism of granulation and application to wastewater treatment. Crit Rev Biotechnol 31(2):137–152
Wang JY, De Belie N, Verstraete W (2012) Diatomaceous earth as a protective vehicle for bacteria applied for self-healing concrete. J Ind Microbiol Biotechnol 39(4):567–577
Han S, Choi EK, Park W, Yi C, Chung N (2019) Effectiveness of expanded clay as a bacteria carrier for self-healing concrete. Appl Biol Chem 62(1):1–5
Knorre HV, Krumbein WE (2000) Bacterial calcification. In: Microbial sediments, pp 25–31
Braissant O, Verrecchia EP, Aragno M (2002) Is the contribution of bacteria to terrestrial carbon budget greatly underestimated? Sci Nat 89(8):366–370
Anderson RKI, Jayaraman K (2003) Influence of carbon and nitrogen sources on the growth and sporulation of Bacillus thuringiensis var Galleriae for biopesticide production. Chem Biochem Eng Q 17(3):225–232
Fujita Y, Taylor JL, Gresham TL, Delwiche ME, Colwell FS, McLing TL, Smith RW (2008) Stimulation of microbial urea hydrolysis in groundwater to enhance calcite precipitation. Environ Sci Technol 42(8):3025–3032
Erşan YÇ, Hernandez-Sanabria E, Boon N, De Belie N (2016) Enhanced crack closure performance of microbial mortar through nitrate reduction. Cem Concr Compos 70:159–170
Vijay K, Murmu M (2019) Effect of calcium lactate on compressive strength and self-healing of cracks in microbial concrete. Front Struct Civ Eng 13(3):515–525
Andalib R, Abd Majid MZ, Hussin MW, Ponraj M, Keyvanfar A, Mirza J, Lee HS (2016) Optimum concentration of Bacillus megaterium for strengthening structural concrete. Constr Build Mater 118:180–193
Sumathi A, Murali G, Gowdhaman D, Amran M, Fediuk R, Vatin NI, Gowsika TS (2020) Development of bacterium for crack healing and improving properties of concrete under wet–dry and full-wet curing. Sustainability 12(24):10346
Vijay K, Murmu M (2022) Evaluating durability parameters of concrete containing bacteria and basalt fiber. J Build Pathol Rehabil 7(1):1–6
Alazhari M, Sharma T, Heath A, Cooper R, Paine K (2018) Application of expanded perlite encapsulated bacteria and growth media for self-healing concrete. Constr Build Mater 160:610–619
Wang X, Li Y, Zhang C, Zhang X (2022) Visualization and quantification of self- healing behaviors of microcracks in cement-based materials incorporating fluorescence-labeled self-healing microcapsules. Constr Build Mater 315:125668
Lv L, Yang Z, Chen G, Zhu G, Han N, Schlangen E, Xing F (2016) Synthesis and characterization of a new polymeric microcapsule and feasibility investigation in self-healing cementitious materials. Constr Build Mater 105:487–495
Xiong W, Tang J, Zhu G, Han N, Schlangen E, Dong B, Xing F (2015) A novel capsule-based self-recovery system with a chloride ion trigger. Sci Rep 5(1):1–6
Van Tittelboom K, De Belie N, Lehmann F, Grosse CU (2012) Acoustic emission analysis for the quantification of autonomous crack healing in concrete. Constr Build Mater 28(1):333–341
Sangadji S, Schlangen E (2012) Self healing of concrete structures-novel approach using porous network concrete. J Adv Concr Technol 10(5):185–194
Wang J, Dewanckele J, Cnudde V, Van Vlierberghe S, Verstraete W, De Belie N (2014) X-ray computed tomography proof of bacterial-based self-healing in concrete. Cem Concr Compos 53:289–304
Zhang W, Zheng Q, Ashour A, Han B (2020) Self-healing cement concrete composites for resilient infrastructures: a review. Compos B Eng 189:107892
Ferrara L, Van Mullem T, Alonso MC, Antonaci P, Borg RP, Cuenca E, De Belie N (2018) Experimental characterization of the self-healing capacity of cement based materials and its effects on the material performance: a state of the art report by COST Action SARCOS WG2. Constr Build Mater 167:115–142
Aggelis DG (2011) Classification of cracking mode in concrete by acoustic emission parameters. Mech Res Commun 38(3):53–157
Ohtsu M (2010) Recommendations of RILEM Technical Committee 212-ACD: acoustic emission and related NDE techniques for crack detection and damage evaluation in concrete: 3. Test method for classification of active cracks in concrete structures by acoustic emission. Mater Struct 43(9):1187–1189
Ohno K, Ohtsu M (2010) Crack classification in concrete based on acoustic emission. Constr Build Mater 24(12):2339–2346
Tsangouri E, Aggelis DG, Van Tittelboom K, De Belie N, Van Hemelrijck D (2013) Detecting the activation of a self-healing mechanism in concrete by acoustic emission and digital image correlation. Sci World J 2013.
Kim H, Ahn E, Cho S, Shin M, Sim SH (2017) Comparative analysis of image binarization methods for crack identification in concrete structures. Cem Concr Res 99:53–61
Tripp BC, Smith K, Ferry JG (2001) Carbonic anhydrase: new insights for an ancient enzyme. J Biol Chem 276(52):48615–48618
Zhang Z, Lian B, Hou W, Chen M, Li X, Li Y (2011) Bacillus mucilaginosus can capture atmospheric CO2 by carbonic anhydrase. Afr J Microbiol Res 5(2):106–112
Sharma A, Bhattacharya A (2010) Enhanced biomimetic sequestration of CO2 into CaCO3 using purified carbonic anhydrase from indigenous bacterial strains. J Mol Catal 67(1–2):122–128
Chen G, Zeng G, Tang L, Du C, Jiang X, Huang G, Shen G (2008) Cadmium removal from simulated wastewater to biomass byproduct of Lentinus edodes. Bioresour Technol 99(15):7034–7040
Tang L, Zeng GM, Shen GL, Li YP, Zhang Y, Huang DL (2008) Rapid detection of picloram in agricultural field samples using a disposable immunomembrane-based electrochemical sensor. Environ Sci Technol 42(4):1207–1212
Fu F, Wang Q (2011) Removal of heavy metal ions from wastewaters: a review. J Environ Manag 92(3):407–418
Guo H, Luo S, Chen L, Xiao X, Xi Q, Wei W, He Y (2010) Bioremediation of heavy metals by growing hyperaccumulaor endophytic bacterium Bacillus sp. L14. Bioresour Technol 101(22):8599–8605
Wang J, Chen C (2009) Biosorbents for heavy metals removal and their future. Biotechnol Adv 27(2):195–226
Xiao X, Luo S, Zeng G, Wei W, Wan Y, Chen L, Xi Q (2010) Biosorption of cadmium by endophytic fungus (EF) Microsphaeropsis sp. LSE10 isolated from cadmium hyperaccumulator Solanum nigrum L. Bioresour Technol 101(6):1668–1674
DeJong JT, Mortensen BM, Martinez BC, Nelson DC (2010) Bio-mediated soilimprovement. Ecol Eng 36(2):197–210
Pham V, Van Paassen L, Nakano A, Kanayama M, Heimovaara T (2013) Microbially induced carbonate precipitation (MICP) by denitrification as ground improvement method-Process control in sand column experiments. In: EGU general assembly conference abstracts, April 2013, Vienna, Austria
Rafrafi Y, Ranaivomanana H, Bertron A, Albrecht A, Erable B (2015) Surface and bacterial reduction of nitrate at alkaline pH: conditions comparable to a nuclear waste repository. Int Biodeterior Biodegradation 101:12–22
Novik G, Savich V, Kiseleva E (2015) An insight into beneficial Pseudomonas bacteria. Microbiology in agriculture and human health, pp 73–105
Gardner D, Lark R, Jefferson T, Davies R (2018) A survey on problems encountered in current concrete construction and the potential benefits of self-healing cementitious materials. Case Stud Constr Mater 8:238–247
Almohammed F, Sihag P, Sammen SS, Ostrowski KA, Singh K, Prasad CVSR, Zajdel P (2022) Assessment of soft computing techniques for the prediction of compressive strength of bacterial concrete. Materials 15(2):489
Algaifi HA, Alqarni AS, Alyousef R, Bakar SA, Ibrahim MW, Shahidan S, Salami BA (2021) Mathematical prediction of the compressive strength of bacterial concrete using gene expression programming. Ain Shams Eng J 12(4):3629–3639
Saxena S, Tembhurkar AR (2022) Optimization of process parameters by Taguchi method for maximizing strength and durability of bio concrete. Innov Infrastruct Solut 7(4):1–13
Lv LY, Zhang H, Schlangen E, Yang Z, Xing F (2017) Experimental and numerical study of crack behaviour for capsule-based self-healing cementitious materials. Constr Build Mater 156:219–229
Ivanov V, Chu J (2008) Applications of microorganisms to geotechnical engineering for bioclogging and biocementation of soil in situ. Rev Environ Sci Biotechnol 7(2):139–153
He J, Gray K, Norris A, Ewing AC, Jurgerson J, Shi X (2020) Use of biological additives in concrete pavements: a review of opportunities and challenges. J Transp Eng B: Pavements 146(3):04020036
Vijay K, Murmu M, Deo SV (2017) Bacteria based self healing concrete—a review. Constr Build Mater 152:1008–1014
Luo M, Qian C (2016) Influences of bacteria-based self-healing agents on cementitious materials hydration kinetics and compressive strength. Constr Build Mater 121:659–663
Ducasse-Lapeyrusse J, Gagné R, Lors C, Damidot D (2017) Effect of calcium gluconate, calcium lactate, and urea on the kinetics of self-healing in mortars. Constr Build Mater 157:489–497
Li W, Dong B, Yang Z, Xu J, Chen Q, Li H, Jiang Z (2018) Recent advances in intrinsic self-healing cementitious materials. Adv Mater 30(17):1705679
Narayanasamy R, Alvarado A, Sanchez Medrano, J, Betancourt Hernandez J, Balagurusamy N (2013) Potential of soil bacteria from the comarca lagunera, north-east Mexico for bioconcrete development, In: ICSHM 2013: Proceedings of the 4th international conference on self-healing materials, June 2013, Delft, Netherlands
Ponraj M, Talaiekhozani A, Zin RM, Ismail M, Abd Majid M Z, Keyvanfar A, Kamyab H Bioconcrete strength, durability, permeability, recycling and effects on human health: A
Ramagiri KK, Chintha R, Bandlamudi RK, Kara De Maeijer P, Kar A (2021) Cradle-to-gate life cycle and economic assessment of sustainable concrete mixes—alkali-activated concrete (AAC) and bacterial concrete (BC). Infrastructures 6(7):104
Choi SG, Chu J, Brown RC, Wang K, Wen Z (2017) Sustainable biocement production via microbially induced calcium carbonate precipitation: use of limestone and acetic acid derived from pyrolysis of lignocellulosic biomass. ACS Sustain Chem Eng 5(6):5183–5190
Prakash D, Gabani P, Chandel AK, Ronen Z, Singh OV (2013) Bioremediation: a genuine technology to remediate radionuclides from the environment. Microb Biotechnol 6(4):349–360