Analysis of the Encapsulation of Bacillus Subtilis in Iron Oxide Nanoparticles for the Repair of Cracks and Improvement of Mechanical Properties of Self-Repairing Concrete Subjected to Saline Environments

International Journal of Civil Engineering
© 2026 by SSRG - IJCE Journal
Volume 13 Issue 3
Year of Publication : 2026
Authors : Roger Chira Sedano, Liliana Evelin Lopez Gallegos, Yerina Leticia Reyes Cristobal, Marko Antonio Lengua Fernandez
pdf
How to Cite?

Roger Chira Sedano, Liliana Evelin Lopez Gallegos, Yerina Leticia Reyes Cristobal, Marko Antonio Lengua Fernandez, "Analysis of the Encapsulation of Bacillus Subtilis in Iron Oxide Nanoparticles for the Repair of Cracks and Improvement of Mechanical Properties of Self-Repairing Concrete Subjected to Saline Environments," SSRG International Journal of Civil Engineering, vol. 13,  no. 3, pp. 36-53, 2026. Crossref, https://doi.org/10.14445/23488352/IJCE-V13I3P104

Abstract:

Concrete faces durability challenges caused by moisture, temperature changes, and chemical attack, which generate cracking, reduce structural integrity, and increase maintenance needs. Cement production also produces considerable environmental impacts, reinforcing the need for sustainable repair strategies. This study evaluated the encapsulation of Bacillus subtilis in iron oxide nanoparticles to improve crack healing and mechanical performance of concrete under saline exposure. Nanoparticles were synthesized by chemical coprecipitation, and viable Bacillus subtilis colonies were isolated and encapsulated to ensure protection in the alkaline matrix. Encapsulated bacteria were incorporated into concrete at concentrations of 0, 2.8 × 10⁹, 2.8 × 10¹², 2.8 × 10¹⁶, 2.8 × 10¹⁸, and 2.8 × 10²⁰ cells/mL. Slump, compressive, tensile, and flexural strengths, as well as sulfate resistance, were evaluated using three replicates per dosage. The 2.8 × 10¹⁶ cells/mL dosage achieved the best performance, improving mechanical strength and sulfate resistance compared with the control mix. Crack healing capacity increased by 18% in induced fissures and was effective in real cracks, confirming activation of the biological repair mechanism. A cost increase of S/70 demonstrated economic feasibility. The findings show that encapsulating Bacillus subtilis in iron oxide nanoparticles enhances durability and offers a sustainable solution for concrete in aggressive environments.

Keywords:

Iron oxide nanoparticles, Bacillus subtilis, Self-healing concrete, Concrete exposed to salts.

References:

[1] Luis Angel Chiroque Cordova, and Tulio Gaona Roman, “Performance of Concrete Incorporating Cement Slag and Fly Ash in Transport Structures in Piura,” Research Journal Engineering and its Scope, vol. 9, no. 23, pp. 45-53, 2025.
[CrossRef] [Google Scholar] [Publisher Link]
[2] Mordor Intelligence, Concrete Repair Mortar Market Size and Share Analysis: Growth Trends and Forecasts (2024-2029), Mordor Intelligence, 2023. [Online]. Available: https://www.mordorintelligence.com/es/industry-reports/concrete-repair-mortar-market
[3] Peruvian News Agency Andina, The Construction Sector Starts 2025 with a Growth of 17.9%, Andina: Peruvian News Agency, 2025. [Online]. Available: https://andina.pe/agencia/noticia-sector-construccion-arranca-2025-crecimiento-179-1021545.aspx
[4] Association of Cement Producers of Peru (ASOCEM), Monthly Statistical Report Peru Cement Industry, Association of Cement Producers (ASOCEM), 2023. [Online]. Available: https://www.asocem.org.pe/
[5] Supriya et al., “Low-CO2 Emission Strategies to Achieve Net Zero Target in Cement Sector,” Journal of Cleaner Production, vol. 417, 2023.
[CrossRef] [Google Scholar] [Publisher Link]
[6] Salim Barbhuiya et al., “Decarbonising Cement and Concrete Production: Strategies, Challenges and Pathways for Sustainable Development,” Journal of Building Engineering, vol. 86, pp. 1-28, 2024.
[CrossRef] [Google Scholar] [Publisher Link]
[7] Jonny Nilimaa, “Smart Materials and Technologies for Sustainable Concrete Construction,” Developments in the Built Environment, vol. 15, pp. 1-19, 2023.
[CrossRef] [Google Scholar] [Publisher Link]
[8] Sudha Uthaman, and Vinita Vishwakarma, “Assessment of Causes and Consequences of Concrete Deterioration and its Remediation,” Journal of Building Engineering, vol. 79, 2023.
[CrossRef] [Google Scholar] [Publisher Link]
[9] Faiz Uddin Ahmed Shaikh, “Effect of Cracking on Corrosion of Steel in Concrete,” International Journal of Concrete Structures and Materials, vol. 12, no. 1, pp. 1-12, 2018.
[CrossRef] [Google Scholar] [Publisher Link]
[10] Clinker Engineering, Evaluation, Repair and Rehabilitation of Existing Concrete Structures, Clinker, 2018. [Online]. Available: https://clinker.com.co/backup_sitio_web/index.php/diseno/item/84-evaluacion-reparacion-y-rehabilitacion-de-estructuras-existentes-de concreto
[11] Mordor Intelligence, Dry Mix Mortar Market Size and Share Analysis: Growth Trends and Forecasts (2024-2029), Mordor Intelligence, 2023. [Online]. Available: https://www.mordorintelligence.com/es/industry-reports/dry-mix-mortar-market
[12] Jan Válek et al., “Recommendation of RILEM TC 243-SGM: Functional Requirements for Surface Repair Mortars for Historic Buildings,” Materials and Structures, vol. 52, no. 1, pp. 1-18, 2019.
[CrossRef] [Google Scholar] [Publisher Link]
[13] Rahul Goushis, and K.M. Mini, “Effectiveness of Polymeric and Cementitious Materials to Secure Cracks in Concrete Under Diverse Circumstances,” International Journal of Adhesion and Adhesives, vol. 114, 2022.
[CrossRef] [Google Scholar] [Publisher Link]
[14] Tariq Aziz et al., “The Epoxy Resin System: Function and Role of Curing Agents,” Carbon Letters, vol. 34, no. 1, pp. 477-494, 2023.
[CrossRef] [Google Scholar] [Publisher Link]
[15] Md Nasir Uddin et al., “Smart Self-Healing Bacterial Concrete for Sustainable Goal,” Innovative Infrastructure Solutions, vol. 8, no. 1, 2023.
[CrossRef] [Google Scholar] [Publisher Link]
[16] Ghasan Fahim Huseien et al., “Smart Bio-Agents-Activated Sustainable Self-Healing Cementitious Materials: An All-Inclusive Overview on Progress, Benefits and Challenges,” Sustainability, vol. 14, no. 4, pp. 1-37, 2022.
[CrossRef] [Google Scholar] [Publisher Link]
[17] Hesam Doostkami et al., “Self-Healing Capability of Conventional, High-Performance, and Ultra High-Performance Concrete with Commercial Bacteria Characterized by Means of Water and Chloride Penetration,” Construction and Building Materials, vol. 401, pp. 1 14, 2023.
[CrossRef] [Google Scholar] [Publisher Link]
[18] Salmabanu Luhar, Ismail Luhar, and Faiz Uddin Ahmed Shaikh, “A Review on the Performance Evaluation of Autonomous Self-Healing Bacterial Concrete: Mechanisms, Strength, Durability, and Microstructural Properties,” Journal of Composites Science, vol. 6, no. 1, pp. 1-35, 2022.
[CrossRef] [Google Scholar] [Publisher Link]
[19] Mostafa Seifan et al., “Amine-Modified Magnetic Iron Oxide Nanoparticle as a Promising Carrier for Application in Bio Self-Healing Concrete,” Applied Microbiology and Biotechnology, vol. 102, no. 1, pp. 175-184, 2018.
[CrossRef] [Google Scholar] [Publisher Link]
[20] Suriyaprakash Rajadesingu et al., “Exploring the Potential of Bacterial Concrete: A Sustainable Solution for Remediation of Crack and Durability Enhancement - A Critical Review,” Construction and Building Materials, vol. 439, 2024.
[CrossRef] [Google Scholar] [Publisher Link]
[21] Muhammad Khubaib Akhtar et al., “Assessment of Mechanical Attributes and Microstructural Densification of Self-Healing Recycled Coarse Aggregate Concrete using Various Bacterial Immobilizers,” Journal of Building Engineering, vol. 69, 2023.
[CrossRef] [Google Scholar] [Publisher Link]
[22] Panga Narasimha Reddy, and Bode Venkata Kavyateja, “Experimental Study on Strength Parameters of Self Repairing Concrete,” Annals of Chemistry and Materials Science, vol. 43, no. 5, pp. 305-310, 2019.
[CrossRef] [Google Scholar] [Publisher Link]
[23] Shital Wani et al., “Self-Healing Concrete,” International Research Journal of Engineering and Technology, vol. 9, no. 6, pp. 1227-1230, 2022.
[Google Scholar] [Publisher Link] 
[24] Chunxiang Qian et al., “Application of Microbial Self-Healing Concrete: Case Study,” Construction and Building Materials, vol. 290, 2021.
[CrossRef] [Google Scholar] [Publisher Link]
[25] How-Ji Chen et al., “Self-Healing Concrete by Biological Substrate,” Materials, vol. 12, no. 24, pp. 1-16, 2019.
[CrossRef] [Google Scholar] [Publisher Link]
[26] Robert Davies et al., “Large Scale Application of Self-Healing Concrete: Design, Construction, and Testing,” Frontiers Materials, vol. 5, pp. 1-12, 2018.
[CrossRef] [Google Scholar] [Publisher Link]
[27] Yun Suk Lee, and Woojun Park, “Current Challenges and Future Directions for Bacterial Self-Healing Concrete,” Applied Microbiology and Biotechnology, vol. 102, no. 7, pp. 3059-3070, 2018.
[CrossRef] [Google Scholar] [Publisher Link]
[28] Xuan Zhang et al., “Effects of Carrier on the Performance of Bacteria-based Self-Healing Concrete,” Construction and Building Materials, vol. 305, 2021.
[CrossRef] [Google Scholar] [Publisher Link]
[29] Kunamineni Vijay, and Meena Murmu, “Self-Repairing of Concrete Cracks by using Bacteria and Basalt Fiber,” SN Applied Sciences, vol. 1, no. 11, pp. 1-10, 2019.
[CrossRef] [Google Scholar] [Publisher Link]
[30] Peem Nuaklong et al., “Self-Repairing of Shrinkage Crack in Mortar Containing Microencapsulated Bacterial Spores,” Journal of Materials Research and Technology, vol. 23, pp. 3441-3454, 2023.
[CrossRef] [Google Scholar] [Publisher Link]
[31] Yuanyuan Tie et al., “Investigation on the Mechanical Properties of Bacillus Subtilis Self-Healing Concrete,” Heliyon, vol. 10, no. 14, pp. 1-16, 2024.
[CrossRef] [Google Scholar] [Publisher Link]
[32] C. Neeladharan et al., “Application of Bacillus Subtilis Bacteria for Improving Properties and Healing of Cracks in Concrete,” International Journal of Advanced Research Trends in Engineering and Technology, vol. 5, no. 5, pp. 118-123, 2018.
[Google Scholar] [Publisher Link]
[33] Ariana Nicole Grados Hinojosa et al., “Development and Evaluation of Sustainable Concrete: Effect of Coffee Husk Ash and Pineapple Fiber on Mechanical Properties,” Civil Engineering and Architecture, vol. 13, no. 3, pp. 1840-1857, 2025.
[CrossRef] [Google Scholar] [Publisher Link]
[34] Grzegorz Ludwik Golewski, “The Phenomenon of Cracking in Cement Concretes and Reinforced Concrete Structures: The Mechanism of Cracks Formation, Causes of Their Initiation, Types and Places of Occurrence, and Methods of Detection-A Review,” Buildings, vol. 13, no. 3, pp. 1-34, 2023.
[CrossRef] [Google Scholar] [Publisher Link]
[35] Muzafalu Kayondo, Riaan Combrinck, and William Peter Boshoff, “State-of-the-Art Review on Plastic Cracking of Concrete,” Construction and Building Materials, vol. 225, pp. 886-899, 2019.
[CrossRef] [Google Scholar] [Publisher Link]
[36] S. Anu Mary Ealia, and M.P. Saravanakumar, “A Review on the Classification, Characterisation, Synthesis of Nanoparticles and Their Application,” IOP Conference Series: Materials Science and Engineering, vol. 263, no. 3, pp. 1-15, 2017.
[CrossRef] [Google Scholar] [Publisher Link]
[37] Faisal Mahmood et al., “Self-Healing Bio-Concrete using Bacillus subtilis Encapsulated in Iron Oxide Nanoparticles,” Materials, vol. 15, no. 21, pp. 1-18, 2022.
[CrossRef] [Google Scholar] [Publisher Link]
[38] Sumit Kumar et al., Bacillus Subtilis-Mediated Induction of Disease Resistance and Promotion of Plant Growth of Vegetable Crops, Applications of Bacillus and Bacillus Derived Genera in Agriculture, Biotechnology and Beyond, Springer, Singapore, pp. 165-211, 2024. [CrossRef] [Google Scholar] [Publisher Link] [39] X.Q. Wang et al., “Application and Mechanisms of Bacillus Subtilis in Biological Control of Plant Disease,” Role of Rhizospheric Microbes in Soil, Springer, Singapore, pp. 225-250, 2018.
[CrossRef] [Google Scholar] [Publisher Link]
[40] Socrates Pedro Muñoz-Pérez, Jorge Carlos-Sánchez, and Miguel Peralta-Sánchez, “Influence of Bacteria on the Self-Healing of Concrete,” Revista UIS Ingenierías, vol. 22, no. 1, pp. 69-86, 2023.
[CrossRef] [Google Scholar] [Publisher Link]
[41] Sayali Sandbhor et al., “Technique for Improving Concrete Characteristics with Bacillus: Insights on Strength and Durability,” MethodsX, vol. 14, pp. 1-9, 2025.
[CrossRef] [Google Scholar] [Publisher Link]
[42] Ministry of Transport and Communications, Director's Resolution No. 18-2016-MTC/14, Gob.pe, Materials Testing, 2014. [Online]. Available: https://www.gob.pe/institucion/mtc/normas-legales/4442276-18-2016-mtc-14
[43] RonaldoJoelSanchezCu, Standard E.060 Reinforced Concrete, National Building Regulations, Slideshare from Scribd, 2020. [Online]. Available: https://www.slideshare.net/slideshow/norma-e060-concreto-armadopdf-261341745/261341745
[44] Elżbieta Stanaszek-Tomal, “Bacterial Concrete as a Sustainable Building Material?,” Sustainability, vol. 12, no. 2, pp. 1-13, 2020.
[CrossRef] [Google Scholar] [Publisher Link]
[45] K. Shobana, and R. Thenmozhi, “Experimental Investigation of Self-Repairing Bio Concrete in Self Compacting Concrete,” Materials Express, vol. 12, no. 5, pp. 705-712, 2022.
[Google Scholar]