Bio-enhanced lightweight concrete: self-healing and mechanical performance

This study evaluated bacterial modification of lightweight expanded clay aggregate (LECA) using Bacillus pasteurii and Bacillus subtilis , and the subsequent performance of B. subtilis -treated structural lightweight concrete. Aggregate treatment reduced LECA water absorption by up to 51.9 and increased dry mass by 1.5–2.0%. SEM showed localized deposits on bacteria-treated LECA and at concrete crack/interface regions, including partial filling of an approximately 2 μm crack in the matched healed bacterial specimen. XRD established calcite-compatible intensity in clinker-free LECA and supported an increased calcite contribution in the matched S9/S8 concrete pair, although calcite/alite overlap prevented unique carbonate quantification and vaterite/aragonite could neither be confirmed nor excluded. For undamaged compression, bacterial concrete was 6–10% above the strength-reduced control, with the maximum at 14 days. After 21 days of healing, bacterial concrete reached 24.94 MPa in compression and 3.24 MPa in flexure, respectively 23 and 35% above the corresponding healed bacteria-free specimens. The bacterial mixture also increased air content from 2.0 to 5.5 and slump from 10–13 to 13–16 cm, while fresh density decreased from 1550 to 1450 kg/m 3 . The results support short-term bacteria-associated mineral deposition and mechanical recovery, while air control and longer-term durability remain necessary for practical validation.

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Publication Details

Journal
Scientific Reports
Published
2026-09-29
DOI
https://doi.org/10.1038/s41598-026-72323-2
Primary Topic
Microbial Applications in Construction Materials
Type
article
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Bio-enhanced lightweight concrete: self-healing and mechanical performance

Vida Tafakori, Gholamreza Asadollahfardi, Ali Massumi, Shadi Zeinali
Scientific Reports
Microbial Applications in Construction Materials
article

Bio-enhanced lightweight concrete: self-healing and mechanical performance

Vida Tafakori, Gholamreza Asadollahfardi, Ali Massumi, Shadi Zeinali
article en

Abstract

This study evaluated bacterial modification of lightweight expanded clay aggregate (LECA) using Bacillus pasteurii and Bacillus subtilis , and the subsequent performance of B. subtilis -treated structural lightweight concrete. Aggregate treatment reduced LECA water absorption by up to 51.9 and increased dry mass by 1.5–2.0%. SEM showed localized deposits on bacteria-treated LECA and at concrete crack/interface regions, including partial filling of an approximately 2 μm crack in the matched healed bacterial specimen. XRD established calcite-compatible intensity in clinker-free LECA and supported an increased calcite contribution in the matched S9/S8 concrete pair, although calcite/alite overlap prevented unique carbonate quantification and vaterite/aragonite could neither be confirmed nor excluded. For undamaged compression, bacterial concrete was 6–10% above the strength-reduced control, with the maximum at 14 days. After 21 days of healing, bacterial concrete reached 24.94 MPa in compression and 3.24 MPa in flexure, respectively 23 and 35% above the corresponding healed bacteria-free specimens. The bacterial mixture also increased air content from 2.0 to 5.5 and slump from 10–13 to 13–16 cm, while fresh density decreased from 1550 to 1450 kg/m 3 . The results support short-term bacteria-associated mineral deposition and mechanical recovery, while air control and longer-term durability remain necessary for practical validation.

Scientific Reports
Kharazmi University (IR)
Clean water and sanitation
Openalex Percentile: Top 19%
Microbial Applications in Construction Materials
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