Author:
Aliyu Abdulaziz Dardau,Mustafa Muskhazli,Abd Aziz Nor Azwady,Hadi Najaatu Shehu
Abstract
Sub-standard soils are of great concern worldwide due to diverse economic losses and the possibility of severe environmental hazards ranging from catastrophic landslides, building collapse, and erosion to loss of lives and properties. This study explored the potential of urease-producing bacteria, <i>Bacillus cereus</i> and <i>Bacillus paramycoides</i>, to stabilise sub-standard soil bio-stabilisation. The maximum urease activity measured by <i>B. cereus</i> and <i>B. paramycoides</i> was 665 U/mL and 620 U/mL, respectively. <i>B. cereus</i> and <i>B. paramycoides</i> precipitated 943 ± 57 mg/L and 793 ± 51 mg/L of CaCO<sub>3</sub> at an optical density (425 nm) of 1.01 and 1.09 and pH 8.83 and 8.59, respectively, after 96 hours of incubation. SEM microstructural analysis of the precipitated CaCO<sub>3</sub> revealed crystals of various sizes (2.0–23.0 µm) with different morphologies. XRD analysis confirmed that the precipitated CaCO<sub>3</sub> comprised calcite and aragonite crystals. SEM analysis of the microstructure of organic and sandy clay soils treated with <i>B. cereus</i> and <i>B. paramycoides</i> showed the formation of bio-precipitated calcium carbonate deposits on the soil particles (biocementing soil grains), with <i>B. cereus</i> precipitating more CaCO<sub>3</sub> crystals with a better biocementing effect compared to <i>B. paramycoides</i>. Overall, the experimental results attributed CaCO<sub>3</sub> formation to bacterial-associated processes, suggesting that soil ureolytic bacteria are potentially useful to stabilise sub-standard soil.
Publisher
Universiti Putra Malaysia
Subject
General Earth and Planetary Sciences,General Environmental Science
Reference84 articles.
1. Achal, V., Mukerjee, A., & Reddy, M. S. (2013). Biogenic treatment improves the durability and remediates the cracks of concrete structures. Construction and Building Materials, 48, 1-5. https://doi.org/10.1016/j.conbuildmat.2013.06.061
2. Akyol, E., Bozkaya, O., & Dogan, N. M. (2017). Strengthening sandy soils by microbial methods. Arab Journal of Geoscience, 10, Article 327. https://doi.org/10.1007/s12517-017-3123-9
3. Algaifi, H. A., Sam, A. R. M., Bakar, S. A., Abidin, R. Z., & Shahir, S. (2020). Screening of native ureolytic bacteria for self-healing in cementitious materials. In IOP Conference Series: Material Science and Engineering (Vol. 849, pp. 1-8). IOP Publishing. https://doi.org/10.1088/1757-899X/849/1/012074
4. Alonso, M. J. C., Ortiz, C. E. L., Perez, S. O. G., Narayanasamy, R., Miguel, G. D. J. F. S., Hernández, H. H., & Balagurusamy, N. (2018). Improved strength and durability of concrete through metabolic activity of ureolytic bacteria. Environmental Science and Pollution Research, 25, 21451-21458. https://doi.org/10.1007/s11356-017-9347-0
5. Al-Thawadi, S., & Cord-Ruwisch, R. (2012). Calcium carbonate crystals formation by ureolytic bacteria isolated from Australian soil and sludge. Journal of Advanced Science and Engineering Research, 2, 12-26.
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