Bio-stabilisation of granite residual soil using indigenous microorganisms

Y Ya Wang M Meiqi Li (State Key Laboratory of Green Papermaking and Resource Recycling, National Observation and Research Station of Erhai Lake Ecosystem in Yunnan, Yunnan Dali Research Institute, School of Environmental Science and Engineering) H Hao Peng (State Key Laboratory of Physical Chemistry of Solid Surfaces, Department of Chemistry) J Jiaxin Kang C Chenlong Luo H Hong Guo Y Yasheng Luo M Mingjiang Tao

Abstract

Granite residual soil exhibits inferior mechanical properties, which may lead to slope instability and embankment settlement. Microbial solidification technology offers an environmentally sustainable and highly effective approach for the improvement of such soils. To enhance the strength properties of granite residual soil in the Hanzhong region, three urease-producing Bacillus species, including Bacillus velezensis , Bacillus subtilis , and Bacillus tequilensis , are extracted from the soil in the same area, and solidification improvement experiments are conducted by changing the concentration of the cementing solution. The experimental results indicate that all three bacterial strains can substantially enhance the shear strength of soil. The optimal improvement effect for each strain is observed when the cementing solution concentration reaches 2 mol/L. Notably, Bacillus subtilis exhibits the greatest increase in internal friction angle, rising by 145.32% compared to the unimproved. In contrast, Bacillus tequilensis shows the highest improvement in cohesion, with a maximum increase of 316.19%. The solidification effect differed among different bacterial strains, with B. tequilensis and B. velezensis exhibiting better performance in high-concentration cementing solutions. Scanning electron microscopy (SEM) and X-ray diffraction (XRD) analysis reveal that the calcium carbonate precipitates in the soil solidified by these three types of bacteria can strongly bind to the soil particles, confirming the improvement effect at the microscopic level. This study provides an eco-friendly and cost-effective improvement method for the engineering application of granite residual soil, which plays an important role in improving the quality and decreasing the cost of artificial slope filling, roadbed filling, and foundation pit backfilling in areas with granite residual soil.

Article Details

Journal PLoS ONE
Volume / Issue Vol. 20, Issue 11
Published November 10, 2025
Pages e0336489
ISSN 1932-6203
Publisher Public Library of Science

Journal Info

PLoS ONE

Public Library of Science

ISSN: 1932-6203 Open Access Health Sciences

Authors (8)

Y

Ya Wang

M

Meiqi Li

State Key Laboratory of Green Papermaking and Resource Recycling, National Observation and Research Station of Erhai Lake Ecosystem in Yunnan, Yunnan Dali Research Institute, School of Environmental Science and Engineering

H

Hao Peng

State Key Laboratory of Physical Chemistry of Solid Surfaces, Department of Chemistry

J

Jiaxin Kang

C

Chenlong Luo

H

Hong Guo

Y

Yasheng Luo

M

Mingjiang Tao