TY - JOUR
T1 - Mesoporous silica nanoparticles loaded urea for enhancement of the cohesion of biogenic CaCO3 and its adhesion with recycled concrete aggregates
AU - Zhang, Rui
AU - Srivastava, Mrinal Gaurav
AU - Braem, Annabel
AU - Mignon, Arn
AU - Wang, Jianyun
N1 - Publisher Copyright:
© 2024 Elsevier Ltd
PY - 2025/4/1
Y1 - 2025/4/1
N2 - The advantage of the biogenic CaCO3 formed through Microbially Induced Carbonate Precipitation (MICP) lies in its cohesion, which plays a crucial role in the regain of mechanical strength of the materials. The cohesion among CaCO3 particles is significantly affected by the precipitation kinetics. Especially precipitation rate (yield of CaCO3 per unit time), which relates with the instantaneous concentration of the precipitation precursors in the surroundings. The lower the concentration of the precursors, the lower the precipitation rate. Therefore, in this study, an innovative slow-release strategy was used to control the real-time concentration of urea in the solution and to slow down the precipitation rate, thereby improving the cohesion of CaCO3. To this end, mesoporous silica nanoparticles (MSN) were used as carriers for the urea, and the release behavior was investigated and optimized, achieving a 40 wt% loading capacity with 6 g/L MSN and 1 M urea. The urea release from MSN demonstrated a significantly prolonged release period, extending by approximately 20 times compared to free urea, and lasting up to 5 days. These urea-releasing MSN were then applied to provide a controlled supply of urea in the MICP process, as well as in the MICP-based treatment of recycled concrete aggregates. The cohesion of the precipitates and their adhesion to the concrete aggregates were evaluated, revealing the use of MSN-loaded urea significantly improved the cohesion of CaCO3 by 25 %, while its adhesion to recycled concrete aggregates was increased by 37 %. This enhancement contributed to the improved MICP strengthening efficiency of recycled concrete aggregates.
AB - The advantage of the biogenic CaCO3 formed through Microbially Induced Carbonate Precipitation (MICP) lies in its cohesion, which plays a crucial role in the regain of mechanical strength of the materials. The cohesion among CaCO3 particles is significantly affected by the precipitation kinetics. Especially precipitation rate (yield of CaCO3 per unit time), which relates with the instantaneous concentration of the precipitation precursors in the surroundings. The lower the concentration of the precursors, the lower the precipitation rate. Therefore, in this study, an innovative slow-release strategy was used to control the real-time concentration of urea in the solution and to slow down the precipitation rate, thereby improving the cohesion of CaCO3. To this end, mesoporous silica nanoparticles (MSN) were used as carriers for the urea, and the release behavior was investigated and optimized, achieving a 40 wt% loading capacity with 6 g/L MSN and 1 M urea. The urea release from MSN demonstrated a significantly prolonged release period, extending by approximately 20 times compared to free urea, and lasting up to 5 days. These urea-releasing MSN were then applied to provide a controlled supply of urea in the MICP process, as well as in the MICP-based treatment of recycled concrete aggregates. The cohesion of the precipitates and their adhesion to the concrete aggregates were evaluated, revealing the use of MSN-loaded urea significantly improved the cohesion of CaCO3 by 25 %, while its adhesion to recycled concrete aggregates was increased by 37 %. This enhancement contributed to the improved MICP strengthening efficiency of recycled concrete aggregates.
KW - Biogenic CaCO
KW - Mesoporous silica nanoparticles (MSN)
KW - Microbially induced carbonate precipitation (MICP)
KW - Recycled concrete aggregates
KW - Slow-release urea
UR - https://www.scopus.com/pages/publications/85211088169
U2 - 10.1016/j.jobe.2024.111528
DO - 10.1016/j.jobe.2024.111528
M3 - 文章
AN - SCOPUS:85211088169
SN - 2352-7102
VL - 99
JO - Journal of Building Engineering
JF - Journal of Building Engineering
M1 - 111528
ER -