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Hydration behavior and performance of montmorillonite-modified natural hydraulic lime for internal curing
Journal of Chongqing University 2024, 47(10): 162-171
Published: 01 October 2024
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Cave temples, a unique type of cultural relics in China, possess extremely important historical, artistic and scientific value. Cracks are the main cause of instability, seepage, weathering and other forms of damage in these structures. Conventional external curing grouts and reinforcement methods are ineffective in addressing shrinkage cracking and insufficient strength caused by water shortages in deep cracks during the later curing stages. This study prepares montmorillonite (MMT) -modified natural hydraulic lime (NHL) for internal curing through a one-step in situ polymerization process and systematically evaluates the hydration behavior and performance of the modified NHL during curing. Results show that the internal curing effect of NHL is optimal at a 2% MMT content. After 7 days of curing, the autogenous shrinkage of the modified sample is only 56.70% of that of the blank sample, demonstrating excellent water retention. Moreover, the compressive strength of the modified NHL after 28 days of curing increased by 22.03% compared with the blank sample. This improvement is attributed to MMT’s ability to continuously release interlayer-adsorbed water under the sample’s internal humidity gradient during the entire curing process, promoting the hydration reaction of NHL, reducing autogenous shrinkage, and improving the internal curing effect. This study provides an important theoretical and practical foundation for the development of internal curing grouts and reinforcement techniques for cracks in cave temples.

Research Article Issue
Preparation and Ammonia Sensing Behavior of TiO2/Ti3C2 Composites at Room Temperature
Journal of the Chinese Ceramic Society 2025, 53(9): 2718-2727
Published: 29 August 2025
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Introduction

Ammonia is a toxic and harmful gas that affects the environment and human health. It is thus of great significance to identify and detect ammonia and its concentration rapidly and accurately for human health monitoring and ecological environment management. TiO2 is widely used in the field of gas sensors due to its advantages of good stability, environmental tolerance, non-pollution, and outstanding contact reaction properties. However, it is gradually found that it has the disadvantages of long response/recovery time and low response value. MXene has a great potential in the field of gas sensing because of its large specific surface area and superior electron mobility rate, but its response value is rather low. In this work, TiO2/Ti3C2 composites were prepared by an one-step hydrothermal method. The synergistic effect of semiconductor properties of TiO2 and excellent electron transport performance of Ti3C2 was analyzed.

Methods

TiO2/Ti3C2 composites at different hydrothermal temperatures were prepared by a hydrothermal method with MXene–Ti3C2 and butyl titanate as raw materials. The physical phase, surface morphology, specific surface area and pore size distribution, and structure of the samples were analyzed by X-ray diffraction (XRD), scanning electron microscopy (SEM), surface area measurement based on BET, and Raman spectroscopy. In addition, the ammonia sensing properties of TiO2/Ti3C2 composites at room temperature were also analyzed.

Results and discussion

TiO2/Ti3C2 composites can be prepared by a hydrothermal method. The XRD patterns indicate that the characteristic peaks of Ti3C2 and the diffraction peaks of anatase TiO2 both appear in the composites. The Raman spectra show the generation of anatase TiO2. The SEM images indicate that TiO2 nanoparticles are uniformly loaded on the interlayer and surface of Ti3C2. The agglomeration of TiO2 particles becomes more severe with the increase of hydrothermal temperature. The N2 adsorption-desorption experiment shows that the specific surface area of prepared TiO2/Ti3C2 is much larger than that of Ti3C2. Moreover, the specific surface area of TiO2/Ti3C2-150 is the largest, but it gradually decreases with the increase of hydrothermal temperature possibly due to the agglomeration of the generated TiO2 particles. The gas sensing test results show that TiO2/Ti3C2 composites and pure TiO2 have responses to 100 μL/L ammonia at room temperature, while Ti3C2 has little response. The response values of TiO2/Ti3C2 composites are significantly better than that of pure TiO2 obtained at the same temperature. Among all the samples, TiO2/Ti3C2-150 has the maximum response value (i.e., 8.37). Also, the response value of the composites increases with the increase of ammonia concentration, showing a high linear correlation. After the stability test for one month, the response value of TiO2/Ti3C2-150 to 100 μL/L ammonia is only decreased by 14.1%, indicating a long-term stability. Compared to TiO2-150, the response time of TiO2/Ti3C2-150 decreases from 43 s to 28 s, and the recovery time reduces from 49 s to 37 s, manifesting a high selectivity to ammonia. The stable gas absorption/desorption reaction of TiO2 and thesuperior electron transport rate of Ti3C2 can enhance the response of TiO2/Ti3C2 to ammonia.

Conclusions

The nanoparticles of anatase TiO2 were supported on the interlayer and surface of Ti3C2 by a hydrothermal method. At the hydrothermal temperature of 150 ℃, TiO2 particles were supported evenly and agglomerated weakly, with a greater specific surface area and smaller particle size. Compared to pure TiO2 and Ti3C2, TiO2/Ti3C2-150 had a good response to ammonia at room temperature. At an ammonia concentration of 300 μL/L, the gas sensing response value of TiO2/Ti3C2-150 was 34.77, which was greater than that of pure TiO2. In addition, TiO2/Ti3C2-150 also showed a rapid response recovery rate, a good selectivity and a long-term response stability, having a promising application prospect in the field of rapid detection of ammonia at room temperature.

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