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May 14, 2026Advanced Composites and Hybrid Materials0 citationsOpen Access

Bio-inspired in situ activation strategy of photocatalysts by CO2 mineralization in cement-based materials

XJXunli JiangJLJian‐Xin LuXDXingfa Deng

Key Points

  • The aim is to improve photocatalytic activity in cement-based materials using a CO2 mineralization strategy.
  • Developed a MgO-TiO2-CaCO3 ternary composite through a two-step synthesis process.
  • Investigated the effects of MgO-doped TiO2 on CaCO3 nucleation and growth.
  • Conducted density functional theory calculations to explore charge redistribution and reactive species generation.
  • MTC-10 showed nearly twice the NO removal efficiency compared to pristine TiO2 (event rate not specified).
  • NO2 generation was reduced by half in the optimized system.
  • Enhanced photocatalytic activity was linked to increased oxygen vacancies and surface alkalinity.

Abstract

Abstract Semiconductor photocatalysis integrated into cement-based materials offers a promising route for mitigating urban NO x pollution; however, achieving high activity and selectivity with low-cost cocatalysts remains challenging. Inspired by natural biomineralization, this study proposed a CO 2 mineralization-driven in situ activation strategy that synergistically leveraged the catalytic functionality of cement-based substrates. A MgO-TiO 2 -CaCO 3 (MTC) ternary composite catalytic system was fabricated through a two-step synthesis process, in which MgO-doped TiO 2 acted as a novel precursor to trigger CaCO 3 nucleation and growth, thereby enabling synergistic cocatalytic interactions. The optimized MTC-10 exhibited a NO removal efficiency nearly twice that of pristine TiO 2 , while reducing NO 2 generation by half. Mechanistic investigations revealed that the synergistic coupling of MgO and CaCO 3 , as alkaline earth metal oxides/compounds, introduced oxygen vacancies and enhanced surface alkalinity, inhibiting the formation of toxic NO 2 /N 2 O 4 intermediates. Density functional theory (DFT) calculations further demonstrated that CaCO 3 functioned as a “transfer hub”, promoting charge redistribution, accelerating carrier migration, and enhancing reactive oxygen species (ROS) generation. These processes were crucial for the complete oxidation of NO, helping to suppress the formation of of byproducts such as NO 2 and promoting the transformation of nitrite into more stable nitrate species. This work establishes a novel CO 2 mineralization-driven strategy for boosting TiO 2 photocatalysis in cement-based materials, offering a dual-benefit pathway for CO 2 utilization and selective NO x abatement.

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Cite This Study

Jiang et al. (2026) studied this question.

synapsesocial.com/papers/6a05680ea550a87e60a2067chttps://doi.org/10.1007/s42114-026-01826-3
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