- A mechanism study of thermal resistance formation and post-fire strength recovery in cement paste with carbon nanotubes and nanosilica via focused ion beam/scanning electron microscopy tomography. In: Journal of Building Engineering, v. 97 (November 2024). (2024):
- Investigation of the hydrate formation and mechanical performance of limestone calcined clay cement paste incorporating nano-CaCO3 and nano-SiO2 as partial limestone substitutes. In: Construction and Building Materials, v. 418 (March 2024). (2024):
- Graphene nanoribbons: A novel additive for enhancing the fire resistance of cementitious composites. In: Construction and Building Materials, v. 426 (May 2024). (2024):
- Influences of alumina type and sulfate content on hydration and physicochemical changes in Portland–limestone cement. In: Construction and Building Materials, v. 426 (May 2024). (2024):
- Exploring the potential of pulverized oyster shell as a limestone substitute in limestone calcined clay cement (LC3) and its implications for performance. In: Construction and Building Materials, v. 425 (April 2024). (2024):
- Comparative analysis of the synergistic effects of hybrid nanomaterial reinforcement in cementitious composites: A perspective for pore refinement and thermal resistance. In: Construction and Building Materials, v. 401 (October 2023). (2023):
- Effects of ultrasound-assisted sulfuric acid treatment on the decontamination of Co nuclides in cement paste simulating radioactive concrete waste from dismantled nuclear power plants. In: Construction and Building Materials, v. 373 (April 2023). (2023):
- Characteristic microstructural phase evolution and the compressive strength development mechanisms of tricalcium silicate pastes under various initial carbonation curing environments. In: Construction and Building Materials, v. 409 (December 2023). (2023):
- Impact of interatomic structural characteristics of aluminosilicate hydrate on the mechanical properties of metakaolin-based geopolymer. In: Construction and Building Materials, v. 411 (January 2024). (2024):
- Microstructural phase evolution and strength development of low-lime calcium silicate cement (CSC) paste incorporating ordinary Portland cement under an accelerated carbonation curing environment. In: Construction and Building Materials, v. 411 (January 2024). (2024):
- Effect of nanomaterials (carbon nanotubes, nano-silica, graphene oxide) on bond behavior between concrete and reinforcing bars. In: Case Studies in Construction Materials, v. 18 (July 2023). (2023):
- Insight on the mechanical properties of hierarchical porous calcium-silicate-hydrate pastes according to the Ca/Si molar ratio using in-situ synchrotron X-ray scattering and nanoindentation test. In: Construction and Building Materials, v. 365 (February 2023). (2023):
- Mechanical properties of mortar and concrete incorporated with concentrated graphene oxide, functionalized carbon nanotube, nano silica hybrid aqueous solution. In: Case Studies in Construction Materials, v. 18 (July 2023). (2023):
- Understanding the role of graphene oxide nanoribbons–functionalized carbon nanotubes–graphene oxide (GNFG) complex in enhancing the fire resistance of cementitious composites. In: Construction and Building Materials, v. 348 (September 2022). (2022):
- Synergistic effect of carbon nanotube/TiO2 nanotube multi-scale reinforcement on the mechanical properties and hydration process of portland cement paste. In: Construction and Building Materials, v. 293 (July 2021). (2021):
- Instant mechanical recovery of heat-damaged nanosilica-incorporated cement composites under various rehydrations procedures. In: Materials and Structures, v. 55, n. 1 (18 December 2021). (2021):
- Analysis of atomistic structural deformation characteristics of calcium silicate hydrate in 53-year-old tricalcium silicate paste using atomic pair distribution function. In: Construction and Building Materials, v. 237 (March 2020). (2020):
- Influences of rehydration conditions on the mechanical and atomic structural recovery characteristics of Portland cement paste exposed to elevated temperatures. In: Construction and Building Materials, v. 235 (February 2020). (2020):