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A comprehensive investigation of the rheology of cement pastes containing multi-walled carbon nanotubes

  • Jinyi Cheng
  • , Yong Mao
  • , Bin Zhang*
  • , Haiping Wu
  • , Cristina Ruiz-Agudo
  • , Dengwu Jiao
  • , Zhenbang Guo
  • , Zhikang Deng
  • , Qi Li
  • , Yuxin Wang
  • , Zhengyao Qu*
  • , Fazhou Wang*
  • *Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

Abstract

Multi-walled carbon nanotubes (MWCNTs) have gained increasing attention for their potential applications in cement-based materials due to their excellent mechanical, electrical, and thermal properties. While numerous studies have explored their effects on the mechanical properties of cementitious systems, a comprehensive understanding of their impact on rheological behavior remains limited. This study investigates the influence of MWCNTs content (0–0.5 %) on the static and dynamic yield stress, viscosity, thixotropy, and viscoelasticity of cement paste, as well as the impact of MWCNTs on cement hydration. Experimental results demonstrate that MWCNTs induce remarkable rheological modifications: (1) Static yield stress escalates from 19.46 Pa to 32.59 Pa (67.5 % increase) and dynamic yield stress rises from 7.37 Pa to 18.77 Pa (154.7 % enhancement) at 0.5 % MWCNTs, attributable to synergistic nano-filling and network-forming effects; (2) A distinctive rheological transition from thixotropic to rheopectic behavior occurs, with viscosity recovery rate reaching 87.17 % at 0.5 wt%, indicating superior structural reconstruction capacity through time-dependent structural reorganization; (3) Viscoelastic analysis reveals that MWCNTs also improve the viscoelastic stability of cement pastes, especially under high stress. Notably, MWCNTs incorporation reduces chloride diffusion coefficient by 63 % while maintaining negligible influence on hydration kinetics.
© 2025 Published by Elsevier Ltd.
Original languageEnglish
Article number142438
JournalConstruction and Building Materials
Volume490
Online published27 Jun 2025
DOIs
Publication statusPublished - 5 Sept 2025

Funding

The authors appreciate the financial support from the National Natural Science Foundation of China (No. 52130208), and the Alexander von Humboldt Foundation (AvH) for this study. The authors also acknowledge the financial support from the State Key Laboratory of Silicate Materials for Architectures (Wuhan University of Technology) (No. SYSJJ2024–10).

Research Keywords

  • Cement paste
  • Multi-walled carbon nanotubes
  • Rheology
  • Thixotropy
  • Viscoelasticity
  • Hydration

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