Sandra Van Vlierberghe
- pH-sensitive superabsorbent polymers: a potential candidate material for self-healing concrete. In: Journal of Materials Science, v. 50, n. 2 (October 2014). (2014):
- Enhanced durability performance of cracked and uncracked concrete by means of smart in-house developed superabsorbent polymers with alkali-stable and -unstable crosslinkers. In: Construction and Building Materials, v. 297 (August 2021). (2021):
- Innovative SuperAbsorbent Polymers (iSAPs) to construct crack-free reinforced concrete walls: An in-field large-scale testing campaign. In: Journal of Building Engineering, v. 43 (November 2021). (2021):
- (2021): Application of super absorbent polymers (SAP) in concrete construction—update of RILEM state-of-the-art report. In: Materials and Structures, v. 54, n. 2 (23 February 2021).
- Combined use of superabsorbent polymers and nanosilica for reduction of restrained shrinkage and strength compensation in cementitious mortars. In: Construction and Building Materials, v. 251 (August 2020). (2020):
- Alginate biopolymers: Counteracting the impact of superabsorbent polymers on mortar strength. In: Construction and Building Materials, v. 110 (May 2016). (2016):
- Development of amine-based pH-responsive superabsorbent polymers for mortar applications. In: Construction and Building Materials, v. 132 (February 2017). (2017):
- Mechanical and self-healing properties of cementitious materials with pH-responsive semi-synthetic superabsorbent polymers. In: Materials and Structures, v. 50, n. 6 (December 2017). (2017):
- Acrylate-endcapped polymer precursors: effect of chemical composition on the healing efficiency of active concrete cracks. In: Smart Materials and Structures, v. 26, n. 5 (May 2017). (2017):