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Article detail · 2019 · article

A Self-Healing and Highly Stretchable Polyelectrolyte Hydrogel via Cooperative Hydrogen Bonding as a Superabsorbent Polymer

Journal Macromolecules
ISSN0024-9297
YÖKSİS OpenAlex Top 10%
Year2019
Citations101OpenAlex
Citations84Semantic Scholar · 3 influential
Percentile%95.5
FWCI3.841.00 = world average
Scopus (SJR)Q1
WoS (JCR)Q1

Data source split

  • YÖKSİSYÖKSİS article record
  • YÖKSİS venueMacromolecules
  • Catalog match (ISSN)Macromolecules
  • OpenAlexOpenAlex enrichment (abstract, citations, topics)
  • Semantic Scholarcitation count (not merged with OpenAlex)

Abstract

OpenAlex English

Poly(2-acrylamido-2-methyl-1-propanesulfonic acid) (PAMPS) hydrogels are attractive materials for various application areas due to their pH-independent large swelling capacities. However, their covalently cross-linked network structure leads to a brittle behavior even at low strains. We present here for the first time highly stretchable superabsorbent PAMPS hydrogels formed via H-bonds entirely that are stable in water. UV polymerization of AMPS in aqueous solutions at 23 ± 2 °C without a chemical cross-linker produces hydrogels with large swelling capacities exceeding 1000 times their original mass. Although the hydrogels are stable in water, they easily dissolve in chaotropic solvents, suggesting that they form via H-bonding interactions between PAMPS chains. We show that the high molecular weight of the primary chains of PAMPS hydrogels formed via UV polymerization contributes to the H-bonding cooperativity and hence is responsible for their stability in water. Incorporation of N, N -dimethylacrylamide (DMAA) segments into the physical PAMPS network further increases the molecular weight of the primary chains, leading to enhanced mechanical strength of the hydrogels. PAMPS/DMAA hydrogels in their as-prepared states exhibit a high modulus (up to 0.41 MPa), tensile fracture stress (up to 0.57 MPa), and high stretchability (∼1000%) together with an extraordinary swelling capacity (up to ∼1700 g·g –1 ) and complete self-healing efficiency.

Topics

Citations

OpenAlex cited_by_count. Not a WoS or Scopus citation count; those sources have no separate column here.

101citationsOpenAlex · cited_by_count (cache / database)

11 publications in the local catalog that cite this work (OpenAlex reference match; not the full global list).

  1. 2023 Mechanically Strong Superabsorbent Terpolymer Hydrogels Based on AMPS via Hydrogen-Bonding InteractionsCitations 37 · OpenAlex
  2. 2020 Highly stretchable and thermally healable polyampholyte hydrogels via hydrophobic modificationCitations 21 · OpenAlex
  3. 2022 Roadmap to Design Mechanically Robust Copolymer Hydrogels Naturally Cross-Linked by Hydrogen BondsCitations 13 · OpenAlex
  4. 2022 Roadmap to Design Mechanically Robust Copolymer Hydrogels Naturally Cross-Linked by Hydrogen BondsCitations 13 · OpenAlex
  5. 2021 Micelle Crosslinked Polyacrylic Acid Hydrogels with Resilience and Self-Recovery PropertiesCitations 4 · OpenAlex
  6. 2024 Strain rate sensitive polyampholyte hydrogels via well-dispersed XLG sheetsCitations 2 · OpenAlex
  7. 2026 Jellyfish-containing Superabsorbent HydrogelsCitations 1 · OpenAlex
  8. 2025 Unveiling the Compression Mechanical Properties of AMPS-APTAC-DMAAm Terpolymeric HydrogelsCitations 1 · OpenAlex
  9. 2026 Development of Dual-Cross-Linked AlgMA/HAMA Hybrid Hydrogels for Traumatic Wound HealingCitations 0 · OpenAlex
  10. 2026 Development of Dual-Cross-Linked AlgMA/HAMA Hybrid Hydrogels for Traumatic Wound HealingCitations 0 · OpenAlex

Authors

3
  1. ESRA SU İSTANBUL ÜNİVERSİTESİ 1
  2. Mine Yurtsever 2
  3. OĞUZ OKAY 3