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Waterborne Interfacial-Reinforcement Strategy for Sustainable Natural Rubber Latex Bioelastomers With Self-Healing, Crack Tolerance, and Multifunctional Durability

delete2026-08-11
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PRE
AI
D
Dongna Li
Z
Zhen Li
X
Xiaoge Ye
Z
Ziying Xue
X
Xuanhe Qin *
L
Luyang Wu
S
Shiyao Huang
X
Xiaojun Ma *
B
Bowen Cheng *
DOI:10.1002/adma.74584delete
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Abstract

Abstract

En 中文
Developing bio-based elastomers that combine mechanical robustness, crack tolerance, self-healing, and functional durability remains challenging. Here, we report a waterborne interfacial reinforcement and functionalization strategy to construct multifunctional natural rubber latex (NRL)-based bioelastomers. Ammonium persulfate (APS)-assisted treatment promotes interfacial coupling between NRL chains and cellulose nanofibers (CNFs), establishing nanofiber-mediated load-transfer and energy-dissipation pathways. ZnO nanoparticles introduce inorganic physical junctions that regulate interfacial stress transfer while providing UV shielding and antibacterial activity. The optimized NRL-g-CNF/ZnO composite exhibits a tensile strength of 9.68 MPa, toughness of 15.30 MJ·m−3, and efficient room-temperature self-healing, with tensile strength and toughness recovery of 96.9% and 92.8% after 48 h, respectively. The composite also shows pronounced crack tolerance, including a fracture energy of 32.5 kJ·m−2 and stable deformation of notched samples, together with improved short-term mechanical retention under the specified UV-aging conditions, antibacterial activity, a measurable soil-burial response, and preliminary cytocompatibility. This simple casting-based strategy provides a potentially scalable route to multifunctional bioelastomers with potential for selected packaging applications, protective coatings, antibacterial/UV-shielding films, and non-implantable flexible materials.
Keywords:
cellulose nanofiber reinforcement
crack tolerance
natural rubber latex
room-temperature self-healing
sustainable bioelastomers
ZnO interfacial regulation

Journal

Advanced Materials cover
Advanced Materials
IF:
26.8
Papers:
3.4W
Citations:
46.0W

Organization

T
tianjin university of science and technology
Scholars:
1.1K
Papers: 308
Citations: 0
S
shanghai jiao tong university school of medicine
Scholars:
1.1K
Papers: 276
Citations: 0
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