Sattar Mohammad Abdul, Gangadharan Shyju, Patnaik Archita
Colloid and Interface Chemistry Laboratory, Department of Chemistry, Indian Institute of Technology Madras, Chennai 600036, India.
R & D Centre, MRF Limited, MRF Road, Tiruvottiyur, Chennai 600019, India.
ACS Omega. 2019 Jun 24;4(6):10939-10949. doi: 10.1021/acsomega.9b01243. eCollection 2019 Jun 30.
The preparation of natural rubber (NR)-silica (SiO) elastomeric composites with excellent mechanical properties along with better self-healing ability remains a key challenge. Inspired by the energy dissipation and repairability of sacrificial bonds in biomaterials, a strategy for combining covalent and noncovalent sacrificial networks is engineered to construct a dual hybrid network. Here, the approach used to fabricate the composites was self-assembly of NR, bearing proteins and phospholipids on its outer bioshell, with SiO via metal-ion-mediated heteroaggregation effected by reversible electrostatic and H-bonds. Further, covalent cross-links were incorporated by a silane coupling agent, bis [3-(triethoxysilyl) propyl] tetrasulfide. The intrinsic self-healing ability of the composite at the molecular level was studied by broadband dielectric spectroscopy that unraveled the mechanism of the healing process. The synergistic effect between the molecular interdiffusion of the cross-linked NR chains and the electrostatic and H-bonding interactions imparted an exceptional self-healing characteristic to the liquid-liquid-mixing-prepared NR-SiO composites with improved mechanical performance. Specifically, the segmental relaxation dynamics of the healed composite was largely restricted due to increased number of ion-dipole interactions and S-S cross-links at the junction of the cut surface. We envisage that this extraordinary healing property, unreported yet, would be of great importance toward the design of novel NR-SiO elastomeric hybrids with superior mechanical properties.
制备具有优异机械性能和更好自愈能力的天然橡胶(NR)-二氧化硅(SiO)弹性体复合材料仍然是一项关键挑战。受生物材料中牺牲键的能量耗散和可修复性启发,设计了一种将共价和非共价牺牲网络相结合的策略来构建双杂化网络。在此,制备复合材料的方法是通过可逆静电和氢键介导的金属离子介导的异质聚集,使外层生物壳上带有蛋白质和磷脂的NR与SiO进行自组装。此外,通过硅烷偶联剂双[3-(三乙氧基硅基)丙基]四硫化物引入共价交联。通过宽带介电谱研究了复合材料在分子水平上的固有自愈能力,揭示了愈合过程的机制。交联的NR链的分子相互扩散与静电和氢键相互作用之间的协同效应赋予了液-液混合制备的NR-SiO复合材料优异的自愈特性,并改善了机械性能。具体而言,由于切割表面交界处离子-偶极相互作用和S-S交联数量的增加,愈合复合材料的链段松弛动力学受到很大限制。我们设想,这种尚未报道的非凡愈合特性对于设计具有优异机械性能的新型NR-SiO弹性体杂化材料具有重要意义。