Irvine Gavin, Myronidis Konstantinos, Pinto Fulvio, Kopeć Maciej
Department of Chemistry, University of Bath, Claverton Down, Bath, BA2 7AY, UK.
Department of Mechanical Engineering, University of Bath, Claverton Down, Bath, BA2 7AY, UK.
Angew Chem Int Ed Engl. 2025 Apr 17;64(17):e202421970. doi: 10.1002/anie.202421970. Epub 2025 Feb 21.
We report the synthesis of ultra-high molecular weight (UHMW) poly(N,N-dimethylacrylamide) (PDMAm) hydrogels with extremely low crosslinking densities by trithiocarbonate photoiniferter-mediated reversible deactivation radical polymerization (RDRP). Fixing the photoiniferter to crosslinker ratio and gradually increasing the targeted degree of polymerization (DP) allowed for simultaneous control over the crosslinking density and the average molecular weight (M) of the primary chains, both below and above the critical molecular weight of entanglement (M). Interestingly, a plateau in storage moduli (G') was observed for UHMW PDMAm hydrogels with a sufficiently high DP (>5,000), indicating a transition to the entanglement-dominated regime, with no contribution from crosslinks to the overall modulus, thus indicating the formation of highly entangled hydrogels. These hydrogels exhibit enhanced properties such as high toughness and resistance to swelling despite their vanishingly small crosslinking densities. Furthermore, even when equipped with cleavable crosslinkers, the UHMW PDMAm hydrogels resist degradation due to dense entanglements which act as transient crosslinks preventing the gels from swelling, while sparse covalent crosslinks help to maintain their structural integrity and avoid chain disentanglement. This approach allows simple synthesis of elastic and tough hydrogels with a well-defined structure and tuneable contributions from both crosslinks and entanglements.
我们报道了通过三硫代碳酸酯光引发转移终止剂介导的可逆失活自由基聚合(RDRP)合成具有极低交联密度的超高分子量(UHMW)聚(N,N - 二甲基丙烯酰胺)(PDMAm)水凝胶。固定光引发转移终止剂与交联剂的比例并逐渐增加目标聚合度(DP),可以同时控制交联密度和主链的平均分子量(M),二者均低于和高于缠结临界分子量(M)。有趣的是,对于DP足够高(>5,000)的超高分子量PDMAm水凝胶,观察到储能模量(G')出现平台期,这表明向缠结主导区域的转变,交联对整体模量没有贡献,从而表明形成了高度缠结的水凝胶。尽管这些水凝胶的交联密度极小,但它们表现出诸如高韧性和抗溶胀等增强性能。此外,即使配备了可裂解交联剂,超高分子量PDMAm水凝胶也能抵抗降解,因为密集的缠结起到了瞬时交联的作用,防止凝胶溶胀,而稀疏的共价交联有助于维持其结构完整性并避免链缠结解开。这种方法允许简单地合成具有明确结构且交联和缠结对性能贡献可调的弹性和坚韧水凝胶。