Fang Shaojun, Zhou Qiangqiang, Zhou Mengqi, Li Changyi, Xu Huaxing, Tang Hongyu, Zhang Wanlu, Guo Ruiqian, Wei Xiaoling, Zhang Rongjun
Department of Optical Science and Engineering, Key Laboratory of Micro and Nano Photonic Structures (MOE), Shanghai Engineering Research Center of Ultra-Precision Optical Manufacturing, School of Information Science and Technology, Fudan University, Shanghai, 200433, China.
Department of Endodontics, Shanghai Stomatological Hospital and School of Stomatology, Fudan University, Shanghai, 200001, China.
Light Sci Appl. 2025 May 15;14(1):186. doi: 10.1038/s41377-025-01837-7.
By introducing piezoelectric materials into hydrogel oral dressings, a microelectric field could be generated under stress stimulation, thus facilitating oral wound healing. However, to adapt to the moist and dynamic environment of the oral cavity, traditional "step-by-step" synthesis often requires the combination of materials with different functionalities. Given the property differences between these materials, this strategy typically involves complex experimental procedures and unnecessary energy consumption. In this study, with the concept of "integrated construction", we innovatively proposed a dual-step photo-induced method and successfully fabricated composite hydrogels with excellent performance. We introduced abundant oxygen vacancies into ZnO, leveraging the enhanced interface dynamics to achieve sustained photo-induced effect. With a double-network polymer framework as a template, this method could achieve the photo-induced spontaneous in-situ synthesis of polydopamine (PDA) within hydrogel without any extra special experimental conditions and complex operation procedures. We conducted a thorough analysis of the mechanism underlying this photo-induced method and applied the as-prepared hydrogel for the treatment of oral wounds, which significantly accelerated the healing process due to the outstanding comprehensive performance of hydrogel. These results suggest novel ideas and theoretical support for the facile construction of high-performance hydrogels based on photodynamic principles, demonstrating immense potential for future applications in wound dressings.
通过将压电材料引入水凝胶口腔敷料中,在应力刺激下可产生微电场,从而促进口腔伤口愈合。然而,为了适应口腔的潮湿和动态环境,传统的“分步”合成通常需要将具有不同功能的材料组合起来。鉴于这些材料之间的性质差异,这种策略通常涉及复杂的实验程序和不必要的能量消耗。在本研究中,我们以“集成构建”的概念,创新性地提出了一种两步光诱导方法,并成功制备了具有优异性能的复合水凝胶。我们在氧化锌中引入了大量氧空位,利用增强的界面动力学实现持续的光诱导效应。以双网络聚合物框架为模板,该方法无需任何额外的特殊实验条件和复杂的操作程序,即可在水凝胶内实现聚多巴胺(PDA)的光诱导自原位合成。我们对这种光诱导方法的机制进行了深入分析,并将所制备的水凝胶应用于口腔伤口治疗,由于水凝胶具有出色的综合性能,显著加速了愈合过程。这些结果为基于光动力原理简便构建高性能水凝胶提供了新的思路和理论支持,展示了其在伤口敷料未来应用中的巨大潜力。