Yan Kun, Xu Feiyang, Yang Chenguang, Wei Wei, Chen Yuanli, Li Xiufang, Lu Zhentan, Wang Dong
Hubei Key Laboratory of Advanced Textile Materials & Application, Hubei International Scientific and Technological Cooperation Base of Intelligent Textile Materials &Application, Key Laboratory of Textile Fiber & Product, Ministry of Education, Wuhan Textile University, Wuhan 430200, China.
Hubei Key Laboratory of Advanced Textile Materials & Application, Hubei International Scientific and Technological Cooperation Base of Intelligent Textile Materials &Application, Key Laboratory of Textile Fiber & Product, Ministry of Education, Wuhan Textile University, Wuhan 430200, China.
Mater Sci Eng C Mater Biol Appl. 2021 Aug;127:112211. doi: 10.1016/j.msec.2021.112211. Epub 2021 May 27.
Herein, we reported an interpenetrating polysaccharide-based hydrogel in which carboxymethyl chitosan (CMC) chains were physically dispersed throughout the thermoplastic elastomer gel network has been developed as a versatile platform for precisely controlled synthesis of nanometals. Results indicated the interpenetrated CMC chains could serve as multifunctional fillers for metal ions adsorption and stabilization while the thermally reconfigurable agarose (Agar) gel medium provides three-dimensional semi-solid framework for entrapping and recollecting of the fabricated nanometals. Specifically, the CMC chains were found to strongly coordinate with silver ions as a dynamically responsive metal-biopolymer complex within the bulk gel network as confirmed by the enhanced mechanical properties and regulated shape memory performances. Moreover, by varying CMC concentrations and coupling with a layer-stacking approach, multiple biochemical gradients could be facilely generated for in-situ synthesis of silver nanoparticles, achieving a narrow size of ~7 nm, confined sphere-shape and high concentrations. The monodispersed nanometals are confirmed to be highly active (e.g., considerable catalytic performance), and which could be easily recycled from the bulk gel system via a heating treatment. Thus, this work would provide a generic methodology for the multifunctional metallogel assembly and great possibility for controllable and largescale synthesis of noble nanometals toward biomedical applications.
在此,我们报道了一种基于互穿多糖的水凝胶,其中羧甲基壳聚糖(CMC)链物理分散在热塑性弹性体凝胶网络中,已被开发为一种用于精确控制合成纳米金属的通用平台。结果表明,互穿的CMC链可作为多功能填料用于金属离子吸附和稳定,而热可重构的琼脂糖(Agar)凝胶介质为捕获和回收制备的纳米金属提供三维半固体框架。具体而言,通过增强的机械性能和调节的形状记忆性能证实,CMC链在本体凝胶网络中作为动态响应的金属 - 生物聚合物复合物与银离子强烈配位。此外,通过改变CMC浓度并结合层堆叠方法,可以轻松产生多个生化梯度用于原位合成银纳米颗粒,实现约7nm的窄尺寸、受限的球形和高浓度。单分散的纳米金属被证实具有高活性(例如,相当大的催化性能),并且可以通过热处理从本体凝胶系统中轻松回收。因此,这项工作将为多功能金属凝胶组装提供一种通用方法,并为可控和大规模合成用于生物医学应用的贵金属纳米金属提供极大可能性。