School of Chemistry and Pharmaceutical Engineering, Qilu University of Technology (Shandong Academy of Sciences), Jinan, Shandong Province, 250353, China.
Biology Institute, Qilu University of Technology (Shandong Academy of Sciences), Jinan, Shandong Province, 250014, China.
Sci Rep. 2020 May 7;10(1):7723. doi: 10.1038/s41598-020-64549-5.
A highly effective method for the research and development of a novel macroscopic hydrogel sensor and bilayer hydrogel is reported. Based on Rhodamine 6G, an Hg sensitive fluorescent functional monomer was synthesized, then the monomer was utilized to synthesize hydrogel sensors and bilayer hydrogels. Hydrogel sensor has prominent selectivity to Hg, the bilayer hydrogel has shape changing function additionally. By combining a thermoresponsive hydrogel layer, poly N-isopropylacrylamide (PNIPAM), with an Hg selective hydrogel layer via macroscopic supramolecular assembly, a bilayer hydrogel is obtained that can be tailored and reswells. The bilayer hydrogel sensor can show complex shape deformation caused by the PNIPAM layer and the Hg-responsive characteristic of hydrogel sensor layer can be observed under visible light or UV light. This work will provide novel insights for the design and synthesis of novel smart materials with synergistic functions.
本文报道了一种新型宏观水凝胶传感器和双层水凝胶的研发的高效方法。基于 Rhodamine 6G,合成了一种对 Hg 敏感的荧光功能单体,然后利用该单体合成了水凝胶传感器和双层水凝胶。水凝胶传感器对 Hg 具有显著的选择性,双层水凝胶还具有形状变化功能。通过宏观超分子组装将温敏水凝胶层聚 N-异丙基丙烯酰胺(PNIPAM)与 Hg 选择水凝胶层结合,得到了可定制和再溶胀的双层水凝胶。双层水凝胶传感器可以显示出由 PNIPAM 层引起的复杂形状变形,并且可以在可见光或紫外光下观察到水凝胶传感器层的 Hg 响应特性。这项工作将为设计和合成具有协同功能的新型智能材料提供新的思路。