Sheng Wenbo, Li Wei, Tan Deming, Zhang Panpan, Zhang En, Sheremet Evgeniya, Schmidt Bernhard V K J, Feng Xinliang, Rodriguez Raul D, Jordan Rainer, Amin Ihsan
Chair of Macromolecular Chemistry, Faculty of Chemistry and Food Chemistry, School of Science , Technische Universität Dresden , Mommsenstr. 4 , 01069 Dresden , Germany.
Leibniz Institute of Polymer Research Dresden e.V. , Hohe Str. 6 , 01069 Dresden , Germany.
ACS Appl Mater Interfaces. 2020 Feb 26;12(8):9797-9805. doi: 10.1021/acsami.9b21984. Epub 2020 Feb 11.
Graphitic carbon nitride (gCN) has a broad range of promising applications, from energy harvesting and storage to sensing. However, most of the applications are still restricted due to gCN poor dispersibility and limited functional groups. Herein, a direct photografting of gCN using various polymer brushes with tailorable functionalities via UV photopolymerization at ambient conditions is demonstrated. The systematic study of polymer brush-functionalized gCN reveals that the polymerization did not alter the inherent structure of gCN. Compared to the pristine gCN, the gCN-polymer composites show good dispersibility in various solvents such as water, ethanol, and tetrahydrofuran (THF). Patterned polymer brushes on gCN can be realized by employing photomask and microcontact printing technology. The polymer brushes with incorporated silver nanoparticles (AgNPs) on gCN can act as a multifunctional recyclable active sensing layer for surface-enhanced Raman spectroscopy (SERS) detection and photocatalysis. This multifunctionality is shown in consecutive cycles of SERS and photocatalytic degradation processes that can be applied to in situ monitor pollutants, such as dyes or pharmaceutical waste, with high chemical sensitivity as well as to water remediation. This dual functionality provides a significant advantage to our AgNPs/polymer-gCN with regard to state-of-the-art systems reported so far that only allow SERS pollutant detection but not their decomposition. These results may provide a new methodology for the covalent functionalization of gCN and may enable new applications in the field of catalysis, biosensors, and, most interestingly, environmental remediation.
石墨相氮化碳(gCN)具有广泛的应用前景,从能量收集与存储到传感领域。然而,由于gCN分散性差且官能团有限,其大多数应用仍受到限制。在此,展示了在环境条件下通过紫外光聚合,利用具有可定制功能的各种聚合物刷对gCN进行直接光接枝。对聚合物刷功能化gCN的系统研究表明,聚合过程并未改变gCN的固有结构。与原始gCN相比,gCN-聚合物复合材料在水、乙醇和四氢呋喃(THF)等各种溶剂中表现出良好的分散性。通过采用光掩膜和微接触印刷技术,可以在gCN上实现图案化的聚合物刷。在gCN上结合了银纳米颗粒(AgNP)的聚合物刷可作为多功能可回收活性传感层,用于表面增强拉曼光谱(SERS)检测和光催化。这种多功能性体现在SERS和光催化降解过程的连续循环中,可用于原位监测染料或制药废料等污染物,具有高化学灵敏度,也可用于水修复。相对于目前报道的仅允许SERS污染物检测而不能分解污染物的先进系统,这种双重功能为我们的AgNP/聚合物-gCN提供了显著优势。这些结果可能为gCN的共价功能化提供一种新方法,并可能在催化、生物传感器领域,以及最有趣的是在环境修复领域实现新的应用。