Patel Nidhi N, Soni Saurabh S, Patel Niraj, Patel Kiran, Patel Vaibhav K, Sharma Deep, Panjabi Sanjay H
Department of Chemical Sciences, P. D. Patel Institute of Applied Sciences, CHARUSAT University, Changa, Gujarat 388421, India.
Department of Chemistry, Sardar Patel University, Vallabh Vidyanagar, Anand, Gujarat388120, India.
ACS Omega. 2022 Aug 15;7(33):28974-28984. doi: 10.1021/acsomega.2c02612. eCollection 2022 Aug 23.
We present a new approach toward the design of a halogen-free picoline-based surface-active ionic liquid (SAIL) (1-octyl-4-methyl pyridinium dodecyl sulfate) [CγPic]DS consisting of long dodecyl sulfate (DS) as an anion. The surface properties, micellization behavior, and antimicrobial activity in an aqueous solution were investigated using tensiometry, conductometry, and ultraviolet (UV) spectroscopy. Incorporating the DS group in SAIL leads to lower critical micellar concentration (CMC) and enhanced adsorption at the air/water interface of the functionalized ionic liquid compared to the C-alkyl chain-substituted pyridine ionic liquids. The antimicrobial activity was evaluated against a representative Gram-negative and Gram-positive bacteria panel. Antibacterial activities increased with the alkyl chain length, C being the homologous most effective antimicrobial agent. The micelle size of [CγPic]DS was determined by the dynamic light-scattering (DLS) study. Cyclic voltammetry (CV) measurements have been employed to evaluate the interaction between the SAIL micelle and working electrode, diffusion coefficient, and micelle size of the SAIL solution. The diffusion coefficient explored the correlation of surface properties and the antimicrobial activity of [CγPic]DS. This halogen-free SAIL is the future of wetting agents and emulsion studies in agriculture due to its small micelle size and surface characteristics.
我们提出了一种设计无卤化基于甲基吡啶的表面活性离子液体(SAIL)(1-辛基-4-甲基吡啶十二烷基硫酸盐)[CγPic]DS的新方法,该离子液体由长链十二烷基硫酸盐(DS)作为阴离子组成。使用张力测定法、电导测定法和紫外(UV)光谱法研究了其在水溶液中的表面性质、胶束化行为和抗菌活性。与C-烷基链取代的吡啶离子液体相比,在SAIL中引入DS基团导致更低的临界胶束浓度(CMC),并增强了功能化离子液体在空气/水界面的吸附。针对一组代表性的革兰氏阴性和革兰氏阳性细菌评估了抗菌活性。抗菌活性随烷基链长度增加而增强,其中C是最有效的同系抗菌剂。通过动态光散射(DLS)研究确定了[CγPic]DS的胶束大小。采用循环伏安法(CV)测量来评估SAIL胶束与工作电极之间的相互作用、扩散系数以及SAIL溶液的胶束大小。扩散系数揭示了表面性质与[CγPic]DS抗菌活性之间的相关性。由于其小胶束尺寸和表面特性,这种无卤SAIL是农业中润湿剂和乳液研究的未来发展方向。