Shi Shiwei, Abbas Zeshan, Zhao Xiangyu, Liang Junsheng, Wang Dazhi
Key Laboratory for Micro/Nano Technology and System of Liaoning Province, Dalian 116024, China.
Polymers (Basel). 2023 Sep 8;15(18):3702. doi: 10.3390/polym15183702.
To increase the printing stability of low-viscosity solutions, an auxiliary method was proposed using a coaxial electrohydrodynamic jet. A high-viscosity solution was employed as the outer layer in the printing process, and it could be removed (dissolved away) after printing the structures. A combination of mechanical and electrical forces was proposed to enhance the consistency, durability, and alignment of the printed versatile structures. The instability of the jet trajectory (which arose from the repulsion between the jet and the base with a residual charge, in addition to the winding effect of the solution) was also reduced using the drag force along the direction of movement. Moreover, the jet velocity, the surface charge, and the influence of various working voltages on the jet speed were simulated. An array of IDT-BT nanostructures measuring about 100 nm was prepared on silicon dioxide (using an inner needle with a diameter of 130 µm) by equating the moving speed (350 mm/s) of the substrate to the speed of the jet. Moreover, the moving speed (350 mm/s) of the substrate was compared exclusively to the speed of the jet. The method proposed throughout this study can provide a reference for enhancing the stability of low-viscosity solutions on substrates for high-efficiency fabrication devices (NEMS/MEMS).
为提高低粘度溶液的打印稳定性,提出了一种使用同轴电流体动力学喷射的辅助方法。在打印过程中,使用高粘度溶液作为外层,并且在打印结构后可以将其去除(溶解掉)。提出了机械力和电力的组合,以增强打印的多功能结构的一致性、耐久性和对齐性。还利用沿运动方向的阻力降低了射流轨迹的不稳定性(这是由射流与带有残余电荷的基底之间的排斥以及溶液的缠绕效应引起的)。此外,模拟了射流速度、表面电荷以及各种工作电压对射流速度的影响。通过使基底的移动速度(350毫米/秒)与射流速度相等,在二氧化硅上(使用直径为130微米的内针)制备了一系列尺寸约为100纳米的IDT - BT纳米结构。此外,专门将基底的移动速度(350毫米/秒)与射流速度进行了比较。本研究中提出的方法可为提高低粘度溶液在用于高效制造器件(纳米电子机械系统/微机电系统)的基底上的稳定性提供参考。