Hu Hu, Xie Shubao, Meng Xin, Jing Ping, Zhang Meiqin, Shen Li, Zhu Zhiwei, Li Meixian, Zhuang Qiankun, Shao Yuanhua
Beijing National Laboratory for Molecular Sciences, College of Chemistry and Molecular Engineering, Peking University, Beijing 100871, China.
Anal Chem. 2006 Oct 1;78(19):7034-9. doi: 10.1021/ac060773r.
Submicro- and nanometer-sized glass double-barrel pipets have been fabricated by a laser puller with new pulling programs and have been used to support submicro- and nanometer dual liquid/liquid interfaces. The smallest pipet that can be made by this approach is approximately 20 nm in radius. These pipets have been characterized by cyclic voltammetry and scanning electron microscopy. Generation/collection mode of charge-transfer reaction is demonstrated at the submicro- and nanometer dual-liquid/liquid interfaces. The dependence of collection efficiency upon geometric parameters of the pipets has been discussed. Among the micro-, submicro-, and nanopipets, we have found that the submicro-double-barrel pipets have higher collection efficiencies than that of others and are also very close to the values predicted by the theory. Therefore, in terms of G/C mode applications, the optimal size of double-barrel pipets should be in submicrometer scale. As one of the examples of special application, we have also demonstrated that in the case of no supporting electrolyte, only the nanometer double-barrel pipets can provide reasonably good G/C results.
通过激光拉制仪采用新的拉制程序制备了亚微米和纳米尺寸的玻璃双管移液器,并用于支撑亚微米和纳米级双液/液界面。通过这种方法能够制作的最小移液器半径约为20纳米。这些移液器已通过循环伏安法和扫描电子显微镜进行了表征。在亚微米和纳米级双液/液界面上展示了电荷转移反应的产生/收集模式。讨论了收集效率对移液器几何参数的依赖性。在微米、亚微米和纳米移液器中,我们发现亚微米双管移液器的收集效率高于其他移液器,并且也非常接近理论预测值。因此,就产生/收集模式应用而言,双管移液器的最佳尺寸应在亚微米尺度。作为特殊应用的一个例子,我们还证明了在没有支持电解质的情况下,只有纳米双管移液器能够提供相当不错的产生/收集结果。