Schob Arne, Cichos Frank
Photonics and Optical Materials, Institute of Physics, Chemnitz University of Technology, 09107 Chemnitz, Germany.
J Phys Chem B. 2006 Mar 9;110(9):4354-8. doi: 10.1021/jp055201+.
To unravel molecular motion within confined liquids, we have combined a surface forces apparatus (SFA) with a highly sensitive fluorescence microscope. Details of our setup including important modifactions to enable the tracking of single dye molecules within nanometer thin confined liquid films are presented. The mechanical and optical performance of our setup is discussed in detail. For a load of 20 mN we observed a circular-shaped contact region (d approximately 300 microm), which results in a confining pressure of about 280 kPa. First experiments on liquid films of tetrakis(2-ethylhexoxy)silane (TEHOS) doped with rhodamine B demonstrated the ability to track single dye molecules within the confining gap of a SFA. The mean diffusion constant was independent of the liquid film thickness of approximately 3x10(-8) cm2/s and thus 10 times smaller than the diffusion constant of rhodamine B in bulk TEHOS. This points to the existence of a thin interface layer with slower molecular dynamics and an attractive potential parallel to the solid surface trapping molecules in this interface region.
为了揭示受限液体中的分子运动,我们将表面力装置(SFA)与高灵敏度荧光显微镜相结合。本文介绍了我们实验装置的细节,包括为了能够在纳米级薄的受限液膜中追踪单个染料分子而进行的重要改进。详细讨论了我们实验装置的机械和光学性能。对于20 mN的负载,我们观察到一个圆形的接触区域(直径约300微米),这导致了约280 kPa的限制压力。首次对掺杂罗丹明B的四(2-乙基己氧基)硅烷(TEHOS)液膜进行的实验表明,能够在SFA的限制间隙内追踪单个染料分子。平均扩散常数与约3×10⁻⁸ cm²/s的液膜厚度无关,因此比罗丹明B在本体TEHOS中的扩散常数小10倍。这表明存在一个分子动力学较慢的薄界面层,以及一个平行于固体表面的吸引势,该势将分子捕获在这个界面区域。