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Spatial frequency heterodyne imaging of aqueous phase transitions inside multi-walled carbon nanotubes

机译:多壁碳纳米管内部水相转变的空间外差外差成像

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The evaporation and condensation of water on multi-walled carbon nanotube (MWCNT) surfaces was studied as a function of temperature and time using X-ray spatial frequency heterodyne imaging (SFHI). SFHI is an imaging modality that produces an absorption and scatter image in a single exposure, and has increased sensitivity to variations in electron density relative to more common place X-ray imaging techniques. Differing features exhibited in the temporal scatter intensity profiles recorded during evaporation and condensation revealed the existence of an absorption-desorption hysteresis. Effects on the aforementioned phenomena due to chemical functionalization of the carbon nanotube surfaces were also monitored. The increased interaction potential between the functionalized MWCNT walls and water molecules altered the evaporation event time scale and increased the temperature at which condensation could take place. Theoretical calculations were used to correlate the shape of the observed scatter profiles during condensation to changes in the MWCNT cross section geometry and configuration of the contained water volume. Changes in evaporation time scales with temperature coincided with the boiling point for confined water predicted by the Kelvin equation, indicating that a thermodynamic description of mesoscopic confined water is permissible in some instances.
机译:使用X射线空间频率外差成像(SFHI)研究了多壁碳纳米管(MWCNT)表面上水的蒸发和冷凝与温度和时间的关系。 SFHI是一种成像方式,可在单次曝光中产生吸收和散射图像,并且相对于更常见的X射线成像技术,对电子密度的变化具有更高的灵敏度。在蒸发和冷凝过程中记录的时间散射强度曲线中显示的不同特征表明存在吸收-解吸滞后。还监测了由于碳纳米管表面的化学官能化对上述现象的影响。功能化的MWCNT壁与水分子之间增加的相互作用势改变了蒸发事件的时间尺度,并增加了发生冷凝的温度。理论计算用于将冷凝过程中观察到的散射曲线的形状与MWCNT横截面几何形状的变化和所含水量的配置相关联。蒸发时间尺度随温度的变化与开尔文方程预测的承压水的沸点相吻合,表明在某些情况下允许对介观承压水进行热力学描述。

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