Q.The sufrace tension and vapour pressure of water at 20°C is Nm and Pa, respectively. What is the radius of the smallest spherical water droplet which can form without evaporating at 20°C?
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Start your 14-day free trial to unlock the full solution →Surface tension squeezes a spherical droplet, creating an excess internal pressure of . A droplet can only exist without immediately evaporating if this excess pressure does not exceed the surrounding vapour pressure — setting these equal gives the smallest stable radius, m (about m).
Why smaller droplets are more prone to evaporating
A curved liquid surface, due to surface tension, squeezes the liquid inside it, raising the pressure inside relative to outside — this is the Laplace excess pressure. For a spherical droplet of radius :
The smaller the droplet, the larger this excess pressure. A very small droplet is squeezed so hard that its effective vapour pressure exceeds the ambient vapour pressure, and it evaporates rapidly. A droplet can persist (not evaporate away) only if this excess pressure doesn't exceed what the surroundings can sustain — i.e. the ambient vapour pressure .
Setting up the boundary condition …
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