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Yes, NCl3 does exhibit dispersion forces. Even though it is a polar molecule with a permanent dipole moment due to the difference in electronegativity between nitrogen and chlorine, it also experiences temporary fluctuations in electron distribution that can induce temporary dipoles in neighboring molecules, leading to dispersion forces.

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1y ago

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Does NCl3 has dipersion forces?

Yes, NCl3 exhibits dispersion forces due to temporary fluctuations in electron distribution that occur around the nitrogen and chlorine atoms. These forces are important in holding the molecules together in the solid and liquid states.


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Nitrogen trichloride (NCl3) exhibits dipole-dipole intermolecular forces due to its polar molecular structure. The presence of a nitrogen atom bonded to three chlorine atoms creates a molecular dipole, as chlorine is more electronegative. Additionally, London dispersion forces are also present, but they are generally weaker compared to the dipole-dipole interactions. Overall, these intermolecular forces contribute to the physical properties of NCl3, such as its boiling and melting points.


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