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      question 11.1d can you explain once more why this has the highest electronegativity? I understand that nonmetals have a higher electronegativity but why is fluorine the highest in general?

    1. PA=Vapor Pressure above volatile liquid "A" Δ⁢Hv⁢a⁢p,A = Enthalpy of Vaporization for "A", always positive because it is endothermic R = 8.314J/mol-K (Ideal gas constant) T = Absolute Temperature in Kelvin (always positive k=a positive constant in units of Pressure, we will treat it as an "unknown constant", but it is related to the highest possible pressure, and will not be used in our calculations. C=lnk another constant we will not use Lets take a closer look at the term

      will we be solving for this equation on exam 1?

    1. they are strongly attracted to the "deshielded proton" of another hydrogen and create a hydrogen bond. It should also be noted that the small size of the hydrogen allows it to move in real close, resulting is a strong bonding interaction.

      so hydrogen bonds are attracted to lone pairs?

    2. they are strongly attracted to the "deshielded proton" of another hydrogen and create a hydrogen bond. It should also be noted that the small size of the hydrogen allows it to move in real close, resulting is a strong bonding interaction.

      hydrogen bonds are attracted to lone pairs?