Question

Question #385d0

Answer 1

Vapor pressure and boiling point for a substance depend on external pressure, which more often than not is the atmospheric pressure.

Argon's normal boiling point of `"-186"^@"C"` implies an atmospheric pressure of 1 atm. Any liquid will begin to boil when its vapor pressure equals the atmospheric pressure, which, in this case, implies that Argon's vapor pressure at its boiling point will be approximately 1 atm.

Here's the vapor pressure graph for `"Ar"`:

The vapor pressure of `"Ar"` is listed as `"1.013 bar"` at `"-185.85"^@"C"`, which is equal to

`"1.013 bar" * ("0.986923267 atm")/("1 bar") = "0.9998 atm"`

This value is, for all intended purposes, equal to 1 atm.