Answer:
1) 1.808 *10^8 vacancies per cm^3
2) 101,64ºC
Explanation:
You can use the following equation relating the number of vacancies with the energy required to produce them and the temperature:

Where N is the number atoms per unit of volume, you can calculate this number with the density of copper:

And you can substitute all values in the equation:

Now you solve for temperature and and use n as 1000 times the value of before:

They are all made out of some sort of rubber and sometime unbreakable or really stretchy
The total number of atoms remains unchanged, <em>always.</em> But the chemical properties change :)
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The answer is 62.00 g/mol.
Solution:
Knowing that the freezing point of water is 0°C, temperature change Δt is
Δt = 0C - (-1.23°C) = 1.23°C
Since the van 't Hoff factor i is essentially 1 for non-electrolytes dissolved in water, we calculate for the number of moles x of the compound dissolved from the equation
Δt = i Kf m
1.23°C = (1) (1.86°C kg mol-1) (x / 0.105 kg)
x = 0.069435 mol
Therefore, the molar mass of the solute is
molar mass = 4.305g / 0.069435mol = 62.00 g/mol