Solution to Set 4: Difference between revisions

Problem 1

Cu, density ${\displaystyle \rho =8.885{g \over cm^{3}}}$, atomic mass ${\displaystyle m_{a}=63.57amu}$, fcc structure

a. In ${\displaystyle 1m^{3}}$, the number of moles is ${\displaystyle {8.885g \over 1cm^{3}}{1cm^{3} \over 5\times 10^{6}m^{3}}{1mol \over 63.55g}=1.40\times 10^{5}{mol \over m^{3}}}$

b. Atoms in ${\displaystyle 1m^{3}}$ ${\displaystyle {1.40\times 10^{5}mol \over 1m^{3}}{6.022\times 10^{23} \over 1mol}=8.43\times 10^{2}8}$