Phy5645/Uncertainty Relations Problem 2: Difference between revisions

According to the Heisenberg Uncertanity Principle, ${\displaystyle \Delta x\,\Delta p\cong \hbar }$ and so ${\displaystyle \Delta p\cong {\frac {\hbar }{\Delta x}}}$. On the other hand, as we know that ${\displaystyle E={\frac {p^{2}}{2m}}.}$ Therefore,${\displaystyle \Delta E={\frac {(\Delta p)^{2}}{2m}}.}$

If we plug ${\displaystyle \Delta p}$ into the energy equation, we obtain ${\displaystyle \Delta E\cong {\frac {\hbar ^{2}}{2m(\Delta x)^{2}}}}$

Let the length of a side of the box ${\displaystyle l=\Delta x\rightarrow 0}$

Knowing that the size of a nucleon is about ${\displaystyle 10^{-12}\,{\text{cm}},}$ that their mass ${\displaystyle mc^{2}\cong 938\,{\text{MeV}}}$, and that ${\displaystyle \hbar c\cong 197\times 10^{-13}\,{\text{MeV}}\cdot {\text{cm}}}$, we can calculate kinetic energy.

${\displaystyle \Delta E\cong {\frac {\hbar ^{2}}{2m(\Delta x)^{2}}}={\frac {\hbar ^{2}c^{2}}{2mc^{2}(\Delta x)^{2}}}={\frac {(197\times 10^{-13}\,{\text{MeV}}\cdot {\text{cm}})^{2}}{(2)(938\,{\text{MeV}})(10^{-12}\,{\text{cm}})^{2}}}\approx 0.2\,{\text{MeV}}}$

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