What are the ionization potentials of hydrogen-like helium and lithium?

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What are the ionization potentials of hydrogen-like helium and lithium?

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Answer 1 · 2017-07-20T20:14:56

${He}^{+} (g) \to {He}^{2 +} (g) + e^{-}$ $"He"^(+)(g) -> "He"^(2+)(g) + e^(-)$

$DeltaH_(IP)("He"^(+)(g)) ~~ "54.42 eV"$

$"Li"^(2+)(g) -> "Li"^(3+)(g) + e^(-)$

$DeltaH_(IP)("Li"^(2+)(g)) ~~ "122.45 eV"$

Well, since these are hydrogen-like atoms with one electron each, they ought to have similar ionization potentials that differ only by the atomic number.

In atomic units, the energy of $"H"$ -like atoms is given by

$bb(E_n = -(Z^2 cdot "13.6057 eV")/(n^2))$ ,

where $-"13.6057 eV"$ IS the ground-state energy of $"H"$ atom, $Z$ is the atomic number, and $n$ is the principal quantum number.

In this case, only one electron is in $"He"^(+)$ or $"Li"^(2+)$ , so we really only need to look at $n = 1$ .

The ionization potential is then the energy put into the atom to remove that single electron.

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We can check each of these on NIST.

$color(blue)(DeltaH_(IP)("He"^(+)(g))) = +((2^2)("13.6057 eV"))/(1^2)$

$~~$ $color(blue)(ul"54.42 eV")$

for

$"He"^(+)(g) -> "He"^(2+)(g) + e^(-)$

[![ www.physics.nist.gov )
(row 2)

$color(blue)(DeltaH_(IP)("Li"^(2+)(g))) = +((3^2)("13.6057 eV"))/(1^2)$

$~~$ $color(blue)(ul"122.45 eV")$

for

$"Li"^(2+)(g) -> "Li"^(3+)(g) + e^(-)$

[![ www.physics.nist.gov )
(row 3)

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What are the ionization potentials of hydrogen-like helium and lithium?

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