QUESTION IMAGE
Question
what element forms an ion with an electronic configuration of $1s^{2}2s^{2}2p^{6}3s^{2}3p^{6}4s^{2}3d^{10}4p^{6}$ (or $kr$) and a $-2$ charge? give the symbol for the element.
element symbol:
Step1: Determine the number of electrons in the ion
The electron configuration \(1s^{2}2s^{2}2p^{6}3s^{2}3p^{6}4s^{2}3d^{10}4p^{6}\) (or \([Kr]\)) has 36 electrons. Since the ion has a \(- 2\) charge, it has gained 2 electrons.
Step2: Calculate the number of electrons in the neutral atom
Let \(x\) be the number of electrons in the neutral atom. Then \(x+2 = 36\), so \(x=36 - 2=34\).
Step3: Identify the element
The element with 34 electrons (atomic number \(Z = 34\)) is selenium (\(Se\)).
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\(Se\)