The Schrondinger equation for hydrogen atom is -14-2-1a0322-r0a0e-r0a0- where a0 is Bohr-s radius- If the radial node is 2s be at r0-Then- r0 in terms of a0 is given as xa0-r0- value of x is

Ψ^2_2s= Probability of finding an electron within 2s sphere ψ^2_2s=0 (at node) As probability of finding an electron is zero at node 0=14√(2π)(1a_0)^32(2 r_0a_0 ...

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Standard XII

Chemistry

Shapes of Orbitals and Nodes

The Schrondin...

Question

The Schrondinger equation for hydrogen atom is
$ψ = \frac{1}{4 \sqrt{2 π}} (\frac{1}{a_{0}})^{\frac{3}{2}} (2 - \frac{r_{0}}{a_{0}}) e^{-} \frac{r_{0}}{a_{0}}$ , where $a_{0}$ is Bohr's radius. If the radial node is $2 s$ be at $r_{0}$ .
Then, $r_{0}$ in terms of $a_{0}$ is given as $x a_{0} = r_{0}$ , value of $x$ is

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Solution

$ψ_{2 s}^{2} =$ Probability of finding an electron within $2 s$ sphere
$ψ_{2 s}^{2} = 0$ (at node)
As probability of finding an electron is zero at node
$0 = \frac{1}{4 \sqrt{2 π}} (\frac{1}{a_{0}})^{\frac{3}{2}} (2 - \frac{r_{0}}{a_{0}}) e^{-} \frac{r_{0}}{a_{0}}$
On solving,
$(2 - \frac{r_{0}}{a_{0}}) = 0$
$∴$ ,
$2 = \frac{r_{0}}{a_{0}}$
$2 a_{0} = r_{0}$
Hence,
$x = 2$

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Similar questions

Q. The Schrondinger equation for hydrogen atom is

ψ = \frac{1}{4 \sqrt{2 π}} (\frac{1}{a_{0}})^{\frac{3}{2}} (2 - \frac{r_{0}}{a_{0}}) e^{-} \frac{r_{0}}{a_{0}}

, where

a_{0}

is Bohr's radius. If the radial node is

2 s

be at

r_{0}

.
Then,

r_{0}

in terms of

a_{0}

is given as

x a_{0} = r_{0}

, value of

x

Q. The wave function

(Ψ)

2 s

is given by:

Ψ_{2 s} = \frac{1}{2 \sqrt{2 π}} {(\frac{1}{a_{0}})}^{\frac{1}{2}} {2 - \frac{r}{a_{0}}} e^{(- r / a_{0})}

Where

a_{0}

is Bohr's radius. If the radial node in

2 s

is at

r_{0},

then find

r_{0}

in terms of

a_{0}

Q. The wave function

(Ψ)

2 s

is given by:

Ψ_{2 s} = \frac{1}{2 \sqrt{2 π}} {(\frac{1}{a_{0}})}^{\frac{1}{2}} {2 - \frac{r}{a_{0}}} e^{- r / 2 a_{0}}

r = r_{0}

radial node is formed. Thus for

2 s

r_{0}

in terms of

a_{0}

is:

Q. The wave function

(Ψ)

2 s

is given by:

Ψ_{2 s} = \frac{1}{2 \sqrt{2 π}} {(\frac{1}{a_{0}})}^{\frac{1}{2}} {2 - \frac{r}{a_{0}}} e^{- \frac{r}{2 a_{0}}}

r = r_{0}

, radial node is formed. Thus for

2 s

r_{0}

in terms of

a_{0}

is:

Q. The wave function

(Ψ)

2 s

is given by:

Ψ_{2 s} = \frac{1}{2 \sqrt{2 π}} {(\frac{1}{a_{0}})}^{\frac{1}{2}} {2 - \frac{r}{a_{0}}} e^{(- r / a_{0})}

Where

a_{0}

is Bohr's radius. If the radial node in

2 s

is at

r_{0},

then find

r_{0}

in terms of

a_{0}

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The Schrondinger equation for hydrogen atom is ψ=14√2π(1a0)32(2−r0a0)e−r0a0, where a0 is Bohr's radius. If the radial node is 2s be at r0. Then, r0 in terms of a0 is given as xa0=r0, value of x is

ψ22s= Probability of finding an electron within 2s sphere ψ22s=0 (at node) As probability of finding an electron is zero at node 0=14√2π(1a0)32(2−r0a0)e−r0a0 On solving, (2−r0a0)=0 ∴, 2=r0a0 2a0=r0 Hence, x=2