The lifetime of an excited state of an atom is 3- 103 s- What will be the minimum uncertainity in the Energy-

We know Energy time uncertainity principle ΔE. Δt ≥ h4π Assuming minimum error in lifetime measurement = nbsp;3× 10^3 ∴ nbsp;ΔE nbsp;≥ nbsp;h4 = 6.626× ...

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Standard XII

Chemistry

Heisenberg's Uncertainty Principle

The lifetime ...

Question

The lifetime of an excited state of an atom is $3 \times 10^{3}$ s. What will be the minimum uncertainity in the Energy?

1.76 \times 10^{- 35}

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1.76 \times 10^{- 34}

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1.76 \times 10^{- 33}

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1.76 \times 10^{- 38}

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Solution

The correct option is D $1.76 \times 10^{- 38}$ J
We know Energy-time uncertainity principle
ΔE. Δt ≥ $\frac{h}{4 π}$
Assuming minimum error in lifetime measurement = $3 \times 10^{3}$
$∴ Δ E \geq \frac{h}{4 π Δ t}$ = $\frac{6.626 \times 10^{- 34}}{4 \times 3.14 \times 3 \times 10^{3}}$
On solving, ΔE = $1.76 \times 10^{- 38}$ J

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The lifetime of an excited state of an atom is 3×103 s. What will be the minimum uncertainity in the Energy?

The correct option is D 1.76×10−38 JWe know Energy-time uncertainity principle ΔE. Δt ≥ h4π Assuming minimum error in lifetime measurement = 3×103 ∴ΔE≥h4πΔt = 6.626×10−344×3.14×3×103 On solving, ΔE = 1.76×10−38 J

The lifetime of an excited state of an atom is $3 \times 10^{3}$ s. What will be the minimum uncertainity in the Energy?