Specific volume of cylindrical virus particle is 6.02 $\times 10^{- 2}$ cc/gm whose radius and length are 7 $˚ A$ and 10 $˚ A$ respectively. If $N_{A} = 6.02 \times 10^{23}$ , find the molecular weight of virus.

1.54 k g / m o l

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1.54 \times 10^{4} k g / m o l

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3.08 \times 10^{4} k g / m o l

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3.08 \times 10^{3}

kg/mol

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Solution

The correct option is B $1.54 k g / m o l$
$\frac{1}{ℓ} = 6.02 \times 10^{- 2} c c / g m r = 7 ˚ A L = 10 ˚ A V = π r^{2} L = π \times {(7 \times 10^{- 8})}^{2} (10 \times 10^{- 8}) M = \frac{V}{1 / ℓ} = \frac{π \times 49 \times 10^{- 23}}{6.02 \times 10^{2}} m o l e c u l a r w e i g h t = \frac{49 π \times 10^{- 23} \times 6.02 \times 10^{23}}{6.02 \times 10^{2}} (\frac{49 π}{100}) = 1.54 k g / m o l$

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Similar questions

6.02 \times 10^{- 2}

˚ A

˚ A

N_{A} = 6.02 \times 10^{23}

6.02 \times 10^{- 2} \frac{c c}{g}

7 \circ A

N_{A} = 6.02 \times 10^{23},

If NaCl is doped with $10^{- 4} m o l % S r C l_{2}$ , the concentration of cation vacancies will be $(N_{A} = 6.02 \times 10^{23} m o l^{- 1})$

10^{- 4} m o l % o f S r C l_{2}

N = 6.02 \times 10^{23} m o l^{- 1}

0.075 k c a l / k g - K

C_{v} = 2.98 c a l / m o l / K

= 6.02 \times 10^{23}

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