The present atomic weight scale is based on

  • A
    $C^{12}$
  • B
    $O^{16}$
  • C
    $H^1$
  • D
    $C^{13}$

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Similar Questions

An element of mass $A_1 \, g$ gives a chloride of mass $A_2 \, g$. Calculate its equivalent mass.

The equivalent weight of a certain trivalent element is $20$. The molecular weight of its oxide is:

IsotopeRelative abundance $(\%)$Atomic mass $(u)$
$^{12}C$$98.8$$12$
$^{13}C$$1.18$$13.1$
$^{14}C$$0.02$$14.1$
From the above data,what is the average molecular mass of $CH_4$ containing all isotopes of carbon,assuming hydrogen is only $^{1}_{1}H$? (Given that atomic mass of hydrogen $= 1.008 \ u$)

An element,$X$ has the following isotopic composition:
$^{200}X: 90\%$,$^{199}X: 8.0\%$,$^{202}X: 2.0\%$
The weighted average atomic mass of the naturally occurring element $X$ is closest to......$amu$.

The equivalent weights of $H_3PO_4$ in the following reactions are respectively:
$H_3PO_4 + OH^{-} \rightarrow H_2PO_4^- + H_2O$
$H_3PO_4 + 2OH^{-} \rightarrow HPO_4^{2-} + 2H_2O$
$H_3PO_4 + 3OH^{-} \rightarrow PO_4^{3-} + 3H_2O$

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