Show that rms velocity of an oxygen molecule is 2 times that of a sulfur dioxide molecule at S.T.P.

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asked May 30, 2022 in Chapter3:Kinetic Theory of Gases and Radiation by nehapatil (3.2k points)
edited Jun 29, 2023

Show that rms velocity of an oxygen molecule is 2 times that of a sulfur dioxide molecule at S.T.P.

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answered May 30, 2022 by nehapatil (3.2k points)
selected Jun 29, 2023 by Doubtly

Best answer

Given : \(\frac{m_o(SO_2)}{m_o(O_2)}\) = 64/32 =2

The rms speed v_rms = \(\sqrt{\frac{3RT}{M_o}}\)

v_rms ∝ \(\frac{1}{\sqrt{M_o}}\) at constant T

\(\frac{v_{rms}(O_2)}{v_{rms}(SO_2)}\) = \(\sqrt{\frac{M_o(SO_2)}{M_o(O_2)}}=\sqrt{2}\)

Thus v_rms(O₂) = \(\sqrt{2}\) v_rms(SO₂

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