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Consider the following reaction
2 SO2+O22 SO3\rm 2\ {SO_2} \quad+\quad {O_2}\quad \xrightleftharpoons{\hspace{1.5cm}}\quad 2\ {SO_3}
ΔH0=180 kJ/mol\Delta H^0=-180\ kJ/mol

KK is measured to be 9.9×1029.9 \times 10^2 at 800 K800\ K, what temperature would the reaction need to be run at to get an equilibrium constant of 1×1061\times10^6?

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