QUESTION IMAGE
Question
\\2\text{no}(\text{g}) + \text{o}_2(\text{g}) \
ightleftharpoons 2\text{no}_2(\text{g})\\
\\k = 1.5 \times 10^{-10} \quad q = 0.19\\
what will happen to the reaction based on the relationship of q vs. k?
- make more reactants because \\(q < k\\).
- make more reactants because \\(q > k\\).
- make more products because \\(q < k\\).
- make more products because \\(q > k\\).
- no change because \\(q = k\\).
enter the answer choice number.
Compare the values of Q and K
Using the Reaction Quotient and Equilibrium Constant knowledge points
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LATEXBLOCK0
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Determine the direction of shift
Using the Chemical Equilibrium knowledge point
$$
LATEXBLOCK1
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Match with the given options
Using the Chemical Equilibrium knowledge point
$$
LATEXBLOCK2
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- 1. Make more reactants because Q < K.
- 2. Make more reactants because Q > K. (Correct answer)
- 3. Make more products because Q < K.
- 4. Make more products because Q > K.
- 5. No change because Q = K.