\( O_2 \) gas has a higher \( K_H \) value because a higher \( K_H \) means lower solubility of the gas in liquid.
Step 1: Understanding Henry’s Law Constant (\( K_H \)) Henry’s law states that: \[ C = K_H P \] where \( C \) is the concentration of the gas in liquid, \( K_H \) is Henry’s law constant, and \( P \) is the partial pressure of the gas.
Step 2: Relationship Between \( K_H \) and Solubility \[ K_H \propto \frac{1}{\text{Solubility of Gas}} \] Since \( CO_2 \) is more soluble in water than \( O_2 \), it has a lower \( K_H \) value. Thus, \( O_2 \) has a higher \( K_H \).
Draw a rough sketch for the curve $y = 2 + |x + 1|$. Using integration, find the area of the region bounded by the curve $y = 2 + |x + 1|$, $x = -4$, $x = 3$, and $y = 0$.
For the curve \( \sqrt{x} + \sqrt{y} = 1 \), find the value of \( \frac{dy}{dx} \) at the point \( \left(\frac{1}{9}, \frac{1}{9}\right) \).