14.6
可逆的な化学反応とは、順方向(左から右)と逆方向(右から左)の両方に進行する化学プロセスのことです。順方向と逆方向の反応の速度が等しい場合、反応種と生成種の濃度は時間の経過とともに一定になり、系は平衡状態に達します。特別な二重矢印は、このような反応の可逆性を強調するために使用されます。平衡系における…
可逆的な化学反応とは、反応物の生成物への変換と生成物の反応物への再変換が同時に起こる反応です。反応物と生成物の間の二重矢印は、その可逆的な性質を示しています。
生成物の形成速度、または順反応の速度が反応物の形成速度、または逆反応の速度と等しいとき、化学平衡が達成されます。
化学平衡は実際には動的なプロセスです。外から見ると、システム全体が静止しているように見えますが、分子レベルでは非常に活性があります。
五塩化リンの熱分解を考えてみましょう。
密閉容器内で加熱すると、ガス状の五塩化リンは可逆反応で三塩化リンと塩素ガスの混合物に分解します。反応が進行すると、五塩化リンの濃度は減少し、三塩化リンと塩素ガスは増加します。
その結果、順反応の速度は減少し、逆反応の速度は増加します。
やがて、順反応と逆反応の速度は等しくなり、系は化学平衡を達成します。この状態では、五塩化リン、三塩化リン、および塩素の相対濃度は変化しなくなります。
このような平衡状態は、順反応と逆反応の両方が同じ速度で発生し続けるため、動的平衡とも呼ばれます。反応物と生成物は消費されるのと同じ速度で形成されるため、それらの濃度は一定のままですが、必ずしも等しいとは限りません。
化学平衡は、特定の可逆反応のすべての反応物と生成物が同じ相(気体または水性)にある場合、均一です。不均一平衡では、反応物と生成物は異なる相で存在します。
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Q1: What is a reversible chemical reaction?
A reversible chemical reaction is a process in which reactants convert to products and products simultaneously convert back to reactants. The double arrow notation signifies this reversible nature. In the thermal decomposition of phosphorus pentachloride, for example, gaseous PCl₅ decomposes into PCl₃ and Cl₂ while these products recombine to reform PCl₅, demonstrating how both forward and reverse reactions occur simultaneously.
Q2: How does chemical equilibrium become dynamic?
Chemical equilibrium is dynamic because both forward and reverse reactions continue occurring at equal rates. Although the system appears static from outside, molecular-level activity remains high. When the rate of product formation equals the rate of reactant formation, concentrations stabilize. Reactants and products form and are consumed simultaneously, maintaining constant but not necessarily equal concentrations.
Q3: Why do forward and reverse reaction rates eventually become equal?
As a reversible reaction proceeds, reactant concentration decreases, slowing the forward reaction rate. Simultaneously, product concentration increases, accelerating the reverse reaction rate. This continues until both rates match, achieving equilibrium. At this point, the rate of NO₂ formation equals its consumption rate, and N₂O₄ formation equals its consumption rate, stabilizing all concentrations.
Q4: What is the difference between homogeneous and heterogeneous equilibria?
A homogeneous equilibrium occurs when all reactants and products exist in the same phase—either gaseous or aqueous. A heterogeneous equilibrium involves reactants and products in two or more different phases. For example, the decomposition of N₂O₄ gas to NO₂ gas is homogeneous, while reactions involving solids and gases represent heterogeneous equilibria.
Q5: Why do concentrations remain constant at equilibrium?
At equilibrium, concentrations remain constant because reactants and products form at the same rates they are consumed. The forward reaction rate equals the reverse reaction rate, creating a balance. Although individual molecules continue reacting, the overall composition of the system does not change, making equilibrium a dynamic steady state rather than a static condition.
Q6: How does the concentration of reactants change during the approach to equilibrium?
Initially, reactant concentration is finite while product concentration is zero, so the forward reaction proceeds at a finite rate. As the reaction progresses, reactant concentration decreases while product concentration increases. This changing concentration affects reaction rates: the decreasing reactant concentration slows the forward reaction, while increasing product concentration speeds the reverse reaction until equilibrium is reached.
Q7: What happens to reaction rates when a system reaches equilibrium?
When a system reaches equilibrium, the forward and reverse reaction rates become equal. Although both reactions continue occurring, they proceed at identical rates, so no net change in concentrations occurs. This equal-rate condition defines the equilibrium state and explains why equilibrium concentrations from initial concentrations can be predicted using equilibrium expressions and constants.