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Why do transition metals show variable oxidation states while many other elements do not? Let's find out by watching this video and reinforcing these concepts with Quizlet study tools: 🔹 Flashcard set → https://quizlet.com/1153252833/oxidat... 🔹 Practice test → https://quizlet.com/test-questions/ox... In this video, we explore the oxidation states of transition elements in the d-block, focusing on why these metals can exist in multiple oxidation states. You'll learn how the 3d and 4s electrons participate in bonding, why elements in the middle of the transition series show the most oxidation states, and how these trends differ from non-transition (p-block) elements. We’ll also look at real examples like manganese, iron, scandium, and zinc to understand why some elements show many oxidation states while others are more limited. 📚 What you'll learn in this video: Why transition metals show variable oxidation states The role of 3d and 4s electrons in bonding Why scandium and zinc usually show only one oxidation state Why manganese shows many oxidation states What are the trends across the 3d transition metal series How oxidation states of transition elements differ from p-block elements Why higher oxidation states can become more stable down the group This concept is essential for Class 12 Chemistry, especially in the chapter The d-Block Elements. #Chemistry #TransitionMetals #DBlockElements