**Google Trends Insight:** Just as the **Airbus A320 recall** highlights the need for a perfect structure, **Electronic Configuration** dictates the perfect, stable structure of an atom. Every electron must be in its correct place for chemical stability—no recalls allowed!
Electronic configuration relies on knowing where electrons fit within the atom's structure. These are exam-centered definitions you MUST know.
Atomic Structure (The Fundamentals)
**Nucleon Number (Mass Number):** Total number of Protons + Neutrons.
**Proton Number (Atomic Number):** Number of Protons in the nucleus, which equals the number of Electrons in a neutral atom. This is the **identifier** of the element.
**Electron Shells/Energy Levels:** Fixed energy paths where electrons orbit the nucleus.
The distribution of these electrons is what we call **Electronic Configuration**.
2. The IGCSE Electronic Configuration Rule (2, 8, 8)
For O Level and IGCSE, electrons fill the main shells in a specific, stable order. Think of it like a sports tournament structure (like **Georgia vs Georgia Tech**)—each level must be filled before moving to the next!
The Electron Shell Filling Sequence
**Shell 1 (K Shell):** Maximum capacity of **2** electrons.
**Shell 2 (L Shell):** Maximum capacity of **8** electrons.
**Shell 3 (M Shell):** Maximum capacity of **8** electrons (for the first 20 elements).
**Shell 4 (N Shell):** The remaining electrons fill the subsequent shells.
Example: Chlorine (Cl) has 17 electrons. Its configuration is **2, 8, 7**.
Valence Electrons: The Key to Reactivity
The **Valence Shell** is the outermost electron shell containing electrons.
The **Valence Electrons** are the electrons found in the outermost shell. They determine an element's **chemical properties** and **bonding behavior**.
Example: Sodium (Na) is 2, 8, 1. It has **1** valence electron, making it highly reactive.
3. Predicting the Periodic Table with E-Config
Electronic Configuration is the blueprint of the Periodic Table. You can easily predict the location of any element based on its configuration.
**The Period Number:** Equals the **number of filled electron shells** in the atom. (e.g., Sodium 2, 8, 1 has 3 shells, so it is in **Period 3**).
**The Group Number:** Equals the **number of valence electrons**. (e.g., Oxygen 2, 6 has 6 valence electrons, so it is in **Group VI**).
📢 Learn the Periodic Table in a Song! 🎶
Stop memorizing and start understanding! Prof. Faisal Janjowa has a viral hack to help you ace the table structure.
Atoms strive for a stable configuration—a full valence shell, known as the **Octet Rule** (8 electrons in the outer shell). They achieve this by gaining or losing valence electrons, forming **ions**.
**Metals:** Have 1, 2, or 3 valence electrons. They tend to **lose** these electrons to form **positive ions (Cations)**. The resultant ion has the E-Config of the nearest Noble Gas.
**Non-Metals:** Have 5, 6, or 7 valence electrons. They tend to **gain** electrons to form **negative ions (Anions)**.
Practice Solved Example: Paper 4 (Theory)
Watch a full-length, exam-style question involving Electronic Configuration, Ion formation, and Bonding solved step-by-step by Prof. Faisal Janjowa.
**Omar F. (O Level 5070 A):** "Electronic Configuration used to confuse me until I watched the demo video and enrolled. The timeline approach provided a clear path—my A* was directly achieved because of this structured learning."
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