Chapter in a nutshell: The modern periodic table arranges elements by increasing atomic number; properties repeat periodically because the outer-shell electron configuration repeats. Across a period atomic size shrinks while ionisation energy, electron affinity, electronegativity and non-metallic character rise; down a group the reverse happens. These trends flow from changing nuclear charge, number of shells and shielding.
1. Development of the Periodic Table
- Mendeleev's law: properties of elements are a periodic function of their atomic masses; he arranged 63 elements in order of atomic mass, left gaps for undiscovered elements (e.g. eka-silicon = germanium).
- Defects of Mendeleev's table: position of isotopes, some anomalous mass-order pairs (e.g. Ar before K), hydrogen's uncertain place.
- Moseley showed atomic number (not mass) is the fundamental property β Modern Periodic Law: the properties of elements are a periodic function of their atomic numbers.
2. Structure of the Modern Periodic Table
- 7 periods (horizontal rows) = number of shells; 18 groups (vertical columns) = same number of valence electrons.
- Period number = number of shells; Group number (for main groups) relates to valence electrons.
- Blocks: s-block (Groups 1β2), p-block (13β18), d-block (transition, 3β12), f-block (lanthanides/actinides).
- Periodicity arises because the outer electronic configuration repeats after each period.
3. Periodic Properties β Definitions
| Property | Definition |
|---|
| Atomic size/radius | distance from the nucleus to the outermost shell |
| Ionisation energy (potential) | energy needed to remove the most loosely-held electron from a gaseous atom |
| Electron affinity | energy released when a gaseous atom gains an electron |
| Electronegativity | tendency of an atom to attract the shared pair of electrons in a bond |
| Metallic character | tendency to lose electrons (electropositivity) |
| Non-metallic character | tendency to gain electrons (electronegativity) |
4. Trends ACROSS a Period (left β right)
| Property | Trend | Reason |
|---|
| Atomic size | decreases | nuclear charge β, same shell β electrons pulled closer |
| Ionisation energy | increases | stronger nuclear pull, harder to remove electron |
| Electron affinity | increases | greater tendency to gain an electron |
| Electronegativity | increases | stronger attraction for the shared pair |
| Metallic character | decreases | losing electrons gets harder |
| Non-metallic character | increases | gaining electrons gets easier |
| Valency (w.r.t. O/H) | rises 1β4 then falls 4β0 | β |
5. Trends DOWN a Group (top β bottom)
| Property | Trend | Reason |
|---|
| Atomic size | increases | a new shell is added at each step |
| Ionisation energy | decreases | outer electron farther + more shielding β easier to remove |
| Electron affinity | decreases | weaker pull on an incoming electron |
| Electronegativity | decreases | weaker attraction for shared electrons |
| Metallic character | increases | losing electrons becomes easier |
| Non-metallic character | decreases | β |
- Shielding (screening) effect: inner-shell electrons reduce the nucleus's pull on the outer electrons.6. Special Groups
- Alkali metals (Group 1): 1 valence electron, very reactive, soft, low IE, form +1 ions; reactivity increases down the group.
- Halogens (Group 17): 7 valence electrons, very reactive non-metals, form β1 ions; reactivity decreases down the group.
- Noble/inert gases (Group 18): complete octet (He = duplet), chemically inert, very high IE.
7. Worked / Structured Examples (ICSE pattern)
Q1. An element has electronic configuration 2, 8, 7. Give its (i) group, (ii) period, (iii) valency, (iv) metal/non-metal.
Solution: (i) Group 17 (7 valence eβ»), (ii) Period 3 (3 shells), (iii) valency 1, (iv) non-metal (it gains 1 electron).Q2. Arrange Li, Na, K in increasing order of (i) atomic size, (ii) ionisation energy.
Solution: (i) Li < Na < K (size increases down group); (ii) K < Na < Li (IE decreases down group).
Q3. Across period 3 (Na β Cl), how do atomic size and metallic character change?
Solution: Atomic size decreases; metallic character decreases (non-metallic increases).
Q4. Why is the ionisation energy of sodium less than that of chlorine?
Solution: Cl is to the right (higher nuclear charge, smaller size) so it holds electrons more tightly β higher IE.
Q5. Element X (2,8,1) and Y (2,8,7) combine. What is the bond type and formula?
Solution: X loses 1 eβ» (β XβΊ), Y gains 1 eβ» (β Yβ») β ionic bond, formula XY.
8. Key Terms β Quick Glossary
| Term | One-line definition |
|---|
| Modern periodic law | properties are a periodic function of atomic number. |
| Period | horizontal row; = number of shells. |
| Group | vertical column; same number of valence electrons. |
| Atomic radius | nucleus-to-outermost-shell distance. |
| Ionisation energy | energy to remove the outermost electron (gaseous atom). |
| Electron affinity | energy released on gaining an electron. |
| Electronegativity | tendency to attract a shared electron pair. |
| Shielding effect | inner electrons reduce the nuclear pull on outer ones. |
| Metallic character | tendency to lose electrons (electropositivity). |
9. Common Mistakes to Avoid
- Saying the modern table is based on atomic mass β it is atomic number.
- Reversing the across-period size trend (size decreases across, increases down).
- Confusing ionisation energy (lose eβ») with electron affinity (gain eβ»).
- Thinking metallic character increases across a period β it decreases.
- Forgetting that shielding is the reason IE falls down a group.
10. Likely Exam Questions (with crisp answers)
- State the modern periodic law. β Properties are a periodic function of the atomic number.
- What does the period number indicate? β Number of shells (energy levels).
- What does the group number indicate? β Number of valence electrons (for main-group elements).
- How does atomic size vary across a period and why? β Decreases β increasing nuclear charge in the same shell.
- How does ionisation energy vary down a group and why? β Decreases β larger size and more shielding make the outer electron easier to remove.
- Define electronegativity; how does it vary across a period? β Tendency to attract a shared electron pair; increases across.
- Why are alkali metals very reactive? β Low ionisation energy β readily lose their single valence electron.
- Why are noble gases inert? β They have a stable, complete outer shell (octet/duplet).
- Which is more metallic, Na or Mg, and why? β Na β it is to the left, loses electrons more easily.
- Define ionisation energy. β Energy needed to remove the most loosely bound electron from a gaseous atom.
- Name the scientist who gave atomic number its importance. β Henry Moseley.
- How does non-metallic character vary across a period? β It increases left to right.
- Why does atomic size increase down a group? β A new electron shell is added at each step.
- Arrange F, Cl, Br by electronegativity. β F > Cl > Br (decreases down the group).
11. Mendeleev vs Modern Periodic Table
| Mendeleev's table | Modern table |
|---|
| based on atomic mass | based on atomic number |
| 8 groups, 6 periods | 18 groups, 7 periods |
| isotopes had no clear place | isotopes fit (same Z) |
| some mass anomalies (ArβK) | resolved by atomic number |
| predicted undiscovered elements (eka-Al, eka-Si) | confirmed; gaps filled |
12. Periodicity & Electronic Configuration (Periods 1β3)
| Element | Z | Config | Period | Group | Valency |
|---|
| H | 1 | 1 | 1 | 1 | 1 |
| He | 2 | 2 | 1 | 18 | 0 |
| Li | 3 | 2,1 | 2 | 1 | 1 |
| C | 6 | 2,4 | 2 | 14 | 4 |
| O | 8 | 2,6 | 2 | 16 | 2 |
| Ne | 10 | 2,8 | 2 | 18 | 0 |
| Na | 11 | 2,8,1 | 3 | 1 | 1 |
| Cl | 17 | 2,8,7 | 3 | 17 | 1 |
| Ar | 18 | 2,8,8 | 3 | 18 | 0 |
13. More Trends & Notes
- Valency across a period rises 1β4 (w.r.t. H) then falls 4β0; equals the group's relation to 8 for non-metals.
- Atomic vs ionic size: a cation is smaller than its atom (lost shell/less electron repulsion); an anion is larger than its atom.
- Reactivity: metals most reactive at bottom-left; non-metals most reactive at top-right (excluding noble gases).
- Nature of oxides across a period: basic β amphoteric β acidic (e.g. NaβO basic, AlβOβ amphoteric, SOβ/ClβOβ acidic).
14. More Worked Examples
Q6. Element Z = 12. Give its period, group, valency, and the formula of its oxide.
Solution: config 2,8,2 β Period 3, Group 2, valency 2 β oxide MgO-type, formula MO.Q7. Two elements A (2,8,8,1) and B (2,8,7). Which is more metallic and which has higher IE?
Solution: A (Group 1, large, K-like) is more metallic; B (Group 17) has higher ionisation energy.
Q8. Why does a cation have a smaller radius than its parent atom?
Solution: It has lost the outermost shell (or has fewer electrons for the same nuclear charge), so the remaining electrons are pulled in more tightly.
15. More Exam Questions (with crisp answers)
- State two merits of Mendeleev's periodic table. β Predicted undiscovered elements and corrected some atomic masses.
- State two demerits of Mendeleev's table. β No fixed place for isotopes; some mass-order anomalies.
- Why is argon placed before potassium despite higher mass? β The modern table uses atomic number (Ar = 18 < K = 19), resolving the anomaly.
- How does the nature of oxides change across a period? β From basic through amphoteric to acidic.
- Compare the radius of Na and NaβΊ. β NaβΊ is smaller (one shell lost).
- Which group contains the least reactive elements? β Group 18 (noble gases).
16. Quick Summary of All Trends
| Moving β | Across a period (LβR) | Down a group |
|---|
| Atomic size | decreases | increases |
| Ionisation energy | increases | decreases |
| Electron affinity | increases | decreases |
| Electronegativity | increases | decreases |
| Metallic character | decreases | increases |
| Non-metallic character | increases | decreases |
| Nuclear charge (effective) | increases | ~similar (more shielding) |
17. Final Quick-Revision Q&A
- In period 3, which element has the largest atomic radius? β Na (leftmost).
- In group 17, which is the most electronegative element? β Fluorine (top).
- Why does effective nuclear charge increase across a period? β Protons increase while electrons enter the same shell (little extra shielding).
- Define a periodic property. β A property that recurs at regular intervals as atomic number increases.
- Name the most reactive metal and most reactive non-metal positions. β Bottom-left (e.g. Cs) and top-right (e.g. F).