By the end of this chapter you'll be able to…

  • 1State Mendeleev's Periodic Law and Modern Periodic Law (Moseley)
  • 2Describe the structure of the periodic table: periods (7) and groups (18)
  • 3Determine an element's group and period from its electronic configuration
  • 4Explain and apply periodic trends: atomic size, ionization energy, electron affinity, metallic character, electronegativity
  • 5Identify advantages of the modern periodic table over Mendeleev's original table
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Why this chapter matters
The Periodic Table is the organising framework of all chemistry — understanding it means understanding ALL elements simultaneously. Periodic trends (atomic size, ionization energy, metallic character, electron affinity) are tested in AP SSC as explain-the-trend questions. Mendeleev's contributions and the Modern Periodic Law (Moseley) are standard history questions. The position of an element (group, period) can be determined from its electronic configuration — a skill tested in 2-mark questions.

Before you start — revise these

A 5-minute refresher here will save you 30 minutes of confusion below.

The Periodic Table — Class 10 Physical Science

"Mendeleev left gaps in his table. He predicted elements that didn't exist yet — their properties, their atomic masses. And when they were discovered, he was RIGHT. That is the power of a good scientific theory."

1. Early Attempts at Classification

Dobereiner's Triads (1817): Groups of 3 elements with similar properties. Middle element's atomic mass ≈ average of extremes. Limited — very few triads found. Newlands' Law of Octaves (1864): Every 8th element has similar properties — like musical notes. Worked only up to calcium. Ridiculed.

2. Mendeleev's Periodic Table (1869)

Arranged elements by INCREASING ATOMIC MASS. Elements with SIMILAR PROPERTIES in the same VERTICAL COLUMN (Group). GENIUS: Left GAPS for undiscovered elements. PREDICTED their properties (eka-aluminium → gallium. eka-silicon → germanium). When discovered, his predictions were REMARKABLY ACCURATE. Limitations: Position of hydrogen uncertain (resembles both alkali metals AND halogens). Isotopes (same element, different mass) — no place. Anomalous pairs (Argon mass 40 before Potassium mass 39 — based on properties, not mass order).

3. Modern Periodic Law (Mosley, 1913)

Properties of elements are a PERIODIC FUNCTION of their ATOMIC NUMBER. Arranged by increasing ATOMIC NUMBER (Z = number of protons). This SOLVED Mendeleev's anomalies.

4. Structure of the Modern Periodic Table

7 PERIODS (horizontal rows). Period number = number of SHELLS. 18 GROUPS (vertical columns). Group number = number of VALENCE ELECTRONS (for Groups 1-2, 13-18).

Key Groups

GroupNameValence e⁻NatureExamples
1Alkali Metals1Highly reactive metals. Form +1 ions.Li, Na, K
2Alkaline Earth Metals2Reactive metals. Form +2 ions.Mg, Ca
17Halogens7Highly reactive non-metals. Form −1 ions.F, Cl, Br, I
18Noble Gases8 (full)EXTREMELY unreactive.He, Ne, Ar

Atomic Size (Radius) : DECREASES across a period (← →). More protons pull electrons CLOSER. INCREASES down a group (↓). More shells added. Metallic Character: DECREASES across period. INCREASES down group. 'The most metallic element: FRANCIUM (bottom left). The most non-metallic: FLUORINE (top right).'

6. Common Mistakes

  1. 'Mendeleev arranged by atomic number' — He arranged by ATOMIC MASS. Mosley CORRECTED it to atomic number.
  2. 'Noble gases are in Group 18 because they have 8 valence electrons' — Helium has 2 valence electrons but is STILL in Group 18 (its shell is FULL).

7. AP SSC Exam Focus

TopicMarks
Mendeleev's table and predictions3-4
Modern periodic law2-3
Group names and properties3-4
Periodic trends2-3

8. Blocks of the Periodic Table

The modern periodic table is divided into FOUR blocks based on which subshell the LAST electron enters.

s-Block Elements

PositionGroups 1 and 2
Electron configurationns¹ or ns²
PropertiesReactive metals. Form basic oxides. Good conductors.
ExamplesLi, Na, K (Group 1), Be, Mg, Ca (Group 2)
TrendReactivity INCREASES down the group

'The most reactive metal in the s-block is FRANCIUM at the very bottom of Group 1 — it reacts EXPLOSIVELY with water.'

p-Block Elements

PositionGroups 13 to 18
Electron configurationns² np¹ to ns² np⁶
PropertiesMetals, non-metals, metalloids. Range of properties.
ExamplesB, C, N, O, F (Group 13-17), Ne, Ar (Group 18)
Key groupHalogens (Group 17) — most reactive non-metals

'Metalloids like Silicon and Germanium are in the p-block. They have properties BETWEEN metals and non-metals — used in SEMICONDUCTORS.'

d-Block Elements (Transition Metals)

PositionGroups 3 to 12
Electron configuration(n−1)d¹⁻¹⁰ ns¹⁻²
PropertiesHard, high melting points. Form COLOURED compounds. Variable oxidation states. Good catalysts.
ExamplesFe, Cu, Zn, Ni, Cr, Mn, Ag, Au, Pt
Why 'Transition'They TRANSITION between s-block and p-block in the table

'Transition metals form coloured compounds — CuSO₄ is BLUE, KMnO₄ is PURPLE, FeCl₃ is BROWN. This is UNIQUE to d-block elements.'

f-Block Elements (Inner Transition Metals)

PositionBelow the main table (2 rows)
Electron configuration(n−2)f¹⁻¹⁴ (n−1)d⁰⁻¹ ns²
SeriesLanthanoids (4f series) and Actinoids (5f series)
PropertiesRadioactive (actinoids). Lanthanoids are 'rare earth metals'.
ExamplesCe, Eu, Gd (Lanthanoids), U, Pu, Th (Actinoids)

Atomic Size (Atomic Radius)

DirectionChangeReason
Across a period (← →)DECREASESNuclear charge INCREASES. Protons pull electrons CLOSER. Same shell.
Down a group (↑ ↓)INCREASESNEW SHELLS are added. Each new shell is further from the nucleus.

'Across a period, although new protons are added, the electrons go into the SAME shell. More protons = stronger pull = smaller radius. Down a group, each new shell is FURTHER out — size ALWAYS increases.'

Example: Arrange Na (Z=11), Mg (Z=12), Al (Z=13), Si (Z=14) in increasing atomic size. All are in Period 3. Across a period, size DECREASES. Increasing order: Si < Al < Mg < Na (correct)

Ionisation Energy (IE)

The energy required to REMOVE the MOST LOOSELY BOUND electron from a gaseous atom.

DirectionChangeReason
Across a periodINCREASESMore protons = tighter hold on electrons
Down a groupDECREASESOuter electron is FURTHER from nucleus, EASIER to remove

'Noble gases have the HIGHEST ionisation energy — they DON'T want to lose electrons. Alkali metals have the LOWEST — they WANT to lose one electron to achieve noble gas configuration.'

Valency — Across Periods and Groups

Period 2 ElementLiBeBCNOFNe
Valence Electrons12345678
Valency12343210

'Valency across a period: INCREASES from 1 to 4, then DECREASES to 0 at noble gas. This pattern REPEATS in every period.'

Electronegativity

The tendency of an atom to ATTRACT a shared pair of electrons toward itself in a covalent bond.

DirectionChangeReason
Across a periodINCREASESSmaller size, more protons = stronger pull on bonding electrons
Down a groupDECREASESLarger size, more inner shells SHIELD the nucleus

'Fluorine (F) is the MOST electronegative element (EN ≈ 4.0). Francium (Fr) is the LEAST (EN ≈ 0.7).'

ElementFOClNBrICHNaFr
EN4.03.53.03.02.82.52.52.10.90.7

'Use this mnemonic for the pattern across periods: Ape (Atomic size) Dies (Decreases), IE Goes (Ionisation Energy increases), EN Goes (Electronegativity increases). Down groups: ALL OPPOSITE.'

PropertyAcross Period (→)Down Group (↓)
Atomic SizeDECREASESINCREASES
Ionisation EnergyINCREASESDECREASES
ElectronegativityINCREASESDECREASES
Metallic CharacterDECREASESINCREASES
Electron AffinityINCREASES (generally)DECREASES (generally)

11. Why are Elements in the Same Group Similar?

Elements in the SAME GROUP have the SAME NUMBER of VALENCE ELECTRONS.

  • Group 1 elements all have 1 valence electron → ALL form +1 ions, react similarly with water.
  • Group 17 elements all have 7 valence electrons → ALL form −1 ions, react similarly with metals.

'The chemistry of an element is determined by its VALENCE ELECTRONS. Same group = same valence electrons = similar chemical properties.'


12. Common Mistakes — Expanded

MistakeCorrect Fact
'Mendeleev arranged by atomic number'He arranged by ATOMIC MASS. Mosley corrected to atomic number.
'All noble gases have 8 electrons'Helium has 2 valence electrons. Its shell is FULL with 2.
'Atomic size increases across a period'FALSE. It DECREASES — more protons pull electrons closer.
'Electronegativity decreases across a period'FALSE. It INCREASES — atoms get smaller, pull electrons more strongly.
'Group number = valence electrons for all groups'True only for Groups 1, 2, and 13-18. For transition metals (Groups 3-12), it's NOT this simple.
'Metals are only on the left'True for most metals, but p-block has some metals too (Al, Sn, Pb, Bi).

13. Worked Examples

Example 1: Which element has the larger atomic radius: Na or Cl? Why? Na has LARGER atomic radius. Both are in Period 3, but Na is on the LEFT. Across a period, atomic size DECREASES due to increasing nuclear charge. Na (Z=11) has less pull on its outermost electron than Cl (Z=17). (correct)

Example 2: Arrange F, Cl, Br, I in increasing order of electronegativity. Down Group 17, electronegativity DECREASES. Increasing order: I < Br < Cl < F (correct)

Example 3: An element has electronic configuration 2, 8, 5. Find its: a) Period number — 3 (3 shells) b) Group number — 15 (5 valence electrons, Group 15) c) Block — p-block (last electron enters p subshell) d) Nature — Non-metal (on the right side of periodic table) e) Valency — 3 (needs 3 electrons to complete octet) (correct)


14. AP SSC Board Exam Focus — Expanded

TopicMarksFrequency
Mendeleev's predictions and limitations3-4Very High
Modern periodic law (Mosley)2-3Very High
Group names and properties3-4Very High
Periodic trends (size, IE, EN)4-5Very High
Blocks (s, p, d, f)2-3High
Identifying period/group/block from config3High
Comparison between Mendeleev and Modern4Moderate

15. Self-Test Questions

  1. State the Modern Periodic Law. How did it IMPROVE upon Mendeleev's periodic table?
  2. What is the relationship between valence electrons and group number for Groups 1, 2, and 13-18?
  3. Explain why atomic size DECREASES across a period but INCREASES down a group.
  4. Which element has higher electronegativity: oxygen or sulphur? Why?
  5. An element X has electronic configuration 2, 8, 8, 2. Find its period, group, and block. Name the element.
  6. Why did Mendeleev leave GAPS in his periodic table? Give an example.
  7. Arrange the following elements in increasing order of metallic character: Na, Al, Si, Mg.
  8. What are transition metals? Why are they called 'transition' elements?
  9. Calcium (Z=20) and Bromine (Z=35) — which has a LARGER atomic radius? Justify.
  10. Match the following: | Element | Block | |---------|-------| | Fe | s-block | | Na | p-block | | Cl | d-block | | U | f-block |

Answers: 1) Properties are a periodic function of ATOMIC NUMBER. Solved the anomalous pair issue. 2) For Groups 1-2: group number = valence electrons. For Groups 13-18: group number − 10 = valence electrons. 3) Across: same shell, more protons = stronger pull. Down: new shells added = larger distance. 4) OXYGEN — it is ABOVE sulphur in Group 16. Electronegativity DECREASES down a group. 5) Period 4, Group 2, s-block. CALCIUM (Ca). 6) He predicted undiscovered elements — e.g., eka-aluminium (gallium) and eka-silicon (germanium). 7) Si < Al < Mg < Na (increasing metallic character). 8) d-block elements with variable oxidation states, coloured compounds, good catalysts. Called 'transition' because they are between s-block and p-block. 9) Ca — Calcium is on the LEFT of Period 4. Atomic size DECREASES across a period. 10) Fe → d-block, Na → s-block, Cl → p-block, U → f-block.

Key formulas & results

Everything you need to memorise, in one card. Screenshot this for revision.

Periodic Table Structure and Trends
MENDELEEV'S LAW: Properties are a periodic function of ATOMIC MASS. MODERN PERIODIC LAW (Moseley): Properties are a periodic function of ATOMIC NUMBER. STRUCTURE: 7 periods (rows). 18 groups (columns). Group number = valence electrons (for main groups). Period number = number of electron shells. PERIODS 1-3: Period 1 (H, He — 2 elements). Period 2 (Li to Ne — 8). Period 3 (Na to Ar — 8). TRENDS (across period, left to right →): Atomic size DECREASES. Ionization energy INCREASES. Electron affinity INCREASES. Metallic character DECREASES. Electronegativity INCREASES. TRENDS (down a group ↓): Atomic size INCREASES. Ionization energy DECREASES. Metallic character INCREASES. Electronegativity DECREASES.
AP SSC QUESTION TYPES: (1) 'An element has electronic configuration 2,8,4. Identify its period and group.' → Period 3 (3 shells), Group 14 (4 valence electrons). (2) 'Why does atomic size decrease across a period?' → Proton number increases → stronger nuclear pull → electrons drawn closer → smaller size. (3) 'What was Mendeleev's contribution?' → Arranged elements by atomic mass, predicted properties of missing elements, left gaps. (4) 'What is the Modern Periodic Law?' → Properties periodic function of ATOMIC NUMBER (not mass).
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Common mistakes & fixes

These are the exact errors that cost students marks in board exams. Read them once, save yourself the trouble.

WATCH OUT
Saying atomic size increases across a period
Across a period (left to right), atomic size DECREASES. More protons are added without adding new shells — the increased nuclear charge pulls all electrons CLOSER to the nucleus. The nuclear pull is stronger → electrons orbit closer → atom is SMALLER. Down a group, atomic size INCREASES because new electron shells are added with each period. More shells = larger atom.

Practice problems

Work through this chapter's problems as a readiness check — reveal each solution, mark yourself honestly, and get your gap report at the end.

Readiness check

Are you exam-ready for Classification of Elements — The Periodic Table?

1 problems from this chapter. Try each one, reveal the worked solution, mark yourself honestly — get your gap report at the end.

1 questions~2 min

5-minute revision

The whole chapter, distilled. Read this the night before the exam.

  • Dobereiner's Triads (1817): middle element's atomic mass ≈ average of first and last in a group of three related elements. E.g., Li (7), Na (23), K (39) → Na ≈ (7+39)/2 = 23. Limited to only a few triads.
  • Newlands' Octaves (1865): when elements arranged by atomic mass, every 8th element has similar properties to the first — like musical octaves. Failed beyond calcium.
  • Mendeleev's Periodic Law (1869): properties of elements are a periodic function of their ATOMIC MASS. Left gaps for undiscovered elements (predicted Ga, Sc, Ge). Limitation: couldn't explain isotopes, position of hydrogen.
  • Moseley's Modern Periodic Law: properties are a periodic function of ATOMIC NUMBER (number of protons), not atomic mass. This resolved all of Mendeleev's limitations.
  • Modern Periodic Table: 7 periods (rows), 18 groups (columns). Period number = number of electron shells. Group number (for main group elements) = valence electrons.
  • ATOMIC SIZE TREND: increases DOWN a group (more shells). DECREASES across a period (same shells, more protons pull electrons closer).
  • IONIZATION ENERGY TREND: DECREASES down a group (electrons farther, easier to remove). INCREASES across a period (more protons, harder to remove).
  • METALLIC CHARACTER: increases down a group, decreases across a period. Noble gases at far right of periods.
  • ELECTRONEGATIVITY: increases across a period (left to right), decreases down a group. Fluorine (F) is the most electronegative element.
  • Dobereiner → Newlands → Mendeleev → Moseley is the historical sequence. AP SSC often asks to compare Mendeleev with Moseley.

Andhra Pradesh (BIEAP) marks blueprint

Where the marks come from in this chapter — so you can plan your prep.

Where this shows up in the real world

This chapter isn't just an exam topic — it lives in the world around you.

Drug design and the periodic table

Many medicinal drugs contain specific elements chosen for their chemical properties — platinum (cisplatin, a cancer drug), lithium (mood stabiliser for bipolar disorder), selenium (antioxidant supplements), iodine (antiseptic and thyroid treatment). Knowing where these elements are in the periodic table predicts their reactivity, toxicity, and how they interact with biological molecules. Pharmaceutical chemists use periodic trends daily.

Semiconductor technology and electronics

Silicon (Group 14, Period 3) is the foundation of all computer chips — its 4 valence electrons allow it to bond with both 3-electron (p-type dopant, e.g., boron) and 5-electron elements (n-type dopant, e.g., phosphorus) to create semiconductor junctions. The periodic table position of Si, B, P, As, and Ge directly determines their suitability for transistor construction. Andhra Pradesh's TSMC and Samsung chip fabrication aspirations depend entirely on this chemistry.

Green chemistry: rare earth elements and renewables

Neodymium (Nd, lanthanide series) is used in the powerful permanent magnets in EV motors and wind turbines. Lithium (Li, Group 1) is essential for rechargeable batteries. Cobalt (Co, transition metal) is used in cathodes. The periodic table helps predict which elements have the right properties for energy storage and conversion — a critical part of India's energy transition.

Exam strategy

Battle-tested tips from teachers and toppers for this chapter.

1
Period and group from electronic configuration: practice with 10 elements until you can do it in 30 seconds. Common elements tested: Na (2,8,1 → Period 3, Group 1), Cl (2,8,7 → Period 3, Group 17), Ca (2,8,8,2 → Period 4, Group 2), Fe (2,8,14,2 → transition metal).
2
Trend explanation: always explain WHY the trend occurs — not just the direction. 'Atomic size decreases across a period because the number of protons increases, attracting electrons more strongly, without adding new shells.' The 'why' earns the second mark.
3
Mendeleev vs Moseley comparison: write a 4-row table (Basis, Law, Limitation, Advantage). AP SSC loves comparative questions.
4
Historical sequence: Dobereiner (1817) → Newlands (1865) → Mendeleev (1869) → Moseley (1913). Know the year and key contribution of each.
5
Noble gases position: Group 18, Period 1 to 6. They have complete outer shells — highest ionization energy, smallest in their group. Chemically inert.

Going beyond the textbook

For olympiad aspirants and curious learners — topics that build on this chapter.

STRETCH
Research the discovery of noble gases — in 1895, William Ramsay discovered argon, which had no place in Mendeleev's periodic table (Mendeleev had not predicted them). Ramsay eventually discovered He, Ne, Ar, Kr, Xe, and Rn, and proposed adding a new group (Group 0 / Group 18) to the table. This shows that the periodic table is a living model, not a fixed truth.
STRETCH
Explore why Period 4 has 18 elements (not 8 like Periods 2 and 3) — because the 3d orbitals fill in Period 4, accommodating 10 extra elements (transition metals). Understanding orbital filling explains the structure of the periodic table at a deeper level than electron shells.
STRETCH
Investigate the island of stability in superheavy elements — theoretical physics predicts that elements around atomic number 114 (flerovium) and 120 may have more stable nuclei than their neighbours. This 'island' would represent a local maximum of nuclear stability amid generally very short-lived superheavy nuclei.
STRETCH
Research the lanthanide contraction — the 14 lanthanides (atomic numbers 57–71) are almost identical in size despite increasing atomic number because the added electrons go into inner 4f orbitals that shield poorly. This makes Hf almost identical in size to Zr, with profound effects on their chemistry and mineralogy.

Where else this chapter is tested

CBSE board isn't the only one — other exams test this chapter too.

AP Board SSC (Class 10)High — periodic trends and identification of period/group are standard 4–6 mark questions
JEE Main / Advanced (Chemistry)Very High — Periodic Table is a foundational chapter for Class 11 Inorganic Chemistry; trends appear across many JEE questions
AP EAMCET (Engineering)High — periodic table trends and electronic configuration are core Class 11 Chemistry topics
NTSE (Science section)High — Mendeleev vs Moseley comparison and periodic trends are standard NTSE topics

Questions students ask

The real ones — pulled from the Q&A community and tutor sessions.

In Mendeleev's time (1869), the proton and atomic number were not yet discovered. Atomic mass was the only measurable property that showed periodic variation. Mendeleev noticed that when elements were arranged by atomic mass, similar properties recurred periodically. However, this ordering had anomalies (Ar and K, Co and Ni were out of order). In 1913, Henry Moseley measured X-ray frequencies from elements and showed that atomic number (protons) — not atomic mass — was the fundamental organising principle. When ordered by atomic number, all anomalies disappeared.

PERIOD = number of shells with electrons. Example: Na has configuration 2,8,1 — 3 shells → Period 3. GROUP (for main group elements): count valence electrons (electrons in the outermost shell). Na has 1 valence electron → Group 1 (IA). Cl has configuration 2,8,7 → 3 shells (Period 3), 7 valence electrons → Group 17 (VIIA). Exception: for noble gases with 2 electrons in outermost shell (He: 2) → Group 18. This method works for elements 1–20 reliably.

Atomic size and ionization energy are inversely related — and this makes chemical sense. A SMALLER atom has its outer electrons CLOSER to the nucleus and therefore more strongly attracted (higher nuclear pull per electron). Removing an electron from a small, tightly bound atom requires MORE energy (higher ionization energy). A LARGER atom has outer electrons FARTHER from the nucleus with more electron shielding — they are less tightly bound, so removing them requires LESS energy (lower ionization energy). Small atom = high IE. Large atom = low IE.

Hydrogen is typically placed in Group 1 (with alkali metals like Li, Na, K) because it has one valence electron and can lose it to form H⁺. However, hydrogen is NOT a metal — it is a gas. Some periodic tables place it in Group 17 (halogens) because it can also GAIN one electron (like F, Cl) to form H⁻. Some place it alone at the top. Hydrogen is unique: it has properties of both groups but is truly neither. This is why its placement is called controversial.

Mendeleev left deliberate gaps in his table for undiscovered elements and PREDICTED their properties. He called them eka-boron (→ Scandium, discovered 1879), eka-aluminium (→ Gallium, discovered 1875), and eka-silicon (→ Germanium, discovered 1886). His predictions of their atomic masses, densities, and chemical properties were remarkably accurate — vindicated within his lifetime. This was a spectacular success of systematic classification and is why Mendeleev's periodic table was accepted globally.
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