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Modern Periodic Table GK Questions & Answers

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The periodic classification of chemical elements and the elucidation of atomic architecture form the theoretical bedrock of chemical sciences. Early classifications evolved from Johann Wolfgang Döbereiner's Law of Triads in 1829 and John Newlands' Law of Octaves in 1865. In 1869, Russian chemist Dmitri Mendeleev formulated the Periodic Law, asserting that elemental properties are periodic functions of atomic weights, predicting undiscovered elements like gallium (eka-aluminium) and germanium (eka-silicon). The modern framework was established in 1913 by British physicist Henry Moseley, whose X-ray spectroscopy experiments demonstrated that atomic number—representing nuclear proton charge Z—rather than atomic weight, governs chemical periodicity. Quantum mechanical foundations advanced from Ernest Rutherford's nuclear model to Niels Bohr's quantized energy levels and James Chadwick's neutron discovery in 1932.

Modern atomic structure is defined by quantum mechanical principles and four quantum numbers: principal (n), azimuthal (l), magnetic (ml), and spin (ms). Electron orbital filling follows the Aufbau principle (increasing orbital energies), the Pauli exclusion principle (no two electrons possess identical sets of four quantum numbers), and Hund's rule of maximum multiplicity. The modern IUPAC periodic framework organizes 118 confirmed elements across seven horizontal periods and eighteen vertical columns categorized into s, p, d, and f electron configuration blocks. Periodic trends across a period reflect increasing effective nuclear charge (Zeff) with constant shielding, causing atomic radii to contract, while ionization enthalpy, electron gain enthalpy, and Pauling electronegativity values increase. Conversely, descending a group adds successive quantum shells, increasing shielding and atomic radii, which causes ionization enthalpy and electronegativity to decrease while metallic character increases.

Periodic principles determine material behaviors, from semiconductor doping in silicon and germanium across group 14 elements to the design of rare-earth permanent magnets and actinide nuclear fuels. In the UPSC Civil Services Examination (General Studies Prelims), SSC CGL, and State PSCs, atomic structure and periodic periodicity constitute a primary testing syllabus. Standard questions evaluate historical progressions from Mendeleev to Moseley, exceptions to periodic trends (such as the higher first ionization enthalpy of nitrogen over oxygen due to stable half-filled 2pÂł subshells), noble gas inertness, halogen electron affinities (chlorine exceeding fluorine due to lower interelectronic repulsions in the 3p orbital), and electron configurations governed by Aufbau and Pauli rules.

Key Concepts & Self-Assessment15 Key Facts

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#1
Mendeleev published the first periodic table in 1869 based on atomic masses, accurately forecasting properties of unknown elements like scandium and germanium.
#2
Henry Moseley established the Modern Periodic Law in 1913, proving properties of elements are periodic functions of their atomic numbers (Z).
#3
The modern periodic table contains 118 elements arranged into 7 periods and 18 groups classified into s, p, d, and f electron orbital blocks.
#4
Atomic radius decreases across a period from left to right due to increased effective nuclear charge, and increases down a group due to added electron shells.
#5
Electronegativity and Ionization Energy increase across a period from left to right and decrease down a group, making Fluorine the most electronegative element.
#6
Moseley's X-ray spectroscopy experiments demonstrated that the square root of the frequency of characteristic X-rays is directly proportional to the atomic number of the emitting metal target.
#7
Electron affinity measures energy released when an electron is added to an isolated gaseous atom, with Chlorine possessing the highest negative electron gain enthalpy in the periodic table.
#8
Group 1 elements (alkali metals) possess a single valence electron (ns1 configuration) and exhibit the lowest first ionization energies among all chemical elements.
#9
Transition elements in the d-block (Groups 3 to 12) feature progressively filled (n-1)d subshells, exhibiting variable oxidation states, catalytic properties, and colored coordination complexes.
#10
The f-block elements comprise 14 lanthanoids (4f filling, Cerium 58 to Lutetium 71) and 14 actinoids (5f filling, Thorium 90 to Lawrencium 103) located below the main table.
#11
Lanthanoid contraction refers to the steady decrease in atomic and ionic radii across the lanthanoid series due to poor shielding of outer electrons by diffuse 4f orbitals.
#12
Diagonal relationships occur between lighter elements of the second and third periods (such as Lithium-Magnesium and Beryllium-Aluminium) owing to similar charge-to-radius polarising ratios.
#13
Group 17 elements (halogens) require a single electron to achieve noble gas configurations, acting as powerful oxidizing agents whose reactivity decreases down the group.
#14
Group 18 elements (noble gases) possess completely filled valence shells (ns2 np6, except Helium 1s2), imparting exceptional chemical inertness and very high ionization enthalpies.
#15
Oganesson (element 118), synthesized through nuclear bombardment in 2002, is currently the heaviest verified element completing the seventh period of the IUPAC periodic table.

Subject Specialist Commentary

Analytical perspective & practical exam advice from the Master10 academic board

Educator's Insight
The modern periodic table arranges chemical elements so that their behaviors repeat in predictable patterns. Dmitri Mendeleev first grouped elements by atomic mass in 1869, famously leaving gaps for undiscovered elements. In 1913, Henry Moseley discovered that an element's true identity depends on its atomic number, or proton count, rather than mass. Today, all 118 known elements sit neatly in seven periods and eighteen groups across four orbital blocks, showing how electron structures drive chemical reactions.
In competitive exams like SSC and UPSC prelims, examiners frequently test periodic trends and their notable exceptions. Remember this simple rule: atomic radius shrinks from left to right across a period as positive nuclear pull tightens, but grows down a group. A classic trap question involves electronegativity versus electron affinity. Always remember that Fluorine is the most electronegative element, but Chlorine releases the most energy when capturing an electron.

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