Q.Be resembles in properties with which of the following?
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Diagonal Relationship: Why Lithium Acts Like Magnesium
You know the periodic table as rows and columns. Elements in the same group share similar valence electron configurations, so they behave alike. Sodium and potassium are both reactive metals that form +1 ions. That much is straightforward.
But here is the surprise: lithium, the first element of Group 1, is far more similar to magnesium (Group 2) than it is to its own group-mate sodium. Drop a piece of lithium into water — it fizzes slowly. Drop sodium — it races across the surface, sometimes catching fire. Lithium's behaviour is closer to magnesium's: both react slowly with water, both form nitrides when heated in nitrogen, both give carbonates that decompose on heating.
This unexpected kinship is the diagonal relationship.
The Intuition: A Balancing Act
Imagine two properties that pull in opposite directions as you move across the periodic table.
- Going down a group: Atomic size increases, so the charge-to-size ratio (often called ionic potential, ϕ=radiuscharge) decreases. The element becomes more metallic, more reactive.
- Going right across a period: Atomic size decreases, and charge increases, so the charge-to-size ratio increases. The element becomes less metallic, more covalent in its bonding.
Now move diagonally: one step down and one step right. The increase in size (down) is roughly compensated by the increase in charge (right). The charge-to-size ratio stays nearly the same.
Charge-to-size ratio ϕ=rZ (for ions) or rZeff (for atoms) is the key. Two elements with similar ϕ values will polarise nearby electrons to a similar extent, leading to similar chemical behaviour.
Lithium (Li+, radius ~76 pm) and magnesium (Mg2+, radius ~72 pm) have almost identical charge-to-size ratios. So does beryllium (Be2+, ~31 pm) and aluminium (Al3+, ~53 pm). The numbers are not exactly equal, but they are close enough to produce striking parallels.
The Precise Statement
Diagonal relationship: The first element of a group in the s- and p-blocks shows a marked similarity in properties with the second element of the next group — the element diagonally below and to the right.
The most important pairs are:
| Pair | Groups |
|---|---|
| Li – Mg | 1 and 2 |
| Be – Al | 2 and 13 |
| B – Si | 13 and 14 |
(You may also see C–P mentioned, but the similarity is weaker and rarely tested.)
Concrete Similarities: Li and Mg
Let's make this real with exam-relevant examples.
1. Reaction with nitrogen. Both lithium and magnesium burn in nitrogen to form nitrides.
6Li+N2→2Li3N
3Mg+N2→Mg3N2
Sodium and potassium do not form stable nitrides.
2. Carbonate decomposition. Lithium carbonate and magnesium carbonate both decompose on heating to the oxide and CO2.
Li2CO3ΔLi2O+CO2
MgCO3ΔMgO+CO2
Other alkali metal carbonates (Na2CO3, K2CO3) are thermally stable — they do not decompose even at red heat.
3. Solubility of fluorides and phosphates. LiF and MgF2 are both sparingly soluble in water. Li3PO4 and Mg3(PO4)2 are also insoluble. The corresponding sodium and potassium salts are freely soluble.
4. Hydroxide behaviour. LiOH is a weaker base than NaOH or KOH. Mg(OH)2 is a weak base too. Both are less soluble than the heavier alkali hydroxides.
5. Formation of organometallics. Both lithium and magnesium form alkyl and aryl compounds (organolithium reagents and Grignard reagents) that are used extensively in organic synthesis.
Be–Al Similarities
Beryllium and aluminium are another classic pair.
- Both are amphoteric — their oxides and hydroxides dissolve in both acids and bases.
- Both form covalent compounds (BeCl2 is covalent, AlCl3 is covalent in the anhydrous state).
- Both give carbides that produce methane on hydrolysis: Be2C + 4H2O → 2Be(OH)2 + CH4; Al4C3 + 12H2O → 4Al(OH)3 + 3CH4.
- Both are rendered passive by concentrated nitric acid. …
Beryllium (Group 2) shows a diagonal relationship with aluminium (Group 13) due to similar size and charge density, resulting in c …
Be shows a diagonal relationship with Al due to similar ionic size/charge density.
Beryllium (2nd period, Group 2) and aluminium (3rd period, Group 13) lie diagonally adjacent in the periodic table and have comparable charge-to-size ratio (polarizing power), leading to similar properties: both form amphoteric oxides (BeO, Al2O3), both hydroxides are amphoteric, both chlorides are …
- CBSE 2025Set ANNUAL1 markMCQQ.The diagonal partner of element B is(a) Li(b) Al(c) Mg(d) Si
›Reveal solutionSolution
Diagonal relationship: B (period 2, group 13) pairs with Si (period 3, group 14).
Certain second-period elements resemble the element diagonally below-right of them in the third period, because their similar charge density (ionic charge/size ratio) gives them comparable polarising power and bonding character. The classic diagonal pairs are:
- Li ↔ Mg
- Be ↔ Al
- B ↔ Si …
- CBSE 2024Set ANNUAL1 markMCQQ.Be resembles in properties with which of the following?(a) Zn(b) Al(c) Li(d) Ra
›Reveal solutionSolution
Be shows a diagonal relationship with Al due to similar ionic size/charge density.
Beryllium (2nd period, Group 2) and aluminium (3rd period, Group 13) lie diagonally adjacent in the periodic table and have comparable charge-to-size ratio (polarizing power), leading to similar properties: both form amphoteric oxides (BeO, Al2O3), both hydroxides are amphoteric, both chlorides are …
- CBSE 2024Set sz1 markMCQQ.Select the correct one: Aluminium is diagonally related to:(a) Li(b) Be(c) C(d) B
›Reveal solutionSolution
Aluminium is diagonally related to beryllium because both have similar size and charge/radius ratio, giving them similar chemical behaviour despite being in different groups.
The diagonal relationship is observed between certain period-2 elements and the period-3 element diagonally below and to their right: Li-Mg, Be-Al, and B-Si are the classic three pairs. This happens because moving diagonally, the increase in size and decrease in ionization energy going down a group is roughly compensated by the reverse trend going across a period, so the two diagonal elements end up with comparable charge density (charge/size ratio) and hence similar chemistry.
…
- CBSE 2022Set TERM11 markMCQQ.Which element will show diagonal relationship with Lithium (Li) ?(a) Mg(b) Na(c) Al(d) Ca
›Reveal solutionSolution
The diagonal relationship pairs a Period-2 element with the Period-3 element diagonally below-right of it, because their similar charge density gives similar chemistry -- Li pairs with Mg.
The diagonal relationship is a periodic-table pattern where certain second-period elements resemble the third-period element diagonally adjacent to them (one period down, one group right), because they have comparable ionic size and charge/size ratio despite being in different groups.
The classic examples are: Li (Group 1) resembles Mg (Group 2); Be (Group 2) resembles Al (Group 13); B (Group 13) resembles Si (Group 14).
…
- CBSE 2020Set ANNUAL1 markMCQQ.Beryllium exhibits diagonal relationship with(a) Boron(b) Aluminium(c) Magnesium(d) Silicon
›Reveal solutionSolution
Beryllium's diagonal relationship is with aluminium, a classic example of the diagonal relationship seen in the periodic table.
Certain elements of the second period show marked similarities with elements of the third period that lie diagonally below and to their right — this is called the diagonal relationship. It arises because both elements end up with a comparable charge/radius ratio (polarising power), even though they belong to different groups.
…
- CBSE 2018Set ANNUAL1 markMCQQ.(g) Beryllium shows diagonal relationship with(i) Na(ii) B(iii) Al(iv) K
›Reveal solutionSolution
Be (top-left) and Al (one period down, one group right) are diagonal neighbours with similar charge/size ratio, giving them the classic Be-Al diagonal relationship.
Step 1: The diagonal relationship occurs between a period-2 element and the period-3 element diagonally below-right of it, because their ionic sizes and charge densities happen to be comparable (size increases down a group but decreases across a period, so the two effects roughly cancel diagonally). …
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