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A metal complex with a formula mathrmMCell_4cdot3mathrmNH_3 is involved in mathfraksp^3mathfrakd^2 hybridisation. It upon reaction with excess of mathrmAgNO_3 solution gives 'x' moles of AgCl. Consider 'x' is equal to the number of lone pairs of electron present in central atom of mathrmBrF_5 . Then the number of geometrical isomers exhibited by the complex is

Numerical Answer Type:
Enter a numerical value Answer: 1.9 to 2.1 +4 marks

Solution & Explanation

### Core Logic 1. Determine the value of x: - The central Bromine atom in BrF_5 has 7 valence electrons. It forms 5 single bonds with fluorine, leaving 2 remaining electrons. - Therefore, the number of lone pairs on Br in BrF_5 is exactly 1 implies x = 1. 2. Formulate the coordination sphere formula: - Since x = 1, the complex yields 1 mole of AgCl precipitate upon reaction with excess AgNO_3, meaning exactly 1 chloride ion sits outside the coordination sphere as an counter-ion. - Rearranging the formula components around an octahedral coordination number of 6 gives the complex configuration: [M(NH_3)_3Cl_3]Cl ### Step 1: Isomer Analysis
Facial and meridional isomers representation for Q48
Facial and meridional isomers representation for Q48
An octahedral complex of the type [Ma_3b_3] exhibits exactly **2 geometrical isomers**: - **Facial (fac)** isomer - **Meridional (mer)** isomer ### Pattern Recognition For [Ma_3b_3] octahedral coordination types, don't waste time looking for optical active configurations. It splits cleanly into exactly two classical geometric forms: facial (all three identical ligands adjacent on a face) and meridional (ligands trace a meridian plane). ### Evaluation Rubric / Model Answer null ### Chapter Mix Class 12 Chemistry: Coordination Compounds Class 11 Chemistry: Chemical Bonding and Molecular Structure

Reference Study Guides

More Coordination Compounds Previous-Year Questions — Page 2

Q 2025 Magnetic Properties and Hybridization of Complexes
Identify the diamagnetic octahedral complex ions from below; A. [mathrmMn(mathrmCN)_6]^3- B. [mathrmCo(mathrmNH_3)_6]^3+ C. [mathrmFe(mathrmCN)_6]^4- D. [mathrmCo(mathrmH_2mathrmO)_3mathrmF_3] Choose the correct answer from the options given below :
  • A. B and D Only
  • B. A and D Only
  • C. A and C Only
  • D. B and C Only

Solution

### Related Formula According to Crystal Field Theory (CFT): - A complex is diamagnetic if all electrons are paired up (unpaired electrons, n=0). - Strong field ligands (like mathrmCN^-, mathrmNH_3 with Co^3+) cause pairing of electrons if Delta_o > P. {{SOLUTION_IMG}} ### Core Logic Analyze each complex: - **A. [mathrmMn(mathrmCN)_6]^3-**: - Mn^3+ has d^4 configuration. - Strong field ligand mathrmCN^- causes pairing in t_2g orbitals: t_2g^4 e_g^0. - There are 2 unpaired electrons rightarrow *Paramagnetic*. - **B. [mathrmCo(mathrmNH_3)_6]^3+**: - Co^3+ has d^6 configuration. - mathrmNH_3 acts as strong field ligand with Co^3+, causing complete pairing: t_2g^6 e_g^0. - No unpaired electrons rightarrow *Diamagnetic*. ### Step 1: Analyze complexes C and D - **C. [mathrmFe(mathrmCN)_6]^4-**: - Fe^2+ has d^6 configuration. - Strong field ligand mathrmCN^- causes complete pairing: t_2g^6 e_g^0. - No unpaired electrons rightarrow *Diamagnetic*. - **D. [mathrmCo(mathrmH_2mathrmO)_3mathrmF_3]**: - Co^3+ has d^6 configuration. - Weak field ligands (mathrmF^-, mathrmH_2mathrmO) do not cause pairing: t_2g^4 e_g^2. - There are 4 unpaired electrons rightarrow *Paramagnetic*. ### Step 2: Conclusion Only complexes B and C are diamagnetic, matching Option (4). ### Pattern Recognition Octahedral d^6 ions (such as Co^3+ or Fe^2+) coupled with strong-field ligands are exceptionally stable and always form low-spin, fully paired, diamagnetic complexes (t_2g^6 e_g^0). ### Evaluation Rubric / Model Answer null ### Chapter Mix Class 12 Chemistry: Coordination Compounds
Q44 2025 Isomerism in Coordination Compounds
An octahedral complex having molecular composition mathrmCo cdot 5NH_3 cdot Cl cdot SO_4 has two isomers A and B. The solution of A gives a white precipitate with mathrmAgNO_3 solution and the solution of B gives a white precipitate with mathrmBaCl_2 solution. The type of isomerism exhibited by the complex is:
  • A. textCoordination isomerism
  • B. textLinkage isomerism
  • C. textIonisation isomerism
  • D. textGeometrical isomerism

Solution

### Core Logic The complex molecular composition is mathrmCo cdot 5NH_3 cdot Cl cdot SO_4. Let's formulate the formulas for the two isomers: 1. **Isomer A**: Gives a white precipitate of mathrmAgCl when reacted with mathrmAgNO_3. This means free chloride ions (mathrmCl^-) are present in the outer ionization sphere: [mathrmCo(NH_3)_5(SO_4)]mathrmCl 2. **Isomer B**: Gives a white precipitate of mathrmBaSO_4 when reacted with mathrmBaCl_2. This means free sulphate ions (mathrmSO_4^2-) are present in the outer ionization sphere: [mathrmCo(NH_3)_5Cl]mathrmSO_4 Since these two isomers yield different ions in solution due to exchange of ligands between the coordination sphere and the ionization sphere, they exhibit **Ionisation isomerism**. ### Pattern Recognition Test for ions: - mathrmAgNO_3 PPT rightarrow free halide ion in outer sphere. - mathrmBaCl_2 PPT rightarrow free sulphate ion in outer sphere. - Outer-inner ion exchanges are always called **Ionisation isomerism**. ### Evaluation Rubric / Model Answer null ### Chapter Mix Class 12 Chemistry: Coordination Compounds
Q50 2025 Valence Bond Theory
The number of paramagnetic complexes among [mathrmFeF_6]^3-, [mathrmFe(CN)_6]^3-, [mathrmMn(CN)_6]^3-, [mathrmCo(C_2mathrmO_4)_3]^3-, [mathrmMnCl_6]^3- and [mathrmCoF_6]^3-, which involve mathrmd^2mathrmsp^3 hybridization is ______.
Numerical Answer. Answer: 2 to 2

Solution

### Core Logic Let's systematically analyze the coordination, ligand strength, hybridization, and magnetic behavior of each complex: 1. **[mathrmFeF_6]^3-**: - mathrmFe^3+ (3mathrmd^5). mathrmF^- is a weak-field ligand (WFL). No pairing occurs. - Outer-orbital complex: mathrmsp^3mathrmd^2. - Paramagnetic (5 unpaired electrons). 2. **[mathrmFe(CN)_6]^3-**: - mathrmFe^3+ (3mathrmd^5). mathrmCN^- is a strong-field ligand (SFL). Pairing occurs. - Config: mathrmt_2mathrmg^5\ mathrme_mathrmg^0 (one unpaired electron remains implies **Paramagnetic**). - Inner-orbital complex: **mathrmd^2mathrmsp^3**. 3. **[mathrmMn(CN)_6]^3-**: - mathrmMn^3+ (3mathrmd^4). mathrmCN^- is an SFL. Pairing occurs. - Config: mathrmt_2mathrmg^4\ mathrme_mathrmg^0 (two unpaired electrons remain implies **Paramagnetic**). - Inner-orbital complex: **mathrmd^2mathrmsp^3**. 4. **[mathrmCo(C_2mathrmO_4)_3]^3-**: - mathrmCo^3+ (3mathrmd^6). Oxalate is a chelating SFL here. Full pairing occurs. - Config: mathrmt_2mathrmg^6\ mathrme_mathrmg^0 (zero unpaired electrons implies Diamagnetic). - Inner-orbital complex: mathrmd^2mathrmsp^3. 5. **[mathrmMnCl_6]^3-**: - mathrmMn^3+ (3mathrmd^4). mathrmCl^- is a WFL. No pairing occurs. - Outer-orbital complex: mathrmsp^3mathrmd^2. - Paramagnetic (4 unpaired electrons). 6. **[mathrmCoF_6]^3-**: - mathrmCo^3+ (3mathrmd^6). mathrmF^- is a WFL. No pairing occurs. - Outer-orbital complex: mathrmsp^3mathrmd^2. - Paramagnetic (4 unpaired electrons). Thus, only [mathrmFe(CN)_6]^3- and [mathrmMn(CN)_6]^3- are both **paramagnetic** and involve **mathrmd^2mathrmsp^3** hybridization. ### Pattern Recognition VBT shortcut: - Strong-field ligand complexes with d^4text--d^6 central ions form inner-orbital mathrmd^2mathrmsp^3 complexes. - Of those, check the number of electrons: d^6 is completely paired (diamagnetic), but d^5 ([Fe(CN)_6]^3-) and d^4 ([Mn(CN)_6]^3-) both leave unpaired electrons in the t_2g orbitals (paramagnetic). ### Evaluation Rubric / Model Answer Detailed individual classification of each complex based on VBT/CFT to yield the correct count of 2 inner-orbital paramagnetic complexes. ### Chapter Mix Class 12 Chemistry: Coordination Compounds
Q31 2025 Isomerism in Coordination Compounds
Given below are two statements: Statement I: A homoleptic octahedral complex, formed using monodentate ligands, will not show stereoisomerism. Statement II: cis- and trans-platin are heteroleptic complexes of Pd. In the light of the above statements, choose the correct answer from the options given below:
  • A. textBoth Statement I and Statement II are false.
  • B. textStatement I is false but Statement II is true.
  • C. textBoth Statement I and Statement II are true.
  • D. textStatement I is true but Statement II is false.

Solution

### Core Logic Let us evaluate both statements individually: * **Statement I**: A homoleptic complex contains only one type of ligand. For an octahedral complex using monodentate ligands, the general formula is [Ma_6]. Since all coordination positions are populated identically by the exact same ligand, swapping spatial positions produces no structural difference, hence it cannot demonstrate geometrical or optical isomerism. **Statement I is true.**
Stereochemical representation of octahedral homoleptic system
Stereochemical representation of octahedral homoleptic system
* **Statement II**: Cis-platin and trans-platin have the chemical formula [Pt(NH_3)_2Cl_2]. While they are indeed heteroleptic complexes, they are coordination coordinates of **Platinum (Pt)**, not Palladium (Pd). **Statement II is false.**
Stereochemical representation of octahedral homoleptic system
Stereochemical representation of octahedral homoleptic system
### Pattern Recognition Always read element symbols with immense focus in coordination chemistry. Changing a single letter from Pt to Pd creates a false assertion trap designed to test parsing alertness rather than chemical difficulty. ### Evaluation Rubric / Model Answer null ### Chapter Mix Class 12 Chemistry: Coordination Compounds
Q41 2025 Valence Bond Theory
Determine the total number of chemical species from the list below that are specifically involved in an sp^3d^2 hybridization state: [textCo(NH_3)_6]^3+, text SF_6, \, [textCrF_6]^3-, \, [textCoF_6]^3-, \, [textMn(CN)_6]^3-, text and [textMnCl_6]^3-
  • A. 5
  • B. 6
  • C. 4
  • D. 3

Solution

### Core Logic Let us systematically determine the hybridization configuration of each species: 1. **[textCo(NH_3)_6]^3+**: textCo^3+ has a 3d^6 configuration. Ammonia (textNH_3) acts as a Strong Field Ligand (SFL), forcing the pairing of 3d electrons. This leaves two internal 3d orbitals vacant, leading to an **inner orbital** d^2sp^3 hybridization. 2. **textSF_6**: Central sulfur has 6 valence electrons, forming 6 single bonds. Steric number = 6, resulting in a regular outer octahedral **sp^3d^2** hybridization. 3. **[textCrF_6]^3-**: textCr^3+ has a 3d^3 configuration. The t_2g subshell holds 3 unpaired electrons, leaving the two e_g orbitals empty regardless of ligand field strength. This results in a d^2sp^3 hybridization. 4. **[textCoF_6]^3-**: textCo^3+ has a 3d^6 configuration. Fluoride (F^-) is a Weak Field Ligand (WFL) and cannot induce spin pairing. Thus, the complex utilizes outer shell 4d orbitals, yielding an **outer orbital** **sp^3d^2** configuration. 5. **[textMn(CN)_6]^3-**: textMn^3+ has a 3d^4 configuration. Cyanide (textCN^-) is a Strong Field Ligand (SFL), inducing pairing to leave two 3d slots vacant, giving a d^2sp^3 hybridization. 6. **[textMnCl_6]^3-**: textMn^3+ has a 3d^4 configuration. Chloride (textCl^-) is a Weak Field Ligand (WFL) and cannot cause pairing. It utilizes the outer 4d shell, resulting in an **outer orbital** **sp^3d^2** hybridization. Counting the outer-orbital sp^3d^2 species: textSF_6, [textCoF_6]^3-, and [textMnCl_6]^3-. Total count = 3. ### Pattern Recognition Outer orbital complexes (sp^3d^2) require weak field ligands (like F^-, Cl^-) paired with metal configurations where internal d-orbitals cannot be cleared by pairing (d^4, d^5, d^6). SF_6 is a primary group molecule that always uses outer-shell d-orbitals. This brings our total to 3. ### Evaluation Rubric / Model Answer null ### Chapter Mix Class 12 Chemistry: Coordination Compounds Class 11 Chemistry: Chemical Bonding and Molecular Structure

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