Class 12 Chemistry Chapter 01: Solutions 6: Molar Mass Determination Medium Level 16

किसी अवियोजित विलेय के (2.5,g) को (100,g) विलायक में घोलने पर क्वथनांक उन्नयन (0.13,K) है। यदि \(K_b=0.52,K,kg,mol^{-1}\) हो, तो विलेय का मोलर द्रव्यमान क्या होगा?

Q: किसी अवियोजित विलेय के (2.5,g) को (100,g) विलायक में घोलने पर क्वथनांक उन्नयन (0.13,K) है। यदि (K b =0.52,K,kg,mol power -1 ) हो, तो विलेय का मोलर द्रव्यमान क्या होगा? / When (2.5,g) of a non-dissociated solute is dissolved in (100,g) solvent, the boiling point elevation is (0.13,K). If (K b =0.52,K,kg,mol power -1 ), what is the molar mass of the solute?

Correct Answer: C. (100,g,mol power -1 ). Explanation: चरण 1: ( T b =K bm ) से (m= 0.13 by 0.52 =0.25) है। चरण 2: (100,g=0.1,kg), इसलिए मोल (0.25 0.1=0.025) हैं। चरण 3: मोलर द्रव्यमान (= 2.5 by 0.025 =100,g,mol power -1 )। / Step 1: From ( T b =K bm ), (m= 0.13 by 0.52 =0.25). Step 2: (100,g=0.1,kg), so moles (=0.25 0.1=0.025). Step 3: Molar mass (= 2.5 by 0.025 =100,g,mol power -1 ).

Q: Which concept should I revise for this Chemistry MCQ?

From ( T b =K bm ), (m= 0.13 by 0.52 =0.25).

Q: What exam hint can help solve this Chemistry question?

Molar mass (= 2.5 by 0.025 =100,g,mol power -1 ). चरण 1: ( T b =K bm ) से (m= 0.13 by 0.52 =0.25) है। चरण 2: (100,g=0.1,kg), इसलिए मोल (0.25 0.1=0.025) हैं। चरण 3: मोलर द्रव्यमान (= 2.5 by 0.025 =100,g,mol power -1 )।

When (2.5,g) of a non-dissociated solute is dissolved in (100,g) solvent, the boiling point elevation is (0.13,K). If \(K_b=0.52,K,kg,mol^{-1}\), what is the molar mass of the solute?

Explanation opens after your attempt

Correct Answer

C. \(100,g,mol^{-1}\)

Step 1

Concept

From \(\Delta T_b=K_bm\), \(m=\frac{0.13}{0.52}=0.25\).

Step 2

Why this answer is correct

(100,g=0.1,kg), so moles \(=0.25\times0.1=0.025\).

Step 3

Exam Tip

Molar mass \(=\frac{2.5}{0.025}=100,g,mol^{-1}\). चरण 1: \(\Delta T_b=K_bm\) से \(m=\frac{0.13}{0.52}=0.25\) है। चरण 2: (100,g=0.1,kg), इसलिए मोल \(0.25\times0.1=0.025\) हैं। चरण 3: मोलर द्रव्यमान \(=\frac{2.5}{0.025}=100,g,mol^{-1}\)।

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Chemistry Answer, Explanation and Revision Hints

किसी अवियोजित विलेय के (2.5,g) को (100,g) विलायक में घोलने पर क्वथनांक उन्नयन (0.13,K) है। यदि \(K_b=0.52,K,kg,mol^{-1}\) हो, तो विलेय का मोलर द्रव्यमान क्या होगा? / When (2.5,g) of a non-dissociated solute is dissolved in (100,g) solvent, the boiling point elevation is (0.13,K). If \(K_b=0.52,K,kg,mol^{-1}\), what is the molar mass of the solute?

Correct Answer: C. \(100,g,mol^{-1}\). Explanation: चरण 1: \(\Delta T_b=K_bm\) से \(m=\frac{0.13}{0.52}=0.25\) है। चरण 2: (100,g=0.1,kg), इसलिए मोल \(0.25\times0.1=0.025\) हैं। चरण 3: मोलर द्रव्यमान \(=\frac{2.5}{0.025}=100,g,mol^{-1}\)। / Step 1: From \(\Delta T_b=K_bm\), \(m=\frac{0.13}{0.52}=0.25\). Step 2: (100,g=0.1,kg), so moles \(=0.25\times0.1=0.025\). Step 3: Molar mass \(=\frac{2.5}{0.025}=100,g,mol^{-1}\).

Which concept should I revise for this Chemistry MCQ?

From \(\Delta T_b=K_bm\), \(m=\frac{0.13}{0.52}=0.25\).

What exam hint can help solve this Chemistry question?

Concept

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