Class 12 Chemistry Chapter 01: Solutions 6: Molar Mass Determination Hard Level 18

किसी (AB) प्रकार के लवण के (1.0,g) को (100,g) जल में घोलने पर \(\Delta T_f=0.372,K\) है। यदि \(K_f=1.86,K,kg,mol^{-1}\) और सामान्य मोलर द्रव्यमान \(100,g,mol^{-1}\) है, तो वियोजन की डिग्री क्या है?

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

Without dissociation, molality would be ( 1/100 by 0.1 =0.1,m).

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

For (AB), (i=1+ ), hence ( =1), or (100%). चरण 1: बिना वियोजन मोललता ( 1/100 by 0.1 =0.1,m) होती। चरण 2: अपेक्षित ( T f =1.86 0.1=0.186,K), पर प्रेक्षित (0.372,K) है, इसलिए (i=2)। चरण 3: (AB) के लिए (i=1+ ), अतः ( =1), यानी (100%)।

A (1.0,g) sample of an (AB) type salt dissolved in (100,g) water gives \(\Delta T_f=0.372,K\). If \(K_f=1.86,K,kg,mol^{-1}\) and normal molar mass is \(100,g,mol^{-1}\), what is the degree of dissociation?

Explanation opens after your attempt

Correct Answer

D. (100%)

Step 1

Concept

Without dissociation, molality would be \(\frac{1/100}{0.1}=0.1,m\).

Step 2

Why this answer is correct

Expected \(\Delta T_f=1.86\times0.1=0.186,K\), but observed is (0.372,K), so (i=2).

Step 3

Exam Tip

For (AB), \(i=1+\alpha\), hence \(\alpha=1\), or (100%). चरण 1: बिना वियोजन मोललता \(\frac{1/100}{0.1}=0.1,m\) होती। चरण 2: अपेक्षित \(\Delta T_f=1.86\times0.1=0.186,K\), पर प्रेक्षित (0.372,K) है, इसलिए (i=2)। चरण 3: (AB) के लिए \(i=1+\alpha\), अतः \(\alpha=1\), यानी (100%)।

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Chemistry Answer, Explanation and Revision Hints

किसी (AB) प्रकार के लवण के (1.0,g) को (100,g) जल में घोलने पर \(\Delta T_f=0.372,K\) है। यदि \(K_f=1.86,K,kg,mol^{-1}\) और सामान्य मोलर द्रव्यमान \(100,g,mol^{-1}\) है, तो वियोजन की डिग्री क्या है? / A (1.0,g) sample of an (AB) type salt dissolved in (100,g) water gives \(\Delta T_f=0.372,K\). If \(K_f=1.86,K,kg,mol^{-1}\) and normal molar mass is \(100,g,mol^{-1}\), what is the degree of dissociation?

Correct Answer: D. (100%). Explanation: चरण 1: बिना वियोजन मोललता \(\frac{1/100}{0.1}=0.1,m\) होती। चरण 2: अपेक्षित \(\Delta T_f=1.86\times0.1=0.186,K\), पर प्रेक्षित (0.372,K) है, इसलिए (i=2)। चरण 3: (AB) के लिए \(i=1+\alpha\), अतः \(\alpha=1\), यानी (100%)। / Step 1: Without dissociation, molality would be \(\frac{1/100}{0.1}=0.1,m\). Step 2: Expected \(\Delta T_f=1.86\times0.1=0.186,K\), but observed is (0.372,K), so (i=2). Step 3: For (AB), \(i=1+\alpha\), hence \(\alpha=1\), or (100%).

Which concept should I revise for this Chemistry MCQ?

Without dissociation, molality would be \(\frac{1/100}{0.1}=0.1,m\).

What exam hint can help solve this Chemistry question?

Concept

Why this answer is correct

Exam Tip

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