Hard Chemistry Chapter 01: Solutions Class 12 Level 18

किसी कार्बनिक अम्ल का सामान्य मोलर द्रव्यमान \(60,g,mol^{-1}\) है। बेंजीन में प्रेक्षित मोलर द्रव्यमान \(96,g,mol^{-1}\) मिला। यदि संघ केवल द्वि-अणुक है, तो संघ की डिग्री क्या होगी?

Q: किसी कार्बनिक अम्ल का सामान्य मोलर द्रव्यमान (60,g,mol power -1 ) है। बेंजीन में प्रेक्षित मोलर द्रव्यमान (96,g,mol power -1 ) मिला। यदि संघ केवल द्वि-अणुक है, तो संघ की डिग्री क्या होगी? / The normal molar mass of an organic acid is (60,g,mol power -1 ). In benzene, the observed molar mass is (96,g,mol power -1 ). If association is only dimeric, what is the degree of association?

Correct Answer: C. (75%). Explanation: चरण 1: (i= 60 by 96 =0.625)। चरण 2: द्वि-अणुक संघ के लिए (i=1- by 2 ), इसलिए (0.625=1- by 2 ), अतः ( =0.75)। चरण 3: प्रेक्षित मोलर द्रव्यमान बढ़े तो संघ की गणना करें। / Step 1: (i= 60 by 96 =0.625). Step 2: For dimeric association, (i=1- by 2 ), so (0.625=1- by 2 ), giving ( =0.75). Step 3: When observed molar mass increases, calculate association.

The normal molar mass of an organic acid is \(60,g,mol^{-1}\). In benzene, the observed molar mass is \(96,g,mol^{-1}\). If association is only dimeric, what is the degree of association?

Explanation opens after your attempt

Correct Answer

C. (75%)

Step 1

Concept

\(i=\frac{60}{96}=0.625\).

Step 2

Why this answer is correct

For dimeric association, \(i=1-\frac{\alpha}{2}\), so \(0.625=1-\frac{\alpha}{2}\), giving \(\alpha=0.75\).

Step 3

Exam Tip

When observed molar mass increases, calculate association. चरण 1: \(i=\frac{60}{96}=0.625\)। चरण 2: द्वि-अणुक संघ के लिए \(i=1-\frac{\alpha}{2}\), इसलिए \(0.625=1-\frac{\alpha}{2}\), अतः \(\alpha=0.75\)। चरण 3: प्रेक्षित मोलर द्रव्यमान बढ़े तो संघ की गणना करें।

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किसी कार्बनिक अम्ल का सामान्य मोलर द्रव्यमान \(60,g,mol^{-1}\) है। बेंजीन में प्रेक्षित मोलर द्रव्यमान \(96,g,mol^{-1}\) मिला। यदि संघ केवल द्वि-अणुक है, तो संघ की डिग्री क्या होगी? / The normal molar mass of an organic acid is \(60,g,mol^{-1}\). In benzene, the observed molar mass is \(96,g,mol^{-1}\). If association is only dimeric, what is the degree of association?

Correct Answer: C. (75%). Explanation: चरण 1: \(i=\frac{60}{96}=0.625\)। चरण 2: द्वि-अणुक संघ के लिए \(i=1-\frac{\alpha}{2}\), इसलिए \(0.625=1-\frac{\alpha}{2}\), अतः \(\alpha=0.75\)। चरण 3: प्रेक्षित मोलर द्रव्यमान बढ़े तो संघ की गणना करें। / Step 1: \(i=\frac{60}{96}=0.625\). Step 2: For dimeric association, \(i=1-\frac{\alpha}{2}\), so \(0.625=1-\frac{\alpha}{2}\), giving \(\alpha=0.75\). Step 3: When observed molar mass increases, calculate association.

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\(i=\frac{60}{96}=0.625\).

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