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

किसी (AB) प्रकार के विद्युत् अपघट्य के लिए (i=1.5) मिला। यदि सामान्य मोलर द्रव्यमान \(80,g,mol^{-1}\) है, तो प्रेक्षित मोलर द्रव्यमान और वियोजन की डिग्री क्रमशः क्या होंगे?

Q: किसी (AB) प्रकार के विद्युत् अपघट्य के लिए (i=1.5) मिला। यदि सामान्य मोलर द्रव्यमान (80,g,mol power -1 ) है, तो प्रेक्षित मोलर द्रव्यमान और वियोजन की डिग्री क्रमशः क्या होंगे? / For an (AB) type electrolyte, (i=1.5) is obtained. If its normal molar mass is (80,g,mol power -1 ), what are the observed molar mass and degree of dissociation respectively?

Correct Answer: B. (53.3,g,mol power -1 ), (50%). Explanation: चरण 1: प्रेक्षित मोलर द्रव्यमान (M observed = 80 by 1.5 =53.3,g,mol power -1 )। चरण 2: (AB) के लिए (i=1+ ), इसलिए ( =0.5), यानी (50%)। चरण 3: संयुक्त प्रश्नों में मोलर द्रव्यमान और वियोजन को अलग-अलग निकालें। / Step 1: Observed molar mass (M observed = 80 by 1.5 =53.3,g,mol power -1 ). Step 2: For (AB), (i=1+ ), so ( =0.5), that is (50%). Step 3: In combined questions, calculate molar mass and dissociation separately.

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

Observed molar mass (M observed = 80 by 1.5 =53.3,g,mol power -1 ).

For an (AB) type electrolyte, (i=1.5) is obtained. If its normal molar mass is \(80,g,mol^{-1}\), what are the observed molar mass and degree of dissociation respectively?

Explanation opens after your attempt

Correct Answer

B. \(53.3,g,mol^{-1}\), (50%)

Step 1

Concept

\(Observed molar mass (M_{\)observed\(}=\frac{80}{1.5}=53.3,g,mol^{-1}).\)

Step 2

Why this answer is correct

For (AB), \(i=1+\alpha\), so \(\alpha=0.5\), that is (50%).

Step 3

Exam Tip

\(In combined questions, calculate molar mass and dissociation separately. चरण 1: प्रेक्षित मोलर द्रव्यमान (M_{\)observed}=\frac{80}{1.5}=53.3,g,mol^{-1})। चरण 2: (AB) के लिए \(i=1+\alpha\), इसलिए \(\alpha=0.5\), यानी (50%)। चरण 3: संयुक्त प्रश्नों में मोलर द्रव्यमान और वियोजन को अलग-अलग निकालें।

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Chemistry Answer, Explanation and Revision Hints

किसी (AB) प्रकार के विद्युत् अपघट्य के लिए (i=1.5) मिला। यदि सामान्य मोलर द्रव्यमान \(80,g,mol^{-1}\) है, तो प्रेक्षित मोलर द्रव्यमान और वियोजन की डिग्री क्रमशः क्या होंगे? / For an (AB) type electrolyte, (i=1.5) is obtained. If its normal molar mass is \(80,g,mol^{-1}\), what are the observed molar mass and degree of dissociation respectively?

\(Correct Answer: B. (53.3,g,mol^{-1}), (50%). Explanation: चरण 1: प्रेक्षित मोलर द्रव्यमान (M_{\)observed}=\frac{80}{1.5}=53.3,g,mol^{-1})। चरण 2: (AB) के लिए \(i=1+\alpha\), इसलिए \(\alpha=0.5\), यानी (50%)। चरण 3: संयुक्त प्रश्नों में मोलर द्रव्यमान और वियोजन को अलग-अलग निकालें। \(/ Step 1: Observed molar mass (M_{\)observed\(}=\frac{80}{1.5}=53.3,g,mol^{-1}). Step 2: For (AB), (i=1+\alpha), so (\alpha=0.5), that is (50%). Step 3: In combined questions, calculate molar mass and dissociation separately.\)

Which concept should I revise for this Chemistry MCQ?

\(Observed molar mass (M_{\)observed\(}=\frac{80}{1.5}=53.3,g,mol^{-1}).\)

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