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

यदि (2) ग्राम विलेय को (100) ग्राम जल में घोलने पर हिमांक में (0.186,K) की कमी आती है और जल के लिए \(K_f=1.86,K,kg,mol^{-1}\) है, तो विलेय का मोलर द्रव्यमान क्या होगा?

Q: यदि (2) ग्राम विलेय को (100) ग्राम जल में घोलने पर हिमांक में (0.186,K) की कमी आती है और जल के लिए (K f =1.86,K,kg,mol power -1 ) है, तो विलेय का मोलर द्रव्यमान क्या होगा? / If (2) g of solute dissolved in (100) g of water lowers the freezing point by (0.186,K) and (K f =1.86,K,kg,mol power -1 ) for water, what is the molar mass of the solute?

Correct Answer: B. (200,g,mol power -1 ). Explanation: चरण 1: (M= K f w 2 1000 by T f w 1 ) लगाएँ। चरण 2: (M= 1.86 2 1000 by 0.186 100 =200,g,mol power -1 )। चरण 3: विलायक का द्रव्यमान ग्राम में हो तो (1000) गुणक लगाना न भूलें। / Step 1: Use (M= K f w 2 1000 by T f w 1 ). Step 2: (M= 1.86 2 1000 by 0.186 100 =200,g,mol power -1 ). Step 3: When solvent mass is in grams, do not forget the factor (1000).

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

Use (M= K f w 2 1000 by T f w 1 ).

If (2) g of solute dissolved in (100) g of water lowers the freezing point by (0.186,K) and \(K_f=1.86,K,kg,mol^{-1}\) for water, what is the molar mass of the solute?

Explanation opens after your attempt

Correct Answer

B. \(200,g,mol^{-1}\)

Step 1

Concept

Use \(M=\frac{K_f w_2 1000}{\Delta T_f w_1}\).

Step 2

Why this answer is correct

\(M=\frac{1.86\times2\times1000}{0.186\times100}=200,g,mol^{-1}\).

Step 3

Exam Tip

When solvent mass is in grams, do not forget the factor (1000). चरण 1: \(M=\frac{K_f w_2 1000}{\Delta T_f w_1}\) लगाएँ। चरण 2: \(M=\frac{1.86\times2\times1000}{0.186\times100}=200,g,mol^{-1}\)। चरण 3: विलायक का द्रव्यमान ग्राम में हो तो (1000) गुणक लगाना न भूलें।

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Chemistry Answer, Explanation and Revision Hints

यदि (2) ग्राम विलेय को (100) ग्राम जल में घोलने पर हिमांक में (0.186,K) की कमी आती है और जल के लिए \(K_f=1.86,K,kg,mol^{-1}\) है, तो विलेय का मोलर द्रव्यमान क्या होगा? / If (2) g of solute dissolved in (100) g of water lowers the freezing point by (0.186,K) and \(K_f=1.86,K,kg,mol^{-1}\) for water, what is the molar mass of the solute?

Correct Answer: B. \(200,g,mol^{-1}\). Explanation: चरण 1: \(M=\frac{K_f w_2 1000}{\Delta T_f w_1}\) लगाएँ। चरण 2: \(M=\frac{1.86\times2\times1000}{0.186\times100}=200,g,mol^{-1}\)। चरण 3: विलायक का द्रव्यमान ग्राम में हो तो (1000) गुणक लगाना न भूलें। / Step 1: Use \(M=\frac{K_f w_2 1000}{\Delta T_f w_1}\). Step 2: \(M=\frac{1.86\times2\times1000}{0.186\times100}=200,g,mol^{-1}\). Step 3: When solvent mass is in grams, do not forget the factor (1000).

Which concept should I revise for this Chemistry MCQ?

Use \(M=\frac{K_f w_2 1000}{\Delta T_f w_1}\).

What exam hint can help solve this Chemistry question?

Concept

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