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

किसी अविद्युत् विलेय के (4.5) ग्राम को (250) ग्राम जल में घोलने पर हिमांक अवनमन (0.372,K) है। \(K_f=1.86,K,kg,mol^{-1}\) होने पर मोलर द्रव्यमान कितना होगा?

Q: किसी अविद्युत् विलेय के (4.5) ग्राम को (250) ग्राम जल में घोलने पर हिमांक अवनमन (0.372,K) है। (K f =1.86,K,kg,mol power -1 ) होने पर मोलर द्रव्यमान कितना होगा? / When (4.5) g of a nonelectrolyte is dissolved in (250) g water, the freezing point depression is (0.372,K). If (K f =1.86,K,kg,mol power -1 ), what is the molar mass?

Correct Answer: B. (90,g,mol power -1 ). Explanation: चरण 1: सूत्र (M= K fw 2 1000 by T fw 1 ) है। चरण 2: (M= 1.86 4.5 1000 by 0.372 250 =90,g,mol power -1 )। चरण 3: संख्यात्मक प्रश्न में (w 1 ) और (w 2 ) को उलटना नहीं है। / Step 1: The formula is (M= K fw 2 1000 by T fw 1 ). Step 2: (M= 1.86 4.5 1000 by 0.372 250 =90,g,mol power -1 ). Step 3: Do not interchange (w 1 ) and (w 2 ) in numerical problems.

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

The formula is (M= K fw 2 1000 by T fw 1 ).

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

Do not interchange (w 1 ) and (w 2 ) in numerical problems. चरण 1: सूत्र (M= K fw 2 1000 by T fw 1 ) है। चरण 2: (M= 1.86 4.5 1000 by 0.372 250 =90,g,mol power -1 )। चरण 3: संख्यात्मक प्रश्न में (w 1 ) और (w 2 ) को उलटना नहीं है।

When (4.5) g of a nonelectrolyte is dissolved in (250) g water, the freezing point depression is (0.372,K). If \(K_f=1.86,K,kg,mol^{-1}\), what is the molar mass?

Explanation opens after your attempt

Correct Answer

B. \(90,g,mol^{-1}\)

Step 1

Concept

The formula is \(M=\frac{K_fw_2\times1000}{\Delta T_fw_1}\).

Step 2

Why this answer is correct

\(M=\frac{1.86\times4.5\times1000}{0.372\times250}=90,g,mol^{-1}\).

Step 3

Exam Tip

Do not interchange \(w_1\) and \(w_2\) in numerical problems. चरण 1: सूत्र \(M=\frac{K_fw_2\times1000}{\Delta T_fw_1}\) है। चरण 2: \(M=\frac{1.86\times4.5\times1000}{0.372\times250}=90,g,mol^{-1}\)। चरण 3: संख्यात्मक प्रश्न में \(w_1\) और \(w_2\) को उलटना नहीं है।

Question me issue ya doubt hai?

Answer, explanation, typing mistake ya suggestion directly hamari team ko bhejein. 📱Helpline (Call / WhatsApp): +91 7272824365

Chemistry Answer, Explanation and Revision Hints

किसी अविद्युत् विलेय के (4.5) ग्राम को (250) ग्राम जल में घोलने पर हिमांक अवनमन (0.372,K) है। \(K_f=1.86,K,kg,mol^{-1}\) होने पर मोलर द्रव्यमान कितना होगा? / When (4.5) g of a nonelectrolyte is dissolved in (250) g water, the freezing point depression is (0.372,K). If \(K_f=1.86,K,kg,mol^{-1}\), what is the molar mass?

Correct Answer: B. \(90,g,mol^{-1}\). Explanation: चरण 1: सूत्र \(M=\frac{K_fw_2\times1000}{\Delta T_fw_1}\) है। चरण 2: \(M=\frac{1.86\times4.5\times1000}{0.372\times250}=90,g,mol^{-1}\)। चरण 3: संख्यात्मक प्रश्न में \(w_1\) और \(w_2\) को उलटना नहीं है। / Step 1: The formula is \(M=\frac{K_fw_2\times1000}{\Delta T_fw_1}\). Step 2: \(M=\frac{1.86\times4.5\times1000}{0.372\times250}=90,g,mol^{-1}\). Step 3: Do not interchange \(w_1\) and \(w_2\) in numerical problems.

Which concept should I revise for this Chemistry MCQ?

The formula is \(M=\frac{K_fw_2\times1000}{\Delta T_fw_1}\).

What exam hint can help solve this Chemistry question?

Concept

Why this answer is correct

Exam Tip

Question me issue ya doubt hai?

Related Chemistry Questions

Related Chemistry Learning Links

Chemistry Subject

Chapter 01: Solutions Quiz

Search Similar MCQs

Daily Challenge

Chemistry Answer, Explanation and Revision Hints

Concept

Why this answer is correct

Exam Tip

Question me issue ya doubt hai?

Related Chemistry Questions

Related Chemistry Learning Links

Chemistry Subject

Chapter 01: Solutions Quiz

Search Similar MCQs

Daily Challenge

Chemistry Answer, Explanation and Revision Hints

Login to view answers