हिंदी
तमिलनाडु बोर्ड ऑफ सेकेंडरी एज्युकेशनएचएससी विज्ञान कक्षा १२

During electrolysis of molten sodium chloride, the time required to produce 0.1 mole of chlorine gas using a current of 3A is ___________.

Advertisements
Advertisements

प्रश्न

During electrolysis of molten sodium chloride, the time required to produce 0.1 mole of chlorine gas using a current of 3A is ___________.

विकल्प

  • 55 minutes

  • 107.2 minutes

  • 220 minutes

  • 330 minutes

MCQ
रिक्त स्थान भरें
Advertisements

उत्तर

During electrolysis of molten sodium chloride, the time required to produce 0.1 mole of chlorine gas using a current of 3A is 107.2 minutes.

Explanation:

m = ZIt ...(mass of 1 mole of Cl gas = 71)

t = `"m"/"ZI"` ....(∴ mass of 0.1 mole of Cl2 gas = 7.1 g mol−1)

= `(7.1)/(71/(2 xx 96500) xx 3)` \[\ce{(2Cl^- -> Cl2 + 2e^-)}\]

= `(2 xx 96500 xx 7.1)/(71 xx 3)`

= 6433.33 sec

= 107.2 min

shaalaa.com
Thermodynamics of Cell Reactions
  क्या इस प्रश्न या उत्तर में कोई त्रुटि है?
अध्याय 9: Electro Chemistry - Evaluation [पृष्ठ ६३]

APPEARS IN

सामाचीर कलवी Chemistry - Volume 1 and 2 [English] Class 12 TN Board
अध्याय 9 Electro Chemistry
Evaluation | Q 9. | पृष्ठ ६३

संबंधित प्रश्न

Consider the following half cell reactions:

\[\ce{Mn^{2+} + 2e^- -> Mn}\] E0 = –1.18 V

\[\ce{Mn^{2+} -> Mn^{2+} + e^-}\] E0 = –1.51 V

The E0 for the reaction \[\ce{3Mn^{2+} -> Mn + 2Mn^{3+}}\], and the possibility of the forward reaction are respectively.


The number of electrons delivered at the cathode during electrolysis by a current of 1A in 60 seconds is ____________.
(charge of electron = 1.6 × 10−19 C)


While charging lead storage battery


In \[\ce{H2 - O2}\] fuel cell the reaction occurs at cathode is:


For the cell reaction

\[\ce{2Fe^{3+}_{( aq)} + 2l^-_{( aq)} -> 2Fe^{2+}_{( aq)} + l2_{( aq)}}\]

\[\ce{E^0_{cell}}\] = at 298 K. The standard Gibbs energy (∆G°) of the cell reactions is:


A current of 1.608A is passed through 250 mL of 0.5 M solution of copper sulphate for 50 minutes. Calculate the strength of Cu2+ after electrolysis assuming volume to be constant and the current efficiency is 100%.


In fuel cell H2 and O2 react to produce electricity. In the process, H2 gas is oxidised at the anode and O2 at cathode. If 44.8 litre of H2 at 25°C and 1 atm pressure reacts in 10 minutes, what is average current produced? If the entire current is used for electro deposition of Cu from Cu2+, how many grams of deposited?


The same amount of electricity was passed through two separate electrolytic cells containing solutions of nickel nitrate and chromium nitrate respectively. If 2.935 g of Ni was deposited in the first cell. The amount of Cr deposited in the another cell?
Given: molar mass of Nickel and chromium are 58.74 and 52 gm−1 respectively.


Derive an expression for the Nernst equation.


Explain the function of H2 – O2 fuel cell.


Share
Notifications

Englishहिंदीमराठी


      Forgot password?
Use app×