For the redox reaction,
Zn (s) + Cu2+ (0.1M) → Zn2+ (1M) + Cu (s)
taking place in a cell, E is 1.10 V. Ecell for the cell will be
2.14 V
1.80 V
0.82 V
1.07 V
Very dilute nitric acid reacts with zinc to form zinc nitrate and
ammonium nitrate
NO2
NO
N2O
A.
ammonium nitrate
Zinc reacts with very dilute nitric acid gives zinc nitrate and ammonium nitrate.
[ Zn + 2HNO3 → Zn(NO3)2 + 2H ] × 4
HNO3 + 8H → NH3 + 3H2O
4Zn + 10HNO3 → 4Zn(NO3)2 + NH4NO3 + 3H2O
Volume of CO3 obtained by the complete decomposition of 9.85 g BaCO3 is
2.24 L
1.12 L
0.84 L
0.56 L
The reduction potential of three metallic ions X, Y and Z correspondingly are +0.52,-303 and -1.18 V. The sequence of reducing capacity of these metals will be
Y >Z >X
X >Y >Z
X >Z >Y
Z >X >Y
For the reaction . Which of the following is correct?
Mn2+ | CO2 | H+ | |
5 | 2 | 4 | 10 |
Mn+ | CO2 | H+ | |
2 | 5 | 10 | 16 |
Mn2+ | C2O | CO2 | H+ |
6 | 8 | 16 | 18 |
Mn2+ | C2O | CO2 | H+ |
10 | 12 | 24 | 12 |
Acidic K2Cr2O7 reacting with H2S2 the oxidation number of chromium is changed
from +3 to +6
from+6 to +3
from +6 to +2
remains unchanged
The process of oxidation involve
loss of electron
gain of electron
loss of proton
loss of neutron