1 mole of `._(7)^(14)N^(3-)` ions contains:

1 mol of ._(7)^(14)N^(-3) ions contains:

1.0L of solution which was in equilibrium with solid mixture of AgCI and Ag_(2)CrO_(4) was found to contain 1 xx 10^(-4) moles of Ag^(+) ions, 1.0 xx 10^(-6) moles of CI^(-) ions and 8.0 xx 10^(-4) moles of CrO_(4)^(2-) ions. At constant volume, Ag^(+) ions are added slowly to the above mixture till 8.0 xx 10^(-7) moles of AgCI got precipitated. How many moles of Ag_(2)CrO_(4) were also precipitated ? Given your answer after multiplying with 10^(6) .

Calculate the no of protons, neutron and electron in ._(7)^(14)N^(3-) ion

The nuclide which disintergrates by emitting a beta -particles to form ._(7)^(14)N contains

The charge required for the reduction of 1 mole of Cr_(2)O_(7)^(2-) ions to Cr^(3+) is

How many coulombs are required for the following reductions ? (i) 1 mole of Ag^(+) ions to Ag (ii) 1 mole of Cu^(2+) ions to Cu (iii) 1 mole of MnO_(4)^(-) ions to MnO_(4)^(2-)

Number of moles of electrons take up when 1 mole of NO_(3)^(-) ions is reduced to 1 mole of NH_(2)OH is: