Home
Class 12
CHEMISTRY
500 mL of 0.01 AgNO3 is mixed with 250 m...

500 mL of 0.01 `AgNO_3` is mixed with 250 ml each of NaBr and NaCl, each having molarity 0.02 M. Find equilibrium concentrtion of `Br^(-)` (moles/L). Given : `K_(sp)(AgBr)= 5 xx 10^(-13), K_(sp)(AgCl) =10^(-10)).`

Text Solution

Verified by Experts

The correct Answer is:
`2.49 xx 10^(-5)`
Promotional Banner

Topper's Solved these Questions

  • IONIC EQUILIBRUIM

    MOTION|Exercise Exercise -4 (Level -1)|19 Videos
  • IONIC EQUILIBRUIM

    MOTION|Exercise Exercise -4 (Level -II)|14 Videos
  • IONIC EQUILIBRUIM

    MOTION|Exercise Exercise -2 (Level -II)|31 Videos
  • HYDROCARBON

    MOTION|Exercise Exercise - 4 (Level-II)|15 Videos
  • ISOMERISM

    MOTION|Exercise Exercise 4|26 Videos

Similar Questions

Explore conceptually related problems

On addition of increasing amount of AgNO_3 to 0.1 M each of NaCl and NaBr in a solution, what % of Br^- ion gets precipitated when Cl^- ion starts precipitating? K_(sp)(AgCl)= 1.0 xx 10^(-10), K_(sp)(AgBr)=1xx10^(-13)

Calculate the simultaneous solubilities of AgSCN and AgBr . K_(sp) (AgSCN) = 1.0 xx 10^(-12), K_(sp) (AgBr) = 5.0 xx 10^(-13)

Predict whether or not AgCl will be precipitated from a solution which is 0.02 M in NaCl and 0.05 M in KAg(CN)_2 . Given K_("inst") (Ag(CN)_2^-) = 4.0 xx 10^(-19) M^(2) and K_(sp) (AgCl) =2.8 xx 10^(-10) M^(2) .

Calculate simultaneous solubility of AgCNS and AgBr in a solution of water. (K_(SP)of AgBr = 5xx10^(-13) and K_(SP)of AgCNS = 1xx10^(-12))

Equal volumes of 0.02 M AgNO_3 and 0.02 M HCN were mixed. Calculate [Ag^+] at equilibrium. Take K_(a)(HCN)=9 xx 10^(-10), K_(sp) (AgCN)=4 xx 10^(-6)

When 15mL of 0.05M AgNO_(3) is mixed with 45.0mL of 0.03M K_(2)CrO_(4) , predict whether precipitation of Ag_(2)CrO_(4) occurs or not? K_(sp) of Ag_(2)CrO_(4) = 1.9 xx 10^(-12)

MOTION-IONIC EQUILIBRUIM-Exercise -3
  1. A solution has a Mg^(2+) concentration of 0.0010 mol/ L. Will Mg(OH)2 ...

    Text Solution

    |

  2. Calculate solubility of PbI2 (K(sp)= 1.4 xx 10^(-8)) in water at 25^@,...

    Text Solution

    |

  3. 500 mL of 0.01 AgNO3 is mixed with 250 ml each of NaBr and NaCl, each ...

    Text Solution

    |

  4. Calculate solubility of AgCN (K(sp)= 4 xx 10^(-16)) in a buffer soluti...

    Text Solution

    |

  5. Calculate the simultaneous solubilities of AgSCN and AgBr. K(sp) (Ag...

    Text Solution

    |

  6. Calculate F^- in a solution saturated with respect of both MgF2 and Sr...

    Text Solution

    |

  7. Calculate the minimum mass of NaCI necessary to dissolve 0.01mol AgC1 ...

    Text Solution

    |

  8. A recent investigation of the complexation of SCN– with Fe3^+ represen...

    Text Solution

    |

  9. How much AgBr could dissolve in 1.0L of 0.4M NH(3)? Assume that Ag(NH(...

    Text Solution

    |

  10. Calculate the percent error in the [H(3)O^(o+)] made by neglecting the...

    Text Solution

    |

  11. What is the pH of 1 M solution of acetic acid ? To what volume one lit...

    Text Solution

    |

  12. A handbook states that the solubility of methylamine CH3NH2(g) in wate...

    Text Solution

    |

  13. A handbook states that the solubility of methylamine CH3NH2(g) in wate...

    Text Solution

    |

  14. Mixture of solutions. Calculate the pH of the following solutions. K1...

    Text Solution

    |

  15. Mixture of solutions. Calculate the pH of the following solutions. K1...

    Text Solution

    |

  16. Mixture of solutions. Calculate the pH of the following solutions. K1...

    Text Solution

    |

  17. Mixture of solutions. Calculate the pH of the following solutions. K1=...

    Text Solution

    |

  18. The electrolytic reduction of an organic nitro compound was carried ou...

    Text Solution

    |

  19. It is desired to prepare 100 ml of a buffer of pH 5.00. Acetic, benzoi...

    Text Solution

    |

  20. Calculate the pH of 0.1 M solution of (i) NaHCO(3) , (ii) Na(2)HPO(4) ...

    Text Solution

    |