calculate `E^(@)` of the following half -cell reaction at 298 K:
`Ag(NH_(3))_(2)^(+)+e^(-) rarr Ag+2NH_(3)`
`{:(Ag^(+)+e^(-) rarr Ag,,E_(Ag^(+)//Ag)^(@)=0.80 V),(Ag(NH_(3))_(2)^(+) hArr Ag^(+)+2NH_(3),,K=6xx10^(-8)):}`

Find K_(c) for the complex : [Ag(NH_(3))_(2)]^(o+)hArrAg^(o+)+2NH_(3) E^(c-)._((Ag^(o+)//Ag))=0.8V and E^(c-)._{[Ag(NH_(3))_(2)]^(o+)|Ag|NH_(3))=0.37V

Find K_(c) for the complex : [Ag(NH_(3))_(2)]^(o+)hArrAg^(o+)+2NH_(3) E^(c-)._((Ag^(o+)//Ag))=0.8V and E^(c-)._{[Ag(NH_(3))_(2)]^(o+)|Ag|NH_(3))=0.37V

Find K_(c) for the complex : [Ag(NH_(3))_(2)]^(o+)hArrAg^(o+)+2NH_(3) E^(c-)._((Ag^(o+)//Ag))=0.8V and E^(c-)._{[Ag(NH_(3))_(2)]^(o+)|Ag|NH_(3))=0.37V

K_(d) for dissociation of [Ag(NH_(3))_(2)]^(+) into Ag^(+) and NH_(3) is 6 xx 10^(-8) . Calculae E^(@) for the following half reaction. Ag(NH_(3))_(2)^(+) +e^(-) rarr Ag +2NH_(3) Given Ag^(+) +e^(-) rarr Ag, E^(@) = 0.799V

The hybridisation of Ag in the complex [Ag(NH_(3))_(2)]^(+) is

Calculate The ratio of [Ag(NH_(3))_(2)]^(+)and[Ag^(+)] in 0.1 M NH_(3) solution.

K_(d) for dissociation of [Ag(NH_(3))_(2)]^(+) into Ag^(+) and NH_(3) is 6 xx 10^(-8) . Calculae E^(@) for the following half reaction. AG(NH_(3))_(2)^(+) +e^(-) rarr Ag +2NH_(3) Given Ag^(+) +e^(-) rarr Ag, E^(@) = 7.99V

K_(d) for dissociation of [Ag(NH_(3))_(2)]^(+) into Ag^(+) and NH_(3) is 6 xx 10^(-8) . Calculae E^(@) for the following half reaction. AG(NH_(3))_(2)^(+) +e^(-) rarr Ag +2NH_(3) Given Ag^(+) +e^(-) rarr Ag, E^(@) = 7.99V