Amongst `H_(2)O, H_(2)S, H_(2) Se and H_(2) Te,` the one with the highest boiling point is

In C+H_(2)OtoCO+H_(2),H_(2)O acts as

H_(2)O_(2) reduces

2H_(2) O_(2) to 2 H_(2)O_ + O_(2) . This reaction is

The K _(a) values of H_(2)Se and H_(2) Te are respectively

H_(2)S is less acidic than H_(2)Te . Why ?

{:("COLUMN-I","COLUMN-II"),((A)"Thermal stability",(p)H_(2)Te gt H_(2)Se gt H_(2)S gt H_(2)O),((B)"Acidic nature",(q)H_(2)O gt H_(2)S gt H_(2)Se gt H_(2)Te),((C )"Boiling points",(r )H_(2)S lt H_(2)Se lt H_(2)Te lt H_(2)O),((D) angleM MH " Bond angle",(s) H_(2)S gt H_(2)Se gt H_(2)Te=H_(2)Po):}

C_(2)H_(5)OH + HONO_(2) to A + H_(2)O . "A" is

In the reaction, H_(2)O_(2)+PbS to H_(2)O+PbSO_(4) the increase in the oxidation number of sulphur is

Identify the correct statements from the following . (i) Oxygen shows -2,-1,+1 and +2 oxidation states. (ii) The thermal stability of H_(2)O, H_(2)Se and H_(2)S follows the order H_(2)O ltH_(2)S lt H_(2)Se. (iii) The reducing nature of H_(2)Se,H_(2)S and H_(2) Te follows the order H_(2)S ltH_(2)Se ltH_(2)Te