Respuesta :
Explanation:
a) [tex]H_2SO_4[/tex]
oxidation state of H = +1
Oxidation state of O = -2
Let the oxidation no. of S be x.
[tex]2\times1+ x+2\times -4 =0[/tex]
[tex]2 +x-8 = 0\\x=+6[/tex]
Oxidation state of S in [tex]H_2SO_4[/tex] = +6
b) [tex]Ca(OH)_2[/tex]
oxidation state of H = +1
Oxidation state of O = -2
Let the oxidation no. of Ca be x.
[tex]x+2\times-2+2\times+1 =0\\x=4 -2\\x=+2[/tex]
Oxidation state of Ca in [tex]Ca(OH)_2[/tex] = +2
c) BrOH
oxidation state of H = +1
Oxidation state of O = -2
Let the oxidation no. of Br be x.
[tex]x+1\times-2+1\times+1 =+1[/tex]
Oxidation no. of Br in BrOH is +1
d) [tex]ClNO_2[/tex]
oxidation state of Cl = -1
Oxidation state of O = -2
Let the oxidation no. of N be x.
[tex]-1+x+2\times-2\\x = 4+1 =+5[/tex]
Oxidation state of N in [tex]ClNO_2[/tex] = +3
e) [tex]TiCl_4[/tex]
oxidation state of Cl = -1
Let the oxidation no. of Ti be x.
[tex]x+4\times -1 = 0\\x=+4[/tex]
Oxidation state of Ti in [tex]TiCl_4[/tex] = +4
f) NaH
Na is more electropositive than H.
Therefore, oxidation state of Na = +1
Oxidation state of H = -1
