Answer:
Pb(s), Fe(s) and Zn(s) will reduce [tex]Mn^{3+}[/tex] to [tex]Mn^{2+}[/tex]
Fe(s) and Zn(s) will reduce [tex]Cr^{3+}[/tex] to [tex]Cr[/tex]
Explanation:
Standard reduction potential denotes ability to consume electrons from another species.
Hence, higher the standard reduction potential, higher will be the ability to oxidize another species.
Metal with [tex]E_{red}^{0}[/tex] value lower than 1.51 V will donate electron to [tex]Mn^{3+}[/tex] and thus reduces [tex]Mn^{3+}[/tex] to [tex]Mn^{2+}[/tex].
So, Pb(s), Fe(s) and Zn(s) will reduce [tex]Mn^{3+}[/tex] to [tex]Mn^{2+}[/tex].
Metal with [tex]E_{red}^{0}[/tex] value lower than -0.40 V will donate electron to [tex]Cr^{3+}[/tex] and thus reduces [tex]Cr^{3+}[/tex] to [tex]Cr[/tex].
So, Fe(s) and Zn(s) will reduce [tex]Cr^{3+}[/tex] to [tex]Cr[/tex].
