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If 15.0 mL of 12.0 M H3PO4 reacts with 100.0 mL of 3.50 M of Ba(OH)2 , which substances is the limiting reactant?

2 H3PO4 + 3 Ba(OH)2 -> 6 H2O + BA3 ( PO4 )2

If 150 mL of 120 M H3PO4 reacts with 1000 mL of 350 M of BaOH2 which substances is the limiting reactant 2 H3PO4 3 BaOH2 gt 6 H2O BA3 PO4 2 class=

Respuesta :

Use the formula stated below

[tex]\boxed{\sf Molarity=\dfrac{Moles\:of\:solute}{Volume\:in\:L}}[/tex]

So

#H_3PO_4

  • No of moles

[tex]\\ \tt\Rrightarrow n=0.015(12)=0.18moles[/tex]

#Ba(OH)_2

[tex]\\ \tt\Rrightarrow n=0.1(3.5)=0.35mol[/tex]

  • Barium hydroxide is more

Hence H_3PO_4 is the limiting reagent

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