Answer:
11.7 L
Step-by-step explanation:
How many liters of 0.3M H₃PO₄ are needed to neutralize 3.5L of 3M NaOH?
Step 1: Write the balanced equation
H₃PO₄ + 3 NaOH = Na₃PO₄ + 3 H₂O
Step 2: Calculate the reacting moles of sodium hydroxide
3.5 L of 3 M NaOH were employed. The reacting moles of NaOH are:
![3.5L * (3mol)/(L) = 10.5 mol](https://img.qammunity.org/2021/formulas/chemistry/college/je92xm0zvkt06blhbkd2ewuts9p2eh0uox.png)
Step 3: Calculate the reacting moles of phosphoric acid
The molar ratio of H₃PO₄ to NaOH is 1:3. The reacting moles of H₃PO₄ are (1/3) × 10.5 mol = 3.5 mol
Step 4: Calculate the required liters of phosphoric acid
3.5 moles of 0.3 M H₃PO₄ were employed. The required volume of H₃PO₄ is:
![3.5mol * (1L)/(0.3mol) =11.7 L](https://img.qammunity.org/2021/formulas/chemistry/college/8s0tk93ik5cr40t5h0xqp93oiv2xyz8b3q.png)