Answer:
[tex]C_3=0.125M[/tex]
Explanation:
Hello!
In this case, we can divide the problem in two steps:
1. Dilution to 278 mL: here, the initial concentration and volume are 1.20 M and 52.0 mL respectively, and a final volume of 278 mL, it means that the moles remain the same so we can write:
[tex]V_1C_1=V_2C_2[/tex]
So we solve for C2:
[tex]C_2=\frac{C_1V_1}{V_2}=\frac{52.0mL*1.20M}{278mL}\\\\C_2=0.224M[/tex]
2. Now, since 111 mL of water is added, we compute the final volume, V3:
[tex]V_3=139+111=250mL[/tex]
So, the final concentration of the 139 mL portion is:
[tex]C_3=\frac{139 mL*0.224M}{250mL}\\\\C_3=0.125M[/tex]
Best regards!
