2.00L of 0.800M NaNO3 must be prepared froma solution known to be 1.50 in concentration. How many ml are required

To calculate the volume of the 1.50M NaNO3 solution required to prepare 2.00L of 0.800M NaNO3, we can use the dilution formula:

M1V1 = M2V2

Where:
M1 = initial concentration
V1 = initial volume
M2 = final concentration
V2 = final volume

Rearranging this formula to solve for V1, we get:

V1 = (M2 * V2) / M1

Plugging in the values:
M1 = 1.50M
M2 = 0.800M
V2 = 2.00L

V1 = (0.800M * 2.00L) / 1.50M

V1 = 1.067 L

To convert liters to milliliters, multiply by 1000:

V1 = 1.067 L * 1000 mL/L

V1 = 1067 mL

Therefore, 1067 mL of the 1.50M NaNO3 solution is required to prepare 2.00L of 0.800M NaNO3.