A sample of water is found to contain 0.059 ppm of Pb2+ ions. Calculate the mass of lead ions per liter of this solution (assume the density of the water solution is 1.0 g/mL)

Question

1.2E-2 g/L Pb2+
	5.9E-8 g/L Pb2+
	5.9E-5 g/L Pb2+
	1.2E-5 g/L Pb2+
	2.9E-10 g/L Pb2+

DrBob222 · Answer

A good conversion factor to remember is 1 ppm = 1 mg/L (1 ppb = 1 ug/L) So 0.059 ppm = 0.059 mg/L Then convert mg to g and you have it.