Question

347 mL of a 6.5 M CaCl2 is mixed with 222 mL of 4.2 M Na2CO3,...

347 mL of a 6.5 M CaCl2 is mixed with 222 mL of 4.2 M Na2CO3, and a solid forms. determine the limiting reagent in the mass of precipitate formed.
Determine the concentration of the ions in a solution after the action goes to completion.

Homework Answers

Answer #1

first find the moles and then calculate the amount of product formed based on the no of moles and they are as follows

Know the answer?
Your Answer:

Post as a guest

Your Name:

What's your source?

Earn Coins

Coins can be redeemed for fabulous gifts.

Not the answer you're looking for?
Ask your own homework help question
Similar Questions
when 75.0 ml of .150 m NaCl solution and 75.0mL of a 0.250 M Pub(NO3)2 are...
when 75.0 ml of .150 m NaCl solution and 75.0mL of a 0.250 M Pub(NO3)2 are mixed, a white precipitate forms. a. Identify the precipitate in the reaction. b. write out the balanced molecular equation and net ionic equation for the reaction. c. Calculate the mass (in g) of precipitate formed. d. calculate the concentration s of the remaining ions in solution. (what is the total volume after the solutions are mixed? How many moles of each ion remain in...
when 500 ml of 0.10 M NaOH solution (containing Na+ and OH-ions) is mixed with 500...
when 500 ml of 0.10 M NaOH solution (containing Na+ and OH-ions) is mixed with 500 ml of 0.10 M Mg(NO3)2 solution containing Mg2+ and NO3- ions, a precipitate of solid Mg(OH)2 forms and the resulting aqueous solution has ph=9.43. Based on the information, determine the value of ksp for Mg(OH)2. Show your reasoning clearly
An aqueous solution of silver acetate, AgC2H3O2, 50.00 mL and .300 M, is mixed with 25.00...
An aqueous solution of silver acetate, AgC2H3O2, 50.00 mL and .300 M, is mixed with 25.00 mL of .300 M iron (III) chloride, FeCl3. Calculate the mass of any precipitate formed and the concentration of each ion rremaining in solution.
Please go step-by-step. A 24.0 ml sample of 1.16M potassium sulfate is mixed with 14.3 ml...
Please go step-by-step. A 24.0 ml sample of 1.16M potassium sulfate is mixed with 14.3 ml of a 0.880 barium nitrate solute this precipitation reaction occurs: K_2 SO_4+Ba(NO_3 )_2→BaSO_4+2KNO_3 Determine the limiting reactant Determine the theoretical yield The solid BaSO_4 is collected, dried, and found to have a mass of 2.53 g. Calculate the percent yield What is/are the concentration/s of ions in solution after the reaction occurs?
24.0 mL of a 0.200 M phosphoric acid solution is mixed with with 50.0 mL of...
24.0 mL of a 0.200 M phosphoric acid solution is mixed with with 50.0 mL of a 0.140 M strontium hydroxide solution. Using your knowledge of neutralization reactions and solubility rules complete the following. a) Write the balanced net ionic equation for this neutralization reaction. b) Determine the mass and identity of the precipitate that forms.
A sample of 500. mL of 0.0400 M barium ion is mixed with 1000. mL of...
A sample of 500. mL of 0.0400 M barium ion is mixed with 1000. mL of 0.0600 M oxalate ions. a) will barium oxalate precipitate? b) if there is precipitation, determine the mass of barium oxalate precipitated.
A 180.0 mL solution of 2.172 M strontium nitrate is mixed with 220.0 mL of a...
A 180.0 mL solution of 2.172 M strontium nitrate is mixed with 220.0 mL of a 2.634 M sodium fluoride solution. Calculate the mass of the resulting strontium fluoride precipitate. and then Assuming complete precipitation, calculate the final concentration of each ion. If the ion is no longer in solution, enter a zero for the concentration.
95 mL of 0.225 M AgNO3 was mixed with 47.5 mL of 0.225 M CaCl2 in...
95 mL of 0.225 M AgNO3 was mixed with 47.5 mL of 0.225 M CaCl2 in a coffee cup calorimeter. If a reaction occured was it exothermic or endothermic? If the reacion started at 23.7 degrees Celsuis what is the final temperature of the solution?
A -10.0 mL solution of 0.320 M KOH was mixed with 25.0mL of 0.120 M HBr...
A -10.0 mL solution of 0.320 M KOH was mixed with 25.0mL of 0.120 M HBr solution. Which one is the limiting reagent, KOH or HBr? Explain!
In a constant-pressure calorimeter of negligible heat capacity, 25 mL of 1.00 M CaCl2 is mixed...
In a constant-pressure calorimeter of negligible heat capacity, 25 mL of 1.00 M CaCl2 is mixed with 25 mL of 2.00 M KF, resulting in solid CaF2 precipitating out of the solution. During this process, the temperature of the water rises from 25.0°C to 26.7°C. Assume the specific heat capacity of the solution is 4.184 J/°C•g and the density of the solution is 1.00 g/mL. Calculate the enthalpy of precipitation in kJ per mole of CaF2 precipitated.
ADVERTISEMENT
Need Online Homework Help?

Get Answers For Free
Most questions answered within 1 hours.

Ask a Question
ADVERTISEMENT