Post Lab question:
Use the number of moles of calcium carbonate and the stoichiometry of the precipitation reaction to find the mole of calcium chloride dihydrate present in the sample of the mixture used in each trial.
Precipitation reaction: Na2CO3+CaCl2--->2NaCl + CaCO3
Number of moles of calcium carbonate: 0.010 mol
Post Lab question: Use the number of moles of calcium carbonate and the stoichiometry of the...
Table 9: Mass Data Item Mass (g) Calcium Chloride (CaCl2) 59 Sodium Carbonate (Na2CO3) 2,5 2.2. Filter Paper 15.4-2.7= CaCO3 (Experimental Yield) Experimental Observations: THE REACTION CREATED Buloles AND FORCED AIR INTO THE CYLINDER Post-Lab Questions Na2CO3 + CaCl2 CaCO3 Z g g g/mol g/mol mol mol Ratio (coeff) Ratio (coeff) 4. Identify the limiting reactant and find the calculated (theoretical) yield of CaCO3? What is the actual (experimental) yield of CaCO3? 3.2g 5. Find the percent yield of CaCO3:...
Based on the balanced equation, how many moles of calcium carbonate would you expect (theoretical) to form? (CaCl2+ Na2CO3 yields CaCO3+ 2NaCl)
EXPERIMENT 1: CALCULATING THE YIELD OF CALCIUM CARBONATE Data Sheet Table 5. Mass Data Item Mass (g) Calcium Chloride (CaCl2) 2.09 Sodium Carbonate (Na2CO3) 2.5 g Filter Paper 4.29 CaCO. (Experimental Yield) Experimental Observations: Insert a photo of your dried filter paper here: Calculations Show your work! Focus Experimental Observations: Insert a photo of your dried filter paper here: Calculations Show your work! 1. Using the mass and molar mass of CaCl2 determine the number of moles of CaCl2. 2....
please help fill in this chart using this reaction Na2CO3(aq) + CaCl2*2H2O(aq) -> CaCO3(s)+2NaCl(aq)+2H2O (aq) Given information 1 - CaCl2•2H2O Calcium chloride, dihydrate - 2.5 g 1 - Filter paper, 12.5 cm 1 - Na2CO3 - Sodium carbonate - 2 g 1 - Weighing boat, plastic Initial: CaCl2•2H2O (g) (1 gram) Initial: CaCl2•2H2O (moles) Initial: CaCl2 (moles) Initial: Na2CO3 (moles) Initial: Na2CO3 (g) Theoretical: CaCO3 (g) Mass of Filter paper (g) Mass of Filter Paper + CaCO3 (g) Actual: CaCO3...
Solution Stoichiometry: The next step in the lab is to carefully measure out 25.00 mL of the 0.250 M Na2CO3 solution, and 30.00 mL of the 0.200 M CaCl2 solution, and mix them together. Use Reaction Stoichiometry to predict the limiting reactant in the reaction, and the amount in grams of calcium carbonate that we expect to precipitate (theoretical yield). Remember: M= mols solute / L solution Use the following table to help organize your information. 0.250 M Na2CO3 00.200M...
All multiple parts to the same problem, thank you! :) Solution Stoichiometry: We need to make a 0.250 M sodium carbonate solution. We will use a 100.00 mL volumetric flask. How many grams of solid sodium carbonate should we add to the flask to make the solution? Use 105.99 as the molar mass, report correct sig figs, and use g as the unit. Solution Stoichiometry: We need to make a 0.200 M calcium chloride solution. We will use a 100.00...
For the chemical reaction Na2CO3+Ca(NO3)2⟶CaCO3+2NaNO3Na2CO3+Ca(NO3)2⟶CaCO3+2NaNO3 how many moles of calcium carbonate (CaCO3) are produced from 2.02.0 mol of sodium carbonate (Na2CO3)?
Chem 143 - Lab 46) CALCULATE THE THEORETICAL YIELD Grams of sodium carbonate used Moles of sodium carbonate used Grams of calcium chloride used Moles of calcium chloride used Moles of precipitate expected Theoretical yield of precipitate in grams Actual yield of precipitate in grams Percent yield 5.6 Show detailed work for percent yield. Page 4 of 4 Chem 143 - Lab Pre-lab Exercise Show the details of each calculation to get full credit 1. Magnesium oxide, a white powdery...
A 18.5 g sample of a mixture of magnesium carbonate and calcium carbonate is treated with excess HCl. The resulting reaction produces 5.23 L of carbon dioxide gas at 28 °C and 753 torr. Write a balanced chemical equation for the reaction that takes place between magnesium carbonate and HCl. Include physical states. chemical reaction: Write a balanced chemical equation for the reaction that takes place between calcium carbonate and HCl. Include physical states. chemical reaction: Calculate the total number...
Question 28 of 35 > When calcium carbonate is added to hydrochloric acid, calcium chloride, carbon dioxide, and water are produced CaCO3(s) + 2 HCI(aq) → CaCl2(aq) + H2O(l) + CO2(g) How many grams of calcium chloride will be produced when 31.0 g of calcium carbonate is combined with 13.0 g of hydrochloric acid? mass of CaCl, Which reactant is in excess? O HCI O CaCO How many grams of the excess reactant will remain after the reaction is complete?...