Question

.   6.25 g of gold and 6.25 g of chlorine are sealed in a container and...

.   6.25 g of gold and 6.25 g of chlorine are sealed in a container and heated until the reaction is        complete. The product is gold(III) chloride.

    Which reactant is the limiting reactant?

    What mass of gold chloride is formed?

    What mass of the reactant in excess remains?

Homework Answers

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
Phosphorus and chlorine react as follows: P4(s) + Cl2(g) => PCl3(l). Balance it! Assume 135 g...
Phosphorus and chlorine react as follows: P4(s) + Cl2(g) => PCl3(l). Balance it! Assume 135 g P4(s) react with 333 g of Cl2(g). a) What is the limiting reactant? b) What is the reactant in excess and the amount in excess? c) What mass of phosphorus trichloride can be formed from the reaction?
Limiting Reactant Procedure In the following chemical reaction, 2 mol of A will react with 1...
Limiting Reactant Procedure In the following chemical reaction, 2 mol of A will react with 1 mol of B to produce 1 mol of A2B without anything left over: 2A+B→A2B But what if you're given 2.8 mol of A and 3.2 mol of B? The amount of product formed is limited by the reactant that runs out first, called the limiting reactant. To identify the limiting reactant, calculate the amount of product formed from each amount of reactant separately: 2.8...
A 17.93 gram sample of copper is heated in the presence of excess chlorine. A metal...
A 17.93 gram sample of copper is heated in the presence of excess chlorine. A metal chloride is formed with a mass of 37.94 g. Determine the empirical formula of the metal chloride.
A 16.77 gram sample of iron is heated in the presence of excess chlorine. A metal...
A 16.77 gram sample of iron is heated in the presence of excess chlorine. A metal chloride is formed with a mass of 38.05 g. Determine the empirical formula of the metal chloride.
A sample of 4.00 g of methane is mixed with 15.0 g of chlorine with the...
A sample of 4.00 g of methane is mixed with 15.0 g of chlorine with the following equation: CH4 (g) + 4 Cl2 (g) = CCl4 (l) + 4HCl (g) Determine which reactant is the limiting and the calculate the maximum mass of CCl4 that can be formed. Calculate the theoretical yield.
Consider the reaction of diboron trioxide with carbon and chlorine. B2O3 + 3C + 3Cl2 ->...
Consider the reaction of diboron trioxide with carbon and chlorine. B2O3 + 3C + 3Cl2 -> 2BCl3 + 3CO Determine the limiting reactant in a mixture containing 169 g of B2O3, 96.5 g of C, and 462 g of Cl2. Calculate the maximum mass (in grams) of boron trichloride, BCl3, that can be produced in the reaction. The limiting reactant is: Amount of BCl3 formed: _______ g
a.) If 3.00 g of cesium sulfide is reacted with 3.00 g of silver nitrate, claculate...
a.) If 3.00 g of cesium sulfide is reacted with 3.00 g of silver nitrate, claculate the mass (in g) of solid silver formed. Which is the limiting reactant? Balanced reaction: ____________ + _________ --> _________ + ____________ Mass of silver sulfide: ____g Limiting reactant: b.) Using an amounts table, calculate the mass of each reactant remaining after the reaction is complete.
The solvent dichloromethane, CH2Cl2, can be prepared by reaction of methane with chlorine gas, according to...
The solvent dichloromethane, CH2Cl2, can be prepared by reaction of methane with chlorine gas, according to the following equation. This reaction was performed using 5.00 g of methane and 15.0 g of chlorine gas. CH4 + Cl2 —> CH2Cl2 + HCl a. What is the limiting reactant? Show all work. b. How many grams of each product are formed? c. If 15.6 g of dichloromethane are formed, what is the percent yield of the reaction? Is this acceptable? Why or...
A sample of CaCO3(s) is introduced into a sealed container of volume 0.674 L and heated...
A sample of CaCO3(s) is introduced into a sealed container of volume 0.674 L and heated to 1000 K until equilibrium is reached. The Kp for the reaction CaCO3(s)⇌CaO(s)+CO2(g) is 3.9×10−2 at this temperature. Calculate the mass of CaO(s) that is present at equillibrium. please show work
1. Given the following reaction     2C2H6(l)   +      7 O2(g)   ®           4CO2(g)      +     
1. Given the following reaction     2C2H6(l)   +      7 O2(g)   ®           4CO2(g)      +        6H2O(l) How many moles of water are produced when 4.5 moles of oxygen react?        (Hint: Use slides 5-8) 2. Given: I2     +    3 F2      ®     2 IF3 How many moles of I2 are needed to form 3 moles of IF3? How many moles of F2 are needed to form 10 moles of IF3? How many moles of I2 are needed to react with 3.5 moles of F2?        ...
ADVERTISEMENT
Need Online Homework Help?

Get Answers For Free
Most questions answered within 1 hours.

Ask a Question
ADVERTISEMENT