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First, balance the chemical equation: Hg + Br2 → HgBr2. Calculate the molar amount of each reactant using their respective molar masses. Identify the limiting reactant (the one that produces the least amount of product). Calculate the theoretical yield of HgBr2 based on the limiting reactant.

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When a candel burns the total mass of the candle and the oxygen equals the total mass of the gases and produced what law is this?

This is an example of the law of conservation of mass. It states that the total mass of substances before a chemical reaction is the same as the total mass of substances after the reaction.


How much mass is given off as gas during a chemical reaction?

The amount of mass given off as gas during a chemical reaction depends on the stoichiometry of the reaction and the molar mass of the gas produced. It can be calculated using the ideal gas law, which relates the pressure, volume, temperature, and number of moles of a gas.


What is the maximum mass of S8 that can be produced by combining 75 grams of each reactant?

The molar mass of S8 is 256 g/mol. To calculate the maximum mass of S8 that can be produced, first determine the limiting reactant by converting the masses of the reactants to moles. Then, use the stoichiometry of the reaction to find the mass of S8 produced from the limiting reactant.


What mass of nitric oxide is produced by the reaction of 3.71g of oxygen gas?

6,96 g of nitric oxide are obtained.


What mass of silver chloride can be produced from 1.75L of a 0.293M solution of silver nitrate?

To determine the mass of silver chloride produced, we need to know the balanced chemical equation for the reaction between silver nitrate (AgNO3) and sodium chloride (NaCl) that produces silver chloride (AgCl) as a precipitate. Once we have the balanced equation, we can use the stoichiometry of the reaction to determine the number of moles of AgCl produced, and then convert that to mass using the molar mass of AgCl.

Related Questions

The mass in a chemical reaction is found in?

the energy produced by the reaction.


If you start a chemical reaction with 20 g of reactants the mass of the products produced will be how many grams?

Following the Law of Conservation of Mass (see link below), there will be 20 grams of products in a reaction of 20 grams of reactions.


When a candel burns the total mass of the candle and the oxygen equals the total mass of the gases and produced what law is this?

This is an example of the law of conservation of mass. It states that the total mass of substances before a chemical reaction is the same as the total mass of substances after the reaction.


What is the total mass of h2o produced when 32 grams of Cu is completely consumed?

To calculate the mass of water produced when 32 grams of copper is consumed, we need to use the stoichiometry of the reaction. Given the balanced chemical equation for the reaction of copper with water, we can determine the moles of copper reacting and then use the mole ratio to find the moles of water produced. Finally, using the molar mass of water, we can calculate the mass of water produced.


What supports the idea that mass is conserved in a reaction that produces a gas as a product?

The law of conservation of mass states that mass cannot be created or destroyed in a chemical reaction, only rearranged. When a gas is produced as a product in a reaction, the total mass of the reactants before the reaction is equal to the total mass of the products after the reaction, supporting the idea of mass conservation. This is because the total number of atoms remains the same, even though the state of matter may change.


How much mass is given off as gas during a chemical reaction?

The amount of mass given off as gas during a chemical reaction depends on the stoichiometry of the reaction and the molar mass of the gas produced. It can be calculated using the ideal gas law, which relates the pressure, volume, temperature, and number of moles of a gas.


From the thermal decomposition of copper carbonate how can you use conservation of mass to measure the amount of carbon dioxide produced?

By weighing the initial amount of copper carbonate before the reaction and the final mass of the products after the reaction, you can measure the loss in mass which corresponds to the amount of carbon dioxide produced. Since mass is conserved in a chemical reaction, the lost mass must be equal to the mass of carbon dioxide released during the decomposition.


If solution A has a mass of 60 g and solution B has a mass of 40 g when they are mixed a chemical reaction occurs in which gas is produced if the final mass of the mixture is 85 g what mass gas produc?

The total mass of the mixture after the reaction is the sum of the masses of solutions A and B: 60 g + 40 g = 100 g. However, the final mass given is 85 g, indicating that 15 g of gas is produced during the reaction.


What is the maximum mass of S8 that can be produced by combining 75 grams of each reactant?

The molar mass of S8 is 256 g/mol. To calculate the maximum mass of S8 that can be produced, first determine the limiting reactant by converting the masses of the reactants to moles. Then, use the stoichiometry of the reaction to find the mass of S8 produced from the limiting reactant.


What mass of nitric oxide is produced by the reaction of 3.71g of oxygen gas?

6,96 g of nitric oxide are obtained.


Why is 160 grams of oxygen mass would be produced?

This question seems to be about the reactant side of a chemical equation. To calculate the mass of oxygen produced, you need to know the stoichiometry of the reaction. Without that information, it is not possible to determine why 160 grams of oxygen would be produced.


What mass of silver chloride can be produced from 1.75L of a 0.293M solution of silver nitrate?

To determine the mass of silver chloride produced, we need to know the balanced chemical equation for the reaction between silver nitrate (AgNO3) and sodium chloride (NaCl) that produces silver chloride (AgCl) as a precipitate. Once we have the balanced equation, we can use the stoichiometry of the reaction to determine the number of moles of AgCl produced, and then convert that to mass using the molar mass of AgCl.