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Refer to the following balanced equation in which ammonia reacts with nitrogen monoxide to produce nitrogen and water.4NH3 (g)+6NO (g)5N2 (g)+6H2O (l) How many moles of NO are required to completely react with 2.45 mol NH3? Nitrogen and hydrogen react to form ammonia, like this: N_2(g) +3H_2(g) rightarrow 2NH_3(g) Use this chemical equation to answer the questions in the table below. What mass of oxygen gas is consumed by the reaction of 2.7g of ammonia? 8NH3 + 3Cl 2 N2 + 6NH4Cl. Gaseous ammonia chemically reacts with oxygen O_2 gas to produce nitrogen monoxide gas and water vapor. To find the limiting reactant, you simply need to perform a mass-to-mass (gram-to-gram) calculation from one reactant to the other. Nitrogen gas and hydrogen gas react to form ammonia according to the following thermochemical equation: 3H2 + N2 arrow 2NH3; Delta H = -96 kJ Write the balanced chemical equation for a reaction involving these substances with the following change in entha, Convert the following into a balanced equation: When nitrogen dioxide is bubbled into water, a solution of nitric acid forms and gaseous nitrogen monoxide is released. After the products return to STP, how many grams of nitrogen monoxide are present? b). If 27 litres of reactants are consumed, what volume of nitrogen monoxide is produced at the same temperature and pressure, How many moles of ammonia gas can be formed from the complete reaction of 44.8 liters of nitrogen gas at standard temperature and pressure (STP), according to the balanced equation, N_2 (g) + 3H_2 (g) \rightarrow 2NH_3 (g)? {/eq} to produce nitrogen monoxide (NO) and water {eq}(H_2O) Become a Study.com member to unlock this answer! How many liters of ammonia are produced when 10.0 g of hydrogen is combined with nitrogen? This ammonium is held in the soils and is available for use by plants that do not get nitrogen through the symbiotic nitrogen fixing relationship described above. What is the equation for: Gaseous ammonia reacts with gaseous oxygen to form gaseous nitrogen monoxide and gaseous water? (a) First, nitrogen and oxygen gas react to form nitrogen oxide. Balance the chemical equation given below, and calculate the volume of nitrogen monoxide gas produced when 8.00 grams of ammonia is reacted with 12.0 grams of oxygen at 25 degrees Celsius. What is the per. NH3(g) + O2(g) arrow NO(g) + H2, Ammonia gas can be prepared by the reaction of a metal oxide such as CaO with NH4Cl. In a reactor 50 g of ammonia (NH3) and 60 g of oxygen (O2) are added, which react according to: NH3 + O2 N2 + H2O. Existing hot gas . Calculate the moles of water produced by the reaction of 0.075 mol of oxygen. I missed the first part of the review session, is the answer to this 7.9g NO? Ammonia reacts with oxygen to from nitrogen and water. a) Nitrogen dioxide can be prepared by heating lead nitrate to about 400 degrees C. The products, in addition to nitrogen dioxide, are lead(II) oxide and oxygen. a. Suppose that 5 mol NO_2 and 1 mol H_2O combine and react completely, how many moles of the reactant in exc, How many liters of excess reactant would be left when 3.00 liters of nitrogen monoxide is mixed with 2.00 liters of oxygen and allowed to react at 695 torr and 27 degrees Celsius to produce nitrogen d. Ammonia (NH3) chemically reacts with oxygen gas (O2) to produce nitric oxide (NO) and water (H2O). So 5 L O2 will produce 4 L NO. Write the balanced chemical equation. A. The balanced equation is as follows: 3H2(g) + N2(g) 2NH3(g). Write a balanced equation for this reaction. Otherwise, we can say, NO 2 is one of the strong acidic gas in chemistry. The equation is as follows: 4 N H 3 + 5 O 2 4 N O + 6 H 2 O If you form 8.7 mol of water, how much NO forms? A Computer Science portal for geeks. When ammonia reacts with oxygen, nitrogen monoxide and water are produced. Nitrogen gas combines with hydrogen gas to produce ammonia. By entering your email address and clicking the Submit button, you agree to the Terms of Use and Privacy Policy & to receive electronic communications from Dummies.com, which may include marketing promotions, news and updates. Write a balanced equation for this reaction. Biomass gasification is one of the most promising routes to produce green hydrogen, power, fuels, and chemicals, which has drawn much attention as the world moves away from fossil fuels. What is the limiting reactant and how many grams of ammonia is formed? Nitrogen of ammonia is oxidized to nitrogen gas from -3 oxidation state to 0 oxidation state. Assume complete reaction to products. Ammonia gas decomposes according to the following equation: 2 N H 3 N 2 + 3 H 2 . How many liters of NO are produced when 2.0 liters of oxygen reacts with ammonia? How can I balance this chemical equations? For this calculation, you must begin with the limiting reactant. ____ Pb(OH)2 + ____ HCl ---> ____ H2O + ____ PbCl2. You start with 100 g of each, which corresponds to some number of moles of each. Nitrogen and hydrogen are passed over iron to produce ammonia in the Haber Process. In this example, let's start with ammonia:

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The calculation reveals that you'd need 235 g of oxygen gas to completely react with 100 g of ammonia. Is this reaction spontaneous? Sodium Hydrogen Sulfite reacts with hydrochloric acid to produce sulfur dioxide gas, water and sodium chloride NaHSO3 + HCl = SO2 + H2O + NaCl 2. calculate the moles of water produced by the reaction of 0.060mol of oxygen. Ammonia is often formed by reacting nitrogen and hydrogen gases. a. 2NH 3 (g). Using the above equation, at STP, when 0.675 L of ammonia burns, what volume of water vapor will be formed? Urea is used as a fertilizer because it can react with water to release ammonia, which provides nitrogen to plants. You can ask a new question or browse more stoichiometry questions. It also can be interpreted as: 4 molesof NH3reacts with 5 molesof O 2to produce 4 molesof NO and 6 molesof Learn the concepts of molar volume and standard molar volume. \"https://sb\" : \"http://b\") + \".scorecardresearch.com/beacon.js\";el.parentNode.insertBefore(s, el);})();\r\n","enabled":true},{"pages":["all"],"location":"footer","script":"\r\n

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How do you find the equilibrium constant? Balanced Equation: Ammonia reacts with oxygen to produce nitrogen oxide and water. The combustion of ammonia (a gas) is represented by the equation: 4NH_3 + 5O_2 \to 4NO + 6H_2O How many moles of H_2O (water) is produced when 400g of NH_3 are completely reacted with oxygen? A sample of NH_3 gas is completely decomposed to nitrogen and hydrogen gases. Ammonia burns in oxygen according to the following equation: 4NH_3 + 3O_2 \rightarrow 2N_2 + 6H_2O How many moles of nitrogen gas are generated by the complete reaction of 6.65 moles of ammonia? Nitric acid is a component of acid rain that forms when gaseous nitrogen dioxide pollutant reacts with gaseous oxygen and liquid water to form aqueous nitric acid. Get access to this video and our entire Q&A library, Balanced Chemical Equation: Definition & Examples. Stoichiometry : the numerical relationship between chemical quantities in a balanced chemical equation. The reaction consumes moles of oxygen. Write the balanced equation for this reaction. Consider the reaction of hydrogen gas with nitrogen gas-producing ammonia, NH_3. 4. Write Nitrogen monoxide can be formed according to the equation: N2(g) + 2O2(g) -> 2NO2(g) If 8.0 L of nitrogen is reacted at STP (this is important), exactly how many liters of oxygen at STP would be needed to allow complete reaction? Ammonia ( N H 3 ) reacts with germanium ( G e ) to give two products: a flammable gas and an ionic solid with mass of 273.8 g/mol. Learn about the steps to balancing chemical equations. All other trademarks and copyrights are the property of their respective owners. Nitrogen monoxide can be formed according to the equation: N_2 (g) + 2O_2 (g) to 2 NO_2 (g) If 8.0 L of nitrogen is reacted at STP, exactly how many liters of oxygen at STP would be needed to allow complete reaction? a. You'll run out of oxygen before you run out of ammonia, so oxygen is the limiting reagent.

\r\n\r\n \t
  • \r\n

    Identify the excess reagent, as well as how many grams of the excess reagent will remain when the reaction reaches completion.

    \r\n

    To calculate how many grams of ammonia will be left at the end of the reaction, assume that all 100 g of oxygen react:

    \r\n\"image3.jpg\"\r\n

    This calculation shows that 42.5 g of the original 100 g of ammonia will react before the limiting reagent is expended. 4 NH_3 + 5 O_2 to 4 NO + 6 H. The first stage of the Ostwald process is heating ammonia gas with oxygen gas in the presence of a catalyst at 900 K and 5 atm to form nitric oxide gas and water vapor. How many moles of NO are required to produce 5.0 moles of NO_2 in excess oxygen? Balanced equation of NH 3 + O 2 without catalyst 4NH 3 (g) + 3O 2 (g) 2N 2 (g) + 6H 2 O (g) Both ammonia and nitrogen gas are colorless gases. 11) Un-thinkable (I'm Ready G gaseous water formula - GOL V Carbonic acid can form water and carbon dioxide upon heating. The ammonia or urea breaks down the NOx in the exhaust gases into water and atmospheric nitrogen. For this calculation, you must begin with the limiting reactant. How many liter of NO are produced when 2.0 liters of oxygen reacts with ammonia? If 6.42g of water is produced, how many grams of oxygen gas reacted? 2. This allows you to see which reactant runs out first. Ammonia {eq}(NH_3) Given the following unbalanced equation: NH_3 + O_2 to NO + H_2O. Nitrogen atoms donate four electrons to form N4+ ions and oxygen atoms gain two electrons to form O2 ions when nitrogen and oxygen form an ionic bond. 89.6 moles b. 2 Each chlorine atom is reduced. Convert the following into a balanced equation: \\ When nitrogen dioxide is bubbled into water, a solution of nitric acid forms and gaseous nitrogen monoxide is released. How many grams of oxygen do you need to react with 21.4 g ammonia? Nitrogen, N_2, combines with hydrogen, H_2, to form ammonia, NH_3. determine the amount of oxygen needed to produce 1.2x10^4mol of nitrogen monoxide gas. The one you have in excess is the excess reagent. The one that isn't in excess is the limiting reagent.

    \r\nHere's an example. Say you are conducting an experiment where ammonia reacts with oxygen to produce nitrogen monoxide and liquid water:\r\n\r\n\"image0.jpg\"\r\n\r\nIn order to find the limiting reagents, excess reagents, and products in this reaction, you need to do the following:\r\n
      \r\n \t
    1. \r\n

      Balance the equation.

      \r\n
    2. \r\n \t
    3. \r\n

      Determine the limiting reagent if 100 g of each reagent are present at the beginning of the reaction.

      \r\n
    4. \r\n \t
    5. \r\n

      Identify the excess reagent, as well as how many grams of the excess reagent will remain when the reaction reaches completion.

      \r\n
    6. \r\n \t
    7. \r\n

      Calculate how many grams of each product will be produced if the reaction goes to completion.

      \r\n
    8. \r\n
    \r\nSo, here's the solution:\r\n
      \r\n \t
    1. \r\n

      Balance the equation.

      \r\n

      Before doing anything else, you must have a balanced reaction equation. Write a balanced chemical equation for the reaction. At constant temperature and pressure, how many liters of ammonia will be formed when 6.00 L of nitrogen reacts with 30.0 L of hydrogen? Createyouraccount. Gaseous ammonia chemically reacts with oxygen O2 gas to produce nitrogen monoxide gas and water vapor. Calculate the number of moles of hydrogen required to react with 0.0767 moles of nitrogen, and the number of moles of ammonia that will, 1) Nitrogen dioxide reacts with water to form nitric acid 1) Nitrogen dioxide reacts with water to form nitric acid and nitrogen monoxide according to the equation: 3NO2(g)+H2O(l)-->2HNO3(l)+NO(g) S, Nitrogen dioxide reacts with water to form nitric acid and nitrogen monoxide according to the equation: 3 NO_2 (g)+ H_2O (l) to 2HNO_3 (l) + NO (g). d. Gaseous ammonia (NH3) reacts with gaseous oxygen to form gaseous nitrogen monoxide and gaseous water. Urea (NH_2)_2CO is prepared by reacting ammonia with carbon dioxide. You'll run out of oxygen before you run out of ammonia, so oxygen is the limiting reagent.

      \r\n
    2. \r\n \t
    3. \r\n

      Identify the excess reagent, as well as how many grams of the excess reagent will remain when the reaction reaches completion.

      \r\n

      To calculate how many grams of ammonia will be left at the end of the reaction, assume that all 100 g of oxygen react:

      \r\n\"image3.jpg\"\r\n

      This calculation shows that 42.5 g of the original 100 g of ammonia will react before the limiting reagent is expended. Ammonia may be oxidized to nitrogen monoxide in the presence of catalysts according to the equation 4NH_3 + 5O_2 gives 4NO and 6H_2O. The balanced chemical equation is: \\ 2 NH_4NO_3(s) \r, A mixture of 34.0 g of ammonia and 50.0 g of elemental oxygen react to form elemental nitrogen and water. Again, assume that all 100 g of the oxygen react in order to determine how many grams of water are produced: You find that 67.5g of water will be produced. The reaction is experimentally found to be (approximately) first-order i. This allows you to see which reactant runs out first. Construct your own balanced equation to determine the amount of NO and H2O that would form when 2.08 mol of NH3 6.32 mol of O2 react Expert's answer 4NH 3 +5O 2 ---->4NO+6H 2 O gas to produce nitrogen monoxide gas and water vapor. Calculate how many grams of nitrogen monoxide and water will be produced if the reaction goes to completion. B. Gaseous dinitrogen tetroxide (N2O4) decomposes to form nitrogen dioxide gas (NO2). How many moles of nitrogen monoxide are produced from the combustion of 1.52 moles of nitrogen? Our experts can answer your tough homework and study questions. To determine the grams of nitrogen monoxide that are generated by the complete reaction of oxygen, start with the assumption that all 100 g of the oxygen react:

      \r\n\"image4.jpg\"\r\n

      So, 75 g of nitrogen monoxide will be produced.

      \r\n

      Again, assume that all 100 g of the oxygen react in order to determine how many grams of water are produced:

      \r\n\"image5.jpg\"\r\n

      You find that 67.5g of water will be produced.

      \r\n
    4. \r\n
    ","blurb":"","authors":[{"authorId":9161,"name":"Peter J. Mikulecky","slug":"peter-j-mikulecky","description":"

    Christopher Hren is a high school chemistry teacher and former track and football coach. a). 2.33 mol B. Peter J. Mikulecky, PhD, teaches biology and chemistry at Fusion Learning Center and Fusion Academy. Nitrogen monoxide reacts with hydrogen gas to produce nitrogen gas and water vapor. How many ammonia liters of ammonia gas is produced when 85 grams of liquid nitrogen completely react? Write the balanced equation for the reaction of nitrogen gas with hydrogen gas to form ammonia gas. When 6 liter of nitrogen gas reacts with 18 liters of hydrogen gas at constant temperature and pressure, how many liters of ammonia gas will be produced? Question: Ammonia gas and oxygen gas react to form water vapor and nitrogen monoxide gas. Write a balanced equation and then use stoichiometry problem solving to determine the mass of nitrogen products tha, Ammonia (NH_3) reacts with oxygen to produce nitric oxide (NO) and water (see balanced equation below). Clear up math equations If you're struggling to clear up a math equation, try breaking it down into smaller, more manageable pieces. (a) reaction of gaseous ammonia with gaseous HCl (b) reaction of aqueous ammonia with aqueous HCl. In order to find the limiting reagents, excess reagents, and products in this reaction, you need to do the following: Determine the limiting reagent if 100 g of each reagent are present at the beginning of the reaction. Given the equation N2(g) + 3H2(g) = 2NH3(g) determine how many moles of N2 reacted if 0.60 mol of NH3 is produced? In this example, let's start with ammonia: The calculation reveals that you'd need 235 g of oxygen gas to completely react with 100 g of ammonia. Ammonia (NH_3) chemically reacts with oxygen gas (O_2) to produce nitric oxide (NO) and water (H_2O). How many grams of sodium are needed to produce 2.24 L of hyrdogen collected at 23 and 92.5 kPa? Nitrogen forms at least three stable oxides: N2O, NO, NO2. Gaseous sulfur trioxide and gaseous nitrogen monoxide form when gaseous sulfur dioxide and gaseous nitrogen dioxide react. Ammonium sulfate is used as a nitrogen and sulfur fertilizer. You start with 100 g of each, which corresponds to some number of moles of each. The following equation shows how nitrogen dioxide reacts with water to produce nitric acid: 3NO_2(g) + H_2O(l) \to 2HNO_3(l) + NO(g) Predict the sign of \Delta S^\circ for this reaction. Write a balanced chemical equation of this reaction. So, the excess reagent is ammonia, and 57.5 g of ammonia will remain when the reaction reaches completion (just subtract 42.5 from 100).

    \r\n
  • \r\n \t
  • \r\n

    Calculate how many grams of nitrogen monoxide and water will be produced if the reaction goes to completion.

    \r\n

    This problem asks how much of a product is produced. To determine how many moles of ammonia are produced, what conversion factor should be used? Round your answer to significant digits. NH + O = NO + HO Balanced Equation Ammonia,Oxygen equal to Nitrogen Monoxide+Water Balanced EquationRELATED SEARCHESammonia oxygen nitrogen monoxide water. Be sure your answer has a unit symbol, if necessary, and round it to the correct number of significant digits. 4 NH_3 + 5 O_2 to 4 NO + 6 H. Given the reaction between ammonia and oxygen as 4NH3 + 5O2 \rightarrow 4NO + 6H2O: Calculate the amount of nitrogen monoxide (in grams) produced if 0.5 g of ammonia is reacted with 0.5 g of oxygen. Be sure to write out the . Ammonia, NH_3, may react with oxygen to form nitrogen gas and water ? Use this chemical equation to answer the following questions: 1) Write a balanced equation, including physical state for the reverse reaction. In this equation, write the mole ratio of 1) Nitrogen monoxide to ammonia 2) Nitrogen monoxide to nitrogen gas 3) Nitrogen monoxide to water 4) Ammonia to nitrogen gas 5) Ammonia to water 6) Nitrogen gas to water 33. Change the grams of NH3 to moles of NH3. It states that the ratio of volume occupied to the gas's moles remains same. Ammonia is often produced by reacting nitrogen gas with hydrogen gas. The mechanism is believed to be 2NO to N_2O_2 N_2O_2 + H_2 to N_2O + H_2O N_2O + H_2 to N_2 + H_2O For this reaction find the following: a) the overall balanced equation. Is this reaction a redox reaction? Phase symbols are optional. Selective non-catalytic reduction involves the injection of a NOx reducing agent, such as ammonia or urea, into the boiler exhaust gases at a temperature of approximately 1400-1600F. a. Ammonia is produced by synthesizing nitrogen and hydrogen gas, if i have 2 moles of nitrogen gas and 5 moles of hydrogen gas. 4NH3 + 5O2 4NO + 6H2O The reaction above can mean: 4 molecules of NH 3 reacts with 5 molecules of O 2 to produce 4 molecules of NO and 6 molecules of H 2O. Question: Gaseous ammonia chemically reacts with oxygen \( \left(\mathrm{O}_{2}\right) \) gas to produce nitrogen monoxide gas and water vapor. You'll discover one of two things: either you have an excess of the first reagent, or you have an excess of the second reagent. How can I balance this equation? a. The NH 3 in the soil then reacts with water to form ammonium, NH 4 . The balanced chemical equation for this reaction along with all the correct symbols for all the reactant and the products is given below - 4N H3(aq)+3O2(g) 2N 2(g)+6H2O(l) Suggest Corrections 9 Similar questions N_2 (g) + 3H_2 (g) \rightarrow 2NH_3 (g). Calculate the moles of ammonia needed to produce 1.70 mol of nitrogen monoxide. Furthermore, you can tell from the coefficients in the balanced equation this reaction requires 4 mol of ammonia for every 5 mol of oxygen gas.

    \r\n
  • \r\n \t
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    Determine the limiting reagent if 100 g of ammonia and 100 g of oxygen are present at the beginning of the reaction.

    \r\n

    To find the limiting reactant, you simply need to perform a mass-to-mass (gram-to-gram) calculation from one reactant to the other. When ammonium carbonate is heated, it decomposes into ammonia gas, carbon dioxide gas, and water vapor. NO 2 dissolves very well in water react with water to give nitrous acid and nitric acid. And although we think of N2 as inert, a small amount does get incorporated into the oxidation chain reaction, to form a mixture of nitrogen oxides, NOx.