Be sure to answer all parts. Ammonia is produced by the reaction of nitrogen and hydrogen according to the equation N;@) + 3H2g) → 2NH3(g) Calculate the mass of ammonia produced when 34.0 g of nitrogen react with 12.5 g of hydrogen. g NH3 Which is the excess reactant and how much of it will be left over when the reaction is complete? O hydrogen nitrogen
States of Matter
The substance that constitutes everything in the universe is known as matter. Matter comprises atoms which in turn are composed of electrons, protons, and neutrons. Different atoms combine together to give rise to molecules that act as a foundation for all kinds of substances. There are five states of matter based on their energies of attraction, namely solid, liquid, gases, plasma, and BEC (Bose-Einstein condensates).
Chemical Reactions and Equations
When a chemical species is transformed into another chemical species it is said to have undergone a chemical reaction. It consists of breaking existing bonds and forming new bonds by changing the position of electrons. These reactions are best explained using a chemical equation.
3 & 4
![Be sure to answer all parts.
Ammonia is produced by the reaction of nitrogen and hydrogen according to the equation
N2(g) + 3H2(g) → 2NH3(g)
Calculate the mass of ammonia produced when 34.0 g of nitrogen react with 12.5 g of hydrogen.
g NH3
Which is the excess reactant and how much of it will be left over when the reaction is complete?
hydrogen
nitrogen](/v2/_next/image?url=https%3A%2F%2Fcontent.bartleby.com%2Fqna-images%2Fquestion%2Fddd1c864-555c-4e3d-99c6-053afc6a3803%2F144281e0-5018-4924-b96a-5f665d9adbf5%2F14gi3d9_processed.png&w=3840&q=75)
![Enter your answer in the provided box.
Sodium peroxide (Na,02) is used to remove carbon dioxide from (and add oxygen to) the air supply in
spacecrafts. It works by reacting with CO, in the air to produce sodium carbonate (Na,CO3) and O2.
2 Na202(s) + 2 CO29) → 2 Na,CO3(s) + O2(g)
What volume (in liters) of CO, can be consumed at STP by 835 g Na,0,?](/v2/_next/image?url=https%3A%2F%2Fcontent.bartleby.com%2Fqna-images%2Fquestion%2Fddd1c864-555c-4e3d-99c6-053afc6a3803%2F144281e0-5018-4924-b96a-5f665d9adbf5%2F3v9xxnw_processed.png&w=3840&q=75)
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