The reactants are at a higher potential energy compared to the products.
The reactants are at a lower potential energy compared to the products.
There will not be an activation energy barrier.
Answer : The correct option is, The reactants are at a higher potential energy compared to the products.
Explanation :
Exothermic reaction means energy is released and the overall enthalpy change is negative.
In exothermic reaction, the reactants are at a higher potential energy compared to the products. In other words, we can say that the products are more stable than the reactants.
high-density protogalactic clouds
rapidly spinning protogalactic clouds
colliding/merging protogalactic clouds
Answer:
Double Displacement Reaction
Explanation:
A double displacement reaction is a type of chemical reaction in which the reactant ions exchange places to form new products. Usually, a double displacement reaction results in precipitate formation.
is the energy needed to raise an electron in the hydrogen atom from the second energy level to the third energy level.
The electrons that surround an atom around the nucleus are located in regions called "energy levels". It represents the 3-D space that surrounds the nucleus where the electrons are present. It is divided into several energy levels such as first energy level, second energy level and so on.
The level that is closest to the nucleus is the first energy level, then the second one is further away from it, then the third one is a little further away and so on. Each energy level has different number of electrons like first has 2 electrons, second has 8, third has 8 and so on. The electrons which are further away from the nucleus are called valence electrons.
For given above information,
E = - /
where,
= 13.6 eV (1 eV = 1.602×10-19 Joules) and n = 1,2,3… and so on so that the ground state has energy = -13.6 eV and the second energy level (the first excited state) has energy = -13.6/4 eV = -3.4 eV.
So,
1eV = 1.602×J
Energy difference can be calculated by -13.6eV (- )
= Final energy; = Initial energy
1.88 eV is equals to x
So, x= 3.03*
Thus, is the energy needed to raise an electron in the hydrogen atom from the second energy level to the third energy level.
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The amount of heat that is released by the chemical reaction of 25.0 g of with water is -20.223 Joules.
Given the following data:
To find the amount of heat that is released by the chemical reaction of 25.0 g of with water:
First of all, we would determine the number of moles of in this chemical reaction:
------>
Substituting the values into the formula, we have;
Number of moles () = 0.321 moles.
Now, we can find the quantity of heat released when reacts with water:
2 mole of = -126 kJ/mol
0.321 mole of = X kJ/mol
Cross-multiplying, we have:
×
X = -20.223 Joules.
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Answer : The amount of heat released by the reaction is, 20.2 kJ
Explanation :
First we have to calculate the number of moles of .
Molar mass of = 77.98 g/mole
Now we have to calculate the heat released during the reaction.
The balanced chemical reaction is:
From the reaction we conclude that,
As, 2 moles of releases heat = 126 kJ
So, 0.320 moles of releases heat =
Therefore, the amount of heat released by the reaction is, 20.2 kJ