Answer:
The specific heat capacity of the metal is approximately 0.3903 J/(g·°C)
Explanation:
The mass of the sample of the unknown metal, = 134.0 g
The temperature to which the metal is raised, = 91.0°C
The mass of water into which the mass of metal is placed, = 125 g
The temperature of the water into which the metal is placed, = 25.0°C
The final temperature of the water, = 31.0°C
The specific heat capacity of water, = 4.184 J/(g·°C)
The specific heat capacity of the metal =
Therefore, by the first laws of thermodynamics we have;
The heat transferred = Heat supplied by the metal = Heat gained by the water
The heat transferred, ΔQ, is given as follows;
ΔQ = ××( - ) = × ×( - )
125 × 4.184 × (31 - 25) = 134 × × (91 - 31)
∴ = (125 × 4.184 × (31 - 25))/(134 × (91 - 31)) ≈ 0.3903 J/(g·°C)
The specific heat capacity of the metal = ≈ 0.3903 J/(g·°C)
Answer is: The atomic size of the chlorine ion is larger than the size of the chlorine atom.
Covalent radii of chlorine atom (Cl) is 0.099 nm and ionic radii of chlorine anion (Cl⁻) is 0.181 nm.
Difference between an chlorine atom and chlorine anion is the number of electrons that surround the nucleus.
Chlorine atom has 17 electrons and chlorine anion has 18 electrons.
Answer: Boiling point
Explanation:
Boiling point is the temperature where the vapor pressure of a liquid equals the pressure of the gas present above it.
The normal boiling point of a liquid is the temperature at which its vapor pressure is equal to one atmosphere.
Boiling point depends on the intermolecular forces present between the molecules. More are the intermolecular forces, lesser will be the vapor pressure and thus more heat will be supplied to make vapor pressure equal to the atmospheric pressure. Thus higher will be the boiling point.
Normal boiling point for water is .
Fluorine
Explanation:
F- has the lowest ionisation energy
c=299,792,458
f=2x10to the 12th Hz
lambda=c/f
how do I solve this?
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.
Read more: brainly.com/question/13197037
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