Consider looking up those definitions in a dictionary or in the appendix of your textbook.
Answer is in the Word document.
Answer:
C
Explanation:
The molarity of a solution prepared from 25.0 grams of methanol and 100.0 milliliters of ethanol is approximately 7.80 M.
This is a question about calculating molarity, which is a measure of concentration using moles per liter. To calculate the molarity of a methanol in ethanol, we first have to convert the mass of methanol into moles. The molar mass of methanol (CH3OH) is about 32.04 g/mol. Therefore, 25.0 g of methanol equals about 0.780 moles (25.0 g ÷ 32.04 g/mol).
Next, the volume of ethanol needs to be converted from milliliters to liters. Thus, 100.0 mL becomes 0.100 L. Finally, the molarity is calculated by dividing the moles of methanol by the volume of the ethanol in liters, resulting in a molarity of approximately 7.80 M (0.780 moles ÷ 0.100 L).
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Question 3 options:
34.05 amu
31.03 amu
30.02 amu
15.01 amu
Answer: 34.05
Explanation:
2N and 6H = abt 34
The reactions that would have the smallest value of K is
A + B → 2 C; E°cell = -0.030 V
Option A
Generally the equation for the number of electrons transferred is mathematically given as
where
T= Temperature
F=25C(298K)
R = Gas constant
R= 8.314 J/K.mol
F = Faraday's constant
F= 96500 C
We see from the equation that the E-cell is directly proportional to K(equilibrium constant of the reaction)
Hence, The reactions that would have the smallest value of K is
A + B → 2 C; E°cell = -0.030 V
For more information on Reaction
Answer:
The reaction with smallest value of K is :
A + B → 2 C; E°cell = -0.030 V
Explanation:
where :
n = number of electrons transferred
F = Faraday's constant = 96500 C
= standard electrode potential of the cell
R = Gas constant = 8.314 J/K.mol
T = temperature of the reaction =
= equilibrium constant of the reaction
As we cans see, that standard electrode potential of the cell is directly linked to the equilibrium constant of the reaction.
So, the reaction with smallest value of electrode potential will have smallest value of equilibrium constant. And that reaction is:
A + B → 2 C;
Answer:
Rate of reaction will be half of it's initial value
Explanation:
For the given reaction, the rate law is -
Where k is rate constant, [1-iodo-2-methylbutane] is concentration of 1-iodo-2-methylbutane and is concentration of
Here nucleophile is the ion
Initiallly,
When concentration of is halved then-
So rate of reaction will be half of it's initial value
Explanation:
Molar mass of potassium nitrate will be calculated as follows.
Molar mass = molar mass of K + molar mass of N + 3 × molar mass of O
= 39.098 g/mol + 14.006 g/mol + 3 × 15.999 g/mol
= 102.102 g/mol
Now, adding the given amount of potassium nitrate present in each beaker as follows.
(2.3 + 1.91 + 5.985 + 0.52) g
= 10.715 g
Therefore, calculate number of moles as follows.
No. of moles =
=
= 0.105 mol
Thus, we can conclude that 0.105 moles of potassium nitrate were recovered after the water evaporated.