Determine the mass of lithium hydroxide produced when 0.83g of lithium nitride reacts with water

Answers

Answer 1
Hello! 

The mass of Lithium hydroxide that is produced when 0.83g of lithium nitride reacts with water is 1,7122 g.

The reaction between water and lithium nitride is the following:

Li₃N(s) + 3H₂O(l) → NH₃(g) + 3LiOH(aq)

From this reaction we can calculate the mass of lithium hydroxide produced when 0,83 g of Lithium Nitride reacts with water, using the following conversion factor to go from grams of Li₃N to grams of LiOH using the reaction coefficients and molar masses:

[tex]0,83gLi_3N* \frac{1 mol Li_3N}{34,83 g Li_3N}* \frac{3 mol LiOH}{1 mol Li_3N}* \frac{23,95 g LiOH}{1 mol LiOH}= 1,7122 g LiOH [/tex]

Have a nice day!
Answer 2
Final answer:

When 0.83g of lithium nitride reacts with water, 1.7g of lithium hydroxide is produced according to the balanced chemical equation and stoichiometry.

Explanation:

To determine the mass of lithium hydroxide (LiOH) produced, we first need to understand the balanced chemical equation of the reaction.
Lithium nitride (Li₃N) reacts with water (H₂O) to form lithium hydroxide and ammonia (NH₃), which can be represented as:

Li₃N + 3H₂O → 3LiOH + NH₃

From the equation, we can see that 1 mole of lithium nitride reacts with 3 moles of water to produce 3 moles of lithium hydroxide.
Next, we need to convert the mass of lithium nitride to moles using the molar mass of lithium nitride, which is approximately 34.83 g/mol.

0.83 g Li₃N * (1 mol/34.83 g) = 0.0238 mol

Since the molar ratio of Li₃N to LiOH is 1:3, we multiply this mole by 3 to get the moles of lithium hydroxide produced.

Moles of LiOH = 0.0238 mol * 3 = 0.0714 mol

Finally, we convert the moles of LiOH to grams using the molar mass of LiOH, which is 23.95 g/mol.

Mass of LiOH = 0.0714 mol * 23.95 g/mol = 1.7 g

So, when 0.83g of lithium nitride reacts with water, 1.7g of lithium hydroxide is produced.

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Related Questions

If the apparent magnitude of a star increases,the star get brighter, true or false?

Answers

False, it does not change.

The solubility of silver chloride can be increased by dissolving it in a solution containing ammonia. agcl (s) ag+ (aq) + cl- (aq) k1 = 1.6 x 10-10 ag+ (aq) + 2nh3 (aq) ag(nh3)2+ (aq) k2 = 1.5 x 107 what is the value of the equilibrium constant for the overall reaction? agcl (s) + 2nh3 (aq) ag(nh3)2+ (aq) + cl- (aq) knet = ? question 14 options:
a.1.5 x 107

Answers

We know that to calculate for the equilibrium constant Knet for the overall reaction           
        AgCl(s) + 2NH3(aq) = Ag(NH3)2+(aq) + Cl-(aq)
we just get the product of the equilibrium constants of the equations                                    AgCl(s) = Ag+(aq) + Cl-(aq)                          K1 = 1.6 x 10-10                                         Ag+(aq) + 2NH3(aq) = Ag(NH3)2+(aq)         K2 = 1.5 x 107
                                                                                                                                                Knet = K1 * K2                                                                                                                          = (1.6 x 10-10)(1.5 x 107)                                                                                                  = 2.4 x 10-3

A certain weak acid, ha, has a ka value of 3.6×10−7. part a calculate the percent ionization of ha in a 0.10 m solution. express your answer to two significant figures and include the appropriate units. view available hint(s)

Answers

Answer is: the percent ionization is 0,19%.
Chemical reaction: HA(aq) ⇄ H⁺(aq) + A⁻(aq).
Ka(HA) = 3,6·10⁻⁷.
c(HA) = 0,1 M.
[H⁺] = [A⁻] = x; equilibrium concentration.
[HA] = 0,1 M - x.
Ka = [H⁺] · [A⁻] / [HA].
0,00000036 = x² / 0,1 M - x.
Solve quadratic equation: x = 0,00019 M.
α = 0,00019 M ÷ 0,1 M · 100% = 0,19%.

Final answer:

The percent ionization of HA in a 0.10 M solution, with a Ka of 3.6×10⁻⁷, is approximately 0.19%.

Explanation:

The percent ionization of a weak acid can be calculated using its Ka value and the initial concentration of the acid. For HA, with a Ka of 3.6×10⁻⁷ and an initial concentration of 0.10 M, the percent ionization is determined as follows: First, set up the reaction as HA → H+ + A-. The equilibrium expression is Ka = [H+][A-] / [HA]. Assuming x is the amount ionized, we have Ka = x² / (0.10 - x). Solving this equation for x, we approximate that x is small compared to the initial concentration, so 0.10 - x is nearly 0.10. Therefore, Ka ≈ x² / 0.10 M. Solving for x gives x = sqrt(Ka × 0.10 M), and the percent ionization = (x / 0.10 M) × 100%. Substituting in the given values, we get percent ionization ≈ sqrt(3.6×10⁻⁷ × 0.10 M) / 0.10 M × 100% = 0.19%.

Write a net ionic equation to show that acetylsalicylic acid (aspirin), hc9h7o4, behaves as a brønsted-lowry acid in water.

Answers

Balanced chemical reaction of aspirin in water:
HC₉H₇O₄(aq) + H₂O(l) ⇄ C₉H₇O₄⁻(aq) + H₃O⁺(aq).
In this chemical reaction aspirin(HC₉H₇O₄) is an acid because it donates a proton (H⁺) to water and becomes its conjugate base (C₉H₇O₄⁻) and water is a base because it accepts a proton from aspirin and becomes its conjugate acid, the hydronium ion, (H₃O⁺).

Explanation:

According to the Bronsted-Lowry conjugate acid-base theory:

An acid is defined as a substance which looses donates protons and thus forming conjugate base.A base is defined as a substance which accepts protons and thus forming conjugate acid.

Acetylsalicylic acid when dissolved in water donates its proton to form conjugate base and water gains the proton to form conjugate acid.The net ionic equation is given as:

[tex]HC_9H_7O_4(0+H_2O\rightarrow (C_9H_7O_4)^{-}+H_3O^+[/tex]

The stalk that holds the anther up so that pollination and fertilization can occur is the _______. :
stigma
style
filament
anther

Answers

The filament holds up the anther so that pollination and fertilization can occur!
The answer is filament. Hope that helped!

What mass of salt (nacl) should you add to 1.80 l of water in an ice cream maker to make a solution that freezes at -13.4 ∘c ? assume complete dissociation of the nacl and density of 1.00 g/ml for water?

Answers

We will use this formula:
Δ T = i*Kf*C
when i = vant Hoff factor = 2
Kf = Constant 1.86 °C/m
and C = Concentration of molality
ΔT =13.4 °C

So by substitution:
C = ΔT/(i*Kf)
   = 13.4 / (2*1.86)
   = 3.6 m

when molality = moles of solute / Kg of solvent
note molar mass of NaCl = 58.5 g /mol
∴mass of NaCl = 1.8 Kg * (3.6m NaCl / 1Kg) *(58.5 g /mol)
                          =  379 g 

Different environments cause different species to Blank Space __________.

become more diverse


become less diverse


become extinct


have similar traits

Answers

A become more diverse ⇒⇒⇒⇒ωωωω∉∴∈²ΔΔ 

The volume of a gas is 450 mL when its pressure is 1.00 atm. If the temperature of the gas does not change, what is the pressure when its volume is changed to 2.00 L?
Use: P1V1=P2V2

A) 0.225 atm
B) 0.444 atm
C) 2.25 atm
D) 4.44 atm

Answers

Answer:

A) 0.225atm

Explanation:

P1V1 = P2V2

V1 = 450ml

P1 = 1.0atm

V2 = 2L = 2 X 100 = 2000ml

P2 =?

1.0 X 450 = P2 X 2000

P2 = (1.0 X 450)/2000

    = 0.225atm

A wave with a frequency of 14 hertz has a wavelength of 3 meters. At what speed will this wave travel?

Answers

frequency = 14 Hz
wavelength = 3 m
speed = ?

speed = frequency x wavelength
speed =    14  x  3
speed =     42 meter per second

if it helps then pls give me brainliest
Final answer:

The speed of a wave can be determined by multiplying its frequency by its wavelength. In this case, a wave with a frequency of 14 hertz and a wavelength of 3 meters will travel at a speed of 42 meters per second.

Explanation:

This is a question related to the physics of wave motion. The speed of a wave can be calculated using the formula:

Speed = Frequency x Wavelength

. Given the frequency of the wave is 14 hertz and the wavelength is 3 meters, you can plug these values into the formula. Therefore, the speed of the wave would be:

14 Hertz x 3 meters = 42 meters per second

. Hence, the wave will travel at a speed of 42 meters per second.

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Find the number of moles of water that can be formed if you have 226 mol of hydrogen gas and 108 mol of oxygen gas.

Answers

Answer is: there are 216 moles od water.
Chemical reaction: 2H₂ + O₂ → 2H₂O.
n(H₂) = 226 mol.
n(O₂) = 108 mol; limiting reactant.
From chemical reaction: n(O₂) : n(H₂O) = 1 : 2.
n(H₂O) = 2 · n(O₂).
n(H₂O) = 2 · 108 mol.
n(H₂O) = 216 mol.
n - amount of substance.

A strong oxidizing agent will donate electrons readily.

Answers

false is the answer to this question.

Answer: The given statement is false.

Explanation:

Oxidizing agents are defined as the agents that helps in the oxidation of other substance and itself gets reduced. These agents undergo reduction reactions and reduction reaction is the reaction in which an atom gains electrons.

Reducing agents are defined as the agents that helps in the reduction of other substance and itself gets oxidized. These agents undergo oxidation reactions and oxidation reaction is the reaction in which an atom looses electrons.

So, a strong oxidizing agent will gain electrons easily

Hence, the given statement is false.

Noble gas notation write the electron configuration for the manganese atom

Answers

 the electron configuration for the manganese atom [Ne]3s²

if 100. mL of 0.800 M Na2SO4 is added to 200. mL of 1.20 M NaCl, what is the concentration of Na+ ions in the final solution? Assume fhat the volumes are additive

Answers

Compounds Na₂SO₄ and NaCl are mixed together are we are asked to find the concentration of Na⁺ in the mixture 
Na₂SO₄ ---> 2 Na⁺ + SO₄³⁻

1 mol of Na₂SO₄ gives out 2 mol of Na⁺ ions 

the number of Na₂SO₄ moles added - 0.800 M/1000 * 100 ml
                                                         = 0.08 mol
therefore number of Na⁺ ions from Na₂SO₄ = 0.08 * 2 = 0.16 mol

NaCl ----> Na⁺ + Cl⁻ 
1 mol of NaCl gives 1 mol of Na⁺ ions
number of NaCl moles added = 1.20 M/1000 * 200 ml
                                               = 0.24 mol
number of Na⁺ ions from NaCl = 0.24 mol

total number of Na⁺ ions in the mixture = 0.16 mol + 0.24 mol = 0.4 mol
as stated the volumes are additive, 
therefore total volume  = 100 ml + 200 ml = 300 ml 
the concentration of Na⁺ ions = number of moles / volume 
                                              = 0.4 mol/ 0.3 dm³
concentration of Na⁺ = 1.33 mol/dm³
Final answer:

The concentration of Na+ ions in the final solution is determined by calculating the total moles of Na+ in the final solution and dividing by the total volume of the solution. In this example, it is calculated to be 1.33 M.

Explanation:

The subject of the question deals with determining the concentration of sodium ions (Na+) in a mixed solution of sodium sulfate (Na₂SO₄) and sodium chloride (NaCl). The concentration of Na+ ions in the solution can be calculated using the molarity (M) relationships of the two solutions.

First, we determine the amount of Na+ contributed from each solution. The Na₂SO₄ solution will contribute 2 moles of Na+ for each mole of Na₂SO₄, and the NaCl solution will contribute 1 mole of Na+  per mole of NaCl.

In Na₂SO₄, mols = Molarity * Volume (L) = 0.800 M * 0.100 L = 0.080 moles. Each mole of Na₂SO₄ gives 2 moles of Na+, hence total moles of Na+ from Na₂SO₄ is 2 * 0.080 = 0.160 moles.

In NaCl, mols = Molarity * Volume (L) = 1.20 M * 0.200 L = 0.240 moles. Total moles of Na+ from NaCl is 0.240 moles. The total Na+ in the solution is the sum of the Na+ from each, so total moles of Na+ = 0.160 + 0.240 = 0.400 moles.

Finally, molarity of Na+ in the final solution is total moles of Na+ divided by total volume (in Liters). Since it is given that volumes are additive, total volume = 0.100 + 0.200 = 0.300 L. Therefore, molarity of Na+ (M) = 0.400 moles / 0.300 L = 1.33 M. So, the concentration of Na+ in the final solution is 1.33 M.

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Water (h2o) and methane (ch4) have similar molar masses. methane changes from a liquid to a gas at -161oc. water becomes a gas at 100oc. what could account for this difference

Answers

Answer is: hydrogen bond.
Hydrogen bonds are formed between water molecules and not between methane molecules.
The melting and boiling point depend on the strength of the ihydrogen bonds. Hydrogen bonding will cause the higher the melting and boiling points because more energy is needed to break bonds between molecules.

Match each type of titration to its ph at the equivalence point for solutions at 25 ∘c. drag each item to the appropriate bin. view available hint(s) resethelp ph less than 7 ph equal to 7 ph greater than 7

Answers

the complete question;
Match each type of titration to its pH at the equivalence point.
Weak acid, strong base
Strong acid, strong base
Weak base, strong acid

pH less than 7
pH equal to 7
pH greater than 7
Answer:
weak acid, strong base - pH greater than 7
Strong acid, strong base - pH equal to 7
Weak base, strong acid - pH less than 7
Strong acids dissociate completely to give out H⁺ ions. 
Strong bases dissociate completely to give out OH⁻ ions.
When strong acids and strong bases are mixed the dissociated H⁺ and OH⁻ ions  react and neutralise each other, making the solution neutral.
Weak acids cannot completely dissociate, only a fraction of H⁺ ions are dissociated. Same applies for weak bases.
When weak acid and strong base is mixed, whilst the strong acid completely dissociates, weak base only partially dissociates. Therefore the amount of H⁺ ions is greater than OH⁻ ions, overall pH is more acidic, hence less than 7.
When strong base and weak acid are mixed, strong base completely dissociates giving OH⁻ ions and weak acid only partially dissociates, therefore amount of OH⁻ ions is greater than H⁺ ions, more basic hence pH is greater than 7.

The activity of a certain isotope dropped from 3200 ci to 800 ci in 24.0 years. what is the half-life of this isotope (in years)? show your work.

Answers

ln(800/3200) = - kt
t = 24 years.
ln(0.25) = -k*24
(- 1.3863) = -k*24
1.3863  / 24 = k
0.05776 = k

ln(0.5) = -k*t
-0.6931 = - 0.05776 t
12 = t

I don't know if you can just look at the question and know the answer. If 24 years is a quarter life then is it obvious that the 1/2 life is 12 years? It might be, but the method I've used works for sure. 


Calculate the molarity of a solution made by adding 45.4 g of nano3 to a flask and dissolving it with water to create a total volume of 2.50 l.

Answers

molarity is defined as the number of moles of solute in 1 L of solution.
molar mass of NaNO₃ = 85 g/mol
             
number of moles of NaNO₃ = 45.4 g / 85 g/mol = 0.534 mol
 
there are 0.534 mol in 2.50 L solution
                         
therefore number of NaNO₃ moles in 1 L solution = 0.534 mol / 2.50 L = 0.214 M
molarity of solution is 0.214 M

The molarity of [tex]{\text{NaN}}{{\text{O}}_{\text{3}}}[/tex] solution is [tex]\boxed{{\text{0}}{\text{.214 M}}}[/tex].

Further Explanation:

The proportion of substance in the mixture is called concentration. The most commonly used concentration terms are as follows:

1. Molarity (M)

2. Molality (m)

3. Mole fraction (X)

4. Parts per million (ppm)

5. Mass percent ((w/w) %)

6. Volume percent ((v/v) %)

Molarity is a concentration term that is defined as the number of moles of solute dissolved in one litre of the solution. It is denoted by M and its unit is mol/L.

The formula to calculate the molarity of the [tex]{\text{NaN}}{{\text{O}}_{\text{3}}}[/tex]solution is as follows:

[tex]{\text{Molarity of NaN}}{{\text{O}}_{\text{3}}}{\text{ solution}} = \frac{{{\text{Moles}}\;{\text{of}}\;{\text{NaN}}{{\text{O}}_{\text{3}}}}}{{{\text{Volume }}\left( {\text{L}} \right){\text{ of}}\;{\text{NaN}}{{\text{O}}_{\text{3}}}{\text{ solution}}}}[/tex]      …… (1)

The formula to calculate the moles of [tex]{\text{NaN}}{{\text{O}}_{\text{3}}}[/tex]is as follows:

[tex]{\text{Moles of NaN}}{{\text{O}}_{\text{3}}} = \frac{{{\text{Given mass of NaN}}{{\text{O}}_{\text{3}}}}}{{{\text{Molar mass of NaN}}{{\text{O}}_{\text{3}}}}}[/tex]                  …… (2)

The given mass of [tex]{\text{NaN}}{{\text{O}}_{\text{3}}}[/tex] is 45.4 g.

The molar mass of [tex]{\text{NaN}}{{\text{O}}_{\text{3}}}[/tex]is 84.99 g/mol.

Substitute these values in equation (2).

[tex]\begin{aligned}{\text{Moles of NaN}}{{\text{O}}_3}&=\left( {{\text{45}}{\text{.4 g}}} \right)\left( {\frac{{{\text{1 mol}}}}{{{\text{84}}{\text{.99 g}}}}} \right)\\&=0.5341\;{\text{mol}}\\\end{aligned}[/tex]

Substitute 0.5341 for the moles of [tex]{\text{NaN}}{{\text{O}}_{\text{3}}}[/tex]and 2.50 L for the volume of [tex]{\text{NaN}}{{\text{O}}_{\text{3}}}[/tex] solution in equation (1).

[tex]\begin{aligned}{\text{Molarity of NaN}}{{\text{O}}_{\text{3}}}{\text{ solution}}&=\frac{{{\text{0}}{\text{.5341 mol}}}}{{{\text{2}}{\text{.50 L}}}}\\&=0.21{\text{364 M}}\\&\approx{\text{0}}{\text{.214 M}} \\ \end{aligned}[/tex]

The molarity of the [tex]{\mathbf{NaN}}{{\mathbf{O}}_{\mathbf{3}}}[/tex]solution is 0.214 M.

Learn more:

1. Calculation of volume of gas: https://brainly.com/question/3636135

2. Determine how many moles of water produce: https://brainly.com/question/1405182

Answer details:

Grade: Senior School

Subject: Chemistry

Chapter: Concentration terms

Keywords: molarity of NaNO3 solution, 2.50 L, volume of NaNO3 solution, moles of NaNO3, given mass, molar mass, 84.99 g/mol, 45.4 g, 0.214 M, NaNO3, molar mass, given mass.

What is the correct formula for the compound formed between iron(iii) ion and the oxide ion?

Answers

Fe2o3 is the correct formula.
Final answer:

The correct formula for the compound formed between the iron(III) ion and the oxide ion is Fe2O3.

Explanation:

The compound formed between the iron(III) ion and the oxide ion is called iron(III) oxide. The formula for this compound can be determined by balancing the charges of the ions. The iron(III) ion has a charge of +3 and the oxide ion has a charge of -2. To balance the charges, we need two iron(III) ions for every three oxide ions. Therefore, the correct formula for the compound is Fe2O3.

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Given the balanced equation 3H2(g)+N2(g)=2NH3(g), calculate the mass of NH3 produced by the complete reaction of 2.55g of H2

Answers

Hello!

The mass of NH₃ produced by the complete reaction of 2,55 g of H₂ is 14,3622 g 

To calculate the mass of NH₃ produced in the chemical reaction we need to use the following conversion factor, to go from the mass of H₂ to the mass of NH₃, using the reaction coefficients for the reagents and the products, and the molar masses of each compound:

[tex]2,55gH_2* \frac{1 mol H_2}{2,0159 g H_2}* \frac{2 mol NH_3}{3 mol H_2}* \frac{17,031 g NH_3}{1 mol NH_3}=14,3622 g NH_3 [/tex]

Have a nice day!
Final answer:

The mass of NH3 produced from the complete reaction of 2.55g of H2 is calculated to be 14.45 g, based on the molar masses of H2 and NH3 and the stoichiometry of the given balanced chemical equation.

Explanation:

To calculate the mass of NH3 produced by the complete reaction of 2.55g of H2, we first need to determine the molar mass of H2. Knowing that the atomic mass of hydrogen is 1.0, we can say that the molar mass of H2 is 2.0 g/mol. Next, we need to find out how many moles of H2 are in 2.55 g:

Number of moles of H2 = mass (g) / molar mass (g/mol) = 2.55 g / 2.0 g/mol = 1.275 mol

Using the stoichiometry of the balanced equation (N2(g) + 3H2(g) → 2NH3(g)), we can see that 3 moles of H2 produce 2 moles of NH3. Therefore, we can set up a proportion to find the number of moles of NH3 that would be produced from 1.275 moles of H2:

(1.275 mol H2) * (2 mol NH3 / 3 mol H2) = 0.85 mol NH3

Now, to find the mass of NH3, we need to know its molar mass. The atomic mass of nitrogen is 14.0 and hydrogen is 1.0, so the molar mass of NH3 is 14.0 + (3 * 1.0) = 17.0 g/mol. Finally, we can calculate the mass of NH3 produced:

Mass of NH3 = number of moles * molar mass = 0.85 mol * 17.0 g/mol = 14.45 g

the theory general relativity was discovered by who

Answers

The theory general relativity was discovered by Albert Einstein 

What is the formula of sodium bicarbonate

Answers

Hello Kimberly!

The formula of sodium bicarbonate is [tex]NaHCO3[/tex]

It is always my pleasure to help students like you!

A solution has [oh−] = 4.0×10−8. what is the value of [h+] for the solution? answers

Answers

Answer is: the hydrogen ion concentration is 2,5·10⁻⁷ M.
[OH⁻] = 4,0·10⁻⁸ mol/L, equilibrium concentration of hydroxide anion.
[H⁺] is the concentration of hydrogen ions.
[OH⁻] · [H⁺] = 10⁻¹⁴ mol²/L², ionic product of water on room temperature.
[H⁺] = 10⁻¹⁴ mol²/L² ÷  4·10⁻⁸ mol/L.
[H⁺] = 2,5·10⁻⁷ mol/L = 0,00000025 mol/L.
Final answer:

The value of [H+] for the solution with [OH−] = 4.0×10−8 is calculated using the formula [H+] = Kw / [OH−], yielding a hydronium ion concentration of 2.5×10−7 M.

Explanation:

To find the value of the hydronium ion concentration ([H+]) for a solution with a given hydroxide ion concentration ([OH−]), you can use the ion product constant for water (Kw), which is always 1.0 × 10−14 M2 at 25°C. The formula is [H+] = Kw / [OH−]. When the [OH−] is 4.0 × 10−8, we can calculate the [H+] as follows:

[H+] = 1.0 × 10−14 / 4.0 × 10−8[H+] = 2.5 × 10−7 M

Therefore, the hydronium ion concentration of the solution is 2.5 × 10−7 M.

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What is the subject in this simple sentence? Arabian, Appaloosa, and Morgan horses will be at the county horse show this week. A. Arabian B. Appaloosa C. horses D. Morgan

Answers

Horses is the answer

Final answer:

The subject of the sentence is 'horses,' as it is the main noun that the sentence is about, while 'Arabian,' 'Appaloosa,' and 'Morgan' are adjectives. Furthermore, horses can be classified as mammals in the animal kingdom. Option C

Explanation:

The subject in the sentence 'Arabian, Appaloosa, and Morgan horses will be at the county horse show this week.' is horses. When identifying the subject of a sentence, you are looking for the main noun or noun phrase that the sentence is about.

In this case, 'Arabian,' 'Appaloosa,' and 'Morgan' serve as adjectives describing the kinds of horses that will be present at the show. Therefore, the correct answer is C. horses.

As for classification, it's easy enough to classify the horse in the animal kingdom. That's one level of classification. But horses also belong to other groups; one important group is the mammals. These animals all have fur and nurse their young, which are key characteristics of mammals. Option C

The activation energy for the reaction no2(g)+co(g)⟶no(g)+co2(g) is ea = 100 kj/mol and the change in enthalpy for the reaction is δh = -250 kj/mol . what is the activation energy for the reverse reaction?

Answers

Final answer:

The activation energy for the reverse reaction is calculated using the given activation energy for the forward reaction (100 kJ/mol) and the change in enthalpy of the reaction (-250 kJ/mol), resulting in an activation energy of 350 kJ/mol for the reverse reaction.

Explanation:

The question is about finding the activation energy for the reverse reaction based on the given activation energy and the change in enthalpy for the forward reaction. Using the provided data, Ea for the forward reaction is 100 kJ/mol and ΔH for the reaction is -250 kJ/mol.

To find the activation energy for the reverse reaction, we can use the concept that the sum of the activation energies for the forward and reverse reactions is equal to the difference in energy between the products and reactants. This relationship is derived from the potential energy diagram of a chemical reaction.

The activation energy for the reverse reaction can be calculated using the equation:
Ea(reverse) = Ea(forward) + ΔH

Substituting the given values:

Ea(reverse) = 100 kJ/mol - (-250 kJ/mol)

Ea(reverse) = 100 kJ/mol + 250 kJ/mol

Ea(reverse) = 350 kJ/mol

Therefore, the activation energy for the reverse reaction is 350 kJ/mol.

Determine the ph of 0.57 m methylamine (ch3nh2) with kb = 4.4 x 10-4 : ch3nh2(aq)+ h2o(l) ⇌ ch3nh3+ (aq) + oh- (aq)

Answers

Answer is: pH of methylamine is 12,2.
Chemical reaction: CH₃NH₂(aq)+ H₂O(l) ⇌ CH₃NH₃⁺(aq) + OH⁻(aq).
Kb(CH₃NH₂) = 4,4·10⁻⁴.

c₀(CH₃NH₂) = 0,57 M.

c(CH₃NH₃⁺) = c(OH⁻) = x.

c(NH₂OH) = 0,57 M - x.

Kb = c(CH₃NH₃⁺) · c(OH⁻) / c(CH₃NH₂).

0,00044 = x² /  (0,57 M - x). 

Solve quadratic equation: x = c(OH⁻) = 0,0156 mol/L.

pOH = -log(0,0156 mol/L.) = 1,80.

pH = 14 - 1,80 = 12,2.


The pH value is 12.2

Further explanation

Given:

0.57 M methylamine (CH₃NH₂)[tex]K_b = 4.4 \times 10^{-4}[/tex]

Question:

The pH value of methylamine

The Process:

Methylamine  is a weak base. When a weak base reacts with water, it produces its conjugate acid and hydroxide ions.

[tex]\boxed{ \ CH_3NH_2_{(aq)} + H_2O_{(l)} \rightleftharpoons CH_3NH_3_{(aq)} + OH^-_{(aq)} \ }[/tex]

CH₃NH₂ is the conjugate acid of CH₃NH₂.The concentration of hydroxide ions is needed to calculate pH.

Let's prepare the equilibrium system to calculate the concentration of hydroxide ions. In chemical equilibrium, the liquid phase has no effect.

Initial concentration (in molars): [tex]\boxed{ \ [CH_3 NH_2] = 0.57 \ }[/tex]Change (in molars): [tex]\boxed{ \ [CH_3NH_2] = -x \ } \boxed{ \ [CH_3NH_3] = +x \ } \boxed{ \ [OH^-] = +x \ }[/tex]Equilibrium (in molars): [tex]\boxed{ \ [CH_3NH_2] = 0.57 - x \ } \boxed{ \ [CH_3NH_3] = x \ } \boxed{ \ [OH^-] = x \ }[/tex]

[tex]\boxed{ \ K_b = \frac{ [CH_3NH_3] [OH^-] }{ [CH_3NH_2] } \ }[/tex]

Here Kb acts as Kc or equilibrium constant.

[tex]\boxed{ \ 4.4 \times 10^{-4} = \frac{ x \cdot x }{ 0.57 - x } \ }[/tex]

[tex]\boxed{ \ 4.4 \times 10^{-4} = \frac{x^2}{0.57 - x} \ }[/tex]

[tex]\boxed{ \ 2.508 \times 10^{-4} - 4.4 \times 10^{-4}x = x^2 \ }[/tex]

[tex]\boxed{ \ x^2 + 4.4 \times 10^{-4}x - 2.508 \times 10^{-4} = 0 \ }[/tex]

The solution is obtained through the formula of quadratic equations, i.e., [tex]\boxed{ \ x = [OH^-] = 0.0156 \ M \ }[/tex]

Next, we calculated the pOH value followed by the pH value.

[tex]\boxed{ \ pOH = -log [OH^-] \ }[/tex]

[tex]\boxed{ \ pOH = -log [0.0156] \ }[/tex]

We get [tex]\boxed{ \ pOH = 1.81 \ }[/tex]

[tex]\boxed{ \ pH + pOH = 14 \ }[/tex]

[tex]\boxed{ \ pH = 14 - pOH \ }[/tex]

[tex]\boxed{ \ pH = 14 - 1.81 \ }[/tex]

Thus [tex]\boxed{\boxed{ \ pH = 12.19 \ rounded \ to \ 12.2 \ }}[/tex]

- - - - - - -

Quick Steps

0.57 M methylamine (CH₃NH₂)

[tex]K_b = 4.4 \times 10^{-4}[/tex]

We immediately use the formula to calculate the concentration of hydroxide ions for weak bases.

[tex]\boxed{\boxed{ \ [OH^-] = \sqrt{K_b \times base \ concentration} \ }}[/tex]

[tex]\boxed{ \ [OH^-] = \sqrt{4.4 \times 10^{-4} \times 0.57} \ }[/tex]

[tex]\boxed{ \ [OH^-] = 0.0158 \ M \ }[/tex]

Like the steps above, we calculated the pOH value followed by the pH value.

[tex]\boxed{ \ pOH = -log [OH^-] \ }[/tex]

[tex]\boxed{ \ pOH = -log [0.0158] \ }[/tex]

[tex]\boxed{ \ pOH = 1.8 \ }[/tex]

[tex]\boxed{ \ pH = 14 - pOH \ }[/tex]

[tex]\boxed{ \ pH = 14 - 1.8 \ }[/tex]

Thus [tex]\boxed{\boxed{ \ pH = 12.2 \ }}[/tex]

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Keywords: determine, the pH, 0.57 M, methylamine, CH₃NH₂, CH₃NH₃, OH⁻, Kb, Kc, equilibrium constant, weak base

What is the number “4” in SiCl4?

Answers

The '4' tells how many Chlorine are in the compound.
Hello there,

A subscript is the answer.

Hope this answer has helped you.

Jessie has never seen snow, but today the weather conditions may be just right! He knows the temperature on the Fahrenheit thermometer must be _______ degrees or lower for him to see his first snow fall.
A) 32 o
B) 20 o
C) -10 0
D) -32 0

Answers

The answer is 32° F, because water freezes at this temperature under normal pressures, and snow is water vapor frozen into ice crystals. 




N.b., it usually needs to be a little bit colder to have snow, but this is around the maximum (although I've seen snow around 38° F before).

Is calcium disodium ionic or covalent?

Answers

Calcium disodium is ionic. When you look at the periodic table, you can see that they are in the same group and that they re both metals. an ionic bond is formed by two or more nonmetals and a covalent bond is formed by two or more nonmetals.

How many moles of nitrogen are in 73.0g of nitrous oxide n2o

Answers

Hey there!:

Molar Mass

N2O = 44.013 g/mol


Therefore:

number of moles N :
 
73.0 g * 1 mol N2O / 44.013 g N2O * 2 mols N  / 1 mol N2O
                     

73.0 * 1  / 44.013    *  2 / 1 =


73.0 / 44.013   * 2  = 


1.6586 * 2 => 3,31 moles of N


hope this helps!

Answer : The number of moles of nitrogen present in nitrous oxide is 3.32 moles.

Explanation : Given,

Mass of nitrous oxide = 73.0 g

Molar mass of nitrous oxide = 44 g/mole

Now we have to calculate the moles of [tex]N_2O[/tex].

Formula used :

[tex]\text{ Moles of }N_2O=\frac{\text{ Mass of }N_2O}{\text{ Molar mass of }N_2O}[/tex]

[tex]\text{ Moles of }N_2O=\frac{73.0g}{44g/mole}=1.66moles[/tex]

Now we have to calculate the moles of nitrogen in nitrous oxide.

In [tex]N_2O[/tex] molecule, there are 2 moles of nitrogen atoms and 1 mole of oxygen atom.

As, 1 mole of [tex]N_2O[/tex] contains 2 moles of nitrogen

So, 1.66 moles of [tex]N_2O[/tex] contains [tex]1.66\times 2=3.32[/tex] moles of nitrogen.

Therefore, the number of moles of nitrogen present in nitrous oxide is 3.32 moles.

Which of the following is an endothermic reaction?
Question 1 options:

sodium chloride dissolving in water

strong hydrochloric acid dissolving in water

a liquid changing to a gas

sugar dissolving in water

Answers

Answer: a liquid changing to a gas

Have a FANTASTIC day!!!

Final answer:

An endothermic reaction is one that absorbs heat. The dissolving of sodium chloride or sugar in water is usually endothermic since these processes typically absorb heat. The transition of a liquid to a gas is also an endothermic process as it requires heat input.

Explanation:

An endothermic reaction is a process that absorbs heat from the surroundings. When sodium chloride dissolves in water, it can be an endothermic process as the solution usually gets cooler, indicating that heat is absorbed from the surroundings to break the ionic bonds and dissolve the salt. The dissolving of sugar in water generally is also considered slightly endothermic for similar reasons. A liquid changing to a gas, such as water boiling, is an endothermic process as it requires heat to overcome the intermolecular forces in the liquid. Finally, although dissolving strong hydrochloric acid in water is also an interaction with water, it is typically an exothermic process, where heat is released.

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