Calculate the change in enthalpy of the reaction below when aqueous carbonic acid reacts with aqueous potassium hydroxide, given the following heats of formation: Carbonic acid (aq) AH'= -699.7 kJ/mol; Potassium hydroxide (aq) AH"=-115.3 kJ/mol, Potassium carbonate AH = -282.3 kJ/mol, and water AHY = -285.8 kJ/mol _H2CO3(aq) + _KOH(aq) — _K.CO3(aq) + _H2O(1)

Answers

Answer 1

To calculate the change in enthalpy (ΔH) for the reaction, you can use the following formula:
ΔH = Σ[ΔH(products)] - Σ[ΔH(reactants)]
For the reaction: H2CO3(aq) + KOH(aq) → K2CO3(aq) + H2O(l)ΔH(products) = ΔH(K2CO3) + ΔH(H2O) = -282.3 kJ/mol + (-285.8 kJ/mol) = -568.1 kJ/mol
ΔH(reactants) = ΔH(H2CO3) + ΔH(KOH) = -699.7 kJ/mol + (-115.3 kJ/mol) = -815 kJ/mol
ΔH = (-568.1 kJ/mol) - (-815 kJ/mol) = 246.9 kJ/mol


The change in enthalpy (ΔH) for the given reaction is 246.9 kJ/mol.To calculate the change in enthalpy of the reaction, we need to use the heats of formation of the reactants and products. The balanced chemical equation shows that 1 mole of carbonic acid reacts with 1 mole of potassium hydroxide to form 1 mole of potassium carbonate and 1 mole of water.The enthalpy change of the reaction can be calculated using the following formula:
ΔH = ΣnΔHf(products) - ΣnΔHf(reactants)
Where ΔH is the change in enthalpy, Σn is the sum of the moles of each compound, and ΔHf is the heat of formation.
Substituting the values given, we get:
ΔH = (1 × -282.3 kJ/mol) + (1 × -285.8 kJ/mol) - (1 × -699.7 kJ/mol) - (1 × -115.3 kJ/mol)
ΔH = -567.8 kJ/mol + 814.4 kJ/mol
ΔH = 246.6 kJ/mol
The change in enthalpy of the reaction is 246.6 kJ/mol.

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Related Questions

a sample of o2 gas occupies a volume of 344 ml at 25 degrees celsius. if pressure remains constant, what would be the new volume if the temperature changed to:

Answers

The new volume of the O2 gas would be approximately 355 ml if the temperature changed from 25 degrees Celsius to 35 degrees Celsius, assuming the pressure remains constant

Assuming the pressure remains constant, we can use the formula V1/T1 = V2/T2 to find the new volume. Converting 25 degrees Celsius to Kelvin (25 + 273 = 298K), we have:
V1 = 344 ml
T1 = 298K
If the temperature changed to 35 degrees Celsius (35 + 273 = 308K), we can solve for V2:
V1/T1 = V2/T2
344 ml / 298K = V2 / 308K
Solving for V2, we get:
V2 = (344 ml / 298K) * 308K = 355 ml (approximately)
Therefore, the new volume of the O2 gas would be approximately 355 ml if the temperature changed from 25 degrees Celsius to 35 degrees Celsius, assuming the pressure remains constant.
A sample of O2 gas occupies a volume of 344 mL at 25°C. If the pressure remains constant, we can apply Charles's Law to determine the new volume when the temperature changes. Charles's Law states that V1/T1 = V2/T2, where V1 and T1 are the initial volume and temperature, and V2 and T2 are the final volume and temperature. To use this formula, temperatures must be in Kelvin. 25°C is equivalent to 298 K. When the temperature changes to T2, substitute the known values into the equation:
(344 mL / 298 K) = (V2 / T2)
Solve for V2 by multiplying both sides by T2:
V2 = (344 mL / 298 K) × T2
To find the new volume, simply replace T2 with the desired final temperature (in Kelvin) and solve for V2.

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What is the correct whole
number coefficient for barium
bromide, BaBr2?
2HBr + Ba(OH)2
[?]BaBr₂ +
JH₂O
Enter

Answers

Answer:

The correct whole number coefficient for barium bromide, BaBr₂, in the given chemical equation is 1. Therefore, the balanced equation would be:

2HBr + Ba(OH)₂ → BaBr₂ + 2H₂O

Equatorial attacks produces the alcohol in the _____ position which is _____, and axial attack produces the alcohol in the _____ position which is _____. A. Equatorial, axial, axial, equatorial B. Axial, equatorial, equatorial, axial C. Equatorial, axial, equatorial, axial D. Axial, equatorial, axial, equatorial

Answers

Equatorial attacks produce the alcohol in the equatorial position, which is axial, and axial attack produces the alcohol in the axial position, which is equatorial. The correct answer is B. Axial, equatorial, equatorial, axial.

Equatorial attacks produce the alcohol in the equatorial position, which is equatorial, while axial attacks produce the alcohol in the axial position, which is axial. This is due to the fact that in a cyclohexane molecule, the equatorial position is favored due to its lower energy state and greater stability compared to the axial position. Therefore, when an attack occurs, it is more likely to occur at the equatorial position, resulting in an equatorial attack. On the other hand, axial attacks occur when there is no other option but to attack from the axial position, which is less favorable but necessary in certain reactions. Therefore, the answer is C. Equatorial, axial, equatorial, axial.

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rank the free radicals (i-iii) shown below in order of decreasing stability (i.e., from most stable to least stable).
CH2CH2CH(CH3)2 CH3CH2C(CH3)2 CH3CHCH(CH3)2

Answers

The free radicals can be ranked in decreasing stability as follows: iii > i > ii. The stability decreases as the number of alkyl groups attached to the radical carbon decreases.

The stability of free radicals is influenced by the number of alkyl groups attached to the radical carbon. More substituted free radicals tend to be more stable due to the electron-donating inductive effect of alkyl groups.

In the given compounds, let's analyze each free radical:

i) [tex]CH_2CH_2CH(CH_3)_2[/tex]: This free radical has one alkyl group (two methyl groups) attached to the radical carbon. The presence of two methyl groups stabilizes the radical through the electron-donating inductive effect. Hence, it is the least stable among the three.

ii) [tex]CH_3CH_2C(CH_3)_2[/tex]: This free radical has two alkyl groups (one ethyl group and one methyl group) attached to the radical carbon. The presence of one ethyl group and one methyl group provides more stability compared to the first free radical (i), but it is still less stable than the third free radical (iii).

iii) [tex]CH_3CHCH(CH_3)_2[/tex]: This free radical has three alkyl groups (two methyl groups and one ethyl group) attached to the radical carbon. The presence of three alkyl groups imparts the highest stability among the given free radicals. The additional alkyl groups provide increased electron-donating inductive effects, making this free radical the most stable.

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which bromide will most rapidly undergo solvolysis in aqeous solution

Answers

The rate of solvolysis of a bromide in aqueous solution depends on several factors, including the reactivity of the bromide ion and the stability of the resulting carbocation intermediate.

This is because primary alkyl bromides have a less hindered carbon center, allowing for easier attack by the nucleophilic water molecule during solvolysis. Secondary and tertiary alkyl bromides, on the other hand, have more alkyl groups attached to the carbon center, resulting in steric hindrance that slows down the solvolysis reaction.

Therefore, the bromide that would most rapidly undergo solvolysis in aqueous solution is a primary alkyl bromide. The specific nature of the alkyl group attached to the bromide would further influence the reactivity, but among bromides with primary alkyl groups, the less sterically hindered the group is, the more rapid the solvolysis reaction would be.

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Use the following reactions with known ΔG∘rxnΔGrxn∘ values:
N2O4(g)→2NO2(g)N2O4(g)→2NO2(g), ΔG∘rxnΔGrxn∘ = 2.8 kJkJ
NO(g)+12O2(g)→NO2(g)NO(g)+12O2(g)→NO2(g), ΔG∘rxnΔGrxn∘ = - 36.3 kJkJ
Express your answer using one decimal place.

Answers

The standard Gibbs free energy change (ΔG°rxn) for the reaction N2O4(g) → 2NO2(g) is 2.8 kJ.

The responses are as follows:

Grxn = 2.8 kJ N2O4(g) 2NO2(g)

NO2(g) Grxn = -36.3 kJ NO(g) + 1/2O2(g)

2NO(g) + O2(g) = N2O4(g)

To eliminate the intermediates, we can reorder the reactions and their corresponding Grxn values:

Grxn = 2.8 kJ N2O4(g) 2NO2(g)

1/2O2(g) Grxn = -36.3 kJ from 2NO2(g) NO(g) + NO(g)

These two equations added together give us:

N2O4(g), 2NO(g), and O2(g) result in 3NO2(g)

The total of the Grxn values represents the Grxn for the intended reaction:

Grxn equals 2.8 kJ plus (-36.3 kJ) to equal 33.5 kJ.

So, for the reaction 2NO(g) + O2(g) N2O4(g), Grxn.

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can the two compounds be separated by distillation? why or why not? (1s,2s,3r,5s)-pinanediol and (1s,2r,3r,5r)-pinanediol

Answers

Yes, the two compounds can be separated by distillation. Distillation is a separation technique that exploits differences in boiling points of the compounds.

(1s,2s,3r,5s)-pinanediol and (1s,2r,3r,5r)-pinanediol have different chemical structures which determine their physical properties, including boiling points. Hence, these compounds will have different boiling points which can be used to separate them by distillation. Distillation involves heating the mixture to its boiling point, vaporizing the compounds, and then condensing them back into separate fractions. Therefore, distillation can be used to separate (1s,2s,3r,5s)-pinanediol and (1s,2r,3r,5r)-pinanediol based on their boiling points.

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pick the two words that might best describe an irregular line:a.flowingb.inorganicc.organic d.straight

Answers

The two words that might best describe an irregular line are "inorganic" and "flowing.

" Inorganic describes something that is not natural or lacking in organic compounds, which could apply to an irregular line that lacks a smooth, natural appearance. Flowing describes movement that is not rigid or uniform, which could also apply to an irregular line that has a more fluid and varied appearance. While the other options, organic and straight, may describe some types of lines, they do not accurately capture the qualities of an irregular line.
The two words that might best describe an irregular line are "flowing" and "organic." An irregular line typically lacks a fixed pattern or straight edges, resulting in a more natural and fluid appearance. Flowing lines are characterized by smooth, continuous movement, while organic lines often mimic forms found in nature. Both of these terms can be used to describe an irregular line's unique and non-linear qualities. While the other options, organic and straight, may describe some types of lines, they do not accurately capture the qualities of an irregular line.

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cobalt-60 and iodine-131 are radioactive isotopes commonly used in nuclear medicine. how many protons, neutrons, and electrons are in atoms of these isotopes?

Answers

Cobalt-60 has 27 protons, 33 neutrons, and 27 electrons. Iodine-131 has 53 protons, 78 neutrons, and 53 electrons. These isotopes are used in nuclear medicine because of their radioactive properties.

Cobalt-60 emits gamma radiation and is used for cancer treatment, while iodine-131 is used for imaging and treating thyroid diseases. It's important to handle these isotopes carefully because they can be dangerous due to their high levels of radiation. Understanding the atomic structure of these isotopes is essential for the safe use of nuclear medicine in healthcare. Cobalt-60 and iodine-131 are radioactive isotopes used in nuclear medicine. Cobalt-60 has 27 protons, 33 neutrons, and 27 electrons, while iodine-131 has 53 protons, 78 neutrons, and 53 electrons. The number of protons determines the element, and the sum of protons and neutrons gives the atomic mass, which defines the isotope. Electrons match the number of protons to maintain a neutral charge in the atom.

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the molar absorptivity of beta-carotene at 490 nm is 1.36 x 105 m-1cm-1. what is the concentration of a solution of beta-carotene that has an absorbance, a490

Answers

The cοncentratiοn οf the sοlutiοn οf beta-carοtene can be calculated by dividing the absοrbance at 490 nm by 1.36 x 10⁵ M⁻¹cm⁻¹.

How tο calculate the cοncentratiοn οf a sοlutiοn?

Tο calculate the cοncentratiοn οf a sοlutiοn οf beta-carοtene, we can use the Beer-Lambert Law, which relates the absοrbance οf a sοlutiοn tο its cοncentratiοn.

The Beer-Lambert Law is given by:

A = ε * c * l

where A is the absοrbance, ε is the mοlar absοrptivity, c is the cοncentratiοn, and l is the path length.

In this case, we are given the mοlar absοrptivity (ε) οf beta-carοtene at 490 nm as 1.36 x 10⁵ M⁻¹ cm⁻¹ * 1 cm, and we want tο determine the cοncentratiοn (c).

Rearranging the equatiοn, we have:

c = A / (ε * l)

Substituting the values:

A = absοrbance at 490 nm

Let's assume a path length (l) οf 1 cm.

c = A / (1.36 x 10⁵ M⁻¹ cm⁻¹ * 1 cm)

Therefοre, the cοncentratiοn οf the sοlutiοn οf beta-carοtene can be calculated by dividing the absοrbance at 490 nm by 1.36 x 10⁵ M⁻¹cm⁻¹.

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Which statement about serine, threonine, and tyrosine is FALSE? All of them have a hydroxyl group. O They are all polar. They are all aliphatic. All of them form zwitterions at physiological pH

Answers

The false statement among the given options is "They are all aliphatic" about serine, threonine, and tyrosine.

Serine, threonine, and tyrosine are all polar amino acids that have a hydroxyl group (-OH) attached to their side chains. Serine and threonine are aliphatic amino acids, meaning their side chains are linear and non-aromatic, whereas tyrosine is an aromatic amino acid due to the presence of a benzene ring in its side chain. Additionally, all three amino acids can form zwitterions at physiological pH, meaning they can exist as both positively charged (cationic) and negatively charged (anionic) species. Overall, the statement that all three amino acids are aliphatic is false, as only serine and threonine fall under this category, while tyrosine is aromatic.

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which compound below is insoluble in water based on the solubility rule? group of answer choices ca(no3)2 mgso4 baso4 agno3 feso4

Answers

The compound that is insoluble in water based on solubility rules is BaSO4 (barium sulfate).

The compound that is insoluble in water based on solubility rules is BaSO4 (barium sulfate). According to the general solubility rule, sulfates (SO4^2-) are typically soluble except for a few exceptions, and barium sulfate is one of those exceptions. Barium sulfate is considered insoluble in water and forms a precipitate when mixed with water or aqueous solutions.

On the other hand, the rest of the compounds listed have different solubilities in water:

Ca(NO3)2 (calcium nitrate) and AgNO3 (silver nitrate) are both soluble in water.

MgSO4 (magnesium sulfate) is soluble in water.

FeSO4 (ferrous sulfate) is also soluble in water.

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Which of the following is a spectator ion in the following reaction?
2Na(s) + 2H2O(l) → 2NaOH(aq) + H2(g)
A. Na+
B. OH-
C. H+

Answers

The correct answer is A. Na+ is a spectator ion in the following reaction

In the given reaction: 2Na(s) + 2H2O(l) → 2NaOH(aq) + H2(g), the Na+ ions are present on both sides of the equation. They do not undergo any change or participate in the chemical reaction. Therefore, Na+ is a spectator ion.

Spectator ions are ions that are present in a reaction mixture but do not undergo any chemical change. They appear on both sides of the equation and play no role in determining the outcome of the reaction.

In this case, OH- and H+ ions are involved in the formation of the product NaOH(aq) and the release of H2(g), respectively. However, Na+ ions remain unchanged and do not participate in the reaction.

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determine the number of flourine atoms in 24.24 ggrams of sulfur hexafluoride

Answers

There are approximately 6.071 × 10^23 fluorine atoms in 24.24 grams of sulfur hexafluoride.

To determine the number of fluorine atoms in 24.24 grams of sulfur hexafluoride (SF6), we need to use the concept of moles and Avogadro's number.

Calculate the molar mass of sulfur hexafluoride (SF6):

Sulfur (S) atomic mass = 32.07 g/mol

Fluorine (F) atomic mass = 18.998 g/mol

Molar mass of SF6 = (1 × Sulfur atomic mass) + (6 × Fluorine atomic mass)

= (1 × 32.07 g/mol) + (6 × 18.998 g/mol)

= 32.07 g/mol + 113.988 g/mol

= 146.058 g/mol

Calculate the number of moles of SF6:

Moles = Mass / Molar mass

= 24.24 g / 146.058 g/mol

≈ 0.166 moles

Determine the number of fluorine atoms:

Since there are 6 fluorine atoms in one molecule of SF6, we can calculate the number of fluorine atoms as:

Number of fluorine atoms = Moles of SF6 × Avogadro's number × Number of fluorine atoms in one molecule

= 0.166 moles × 6.022 × 10^23 atoms/mol × 6

≈ 6.071 × 10^23 fluorine atoms

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Which of the following exhibits the weakest intermolecular forces? A) H2​O
B) NH3​
C) He D) HCl

Answers

He (helium) exhibits the weakest intermolecular forces. This is because He is a noble gas with a full electron shell, making it stable and non-reactive. H2O, NH3, and HCl all have polar bonds and stronger intermolecular forces such as hydrogen bonding (H2O and NH3) or dipole-dipole interactions (HCl).

Of the given options, the gas He exhibits the weakest intermolecular forces. This is because He is a noble gas and exists as a single atom, making it non-polar and lacking any dipole-dipole or hydrogen bonding intermolecular forces. On the other hand, H2​O and NH3​ are polar molecules and exhibit hydrogen bonding intermolecular forces, making them stronger than He. HCl also exhibits intermolecular forces due to its polarity, but it is stronger than H2​O and NH3​ because it has stronger dipole-dipole forces. In 100 words, the intermolecular forces are attractive forces between molecules. The strength of these forces determines the physical properties of substances, such as boiling and melting points. The weakest intermolecular forces are found in non-polar molecules, such as He, which have no dipole-dipole or hydrogen bonding. Polar molecules, such as H2​O and NH3​, exhibit stronger intermolecular forces due to their polarity and ability to form hydrogen bonds. HCl, another polar molecule, has stronger intermolecular forces than H2​O and NH3​ because it has stronger dipole-dipole forces.

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Which molecules are bound to hemoglobin when hemoglobin is in the R state?
a. CO2
b. oxygen
c. 2,3‑bisphosphoglycerate
d. Fe3+
e. Fe2+

Answers

The correct answer to the question is b. oxygen. The molecules bound to hemoglobin in the R state are primarily oxygen molecules.

Hemoglobin is a protein that contains iron, which binds to oxygen to form oxyhemoglobin. When hemoglobin is in the R state, it has a high affinity for oxygen and this binding of oxygen to hemoglobin allows for efficient transport of oxygen throughout the body. However, other molecules can also bind to hemoglobin, such as carbon dioxide and 2,3-bisphosphoglycerate. These molecules can affect the affinity of hemoglobin for oxygen and alter its ability to release oxygen to tissues. However, in the R state, the primary molecule bound to hemoglobin is oxygen.

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How many electrons are transferred in the following reaction? (The reaction is unbalanced.)
Mg(s) + Al3+(aq) → Al(s) + Mg2+(aq)
3
6
1
2

Answers

Answer:

6

Explanation:

Oxidation-reduction (redox) reactions are defined by the transfer of electrons.

Half-reactions

In order to balance a redox reaction, we should break the reaction into its half-reactions. A half-reaction is only one part of the redox reaction; either the oxidation or reduction part. In simple terms, a half-reaction only contains one of the species or elements.

Oxidation half-reaction:

Mg(s) → Mg²⁺(aq) + 2e⁻

Reduction half-reaction:

Al³⁺(aq) + 3e⁻ → Al(s)

Balancing the Reaction

Now, to balance the equation we need to make the number of electrons in each half-reaction equal. Just like when balancing charges, we need to multiply each half-reaction by some factor to make the electrons cancel out. In order to make the electrons cancel out, we need to multiply the oxidation reaction by 3 and the reduction reaction by 2.

(Mg(s) → Mg²⁺(aq) + 2e⁻) * 3 = 3Mg(s) → 3Mg²⁺(aq) + 6e⁻(Al³⁺(aq) + 3e⁻ → Al(s)) * 2 = 2Al³⁺(aq) + 6e⁻ → 2Al(s)

Since the half-reactions are balanced, we know the real number of electrons that are transferred. In both half-reactions, 6 electrons are being transferred. This means, per mole of reaction 6 moles of electrons are transferred.

In the unbalanced reaction between Mg(s) and [tex]Al_3^+[/tex](aq) to form Al(s) and [tex]Mg_2+[/tex](aq), a total of 3 electrons are transferred.

To determine the number of electrons transferred in a redox reaction, we need to balance the equation and identify the changes in oxidation states of the elements involved. In this reaction, Mg is oxidized from its elemental state (oxidation state of 0) to [tex]Mg_2+[/tex](oxidation state of +2), while [tex]Al_3+[/tex] is reduced to Al (oxidation state of 0).

The balanced equation for the reaction is:

[tex]3Mg(s) + 2Al_3+(aq) - > 2Al(s) + 3Mg_2+(aq)[/tex]

From the balanced equation, we can see that 3 moles of Mg react with 2 moles of [tex]Al_3^+[/tex]. Each Mg atom loses 2 electrons to become [tex]Mg_2^+[/tex], so 3 moles of Mg transfer a total of 6 electrons. Similarly, each [tex]Al_3^+[/tex] ion gains 3 electrons to become Al, so 2 moles of [tex]Al_3^+[/tex] ions accept a total of 6 electrons.

Therefore, in the given reaction, a total of 3 electrons are transferred.

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The system below was at equilibrium in a
2.0 L container. What change will occur
for the system when the container is
shrunk to 1.0 L?
2NO(g) + O₂(g) + 2NO₂(g) + 113.06 kJ
Hint: How many moles of gas are on each side?
A. There is no change because there are the same
number of moles of gas on both sides.
B. The reactions shifts to the right (products) to produce
fewer moles of gas.
C. The reactions shifts to the left (reactants) to produce
more moles of gas.

Answers

To determine the change that will occur when the container is shrunk from 2.0 L to 1.0 L, we need to consider the effect on the equilibrium position of the given reaction: 2NO(g) + O₂(g) ⇌ 2NO₂(g) + 113.06 kJ.

The hint provides a clue about the number of moles of gas on each side of the equation. Let's analyze the equation:

On the left side, we have:
2 moles of NO
1 mole of O₂

On the right side, we have:
2 moles of NO₂

Comparing the number of moles of gas on each side, we find that there are 3 moles of gas on the left side and 2 moles of gas on the right side.

When the container is shrunk from 2.0 L to 1.0 L, the volume is reduced, which increases the pressure. According to Le Chatelier's principle, an increase in pressure will cause the equilibrium to shift in the direction that produces fewer moles of gas.

In this case, since there are fewer moles of gas on the right side of the equation (2 moles) compared to the left side (3 moles), the reaction will shift to the right (products) to produce fewer moles of gas.

Therefore, the correct answer is B. The reaction shifts to the right (products) to produce fewer moles of gas.

I hope this helps! :)

____ is formed when ultraviolet radiation decomposes chlorinated hydrocarbon

Answers

When ultraviolet radiation interacts with chlorinated hydrocarbon compounds, it can lead to their decomposition and the formation of new chemical products. One example of this is the formation of chlorinated carbon radicals, which can then react with other molecules in the environment to form different substances.

However, if the hydrocarbon is not chlorinated, it may also lead to the formation of new compounds. These reactions are important to understand because they can impact both human health and the environment. Some chlorinated hydrocarbons, such as polychlorinated biphenyls (PCBs), have been linked to health problems such as cancer and developmental disorders. Therefore, it is important to monitor and regulate the use of such chemicals to prevent their harmful effects on human health and the environment. In summary, the formation of new compounds due to ultraviolet radiation decomposition of chlorinated hydrocarbons is a complex and important process that requires careful study and management.

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A chemist titrates 170.0 mL of a 0.4683 M ethylamine (C2H^NH2 solution with 0.5750 M HBr solution at 25 °C. Calculate the pH at equivalence. The p K, of ethylamine is 3.19 Round your answer to 2 decimal places. Note for advanced students: you may assume the total volume of the solution equals the initial volume plus the volume of HBr solution added

Answers

The pH at the equivalence point of the titration is 0.33 when a chemist titrates 170.0 mL of a 0.4683 M ethylamine ([tex]C_2H^{NH_2}[/tex] solution with 0.5750 M HBr solution at 25 °C.

To calculate the pH at the equivalence point of the titration, we need to determine the moles of ethylamine and HBr reacted.

Given:

Volume of ethylamine solution = 170.0 mL = 0.1700 L

Molarity of ethylamine solution = 0.4683 M

Moles of ethylamine = Volume × Molarity = 0.1700 L × 0.4683 M = 0.079531 moles

Since ethylamine and HBr react in a 1:1 stoichiometric ratio, the moles of HBr reacted will also be 0.079531 moles.

Now, we need to determine the concentration of H+ ions formed from the reaction of HBr.

pH is calculated using the formula:

pH = -log[H+]

Since HBr is a strong acid, it dissociates completely in water to form H+ ions. Therefore, the concentration of H+ ions formed will be equal to the moles of HBr reacted divided by the total volume of the solution.

Total volume of the solution = volume of ethylamine solution = 0.1700 L

Concentration of H+ ions = Moles of HBr reacted / Total volume of the solution

Concentration of H+ ions = 0.079531 moles / 0.1700 L = 0.4672 M

pH = -log(0.4672) = 0.33

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We will make about 350 mL of approx. 0.2 M NaOH (aq) solution by diluting 6 M NaOH (aq). Calculate the approximate volume of 6 M NaOH you need to make the diluted solution.

Answers

To make a 0.2 M NaOH (aq) solution, we will need to dilute 6 M NaOH (aq). we need approximately 11.67 mL of 6 M NaOH to make the diluted solution.

To determine the volume of 6 M NaOH required for the dilution, we can use the formula C1V1 = C2V2, where C1 is the initial concentration, V1 is the initial volume, C2 is the final concentration, and V2 is the final volume. In this case, we know the final concentration (0.2 M) and the final volume (350 mL). Therefore, we can rearrange the equation to solve for V1, the initial volume of 6 M NaOH needed for the dilution.
0.2 M * 350 mL = 6 M * V1
V1 = (0.2 M * 350 mL) / 6 M
V1 = 11.67 mL
Therefore, we need approximately 11.67 mL of 6 M NaOH to make the diluted solution.

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Determine ΔS° for the reaction N2O4(g) <=> 2NO2(g) given the following information.
S°N2O4(g) = 304.3 (J/mol · K)
S°NO2(g) = 240.45 (J/mol · K)

Answers

The change in standard entropy (ΔS°) for the reaction[tex]N_2O_4(g)[/tex]  ↔ [tex]2NO_2(g)[/tex] is -63.4 J/(mol·K).

The change in standard entropy (ΔS°) for a reaction can be calculated using the entropy values of the reactants and products. The equation for the reaction is:

[tex]N_2O_4(g)[/tex] ↔ [tex]2NO_2(g)[/tex]

The standard entropy change (ΔS°) can be determined using the formula:

ΔS° = ΣnS°(products) - ΣnS°(reactants)

where ΔS° is the standard entropy change, ΣnS°(products) is the sum of the standard entropy values of the products multiplied by their stoichiometric coefficients, and ΣnS°(reactants) is the sum of the standard entropy values of the reactants multiplied by their stoichiometric coefficients.

Given the standard entropy values:

S°[tex]N_2O_4(g)[/tex]  = 304.3 J/(mol·K)

S°[tex]2NO_2(g)[/tex]  = 240.45 J/(mol·K)

We can substitute these values into the formula to calculate the ΔS°:

ΔS° = (2 × S°[tex]2NO_2(g)[/tex] ) - (1 × S°[tex]N_2O_4(g)[/tex] )

    = (2 × 240.45 J/(mol·K)) - (1 × 304.3 J/(mol·K))

    = -63.4 J/(mol·K)

Therefore, the change in standard entropy (ΔS°) for the reaction [tex]N_2O_4(g)[/tex] ↔ [tex]2NO_2(g)[/tex] is -63.4 J/(mol·K).

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determine the ph at the equivalence (stoichiometric) point in the titration of 27.62 ml of 0.243 m c6h5oh(aq) with 0.261 m naoh(aq). the ka of phenol is 1.0 x 10-10.

Answers

The pH at the equivalence point in the titration of 27.62 ml of 0.243 M C6H5OH(aq) with 0.261 M NaOH(aq) is approximately 8.9.

To determine the pH at the equivalence point, we need to find the number of moles of C6H5OH and NaOH. Then, we can calculate the resulting concentration of the conjugate base of C6H5OH, which is C6H5O⁻, at the equivalence point. The pH can be determined using the pKa of phenol and the Henderson-Hasselbalch equation.

Step 1: Calculate the number of moles of C6H5OH and NaOH.

Moles of C6H5OH = volume (L) × molarity

= 0.02762 L × 0.243 mol/L

= 0.006719 mol

Moles of NaOH = volume (L) × molarity

= 0.02762 L × 0.261 mol/L

= 0.007212 mol

Step 2: Determine the limiting reactant.

Since NaOH has a 1:1 stoichiometric ratio with C6H5OH, the limiting reactant is C6H5OH.

Step 3: Calculate the concentration of C6H5O⁻ at the equivalence point.

The moles of C6H5OH at the equivalence point are fully neutralized by an equal number of moles of NaOH. Thus, the concentration of C6H5O⁻ at the equivalence point is:

Concentration = moles/volume

= 0.006719 mol / (0.02762 L + 0.02762 L)

= 0.1216 M

Step 4: Calculate the pH at the equivalence point using the Henderson-Hasselbalch equation.

pH = pKa + log10(concentration of C6H5O⁻/concentration of C6H5OH)

pH = 10 - log10(1.0 × 10⁻¹⁰) + log10(0.1216/0.243)

pH = 8.9

At the equivalence point, the pH of the solution in the titration of 27.62 ml of 0.243 M C6H5OH(aq) with 0.261 M NaOH(aq) is approximately 8.9. This value is obtained by calculating the concentration of the conjugate base (C6H5O⁻) at the equivalence point using stoichiometry, and then applying the Henderson-Hasselbalch equation with the pKa of phenol.

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A semipermeable membrane is placed between the following solutions. Which solution will decrease in volume? Solution A: 2.42 % (m/v) starch Solution B:7.78 % (mv) starch

Answers

Solution B will decrease in volume when a semipermeable membrane due to the movement of water molecules from a lower to a higher concentration of solutes.

The semipermeable membrane allows certain particles to pass through while preventing others. In this scenario, the solutions contain different concentrations of starch, which is a large molecule that cannot pass through the membrane. As a result, water molecules will move from the side with a lower concentration of solutes (starch) to the side with a higher concentration in an attempt to equalize the concentration. Therefore, Solution A with a lower concentration of starch (2.42 %) will experience an influx of water molecules, causing it to increase in volume. In contrast, Solution B with a higher concentration of starch (7.78 %) will experience a loss of water molecules, causing it to decrease in volume.

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Determine the concentration (in M) of excess reactant after 125 mL of 3.02 M FeCl2 react with 125 mL of 3.47 M LiOH by the following balanced equation. FeCl2(aq) + 2LIOH(aq) → Fe(OH)2(s) + 2LiCl(aq)

Answers

The concentration of the excess reactant (FeCl2) after the reaction is 0 M, and there is no excess FeCl2 remaining.

To determine the concentration of the excess reactant after the reaction between 125 mL of 3.02 M [tex]FeCl_2[/tex] and 125 mL of 3.47 M LiOH, we need to compare the stoichiometry of the balanced equation and calculate the amount of each reactant used.

From the balanced equation:

[tex]FeCl_2[/tex](aq) + 2LiOH(aq) → [tex]Fe(OH)_2(s)[/tex] + 2LiCl(aq)

We can see that the molar ratio between [tex]FeCl_2[/tex] and LiOH is 1:2. This means that for every 1 mole of [tex]FeCl_2[/tex], 2 moles of LiOH are required.

First, let's calculate the moles of [tex]FeCl_2[/tex] and LiOH in the given volumes:

Moles of [tex]FeCl_2[/tex] = Concentration × Volume

Moles of [tex]FeCl_2[/tex] = 3.02 M × 0.125 L = 0.3775 moles

Moles of LiOH = Concentration × Volume

Moles of LiOH = 3.47 M × 0.125 L = 0.43375 moles

According to the balanced equation, the stoichiometric ratio between FeCl2 and LiOH is 1:2. This means that 1 mole of FeCl2 reacts with 2 moles of LiOH.

To determine which reactant is in excess, we compare the moles of each reactant. We can see that we have more moles of LiOH (0.43375 moles) compared to [tex]FeCl_2[/tex] (0.3775 moles). Since LiOH is in excess, we need to calculate the remaining moles of LiOH after the reaction.

Using the stoichiometric ratio, we know that 1 mole of [tex]FeCl_2[/tex] reacts with 2 moles of LiOH. Therefore, the moles of LiOH that react completely with [tex]FeCl_2[/tex] are 2 × 0.3775 moles = 0.755 moles.

The excess moles of LiOH remaining after the reaction are calculated as follows:

Excess moles of LiOH = Total moles of LiOH - Moles of LiOH reacted

Excess moles of LiOH = 0.43375 moles - 0.755 moles = -0.32125 moles

Note: The negative value for excess moles indicates that all the LiOH has been consumed, and there is a shortage of LiOH to react with the [tex]FeCl_2[/tex] completely. Therefore, there is no excess LiOH remaining after the reaction.

In terms of concentration (M), we can calculate the concentration of the excess reactant ([tex]FeCl_2[/tex]):

Volume of excess FeCl2 = Volume of initial FeCl2 - Volume of LiOH reacted

Volume of excess [tex]FeCl_2[/tex] = 125 mL - 125 mL = 0 mL

Since the volume of excess [tex]FeCl_2[/tex] is zero, the concentration of the excess [tex]FeCl_2[/tex] is also zero.

Therefore, the concentration of the excess reactant ([tex]FeCl_2[/tex]) after the reaction is 0 M, and there is no excess [tex]FeCl_2[/tex] remaining.

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R (c) Use particle theory of matter and explain the following observations (i) An inflated balloon expands and eventually bursts on leaving it exposed to sunshine (ii) An inflated balloon eventually shrinks when left on a cemented floor for 3 days. (iii) You can easily squeeze a plastic gas syringe that is completely filled with air, than squeezing the one, which is filled with water.​

Answers

The correct answer is that when squeezing a plastic gas syringe filled with air, the air particles can be compressed, causing the volume to decrease. In contrast, squeezing a syringe filled with water does not compress the water significantly, so the volume change is minimal.

An inflated balloon expands and eventually bursts on leaving it exposed to sunshine: When sunlight falls on an inflated balloon, it transfers energy in the form of heat to the air inside the balloon. According to the particle theory of matter, an increase in temperature corresponds to an increase in the kinetic energy of the particles. As the air particles gain kinetic energy, they move faster and collide more frequently with the inner surface of the balloon.

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fitb. when two miscible fluids are mixed, they form choose... at choose... of the component fluids.

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The resulting solution will have the same properties throughout, making it difficult to distinguish the individual components. This is in contrast to immiscible fluids, which cannot be mixed together and will separate into distinct layers.

When two miscible fluids are mixed, they form a homogeneous solution at any ratio of the component fluids. Miscible fluids are those that can be mixed together in any proportion and will dissolve completely, forming a single phase.

The ability of fluids to mix together depends on their molecular interactions and the size and shape of their molecules. Some common examples of miscible fluids include water and ethanol, as well as many organic solvents. Overall, the mixing of miscible fluids is an important concept in chemistry and has many practical applications in industry and everyday life.

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draw a structural formula for 4-ethyl-2-methyl-1-propylcyclohexane.

Answers

The structural formula for 4-ethyl-2-methyl-1-propylcyclohexane would look like this:

CH3-CH(CH3)-CH2-CH2-CH2-CH(C2H5)-C6H11

This formula represents a cyclohexane ring with six carbon atoms and one substituent attached to it. The substituent is made up of a chain of four carbon atoms (propyl) with one ethyl group (C2H5) attached to the third carbon atom and one methyl group (CH3) attached to the second carbon atom.

The numbering of the carbon atoms starts at the carbon atom where the substituent is attached (in this case, carbon atom number one) and proceeds around the ring in a clockwise direction.

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When titrating a weak acid with a strong base, approximately where would the pH be observed when reaching the equivalence point?
Select one:
a. at the equivalence point, the pH is less than 7
b. at the equivalence point, the pH is greater than 7
c. at the equivalence point, the pH is equal to 7
A Lewis acid is defined as a (n)
Select one:
a. proton acceptor.
b. proton donor.
c. electron pair acceptor.
d. electron pair donor.
e. ionic compound.
help and explain please

Answers

The correct answer is (c) at the equivalence point, the pH is equal to 7

When titrating a weak acid with a strong base, at the equivalence point, the pH is greater than 7. This is because the weak acid only partially dissociates in water, leaving a conjugate base that can accept a proton. When the strong base is added, it donates hydroxide ions that react with the acidic protons. At the equivalence point, all the acidic protons have been neutralized, leaving only the conjugate base in solution. This conjugate base causes the pH to be greater than 7. So, the correct answer is (b).
A Lewis acid is defined as an electron pair acceptor. This definition broadens the concept of acids beyond proton donors to include other species that can accept an electron pair, such as metal ions and other molecules with empty orbitals.

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When titrating a weak acid with a strong base, the pH at the equivalence point is expected to be greater than 7. A Lewis acid is defined as an electron pair acceptor.

When titrating a weak acid with a strong base, the pH at the equivalence point is expected to be greater than 7. This is because the strong base (which is typically a hydroxide ion) reacts with the weak acid to form a salt and water.

The hydroxide ion from the base combines with the acidic hydrogen ion from the weak acid, resulting in the formation of water and a salt that is usually a conjugate base of the weak acid. Since the resulting solution contains excess hydroxide ions, the pH is shifted towards the basic range, typically greater than 7.

A Lewis acid is defined as an electron pair acceptor. This definition of acids, proposed by Gilbert N. Lewis, focuses on the behavior of substances in accepting a pair of electrons during a chemical reaction. It can accept a pair of electrons from a Lewis base to form a coordinate covalent bond. This broadens the concept of acids beyond the traditional proton donor definition.

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In a 0.100 M solution of Carbonic Acid (H2CO3), what would be the concentration of the CO32 equilibrium?
Ka1 = 4.3 x 10^-7
Ka2 = 5.6 x 10^-11
The concentration of carbonate at equilibrium would be____

Answers

The concentration of the CO32- ion at equilibrium in a 0.100 M solution of carbonic acid (H2CO3) can be calculated using the equilibrium constants (Ka1 and Ka2) and the stoichiometry of the balanced equation. The concentration of CO32- at equilibrium would be approximately 1.55 * 10^-8 M.

The dissociation of carbonic acid (H2CO3) can be represented by the following equilibrium reactions:

H2CO3 ⇌ H+ + HCO3- (Ka1)

HCO3- ⇌ H+ + CO32- (Ka2)

Given that Ka1 = 4.3 * 10^{-7} and Ka2 = 5.6 *10^{-11}, we can use these equilibrium constants to determine the concentrations of HCO3- and CO32- at equilibrium.

Let x be the concentration of H+ ions at equilibrium. Since the concentration of carbonic acid is 0.100 M, the initial concentration of H+ ions is also 0.100 M.

Using the equilibrium expression for Ka1, we have:

Ka1 = \frac{[H+][HCO3-] }{ [H2CO3]}

4.3 * 10^{-7 }= \frac{x * (0.100 - x) }{0.100}

Simplifying the equation and solving for x, we find x ≈ 1.54* 10^{-3} M.

Now, using the equilibrium expression for Ka2, we have:

Ka2 =\frac{ [H+][CO32-] }{[HCO3-]}

5.6 *10^{-11} =\frac{ (1.54 * 10^{-3}) * (CO32- concentration) }{(1.54 * 10^{-3} - CO32- concentration)}

Solving for the CO32- concentration, we find it to be approximately 1.55 * 10^{-8} M.

Therefore, the concentration of the CO32- ion at equilibrium in a 0.100 M solution of carbonic acid would be approximately 1.55 * 10^{-8} M.

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