Question 5 1 pts What happens to the solubility of MgCO3 in water if 0.1 M HNO3 is added to the solution at 298 K? (Ksp = 4.0 x 10-5) O The solubility decreases. The solubility increases.The solubility is not affected.

Answers

Answer 1

When 0.1 M HNO3 is added to a solution containing MgCO3 at 298 K with Ksp = 4.0 x 10^-5, the solubility of MgCO3 will increase.

Solubility is the capacity of a substance to dissolve when mixed with a solvent to give rise tot a solution.
HNO3 is a strong acid that will react with the MgCO3 to form soluble products. The reaction is:
MgCO3 (s) + 2HNO3 (aq) → Mg(NO3)2 (aq) + CO2 (g) + H2O (l)

Ksp is the solubility product constant. If there is an increase in solubility, the Ksp value tends to increase as well.
The addition of HNO3 will cause the MgCO3 to dissolve more to maintain the equilibrium, thus increasing its solubility in the solution.

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Related Questions

calculate approximately how many mmols of oil are contained in 2.00 g of oil. show calculation with units for full credit. use the approximate molar mass of oil given in the procedure.

Answers

Approximately 10 mmols of oil are contained in 2.00 g of oil, assuming the approximate molar mass of oil is 200 g/mol.

To calculate approximately how many mmols of oil are contained in 2.00 g of oil, follow these steps:

1. Obtain the approximate molar mass of oil from the procedure. Let's assume it is X g/mol.

2. Use the given mass of oil (2.00 g) and the molar mass (X g/mol) to find the number of mmols (millimoles) of oil.

3. Use the formula: mmols of oil = (mass of oil in grams) / (molar mass of oil in grams per mol) x 1000

4. Plug in the values: mmols of oil = (2.00 g) / (X g/mol) x 1000

5. Solve for mmols of oil. This will give you the approximate number of mmols of oil contained in the 2.00 g of oil.

Without the exact molar mass from the procedure, I cannot provide a numerical answer. But, you can use the steps and formula above to find the approximate mmols of oil once you have the molar mass.

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Which one of the following forms a diazonium ion on being treated with NaNO2 in aqueous HCl? a. para-nitrotoluene b. N, N-dimethylaniline c. ethylamined. triethylamine

Answers

The compound that forms a diazonium ion when treated with NaNO2 in aqueous HCl is N, N-dimethylaniline.

Here's a step-by-step explanation:
1. NaNO2 and HCl react together to form nitrous acid (HNO2).
2. Nitrous acid reacts with N, N-dimethylaniline, which contains an aromatic amine group, to form the diazonium ion.
3. The other compounds do not have the required aromatic amine group necessary to form a diazonium ion. Para-nitrotoluene has a nitro group, ethylamine has an aliphatic amine, and triethylamine has tertiary aliphatic amine, none of which form diazonium ions under these conditions.
So, the correct answer is b. N, N-dimethylaniline.

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The compound that forms a diazonium ion when treated with NaNO2 in aqueous HCl is N, N-dimethylaniline.

Here's a step-by-step explanation:
1. NaNO2 and HCl react together to form nitrous acid (HNO2).
2. Nitrous acid reacts with N, N-dimethylaniline, which contains an aromatic amine group, to form the diazonium ion.
3. The other compounds do not have the required aromatic amine group necessary to form a diazonium ion. Para-nitrotoluene has a nitro group, ethylamine has an aliphatic amine, and triethylamine has tertiary aliphatic amine, none of which form diazonium ions under these conditions.
So, the correct answer is b. N, N-dimethylaniline.

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how many grams of na2co3 (fm 105.99) should be mixed with 5.00 g of nahco3 (fm 84.01) to produce 100 ml of buffer with ph 10.00?

Answers

2.97 grams of Na2CO₃ should be mixed with 5.00 grams of NaHCO₃ to produce 100 ml of buffer with pH 10.00.

To prepare a buffer with pH 10.00, we need to mix sodium carbonate (Na₂CO₃) and sodium bicarbonate (NaHCO₃) in the appropriate ratio to obtain the desired pH.

The pH of the buffer can be calculated using the Henderson-Hasselbalch equation:

pH = pKa + log([A-]/[HA])

where pKa is the dissociation constant of the weak acid in the buffer (in this case, carbonic acid, H₂CO₃), [A-] is the concentration of the conjugate base (in this case, the carbonate ion, CO₃²⁻), and [HA] is the concentration of the weak acid (in this case, the bicarbonate ion, HCO³⁻).

At pH 10.00, the pKa of carbonic acid is approximately 10.33. Therefore, we can use the Henderson-Hasselbalch equation to determine the ratio of [A-]/[HA]:

10.00 = 10.33 + log([CO₃²⁻]/[HCO³⁻])

-0.33 = log([CO₃²⁻]/[HCO³⁻])

10^(-0.33) = [CO₃²⁻]/[HCO³⁻]

0.47 = [CO₃²⁻]/[HCO³⁻]

Since we are given the mass of NaHCO₃ (5.00 g), we can use its molar mass (84.01 g/mol) and the desired concentration of the buffer (100 ml) to calculate the concentration of NaHCO₃:

molar mass of NaHCO₃ = 84.01 g/mol

moles of NaHCO₃ = 5.00 g / 84.01 g/mol = 0.0595 mol

volume of buffer = 100 ml = 0.1 L

concentration of NaHCO₃ = moles / volume = 0.595 M

We can then use the equation [CO₃²⁻]/[HCO³⁻] = 0.47 to determine the concentration of Na2CO3 needed to prepare the buffer:

0.47 = [Na₂CO₃] / [NaHCO₃]

[Na₂CO₃] = 0.47 * [NaHCO₃] = 0.47 * 0.595 M = 0.28 M

Finally, we can use the molar concentration of Na₂CO₃ and the desired volume of the buffer (100 ml) to calculate the mass of Na₂CO₃ needed:

molar mass of Na₂CO₃ = 105.99 g/mol

moles of Na₂CO₃ = concentration * volume = 0.28 M * 0.1 L = 0.028 mol

mass of Na₂CO₃ = moles * molar mass = 0.028 mol * 105.99 g/mol = 2.97 g

Therefore, 2.97 grams of Na₂CO₃ should be mixed with 5.00 grams of NaHCO₃ to produce 100 ml of buffer with pH 10.00.

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What mass of sodium fluoride is formed when 2.3 g of sodium reacts when 2.3 g of sodium reacts with 2.85 g of fluorine?

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When 2.3 g of sodium interacts with 2.85 g of fluorine, 6.30 g of sodium fluoride is produced.


The mass of sodium fluoride formed when 2.3 g of sodium reacts with 2.85 g of fluorine can be calculated using stoichiometry and the balanced chemical equation for the reaction:

2 Na + F₂ → 2 NaF

From the equation, we can see that the mole ratio of Na to NaF is 2:2, or 1:1, and the mole ratio of F₂ to NaF is 1:2. So, we need to determine the limiting reactant to find out how much NaF is produced.

Using the molar masses of Na and F₂, we can calculate the number of moles of each reactant:

moles of Na = 2.3 g / 23.0 g/mol = 0.10 mol

moles of F₂ = 2.85 g / 38.0 g/mol = 0.075 mol

Since F₂ is the limiting reactant (it produces less NaF than Na), we will use its number of moles to calculate the mass of NaF:

moles of NaF = 0.075 mol F₂ × (2 mol NaF / 1 mol F₂) = 0.15 mol NaF

mass of NaF = moles of NaF × molar mass of NaF

= 0.15 mol × 41.99 g/mol

= 6.30 g

Therefore, 6.30 g of sodium fluoride is formed when 2.3 g of sodium reacts with 2.85 g of fluorine.

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solid aluminum metal reacts with aqueous tin(iv) nitrate to produce solid tin metal and aqueous aluminum nitrate. what is the coefficient on solid aluminum in the balanced chemical reaction?

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The coefficient on solid aluminum in the balanced chemical reaction is 2.

To balance the equation, we need to make sure that the number of atoms of each element is the same on both sides of the equation. We start by counting the number of aluminum atoms on each side. On the left side, we have 2 aluminum atoms, and on the right side, we have 2 aluminum atoms as well. Therefore, the coefficient on solid aluminum is 2, since we need 2 moles of aluminum to react with 3 moles of tin(IV) nitrate.

The balanced chemical equation for the reaction is:

2Al(s) + 3Sn(NO3)4(aq) → 3Sn(s) + 2Al(NO3)3(aq)

The balanced equation shows that 2 moles of aluminum react with 3 moles of tin(IV) nitrate to produce 3 moles of tin and 2 moles of aluminum nitrate. This means that for every 2 moles of aluminum, we need 3 moles of tin(IV) nitrate.

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I and II are: constitutional isomers. enantiomers. identical. diastereomers. not isomeric.

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The correct answer is: I and II are constitutional isomers, but not enantiomers, identical, or diastereomers.

If I and II are constitutional isomers, it means that they have the same molecular formula but different connectivity or arrangement of atoms.
If they are enantiomers, it means that they are non-superimposable mirror images of each other. Enantiomers have the same connectivity but differ in their spatial arrangement of atoms.
If they are identical, it means that they are exactly the same molecule in every way, including connectivity and spatial arrangement.
If they are diastereomers, it means that they are stereoisomers that are not mirror images of each other. Diastereomers have different connectivity and different spatial arrangements of atoms.
If I and II are not isomeric, it means that they are not related to each other by any type of isomerism.
So, based on the given options, if I and II are constitutional isomers, they cannot be identical, enantiomers or diastereomers. If they are not isomeric, it means that they are also not enantiomers or diastereomers.

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Density of 2.03M aqueous solution of acetic acid is 1.017gmL −1
. Molecular mass of acetic acid is 60. Calculate the molality of solution.
A
2.27
B
1.27
C
3.27
D
4.27

Answers

The molality of the 2.03M aqueous solution of acetic acid is 1.27 mol/kg (Option B).


1. Calculate the mass of 1 L solution using density: mass = volume × density = 1000 mL × 1.017 g/mL = 1017


2. Calculate the mass of acetic acid in 1 L solution: moles = 2.03 mol/L, mass = moles × molecular mass = 2.03 mol × 60 g/mol = 121.8 g


3. Determine the mass of water: mass of water = mass of solution - mass of acetic acid = 1017 g - 121.8 g = 895.2 g
4. Convert the mass of water to kg: 895.2 g = 0.8952 kg


5. Calculate molality: molality = moles of acetic acid / kg of water = 2.03 mol / 0.8952 kg = 1.27 mol/kg

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calculate the following quantity: volume in liters of 0.766 m manganese(ii) sulfate that contains 60.3 g of solute.

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The volume in liters of 0.766 m manganese(ii) sulfate that contains 60.3 g of solute is 0.5217 L.

To calculate the volume in liters of 0.766 m manganese(ii) sulfate that contains 60.3 g of solute, we can use the formula: moles of solute = mass of solute / molar mass of solute

First, we need to calculate the moles of solute in the solution: molar mass of manganese(ii) sulfate = 54.938 g/mol (manganese) + 32.066 g/mol (sulfur) + 4 x 15.999 g/mol (oxygen) = 151.001 g/mol, moles of solute = 60.3 g / 151.001 g/mol = 0.3996 mol

Next, we can use the formula for molarity to calculate the volume of the solution: molarity = moles of solute / volume of solution (in liters), 0.766 M = 0.3996 mol / volume of solution. Volume of solution = 0.3996 mol / 0.766 M = 0.5217 L

Therefore, the volume in liters of 0.766 m manganese(ii) sulfate that contains 60.3 g of solute is 0.5217 L.

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What is the molarity of a solution that was prepared by dissolving 12.3 g of Na,o (molar
mass = 62.0 g/mol) in enough water to make 564 mL of solution?

I need the steps..

Answers

Answer :

0.34 M

Step-by-step explanation :

Molarity: It is defined as number of moles of solute dissolved per litre of solution.

Molarity is represented by 'M'

Required Formula :

[tex] { \boxed{\sf M = \dfrac{Number \: of \: moles \: of \: solute}{Volume \: of \: {sol}^{n} (ml) } \times 1000}}[/tex]

Here,

Number of moles = Given mass/molar mass

Given mass = 12.3 g Molar mass = 62.0 g

Substituting the values,

[tex]:\implies [/tex] No. of moles = 12.3/62

[tex]:\implies [/tex] 0.198 mol

Now,

[tex]:\implies [/tex] M = 0.198/564 × 1000

[tex]:\implies [/tex] M = 198/564

[tex]:\implies [/tex] M = 0.34 M

Therefore, Molarity of the solution is 0.34 M

Answer :

0.34 M

Step-by-step explanation :

Molarity: It is defined as number of moles of solute dissolved per litre of solution.

Molarity is represented by 'M'

Required Formula :

[tex] { \boxed{\sf M = \dfrac{Number \: of \: moles \: of \: solute}{Volume \: of \: {sol}^{n} (ml) } \times 1000}}[/tex]

Here,

Number of moles = Given mass/molar mass

Given mass = 12.3 g Molar mass = 62.0 g

Substituting the values,

[tex]:\implies [/tex] No. of moles = 12.3/62

[tex]:\implies [/tex] 0.198 mol

Now,

[tex]:\implies [/tex] M = 0.198/564 × 1000

[tex]:\implies [/tex] M = 198/564

[tex]:\implies [/tex] M = 0.34 M

Therefore, Molarity of the solution is 0.34 M

What happens to the cous cous when the boiling water is added?

Answers

Answer:

Only boiling water is needed to cook your couscous, but the important bit is the couscous to water ratio, you should abide by the 1:1 rule. So, for 60g of couscous, you will need 60ml of boiling water.

It is cooked

Which of the following gases occupy the smallest volume at STP?
a) 1.000 mol carbon dioxide
b) 4.032 g H2
c) 35.45 g Cl2
d) 6.022×1023 molecules of O2.

Answers

The gas that occupies the smallest volume at STP is 35.45 g Cl₂ (option C).

To determine the volume of each option, we Will need to convert them to moles first:

a) 1.000 mol CO₂ = 1.000 mol (already given)

b) 4.032 g H₂ / (2.02 g/mol) = 2.000 mol H

c) 35.45 g Cl₂ / (70.90 g/mol) = 0.500 mol Cl₂

d) 6.022×1023 molecules O₂ / (6.022×1023 molecules/mol) = 1.000 mol O₂

Now, we calculate the volume of each gas at STP:

a) 1.000 mol CO₂ × 22.4 L/mol = 22.4 L

b) 2.000 mol H₂ × 22.4 L/mol = 44.8 L

c) 0.500 mol Cl₂ × 22.4 L/mol = 11.2 L

d) 1.000 mol O₂ × 22.4 L/mol = 22.4 L

Based on these calculations, 0.500 mol Cl₂ (option C) occupies the smallest volume at STP, which is 11.2 L.

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Diazepam, better known as Valium, can be synthesized in six steps from benzoyl chloride and 4-chloro-N-methylaniline.
Select a reagent from the table to perform this step of the synthesis. Me Me N N CI NH2 CI CI Reagents a. HNO3, H2SO4 b. CH3(CH2)-CH=CH2, H3PO4 C. CH2CH=CHCOCI d. Aczo e. AICI: f. NaOH, H20; then HCI g. CICH COCI h. NH3 i. catalytic H

Answers

The appropriate reagent to use in this step of the synthesis of Diazepam (Valium) from benzoyl chloride and 4-chloro-N-methylaniline would be option c. CH₂CH=CHCOCI.

This is because the reagent CH₂CH=CHCOCI is an acyl chloride, which can be used to introduce an acyl group (RCO-) into the molecule. In the synthesis of Diazepam, the acyl chloride is used to react with 4-chloro-N-methylaniline, which contains an amino group (NH2), to form an amide linkage (CONH-) between the benzoyl chloride and 4-chloro-N-methylaniline. This step is essential for the formation of the Diazepam molecule.

The reaction between the acyl chloride and the amine is typically carried out using a base such as triethylamine (Et3N) or pyridine (C5H5N) as a catalyst, which helps to facilitate the reaction. The resulting amide linkage is a key functional group in the structure of Diazepam, and subsequent steps in the synthesis can then be carried out to complete the formation of the Diazepam molecule.

It's important to note that the synthesis of Diazepam is a complex process that requires careful attention to reaction conditions, reagent selection, and purification techniques to obtain a pure and high-yield product. Chemical reactions involving acyl chlorides can be hazardous, and proper safety precautions should always be followed when conducting organic syntheses.

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Dissolving 3.00 g of an impure sample of calcium carbonate in hydrochloric acid produced 0.656 L of carbon dioxide (measured at 20.0°C and 792 mmHg). Calculate the percent by mass of calcium carbonate in the sample. State any assumptions.

Answers

The percent by mass of calcium carbonate in the sample is 73.02%.

Assuming that the reaction goes to completion and only calcium carbonate reacts with hydrochloric acid, follow these steps:

1. Convert the given volume and pressure of CO2 to moles using the Ideal Gas Law (PV=nRT). Use the temperature in Kelvin (20°C + 273 = 293 K) and pressure in atm (792 mmHg / 760 = 1.042 atm). R = 0.0821 L*atm/(mol*K).


2. Calculate the moles of CO2: (1.042 atm)(0.656 L) / (0.0821 L*atm/mol*K)(293 K) = 0.0279 moles.


3. The stoichiometry of the reaction is 1:1, so there are 0.0279 moles of CaCO3.


4. Convert moles of CaCO3 to grams using its molar mass (100.09 g/mol): (0.0279 mol)(100.09 g/mol) = 2.793 g.


5. Calculate the percent by mass: (2.793 g CaCO3 / 3.00 g sample) * 100% = 73.02%.

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What starting alkyl halide and ketone would give 2-methyl-2-pentanol? Write a grignard synthesis for this reaction.

Answers

To synthesize 2-methyl-2-pentanol using a Grignard reaction, we would need to start with 2-bromopentane and acetone. The Grignard reagent would be prepared by reacting magnesium metal with bromoethane in dry ether.

Then, the Grignard reagent (ethylmagnesium bromide) would be added to acetone to form the alcohol product, which can be isolated and purified.

The overall reaction can be represented as follows: 2-bromopentane + Mg → ethylmagnesium bromide, ethylmagnesium bromide + acetone → 2-methyl-2-pentanol

The mechanism for this reaction involves the nucleophilic addition of the Grignard reagent to the carbonyl group of acetone, followed by protonation of the intermediate to form the alcohol product.

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The reaction of tert-butyl chloride, (CH3)3CCI, with water in an inert solvent gives tert-butyl alcohol. CH3)3COH. What is the effect of doubling the concentration of water on the rate of the reaction? a. the rate remains the same b. the rate decreases by a factor of 2 the rate increases by a factor of 2 d. the rate increases by a factor of 4 c.

Answers

When you double the concentration of water, the rate of the reaction will increase by a factor of 2. So, the correct answer is c. The effect of doubling the concentration of water on the rate of the reaction between tert-butyl chloride and water in an inert solvent would be option B.

The reaction of tert-butyl chloride ((CH3)3CCl) with water in an inert solvent produces tert-butyl alcohol ((CH3)3COH). When you double the concentration of water, the rate of the reaction will increase by a factor of 2. So, the correct answer is c. The rate increases by a factor of 2.

The effect of doubling the concentration of water on the rate of the reaction between tert-butyl chloride and water in an inert solvent would be option B: the rate decreases by a factor of 2. This is because increasing the concentration of water would increase the number of water molecules available for the reaction, but the reaction rate is limited by the concentration of tert-butyl chloride. Thus, doubling the concentration of water would lead to a decrease in the rate of the reaction by a factor of 2.

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When you double the concentration of water, the rate of the reaction will increase by a factor of 2. So, the correct answer is c. The effect of doubling the concentration of water on the rate of the reaction between tert-butyl chloride and water in an inert solvent would be option B.

The reaction of tert-butyl chloride ((CH3)3CCl) with water in an inert solvent produces tert-butyl alcohol ((CH3)3COH). When you double the concentration of water, the rate of the reaction will increase by a factor of 2. So, the correct answer is c. The rate increases by a factor of 2.

The effect of doubling the concentration of water on the rate of the reaction between tert-butyl chloride and water in an inert solvent would be option B: the rate decreases by a factor of 2. This is because increasing the concentration of water would increase the number of water molecules available for the reaction, but the reaction rate is limited by the concentration of tert-butyl chloride. Thus, doubling the concentration of water would lead to a decrease in the rate of the reaction by a factor of 2.

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According to valence bond theory, what is the hybridization of the central metal ion in an octahedral complex ion?

Answers

According to valence bond theory, the hybridization of the central metal ion in an octahedral complex ion is [tex]sp^3d^2[/tex].

This means that the central metal ion has hybridized orbitals formed by mixing one s orbital, three p orbitals, and two d orbitals, which allows for the formation of six coordinate bonds with surrounding ligands in an octahedral arrangement. In an octahedral complex ion, the central metal ion is surrounded by six ligands, which can be either atoms or groups of atoms that donate electron pairs to form coordinate covalent bonds with the metal ion. The six ligands occupy the six vertices of an octahedron around the metal ion, and their interaction with the metal ion leads to the formation of hybrid orbitals.

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the half life for the first order decomposition of h202 is 660 minutes. what is the rate constant for the reaction

Answers

The rate constant for the first-order decomposition of H2O2 with a half-life of 660 minutes is approximately [tex]0.00105 min^(-1).[/tex]

To find the rate constant for the first-order decomposition of H2O2 with a half-life of 660 minutes, you can use the following formula:
rate constant (k) = ln(2) / half-life

Step 1: Plug in the given half-life value.
k = ln(2) / 660 minutes

Step 2: Calculate the rate constant.
[tex]k ≈ 0.00105 min^(-1)[/tex]
So, the rate constant for the first-order decomposition of H2O2 with a half-life of 660 minutes is approximately 0.00105 min^(-1).

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Consider the following conditions and their possible effect on the corrosion of iron (rusting).
A. presence of NaBr
B. presence of acid rain
C. coating with Zn
Which will enhance the formation of rust?
1. A, B
2. B
3. A
4. A,B,C
the following conditions and their possible effect on the corrosion of iron (rusting).
A. presence of NaBr
B. presence of acid rain
C. coating with Zn
Which will enhance the formation of rust?

Answers

Answer: A and B (NaBr and acid rain)

Explanation: There are three important components in forming rust:

1) Moisture MUST be present. Water is a reactant in the last reaction and charge must be free to flow from the anodic and cathodic reactions.

2) Additional electrolytes promote rusting because they enhance current flow.

3) The presence of acids promote rusting because H+ ions reduce oxygen and enhance the cathodic reaction. So in lower pH, rusting occurs more quickly.

Since acid rain combines moisture and acids, it enhances rust formation. NaBr is an electrolyte that promotes rusting.

Presence of acid rain will enhance the formation of rust.

What is rusting?

Rusting is a type of corrosion that occurs on iron or steel when they are exposed to oxygen and water for extended periods of time. The process of rusting involves the formation of hydrated iron(III) oxide, commonly known as rust, which is a flaky and porous material that weakens the metal and eventually causes it to disintegrate.

Which will enhance the formation of rust?

The conditions that can enhance the formation of rust are those that increase the rate of oxidation of iron. Based on that:

A. The presence of NaBr will not enhance the formation of rust since it does not increase the rate of oxidation of iron.

B. The presence of acid rain will enhance the formation of rust since it contains acidic substances that can react with iron to form iron oxide (rust).

C. Coating with Zn (galvanization) will not enhance the formation of rust since zinc serves as a sacrificial anode and corrodes instead of iron.

Therefore, the answer is 2. B, which is the presence of acid rain.

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The addition of concentrated nitric acid to each standard solution... Select all that are True. results in a relatively constant ionic strength across the standard solutions. results in the required amount of excess nitrate ion. changes the potential of the reference electrode. results in an ultraviolet digestion to ensure sample dissolution. results in a wet acid digestion to ensure sample dissolution

Answers

These statements are true because adding concentrated nitric acid maintains a consistent ionic strength, provides the necessary excess nitrate ions, and promotes wet acid digestion for proper sample dissolution. The other statements are not true in this context.

Which statements are true for the addition of nitric acid?



1. The addition of concentrated nitric acid results in a relatively constant ionic strength across the standard solutions.
2. The addition of concentrated nitric acid results in the required amount of excess nitrate ion.
3. The addition of concentrated nitric acid results in wet acid digestion to ensure sample dissolution.

These statements are true because adding concentrated nitric acid maintains a consistent ionic strength, provides the necessary excess nitrate ions, and promotes wet acid digestion for proper sample dissolution. However, it does not change the potential of the reference electrode. The terms "ultraviolet digestion" and "wet acid digestion" are not relevant to the question and do not apply to the addition of nitric acid to standard solutions. The other statements are not true in this context.

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Then solve the following problem.
Four flasks have the following labels on them:
Flask Label
A pOH = 8.9
B [H+] = 4.9 x 10-3 M
C [OH]- = 2.8 x 10-7 M
D pH = 5.5
Which flask has the most acidic solution?
a. Flask A
b. Flask B
c. Flask C
d. Flask D

Answers

The flask that has the most acidic solution is b. Flask B with a pH of 2.31.

To determine which flask has the most acidic solution, we need to compare their pH values. Lower pH values indicate more acidic solutions. Here's the information we have for each flask:

a. Flask A: pOH = 8.9, so we need to find the pH. Since pH + pOH = 14, pH = 14 - 8.9 = 5.1
b. Flask B: [H⁺] = 4.9 x 10⁻³ M, we can use the formula pH = -log[H⁺], so pH = -log(4.9 x 10⁻³) ≈ 2.31
c. Flask C: [OH⁻] = 2.8 x 10⁻⁷ M, first we find the pOH using the formula pOH = -log[OH⁻], so pOH = -log(2.8 x 10⁻⁷) ≈ 6.55, and then find the pH: pH = 14 - 6.55 ≈ 7.45
d. Flask D: pH = 5.5

Now we can compare the pH values:
Flask A: pH = 5.1
Flask B: pH = 2.31
Flask C: pH = 7.45
Flask D: pH = 5.5

The most acidic solution has the lowest pH value, which is Flask B with a pH of 2.31. So, the answer is b. Flask B.

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what is hybridization? answer unselected the mathematical combination of standard atomic orbitals to form hybrid atomic orbitals where the number of standard atomic orbitals equals the number of hybrid atomic orbitals unselected the mathematical combination of hybrid atomic orbitals to form standard atomic orbitals where there is a single atomic orbital that forms several hybrid atomic orbitals unselected the mathematical combination of standard atomic orbitals to form hybrid atomic orbitals where all of the standard atomic orbitals form a single hybrid atomic orbital unselected the mathematical combination of standard atomic orbitals to form hybrid atomic orbitals where one standard atomic orbital forms multiple hybrid atomic orbitals

Answers

Hybridization is the process of combining standard atomic orbitals to form hybrid atomic orbitals. This process occurs when an atom in a molecule is bonded to other atoms and needs to form new hybrid orbitals to accommodate the bonding. Hybridization helps to explain the geometry of molecules and the types of chemical bonds that are present.

During hybridization, the standard atomic orbitals are mathematically combined to form hybrid atomic orbitals. The number of standard atomic orbitals equals the number of hybrid atomic orbitals. The resulting hybrid orbitals have different shapes and orientations compared to the original atomic orbitals. Hybridization can occur in different ways depending on the number and types of orbitals involved. For example, in sp hybridization, one s orbital and one p orbital combine to form two hybrid sp orbitals. These hybrid orbitals have a linear shape and are oriented at an angle of 180 degrees from each other. This type of hybridization occurs in molecules such as acetylene (C2H2) where the carbon atoms are bonded to each other with a triple bond.

In sp2 hybridization, one s orbital and two p orbitals combine to form three hybrid sp2 orbitals. These hybrid orbitals have a trigonal planar shape and are oriented at an angle of 120 degrees from each other. This type of hybridization occurs in molecules such as ethene (C2H4) where the carbon atoms are bonded to each other with a double bond. In sp3 hybridization, one s orbital and three p orbitals combine to form four hybrid sp3 orbitals. These hybrid orbitals have a tetrahedral shape and are oriented at an angle of 109.5 degrees from each other. This type of hybridization occurs in molecules such as methane (CH4) where the carbon atom is bonded to four hydrogen atoms.

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calculate the change in entropy for the vaporization of xe at its boiling point of -107 °c given that ∆vaph = 12.6 kj/mol. 1. -0.118 j/k • mol 2. -13.2 j/k • mol 3. 0.750 j/k • mol 4. 75.9 j/k • mol

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the change in entropy for the vaporization of xe at its boiling point of -107 °c given that ∆vaph = 12.6 kj/mol is option  4: 75.9 J/K•mol.

How is the entropy of vaporisation calculated from the boiling point?

The heat of vaporisation divided by the boiling point gives the entropy of vaporisation the following value: Trouton's rule states that most liquids have similar values for the entropy of vaporisation (at standard pressure). Several sources list the usual value as 85 J/(mol K), 88 J/(mol K), and 90 J/(mol K).

How come we compute entropy?

Entropy is a measurement of a system's disorder or randomness. Entropy cannot be quantified in absolute terms since it depends on the system's starting and ending states. To calculate the entropy change, you must take into account the differences between the beginning and end states.

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How many moles of S02 are required to convert 6.8 g of H2S according to the following reaction? 2 H2S + SO2 → 3 S+2 H20

Answers

SO2 are required to convert 6.8 g of H2S according to the given reaction  0.0997 moles .

We first need to calculate the number of moles of H2S present in 6.8 g of H2S. We can do this by dividing the mass of H2S by its molar mass:

Molar mass of H2S = 2(1.008) + 32.06 = 34.076 g/mol
Number of moles of H2S = mass of H2S / molar mass of H2S
= 6.8 g / 34.076 g/mol
= 0.1994 mol

According to the balanced chemical equation, 2 moles of H2S react with 1 mole of SO2 to produce 3 moles of S and 2 moles of H2O. Therefore, we can set up a proportion to calculate the number of moles of SO2 required to convert 0.1994 mol of H2S:

2 mol H2S : 1 mol SO2 = 0.1994 mol H2S : x mol SO2

x mol SO2 = (1 mol SO2 * 0.1994 mol H2S) / 2 mol H2S
= 0.0997 mol SO2

Therefore, 0.0997 moles of SO2 are required to convert 6.8 g of H2S.

To determine the number of moles of SO2 required to convert 6.8 g of H2S, first find the moles of H2S, and then use the stoichiometry of the balanced reaction.

1. Find the moles of H2S:
Moles = (mass) / (molar mass)
Molar mass of H2S = 2(1.008 g/mol) + 32.06 g/mol = 34.076 g/mol
Moles of H2S = 6.8 g / 34.076 g/mol = 0.1995 mol

2. Use the stoichiometry of the reaction:
2 moles H2S : 1 mole SO2
0.1995 moles H2S : x moles SO2
x = (0.1995 mol H2S) * (1 mol SO2 / 2 mol H2S) = 0.09975 mol SO2

So, 0.09975 moles of SO2 are required to convert 6.8 g of H2S according to the given reaction.

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The structure of the nitrate ion, NO3, can be described by these three Lewis structures. There are 3 Lewis structures in resonance. The first structure has a central nitrogen atom with no lone pairs bonded to 3 oxygen atoms. Two nitrogen to oxygen atoms are single bonds, and the third nitrogen to oxygen bond is a double bond. The oxygens that have the single bonds with nitrogen have 3 lone pairs. The oxygen that has the double bond with nitrogen has 2 lone pairs. The overall charge of the ion is minus 1. The other two resonance structures are the same as the first just the nitrogen to oxygen double bond rotates to a different oxygen in each Lewis structure. Which description best matches the actual structure of the nitrate ion? a. There are three different forms of the nitrate ion that all coexist at equilibrium. b. Electrons can rapidly exchange among the three forms of the nitrate ion. c. The ion structure contains two nitrogen-to-oxygen bonds that are single bonds and one that is a double bond. d. The nitrate ion exists in one configuration that is an average of the three structures shown.

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The nitrate ion exists in one configuration that is an average of the three structures shown.(D)

The nitrate ion, NO3, is best described by resonance, which means that the actual structure is an average of the three Lewis structures. In reality, the nitrogen-to-oxygen bonds are equivalent and intermediate between single and double bonds.

The electrons are delocalized, meaning they are spread across all three oxygen atoms. This results in a more stable structure, and the overall charge of the ion is minus 1.(D)

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The polynomial 2b2 + 4bh can be used to find the surface area of a prism with a square base. b is the side length of the base, and h is the height of the prism a. Write a polynomial that represents the surface area of 10 congruent prisms by multiplying 2b2 + 4blh by 10. b. Find the surface area of 10 prisms with a base length of 4 inches and a height of 5 inches.

Answers

The polynomial that represents the surface area of 10 congruent prisms is 20b^2 + 40bh.

The polynomial that represents the surface area of 10 congruent prisms with base length "b" and height "h" can be obtained by multiplying 2b^2 + 4bh by 10:

10(2b^2 + 4bh)

To find the surface area of 10 prisms with a base length of 4 inches and a height of 5 inches, we can substitute "b" with 4 and "h" with 5 in the polynomial 20b^2 + 40bh:

Surface area = 20(4^2) + 40(4)(5)

Surface area = 20(16) + 40(20)

Surface area = 320 + 800

Surface area = 1120 square inches

So, the surface area of 10 prisms with a base length of 4 inches and a height of 5 inches is 1120 square inches.

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What is the average oxidation state of tin in the mineral abhurite, Sn21Cl16(OH)14O6?
Group of answer choices
+2.00
+1.71
+2.76
+3.43

Answers

The oxidation states are represented as positive numbers, so we will take the absolute value: Average oxidation state of Sn = 2.00

To determine the average oxidation state of tin in abhurite, we first need to assign oxidation states to each of the tin atoms in the formula.

We know that the overall charge of the formula must be neutral, so we can use this information to set up an equation:

21x + 16(-1) + 14(-1) + 6(-2) = 0

where x is the oxidation state of tin.

Simplifying the equation:

21x - 16 - 14 - 12 = 0

21x = 42

x = 2

So the oxidation state of tin in abhurite is +2.

Therefore, the answer is +2.00.

To determine the average oxidation state of tin (Sn) in the mineral abhurite (Sn21Cl16(OH)14O6), we will first find the total charge contributed by all other atoms in the formula, and then divide that by the number of tin atoms.

Total charge of Cl atoms: 16 Cl atoms × (-1 charge/atom) = -16
Total charge of O atoms: 6 O atoms × (-2 charge/atom) = -12
Total charge of OH groups: 14 OH groups × (-1 charge/group) = -14

Sum of all charges: -16 + (-12) + (-14) = -42

Now, we'll divide the total charge by the number of tin atoms:
Average oxidation state of Sn = Total charge / Number of Sn atoms
= -42 / 21
= -2

However, oxidation states are represented as positive numbers, so we will take the absolute value:
Average oxidation state of Sn = 2.00

Therefore, the correct answer is +2.00.

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What is the pH of a 0.0040 MSr(OH)2 solution?
a.12.00
b. 2.40
c. 11.60
d. 2.10
e. 11.90

Answers

The correct option is e. The pH of a 0.0040 M Strontium hydroxide [tex]Sr(OH)_2[/tex] solution is 11.90.

To determine the pH of a 0.0040 M [tex]Sr(OH)_2[/tex] solution, we'll first find the concentration of OH⁻ ions and then calculate the pH. Here are the steps:
1. Strontium hydroxide, [tex]Sr(OH)_2[/tex], is a strong base that dissociates completely in water to form [tex]Sr^{2+}[/tex]⁺ and 2[tex]OH^{-}[/tex] ions. So for each 1 mole of [tex]Sr(OH)_2[/tex], you get 2 moles of OH⁻ ions.
2. Calculate the concentration of [tex]OH^{-}[/tex] ions: [tex]OH^{-}[/tex] = 2 * [tex]Sr(OH)_2[/tex] = 2 × 0.0040 M = 0.0080 M.
3. Calculate the pOH using the formula pOH = -log[OH⁻]: pOH = -log(0.0080) = 2.10.
4. Finally, find the pH using the relationship pH + pOH = 14: pH = 14 - pOH = 14 - 2.10 = 11.90.

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the ph of a 0.25 m aqueous solution ammonia, nh3, at 25.0 °c is 9.50. what is the value of kb for nh3?

Answers

The Kb value for NH₃ at 25.0 °C is equal to 10-13.75 M.

The Kb value for NH₃ is equal to the product of the concentrations of the dissociated ions, divided by the concentration of the undissociated species.

In the case of NH₃, this is the product of the concentrations of the hydroxide (OH-) and ammonium (NH₄+) ions, divided by the concentration of the NH₃. At a pH of 9.50, the concentration of hydroxide ions (OH-) is approximately 10⁻⁹⁴⁵ M, and the concentration of ammonium ions (NH4+) is 10⁻⁴²⁵ M.

The Kb value for NH₃ is a measure of the equilibrium constant for the reaction in which NH₃ dissociates into its component ions, which is a measure of the extent to which NH₃ is dissociated into its component ions in aqueous solution.

The higher the Kb value, the greater the extent to which NH₃ is dissociated into its component ions. In this case, the Kb value of 10⁻¹³⁷⁵ M indicates that NH₃ is relatively weakly dissociated into its component ions in an aqueous solution at 25.0 °C.

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what is the ph at equilibrium? a.1.34 b.2.00 c.2.69 d.2.37

Answers

We would need more information about the acid-base equilibrium to determine the pH at equilibrium.

Without additional information about the chemical equilibrium involved, it is not possible to determine the pH at equilibrium.

The pH of a solution depends on the concentration of hydrogen ions (H+) present in the solution, which in turn depends on the dissociation constant (Ka) of the acid present and the concentration of the acid and its conjugate base.

Therefore, we would need more information about the acid-base equilibrium to determine the pH at equilibrium.

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From the list of structures on the right, select the major product formed when the following alkyl bromide:
1) is treated with sodium methoxide in DMSO.
2) is treated with sodium t-butoxide in DMSO.

Answers

Sodium methoxide will act as a nucleophile, attacking the carbon atom bonded to the bromine atom. The bromine will then leave as a bromide ion (Br-), and the major product will have a methoxy (OCH3) group in place of the bromine.

Alkyl bromide treated with sodium methoxide and sodium t-butoxide in DMSO?

The major product formed when the alkyl bromide is treated with specific reagents:

When the alkyl bromide is treated with sodium methoxide (CH3ONa) in DMSO (dimethyl sulfoxide), the major product will be the one formed by a nucleophilic substitution reaction (SN2). Sodium methoxide will act as a nucleophile, attacking the carbon atom bonded to the bromine atom. The bromine will then leave as a bromide ion (Br-), and the major product will have a methoxy (OCH3) group in place of the bromine.
When the alkyl bromide is treated with sodium t-butoxide (C4H9ONa) in DMSO, the major product will be formed by an elimination reaction (E2) due to the sterically hindered nature of t-butoxide. Sodium t-butoxide will act as a               base, abstracting a proton from a β-carbon, and the bromide ion will leave as well. This will result in the formation  of a double bond between the α- and β-carbons in the major product.

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Sodium methoxide will act as a nucleophile, attacking the carbon atom bonded to the bromine atom. The bromine will then leave as a bromide ion (Br-), and the major product will have a methoxy (OCH3) group in place of the bromine.

Alkyl bromide treated with sodium methoxide and sodium t-butoxide in DMSO?

The major product formed when the alkyl bromide is treated with specific reagents:

When the alkyl bromide is treated with sodium methoxide (CH3ONa) in DMSO (dimethyl sulfoxide), the major product will be the one formed by a nucleophilic substitution reaction (SN2). Sodium methoxide will act as a nucleophile, attacking the carbon atom bonded to the bromine atom. The bromine will then leave as a bromide ion (Br-), and the major product will have a methoxy (OCH3) group in place of the bromine.
When the alkyl bromide is treated with sodium t-butoxide (C4H9ONa) in DMSO, the major product will be formed by an elimination reaction (E2) due to the sterically hindered nature of t-butoxide. Sodium t-butoxide will act as a               base, abstracting a proton from a β-carbon, and the bromide ion will leave as well. This will result in the formation  of a double bond between the α- and β-carbons in the major product.

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A music teacher had noticed that some students went to pieces during ex ams. He wanted to test whether this performance anxiety was different for people playing different instruments. He took groups of guitarists, drummers and pianists (variable = Instru) and measured their anxiety (variable = Anxiety) during the ex am. He also noted the type of ex am they were performing (in the UK, musical instrument ex ams are known as grades and range from 1 to 8). He wanted to see whether the type of instrument played affected performance anxiety when accounting for the grade of the ex am. Which of the following statements best reflects what the tables below tell us?a.Guitarists were significantly less anxious than pianists and drummers, and drummers were significantly more anxious than pianists.b.Guitarists were significantly less anxious than drummers, but were about as anxious as pianists, and drummers were about as anxious as pianists.c.Guitarists were significantly less anxious than pianists and drummers, and drummers were significantly less anxious than pianists.d.Guitarists, drummers and pianists were all about equally anxious.Estimates Dependent Variable: ANXIETY 95% Confidence Interval INSTRU Mean Std. Error Lower Bound Upper Bound Guitar 72.633a 3.066 66.490 78.775 Piano 85.852 2.887 80.068 91.635 Drums 98.225 2.761 92.694 103.756 a. Covariates appearing in the model are evaluated at the following values: GRADE = 4.5167 1 Pairwise Comparisons Dependent Variable: ANXIETY Mean Difference CO INSTRU (J) INSTRU Std. Error Guitar Piano -13.219 4.220 Drums -25.592 4.148 Piano Guitar 13.219 4.220 Drums -12.373 3.989 Drums Guitar 25.592 4.148 Piano 12.373 3.989 Based on estimated marginal means *The mean difference is significant at the .05 level. a. Adjustment for multiple comparisons: Bonferroni. Sig. .008 .000 .008 .009 .000 .009 95% Confidence Interval for Difference Lower Bound Upper Bound -23.634 -2.804 -35.830 -15.355 2.804 23.634 -22.219 -2.527 15.355 35.830 2.527 22.219 if the interest rate is lower in the united states than in the united kingdom, and suppose the forward rate of the british pound is higher than its spot rate a 10cm10cm square is bent at a 90 angle. a uniform 4.90102 t magnetic field points downward at a 45 angle.What is the magnetic flux through the loop? 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X Series in Rows Columns Type Lincar Growth Date AutoFill Date unit O Day Weekday Month Year Trend Step value: Stop value: 4501 OK Cancel Unit Output 750 450 600 900 1050 1300 lor fl Delete- a Format Calls J X $ % Format as Table - Clipboard Font Cell Styles - Alignment Number Styles C14 fa 450 B D 1 E Official College Sweatshirts F G H 2 Flexible Budget Analysis Series ? 3 STATIC BUDGET Series in 4 Fixed Cost Type Duc $17,450 Rows 5 Variable Cost per unit O Line Day $15 Columns Growth Wicked 6 Unit Output 750 Dute Math 7 Sales Price $40 Autoiu Year 8 9 Sales Revenue Trend $30,000 10 LESS: Expenses $28,700 Step value: Stop value 11 Operating Income $1,300 OK Cancel 12 13 FLEXIBLE BUDGET Unit Output 14 Varying Unit Output 4501 15 16 17 18 19 Varying Unit Output and Sales Price Unit Output 20 450 600 750 900 1050 1300 21 $35.00 Oooo Sales Price 24 25 Budget Analysis Named Ranges Ready