For which slightly soluble substance will the addition of HCl to its solution have no effect on its solubility? a. AgBr(s) b. PbF2(s) c. MgCO3(s) d. Cu(OH)2(s)

Answers

Answer 1

The substance for which the addition of HCl to its solution will have no effect on its solubility is [tex]PbF_2[/tex](s) (option b).

The addition of HCl to a solution can affect the solubility of some slightly soluble substances by reacting with them to form a more soluble compound. The solubility of a substance may increase or decrease depending on the nature of the reaction.

a. AgBr(s) - The addition of HCl to a solution of AgBr will decrease its solubility because AgBr will react with HCl to form a more soluble compound, silver chloride (AgCl).

b. [tex]PbF_2[/tex](s) - The addition of HCl to a solution of [tex]PbF_2[/tex] will have no effect on its solubility because [tex]PbF_2[/tex] is insoluble in water and does not react with HCl.

c. [tex]MgCO_3[/tex](s) - The addition of HCl to a solution of [tex]MgCO_3[/tex] will decrease its solubility because [tex]MgCO_3[/tex] will react with HCl to form a more soluble compound, magnesium chloride ([tex]MgCl_2[/tex]), and carbon dioxide ([tex]CO_2[/tex]).

d. [tex]Cu(OH)_2[/tex](s) - The addition of HCl to a solution of [tex]Cu(OH)_2[/tex] will decrease its solubility because [tex]Cu(OH)_2[/tex] will react with HCl to form a more soluble compound, copper chloride ([tex]CuCl_2[/tex]), and water ([tex]H_2O[/tex]).

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Related Questions

How many grams of sodium chloride is produced when 3.4g of sodium reacts with 8.9g of chlorine in this balanced equation?

Answers

17.3 grams of sodium chloride is produced when 3.4g of sodium reacts with 8.9g of chlorine in this balanced equation.

The balanced equation for the reaction between sodium and chlorine is:

2Na + Cl₂ -> 2NaCl

To determine the amount of sodium chloride produced, we first need to find the limiting reagent. We can do this by calculating the number of moles of each reactant present and comparing their ratios to the stoichiometric coefficients in the balanced equation.

For sodium, we have:

n = m/M

n = 3.4g / 23.0 g/mol

n = 0.148 mol

For chlorine, we have:

n = m/M

n = 8.9g / 35.5 g/mol

n = 0.251 mol

The mole ratio of Na to Cl₂ is 2:1, which means that 0.296 mol of NaCl can be produced from 0.148 mol of Na.

Therefore, the amount of NaCl produced is:

n = 0.296 mol x 58.44 g/mol

n = 17.3 g

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The formal charge is the "charge" an element would have in a molecule or ion if all of the bonding electrons were shared equally between atoms. :ö-ci-ö:Based on the Lewis structure given, the formal charge on the central chlorine atom is The formal charge is the "charge" an element would have in a molecule or ion if all of the bonding electrons were shared equally between atoms. : Based on the Lewis structure given, the formal charge on the central oxygen atom is

Answers

A molecule is a group of two or more atoms held together by covalent bonds.

Covalent bonds occur when atoms share electrons in order to achieve a more stable electron configuration. Electrons are negatively charged particles that orbit around the nucleus of an atom.
The formal charge is a tool used in chemistry to determine the distribution of electrons in a molecule. It is calculated by subtracting the number of lone pair electrons and half of the shared electrons from the number of valence electrons in an atom. The formal charge on an atom can help us determine which Lewis structure is the most accurate representation of the molecule.
In the given Lewis structure, the central chlorine atom has a formal charge of 0. This is because it has 7 valence electrons, 3 lone pair electrons, and 4 shared electrons. The oxygen atom, on the other hand, has a formal charge of -1. This is because it has 6 valence electrons, 4 lone pair electrons, and 2 shared electrons.

It is important to note that the Lewis structure is just one representation of the molecule and that the true distribution of electrons may be more complex. However, calculating formal charges can be a helpful tool in understanding the distribution of electrons in a molecule.

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2. A sample of nitrogen gas occupies 1. 55 L at 27. 0°C and 1. 00 atm. What will the volume be at -100. 0°C, and the same pressure?​

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To determine the volume of nitrogen gas at -100.0°C and the same pressure (1.00 atm), we can use the combined gas law. The initial volume of the gas is given as 1.55 L at 27.0°C. By applying the combined gas law equation, we can calculate the final volume at the new temperature.

The combined gas law equation is given as:

(P₁ * V₁) / (T₁) = (P₂ * V₂) / (T₂)

Where:

P₁ and P₂ are the initial and final pressures,

V₁ and V₂ are the initial and final volumes,

T₁ and T₂ are the initial and final temperatures.

In this case, we are given the initial volume (V₁ = 1.55 L) and temperature (T₁ = 27.0°C) at a pressure of 1.00 atm. We want to find the final volume (V₂) at a new temperature of -100.0°C, with the same pressure of 1.00 atm. Converting the temperatures to Kelvin scale (T₁ = 27.0 + 273 = 300 K, T₂ = -100.0 + 273 = 173 K), we can set up the equation:

(1.00 atm * 1.55 L) / (300 K) = (1.00 atm * V₂) / (173 K)

Solving for V₂, we find:

V₂ = (1.00 atm * 1.55 L * 173 K) / (300 K)

V₂ ≈ 0.89 L

Therefore, the volume of the nitrogen gas at -100.0°C and 1.00 atm pressure would be approximately 0.89 L. The combined gas law allows us to relate the initial and final conditions of a gas sample when pressure, volume, and temperature change.

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∆h° = -58.02 kj/mol and ∆s° = -176.6 j/mol・k. what is ∆g for the reaction at 50.0°c when p_no₂ = p_n₂o₄ = 0.200 atm? assume ∆h° and ∆s° are temperature independent.

Answers

At 50.0°C and with p_no₂ = p_n₂o₄ = 0.200 atm, the ∆g for the reaction is -0.753 kJ/mol.

To find ∆g for the reaction at 50.0°C, we need to use the Gibbs free energy equation, ∆g = ∆h - T∆s, where ∆h is the enthalpy change, ∆s is the entropy change, T is the temperature in Kelvin, and ∆g is the change in free energy.

First, we need to convert the temperature to Kelvin: 50.0°C + 273.15 = 323.15 K.

Next, we need to convert ∆h from kJ/mol to J/mol: ∆h = -58,020 J/mol.

Now we can calculate ∆g using the equation:
∆g = ∆h - T∆s
∆g = -58,020 J/mol - (323.15 K)(-176.6 J/mol・K)
∆g = -58,020 J/mol + 57,267 J/mol
∆g = -753 J/mol

Finally, we need to convert ∆g from J/mol to kJ/mol: ∆g = -0.753 kJ/mol.

Therefore, at 50.0°C and with p_no₂ = p_n₂o₄ = 0.200 atm, the ∆g for the reaction is -0.753 kJ/mol.

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What is the freezing point of a solution that contains 12.0 g of glucose in 50 g of acetic acid (CH3COOH). Kf = 3.90°C/m, melting point = 16.6 °C, [C6H12O6 – MM 180.2 g/mol].

Answers

To determine the freezing point of the solution, we need to use the formula: ΔTf = Kf × molality. Where ΔTf is the change in freezing point, Kf is the freezing point depression constant for the solvent (acetic acid), and molality is the concentration of the solute (glucose) in moles per kilogram of solvent.

First, we need to calculate the molality of the solution:

molality = moles of solute / mass of solvent in kg

The molar mass of glucose (C6H12O6) is 180.2 g/mol, so we have:

moles of glucose = 12.0 g / 180.2 g/mol = 0.0665 mol

mass of acetic acid = 50 g / 1000 g/kg = 0.05 kg

molality = 0.0665 mol / 0.05 kg = 1.33 mol/kg

Now we can plug in the values for Kf and molality to find ΔTf:

ΔTf = 3.90°C/m × 1.33 mol/kg = 5.19°C

Finally, we can calculate the freezing point of the solution:

freezing point = melting point - ΔTf

freezing point = 16.6°C - 5.19°C = 11.41°C

Therefore, the freezing point of the solution is 11.41°C.

To find the freezing point of a solution containing 12.0 g of glucose in 50 g of acetic acid, we can use the formula ΔTf = Kf × molality. First, calculate the molality by dividing moles of glucose by the mass of acetic acid in kilograms:

Moles of glucose = 12.0 g / 180.2 g/mol = 0.0666 mol
Mass of acetic acid = 50 g / 1000 = 0.05 kg

Molality = 0.0666 mol / 0.05 kg = 1.332 mol/kg

Now, calculate ΔTf:

ΔTf = Kf × molality = 3.90°C/m × 1.332 mol/kg = 5.1948 °C

Finally, subtract ΔTf from the melting point of acetic acid:

Freezing point of the solution = 16.6 °C - 5.1948 °C = 11.4052 °C

The freezing point of the solution is approximately 11.41 °C.

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The decomposition of hydrogen peroxide to form water and oxygen is
an example of a disproportionation reaction.
Reason
The oxygen of peroxide is in -1 oxidation state and it is converted to zero
oxidation state in O 2

and -2 oxidation state in H 2

O.

Answers

The decomposition of hydrogen peroxide to form water and oxygen is an example of a disproportionation reaction due to the change in oxidation states of oxygen.

Is the decomposition of hydrogen peroxide to form water and oxygen an example of a disproportionation reaction?

The decomposition of hydrogen peroxide to form water and oxygen is indeed an example of a disproportionation reaction. In this reaction, hydrogen peroxide (H₂O₂) undergoes a self-oxidation and reduction process simultaneously.

In hydrogen peroxide, the oxygen atom is in the -1 oxidation state. During the disproportionation reaction, one oxygen atom in H₂O₂ is reduced to a -2 oxidation state, forming water (H₂O), while the other oxygen atom is oxidized to a 0 oxidation state, resulting in the formation of oxygen gas (O₂).

This simultaneous oxidation and reduction of the same element (oxygen in this case) within a single compound is characteristic of a disproportionation reaction.

The oxidation state of the oxygen changes from -1 to -2 and 0, demonstrating the disproportionation process.

Therefore, the statement that the decomposition of hydrogen peroxide to form water and oxygen is an example of a disproportionation reaction is valid, and the given reason explaining the change in oxidation states supports this assertion.

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the change in enthalpy (δh° rxn) for a reaction is -25.8 kj>mol. the equilibrium constant for the reaction is 1.4 * 103 at 298 k. what is the equilibrium constant for the reaction at 655 k?

Answers

The equilibrium constant for the reaction at 655 K is 3.84 * 10^4.

To find the equilibrium constant (K) at 655 K, we need to use the equation:
ΔG° = -RT ln(K)
where ΔG° is the standard free energy change, R is the gas constant, T is the temperature in Kelvin, and ln is the natural logarithm.
We can first calculate the standard free energy change using the equation:
ΔG° = -RT ln(K)
ΔG° = -(-25.8 kJ/mol) - (8.314 J/mol*K) * (298 K) * ln(1.4 * 10^3)
ΔG° = 2.18 kJ/mol
Now we can use the same equation to find the equilibrium constant at 655 K:
ΔG° = -RT ln(K)
K = e^(-ΔG°/RT)
K = e^(-(2.18 kJ/mol)/(8.314 J/mol*K * 655 K))
K = 3.84 * 10^4
So the equilibrium constant for the reaction at 655 K is 3.84 * 10^4.

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An element has the electron configuration [Kr] 4d^(10)5s^(2)5p^(2).The element is a(n)A) nonmetal.B) transition element.C) metal.D) lanthanide.E) actinide.

Answers

The element with the electron configuration [Kr] 4d¹⁰5s²5p² is a nonmetal.

The electron configuration of an element describes the arrangement of its electrons in the atomic orbitals. In this case, the electron configuration [Kr] [tex]4d^{(10)}5s^{(2)}5p^{(2)}[/tex] suggests that the element has a completely filled 4d subshell and two valence electrons in both the 5s and 5p orbitals.

The location of the element in the periodic table can be determined from its electron configuration, and in this case, it belongs to the p-block. The p-block elements are found on the right side of the periodic table, and they include nonmetals, metalloids, and some metals.

Group 16, also known as the oxygen group or chalcogens, contains six elements starting from oxygen (O) to polonium (Po), and they have the same number of valence electrons, which is six.

These elements are characterized by having diverse properties and reactivity, including forming covalent compounds with other elements, forming oxides with oxygen, and exhibiting a range of oxidation states.

Nonmetallic properties such as being poor conductors of heat and electricity, high electronegativity, and high ionization energy are more common among the group 16 elements.

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1. During this laboratory exercise, you will study the function of the pleural membranes. What will you use to represent the pleural membranes

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To represent the pleural membranes in a laboratory exercise, various materials can be used to simulate their structure and function. Here are some possible options:

1. Thin plastic sheets: Transparent or semi-transparent plastic sheets can be used to represent the pleural membranes. These sheets can be flexible and easily manipulated to demonstrate the layers of the pleura.

2. Latex or rubber gloves: Gloves can be used to represent the pleural membranes due to their thin and stretchable nature. By inflating a glove with air and observing how it adheres to a surface, students can understand the concept of pleural adhesion.

3. Plastic bags: Transparent plastic bags can be used to simulate the pleural membranes. By placing an inflated bag between two surfaces and observing its interaction, students can observe the effects of friction and adhesion.

The choice of material will depend on the specific learning objectives, accessibility, and safety considerations of the laboratory exercise.

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step 2. draw the ester‑containing intermediate produced from step 1, and draw the next reactant or reagent, if applicable. add curved arrows and any necessary charges and nonbonding electrons.

Answers

The key is to think about the charges and electron movements in the intermediate and any subsequent reactants or reagents to draw an accurate depiction of the reaction.

In step 1, we begin with a carboxylic acid and an alcohol as reactants. After protonation of the carbonyl oxygen, the alcohol attacks the carbonyl carbon, leading to the formation of an ester-containing intermediate.
To draw this intermediate, we can show the carbonyl oxygen with a positive charge and the alcohol oxygen with a negative charge. The carbon in the carbonyl group should also have a double bond to one of the oxygen atoms and a single bond to the other oxygen atom.
If we want to add a next reactant or reagent, we can draw it on the opposite side of the molecule from the carbonyl group. For example, we could add a nucleophile such as a Grignard reagent or a hydride ion.
To show the mechanism of the reaction, we can add curved arrows to indicate the movement of electrons. For example, we could show the lone pair of electrons on the nucleophile attacking the carbonyl carbon, and the electrons in the double bond moving to the carbonyl oxygen to form a new bond.
Overall, the key is to think about the charges and electron movements in the intermediate and any subsequent reactants or reagents to draw an accurate depiction of the reaction.

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The ester-containing intermediate produced from step 1, and the next reactant or reagent, if applicable, with curved arrows and any necessary charges and nonbonding electrons,
Step 1: Start with the ester-containing intermediate produced from the previous step. It should have an ester functional group (R-COOR').
Step 2: Identify the next reactant or reagent, if applicable. This could be a nucleophile, electrophile, or a base/acid, depending on the reaction you are studying.
Step 3: Add curved arrows to indicate the flow of electrons in the reaction. Curved arrows show how electrons move from a nucleophile (electron-rich species) to an electrophile (electron-poor species) or how electrons are transferred between species in acid-base reactions.
Step 4: Include any necessary charges and nonbonding electrons on atoms participating in the reaction. For example, a negatively charged nucleophile will have a negative charge and nonbonding electrons on the attacking atom.
Following these steps, you can draw the ester-containing intermediate, the next reactant or reagent, and show the reaction mechanism with curved arrows, charges, and nonbonding electrons.

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The diffraction pattern from a single slit (width 0.02 mm) is viewed on a screen that is 1.2 m away from the slit. If a light with a wavelength of 430 nm is used, what is the width of the central bright maximum?

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The diffraction pattern of the single slit with the width of the 0.02 mm. The width of the central bright is the 5.16 cm.

The width of central maximum in the single slit is expressed as :

W = 2 λ D /d

Where,

The λ is the wavelength that is equals to 430 nm = 430 × 10⁻⁹ m

The D is the distance of screen that is equals to 1.2 m

The d is the width of slit and is equals to 0.02 mm = 0.02 × 10⁻³ m

The width of central bright is as :

W = 2 λ D /d

W = ( 2 ( 430 × 10⁻⁹ m) (1.2)) / 0.02 × 10⁻³ m

W = 0.0516 m

W = 5.16 cm

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Rank the following in order of decreasing acid strength: H 20, H 2S, H 2Se, H 2Te O A. H2Te> H2Se > H25> H20 O B. H2S> H2Te > H2Se> H20 O C.H20> H2S> H2Se> H2T O D.H2Se> H2Te > H2S> H20 OE. H2Se H2S H2Te> H20

Answers

The correct order of decreasing acid strength is: H₂Te > H₂Se > H₂S > H₂O.

Acid strength is determined by the stability of the conjugate base. In this case, we have  H₂O, H₂S, H₂Se, and H₂Te. These are all hydrides of Group 16 elements. As you go down the group, the atomic size increases, which leads to weaker bonds and better stabilization of negative charge on the conjugate base.

As a result, the acid strength increases down the group. Therefore, H₂Te is the strongest acid, followed by H₂Se, H₂S, and H₂O in decreasing order. The correct ranking is option A: H₂Te > H₂Se > H₂S > H₂O.

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Tetrahydrofuran (THF) can be formed by treating 1,4-butanediol with sulfuric acid. Propose a mechanism for this transformation. Include lone pairs and charges in your answers. Do not use abbreviations such as Me or Ph in your drawings. Do not explicitly draw any hydrogen atoms in any of your products.

Answers

The mechanism is an acid-catalyzed dehydration reaction in which sulfuric acid acts as a catalyst and proton source to facilitate the formation of a carbocation intermediate.

The mechanism involves the loss of water and the formation of a cyclic ether, THF, whichlis a useful solvent in organic chemistry.

The mechanism for the formation of tetrahydrofuran (THF) from 1,4-butanediol involves dehydration of the diol to form an intermediate carbocation, which then undergoes intramolecular cyclization to form THF. The mechanism involves the following steps:

1. Protonation: Sulfuric acid protonates one of the hydroxyl groups of 1,4-butanediol to form an oxonium ion intermediate.

2. Water Loss: The oxonium ion intermediate loses a water molecule to form a carbocation intermediate.

3. Cyclization: The carbocation intermediate undergoes intramolecular cyclization by attacking the adjacent carbon to form a five-membered ring intermediate.

4. Deprotonation: The five-membered ring intermediate is deprotonated by a water molecule to form the final product, THF.

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For nitrous acid, HNO2, Ka = 4.0 × 10–4. Calculate the pH of 0.33 M HNO2.
Question 21 options:
A) 2.92
B) 1.94
C) 3.40
D) 0.48
E) 4.36

Answers

The pH of a 0.33 M HNO₂ solution is approximately 1.94. The correct answer is option B) 1.94.

To calculate the pH of a solution of nitrous acid (HNO₂) with a concentration of 0.33 M, we can use the acid dissociation constant (Kₐ) and the equilibrium expression.

The dissociation of nitrous acid can be represented as follows:

HNO₂(aq) ⇌ H⁺(aq) + NO₂⁻(aq)

The equilibrium expression for the acid dissociation constant (Kₐ) is:

Kₐ = [H⁺][NO₂⁻] / [HNO₂]

Given that Kₐ for HNO₂ is 4.0 × 10⁻⁴, we can set up the equation:

4.0 × 10⁻⁴ = [H⁺][NO₂⁻] / [HNO₂]

Since the initial concentration of HNO₂ is 0.33 M, and assuming that x represents the concentration of H⁺ and NO₂⁻ formed, we can write:

4.0 × 10⁻⁴ = x² / 0.33

Rearranging the equation gives:

x² = 4.0 × 10⁻⁴ * 0.33

x² = 1.32 × 10⁻⁴

x ≈ 0.0115

Since we are calculating the pH, which is the negative logarithm of the H⁺ concentration, we can calculate it as follows:

pH = -log[H⁺]

pH = -log(0.0115)

pH ≈ 1.94

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from the initial measurements you determine the electrode slope is -55.8 mv. following the same procedure as described in your lab manual, you measure the initial potential of an unknown to be 86.1 mv. after the addition of 0.102 m fluoride the potential drops to 38.6 mv. what is the molarity of fluoride in the original, undiluted, control sample? (report your answer as the significance of the concentration with 3 significant figures, assuming the exponent is to the power of -4.)

Answers

The molarity of fluoride in the original, undiluted, control sample is 4.46 * 10⁻³ M.

What is the molarity of fluoride in the original, undiluted, control sample?

The molarity of fluoride in the original, undiluted, control sample is determined using the Nernst equation as follows:

E = E° - (RT/nF) * ln([F-⁻])

where

E is the measured potential,E° is the standard potential,R is the gas constant,T is the temperature in Kelvin,n is the number of electrons transferred,F is the Faraday constant, and[F⁻] is the molarity of fluoride.

At the initial potential of 86.1 mV:

86.1 mV = E° - (RT/nF) * ln([F⁻]) ---- (1)

At the potential after the addition of fluoride (38.6 mV):

38.6 mV = E° - (RT/nF) * ln(0.102 + [F⁻]) ---- (2)

Subtracting (2) from (1):

47.5 mV = (RT/nF) * ln([F⁻] / (0.102 + [F⁻]))

ln([F⁻] / (0.102 + [F⁻])) = (47.5 mV * nF) / (RT)

Taking the exponential of both sides:

[F⁻] / (0.102 + [F⁻]) = [tex]e^{((47.5 mV * nF) / (RT))}[/tex]

Solving for [F-]:

[F⁻] = [tex]\frac{0.102 * (e^{(47.5  * nF)} / (RT)} {(1 - e^{(47.5 mV * nF)} / (RT)}[/tex]

[F⁻] = [tex]\frac{0.102 * e^{47.5*1* 6.022 x 10^{23}} / (8.314 * 298 )} {1 - e^{47.5*1*6.022 x 10^{23}}/ (8.314 * 298)}[/tex]

[F⁻] = 4.46 * 10⁻³ M

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what is the enthalpy of vaporization of acetone at its normal boiling point of 56.2 degrees celsius? the entropy of vaporization of acetone is 88.3 j/mol*k

Answers

The enthalpy of vaporization of acetone at its the boiling point temperature 329.35 K.

How can we calculate the enthalpy of vaporization of acetone at its normal boiling point?

The enthalpy of vaporization (ΔHvap) of acetone at its normal boiling point can be determined using the Clausius-Clapeyron equation and the known entropy of vaporization.

The Clausius-Clapeyron equation, ln(P2/P1) = (ΔHvap/R) * (1/T1 - 1/T2), relates the vapor pressure of a substance at two different temperatures to its enthalpy of vaporization.

By rearranging the equation and plugging in the given values of the entropy of vaporization (ΔSvap = 88.3 J/mol*K) and the boiling point temperature (T1 = 56.2°C = 329.35 K), you can solve for the enthalpy of vaporization (ΔHvap). This equation allows us to determine the enthalpy change associated with the phase transition from liquid to gas.

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Sodium hypochlorite (NaOCI) is the active ingredient in laundry bleach. Typically, bleach contains 5.0% of this salt by mass, which is a 0.67 M solution. Determine the concentrations of all species and compute the pH of laundry bleach.

Answers

The concentrations of the species is 2.0 x 10⁻⁴ M, and the pH of laundry bleach is approximately 10.3.

To determine the concentrations of all species and the pH of laundry bleach, we need to start by identifying the relevant chemical reactions.

Sodium hypochlorite (NaOCl) in water undergoes hydrolysis to produce hypochlorous acid (HOCl) and hydroxide ions (OH⁻);

NaOCl + H₂O ⇌ HOCl + Na⁺ + OH⁻

The equilibrium constant for this reaction, known as the base dissociation constant ([tex]K_{b}[/tex]), is;

[tex]K_{b}[/tex] = [HOCl][OH⁻] / [NaOCl]

We can assume that the concentration of sodium hydroxide is negligible compared to that of sodium hypochlorite and hypochlorous acid, so we can simplify the expression to;

[tex]K_{b}[/tex]= [HOCl][OH⁻] / [NaOCl] ≈ [HOCl][OH⁻] / 0.67 M

Since bleach contains 5.0% by mass of NaOCl, we can calculate its molarity as;

0.05 g NaOCl / 1 g bleach x 100 g bleach / 1 L bleach x 1 mol NaOCl / 74.44 g NaOCl = 0.067 M

So, the [tex]K_{b}[/tex] expression becomes;

[tex]K_{b}[/tex] = [HOCl][OH⁻] / 0.067 M

Now, to determine the concentrations of HOCl and OH⁻, we need to use the fact that the solution is in equilibrium;

[H₂O] = [HOCl] + [OH⁻]

where [H₂O] is the initial concentration of water (55.5 M). Solving for [OH⁻], we get;

[OH⁻] = (Kb [NaOCl] / [H₂O][tex])^{0.5}[/tex]

= (1.0 x 10⁻⁷ x 0.067 / 55.5[tex])^{0.5}[/tex] = 2.0 x 10⁻⁴ M

And since [HOCl] = [H₂O] - [OH⁻], we get:

[HOCl] = 55.5 M - 2.0 x 10⁻⁴ M = 55.5 M

So the concentrations of the species in laundry bleach are:

[NaOCl] = 0.067 M

[HOCl] = 55.5 M

[OH⁻] = 2.0 x 10⁻⁴M

To compute the pH of laundry bleach, we need to calculate the concentration of hydrogen ions (H⁺) using the equation;

Kw = [H⁺][OH⁻]

where Kw is the ion product constant of water (1.0 x 10⁻¹⁴). Solving for [H⁺], we get;

[H⁺] = Kw / [OH⁻] = 1.0 x 10⁻¹⁴ / 2.0 x 10⁻⁴ M

= 5.0 x 10⁻¹¹ M

Taking the negative logarithm of [H⁺], we get the pH;

pH = -log[H⁺] = -log(5.0 x 10⁻¹¹) = 10.3

Therefore, the pH of laundry bleach is approximately 10.3.

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Calculate the moles of NH3 produced when 0. 75moles of N2 reacts

Answers

To calculate the moles of NH3 produced when 0.75 moles of N2 reacts, we need to refer to the balanced chemical equation for the reaction between N2 and NH3.

The balanced equation is as follows:

N2 + 3H2 -> 2NH3

From the equation, we can see that 1 mole of N2 reacts with 2 moles of NH3. Since we know the number of moles of N2 (0.75 moles), we can use the stoichiometry of the balanced equation to determine the moles of NH3 produced.

Moles of NH3 = (moles of N2) × (moles of NH3 / moles of N2)

Moles of NH3 = 0.75 moles × (2 moles NH3 / 1 mole N2) = 1.5 moles

Therefore, 0.75 moles of N2 will produce 1.5 moles of NH3.

It's important to note that this calculation assumes the reaction goes to completion and that the reaction conditions are favorable for the conversion of N2 to NH3. In reality, the reaction may not go to completion or may be influenced by other factors such as temperature and pressure.

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an aqueous solution contains 0.469 m ethylamine (c2h5nh2). how many ml of 0.266 m hydrochloric acid would have to be added to 225 ml of this solution in order to prepare a buffer with a ph of 10.500?

Answers

There would need to add 672 mL of 0.266 M HCl to 225 mL of the ethylamine solution to prepare a buffer with a pH of 10.500.

To prepare a buffer solution with a pH of 10.500, we need to use the Henderson-Hasselbalch equation:

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

In this case, the ethylamine (C₂H₅NH₂) acts as the weak base (A-) and hydrochloric acid (HCl) acts as the strong acid.

Concentration of ethylamine (C₂H₅NH₂) = 0.469 M

Concentration of hydrochloric acid (HCl) = 0.266 M

Volume of the ethylamine solution = 225 mL

We need to calculate the volume of 0.266 M HCl that should be added to prepare the buffer.

First, we need to calculate the ratio of [A-] to [HA] using the Henderson-Hasselbalch equation:

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

Since the pH is greater than the pKa, we can assume that [A-] > [HA]. Thus, we can ignore the [HA] term in the equation.

10.500 = pKa + log([A-])

Now, we need to find the pKa value for ethylamine. The pKa of ethylamine is approximately 10.6.

10.500 = 10.6 + log([A-])

Solving for [A-]:

log([A-]) = 10.500 - 10.6

[A-] = 10(10.500 - 10.6)

[A-] = 10(-0.1)

[A-] = 0.794 M

Now, we need to calculate the moles of ethylamine (A-) present in the 225 mL of the solution:

moles of A- = concentration of A- × volume of solution

moles of A- = 0.794 M × 0.225 L

moles of A- = 0.1788 mol

Since HCl is a strong acid, it completely dissociates into H+ and Cl- ions. Therefore, the moles of H+ ions required to react with the ethylamine (A-) will be equal to the moles of A-.

Now, we can calculate the volume of 0.266 M HCl required:

volume of HCl = moles of H+ / concentration of HCl

volume of HCl = 0.1788 mol / 0.266 M

volume of HCl = 0.672 L = 672 mL

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the lewis dot structure of the carbonate ion, co32-, has

Answers

The total number of valence electrons in the carbonate ion is 22 valence electrons.

The carbonate ion (CO32-) is made up of one carbon atom and three oxygen atoms. To determine the lewis dot structure of this ion, we need to first count the total number of valence electrons in all of the atoms. Carbon has 4 valence electrons, while each oxygen atom has 6 valence electrons. Thus, the total number of valence electrons in the carbonate ion is:
4 (from carbon) + 3 x 6 (from oxygen) = 22 valence electrons.
We then arrange the atoms in a way that makes the most sense, with carbon in the center and the three oxygen atoms surrounding it. Each oxygen atom is connected to the carbon atom via a double bond (2 shared electrons), and there is one additional single bond (1 shared electron) between carbon and one of the oxygen atoms.
Next, we place the remaining valence electrons on each atom in the form of lone pairs, until all the electrons are used up. In the case of the carbonate ion, each oxygen atom has 2 lone pairs of electrons and the carbon atom has 2 lone pairs of electrons.
The final lewis dot structure of the carbonate ion, CO32-, shows that the carbon atom is connected to three oxygen atoms, and each oxygen atom has a double bond with the carbon atom. Additionally, each atom has two lone pairs of electrons. The lewis dot structure helps us understand the bonding and lone pair arrangements in the molecule, which can be useful in predicting its chemical properties.

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22) Identify on the phase diagram where the mystery molecule would be at with a
slight increase above room temperature

Answers

If the mystery molecule is currently in the solid form, a slight increase in temperature will cause the solid to transition to phase B which is the liquid phase.

What is a phase diagram?

A phase diagram is a depiction that shows the various stages that a substance moves through. Part A represents Solids that undergo melting to form liquids.

If the temperature of solids rises above room temperature, they quickly transition to phase B which is the liquid state. Part C is the gaseous phase.

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The next three questions (4 - 6) refer to the following balanced equation: 3 Fe(s) + 4H2O(g) -> Fe3O4(s) + 4H2(g) 4. What is AH2ge? a. 1360.2 kJ b. +876.6 kJ c. -876.6 kJ d. +151.2 kJ e. -151.2 kJ

Answers

The correct option is e) AH2ge = -151.2 kJ, indicating that the enthalpy change for the production of 4 moles of H₂ gas is -151.2 kJ.

How to calculate the value of AH2ge?

The equation shows that 3 moles of iron (Fe) react with 4 moles of water (H₂O) to produce 1 mole of iron(III) oxide (Fe₃O₄) and 4 moles of hydrogen gas (H₂).

The value of AH₂ge can be calculated using the enthalpy change associated with the formation of hydrogen gas (H₂) from the balanced equation.

By using Hess's Law and the known enthalpy changes of formation for the reactants and products, the enthalpy change associated with the formation of H₂ can be determined.

In this case, the value of AH₂ge is calculated to be -151.2 kJ, which indicates that the formation of H₂ is an exothermic process.

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given the reactant br−br, add curved arrows to show heterolytic bond cleavage, then draw the expected products. be sure to add any charges and nonbonding electrons that result from the cleavage.

Answers

Here's an illustration of the heterolytic bond cleavage of Br-Br with curved arrows:

       Br       Br          Br-         :Br

        :        :              :              :

         \      /               \            /

          Br    Br            Br+       Br-

In the first step, one of the electrons in the Br-Br bond (shown as a pair of dots) moves towards one of the bromine atoms, forming a Br- ion and a Br+ ion. This process is driven by the electronegativity difference between the two atoms, with the more electronegative bromine atom pulling the electron density towards itself.

The products of this heterolytic bond cleavage are a bromide ion (Br-) and a bromine cation (Br+). The bromide ion has a negative charge because it gained an electron, while the bromine cation has a positive charge because it lost an electron.

       Br       Br          Br-                Br+

        :        :              :                    :

         \      /                 \              /

       Br    Br                  |           |

                                |                   |

                               Br                 Br

Note that this process is also called "dissociation" or "homolytic bond cleavage" in the context of radical reactions.

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Given the reactant Br-Br, when heterolytic bond cleavage occurs, the bond between the two bromine atoms breaks unevenly, with one atom receiving both electrons. To show this, draw curved arrows starting from the bond and pointing towards the bromine atom that will receive the electrons.

Upon cleavage, one bromine atom becomes negatively charged with a lone pair of electrons (Br⁻), while the other bromine atom becomes a neutral bromine radical with an unpaired electron (Br•). The expected products are Br⁻ and Br•. Be sure to include the charges and nonbonding electrons in your drawing.

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how many grams of water are needed to prepare 255g of 4.25 lcl3 solution

Answers

a) The percent composition of SrCl₂ in 95.0 g of water cannot be calculated without additional information.

b) To prepare 255 g of a 4.25% AlCl₃ solution, 10.84 g of AlCl₃ and 244.16 g of water are needed.

c) 13.1 mL of 0.842 M NaOH is required to react with 30.0 mL of 0.635 M H₃PO₄ solution in the given reaction: 3 NaOH + H₃PO₄ → Na₃PO₄ + 3 H₂O.

b) To find the mass of AlCl₃ and water needed to prepare a 255 g of 4.25% AlCl₃ solution, we can use the formula for mass percent:

mass percent = (mass of solute / mass of solution) x 100%

Substituting the given values, we get:

4.25% = (mass of AlCl₃ / 255 g) x 100%

Solving for the mass of AlCl₃, we get:

mass of AlCl₃ = (4.25 / 100) x 255 g = 10.84 g

To find the mass of water needed, we subtract the mass of AlCl₃ from the total mass of the solution:

mass of water = 255 g - 10.84 g = 244.16 g

Therefore, 10.84 g of AlCl₃ and 244.16 g of water are needed to prepare a 255 g of 4.25% AlCl₃ solution.

c) To determine the amount of NaOH needed to react with a given amount of H₃PO₄, we use the balanced chemical equation and stoichiometry. According to the balanced equation, 3 moles of NaOH react with 1 mole of H₃PO₄.

First, we calculate the number of moles of H₃PO₄ in 30.0 mL of 0.635 M solution:

moles of H₃PO₄ = Molarity x volume in liters = 0.635 M x (30.0 / 1000) L = 0.01905 moles

Since 3 moles of NaOH react with 1 mole of H₃PO₄, we need:

moles of NaOH = 3 x moles of H₃PO₄ = 3 x 0.01905 moles = 0.05715 moles

Now, we can use the molarity and the number of moles of NaOH to calculate the volume of NaOH needed:

Molarity = moles of solute / volume of solution in liters

Volume of NaOH = moles of solute / Molarity = 0.05715 moles / 0.842 M = 0.0679 L = 67.9 mL

Therefore, 13.1 mL of 0.842 M NaOH is required to react with 30.0 mL of 0.635 M H₃PO₄ solution.

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Complete Question:

Calculate the percent composition by SrCl2 in 95.0 g of water. hposition by mass of a solution prepared by dissolving 5.57 g of b). How many grams of water are needed to prepare 255 g of 4.25% AlCl3 solution? c) For the reaction; 3 NaOH + H3PO4 - Na3PO4 + 3H20 How many milliliters of 0.842 M sodium hydroxide are required to react with 30.0 mL of 0.635 M phosphoric acid solution?

what bbolume of a 17.5 m stock soultion of acetic acid is required to prepare a 500 ml solution of 1.00 m acetic acid

Answers

Total, 28.6 mL of the 17.5 M stock solution of acetic acid is required to prepare a 500 mL solution of 1.00 M acetic acid.

To determine the volume of the 17.5 M stock solution of acetic acid required to prepare a 500 mL solution of 1.00 M acetic acid, we can use the following formula:

V₁ × C₁ = V₂ × C₂

Where; V₁ = Volume of the stock solution (in liters)

C₁ = Concentration of the stock solution (in moles per liter)

V₂ = Volume of the final solution (in liters)

C₂ = Concentration of the final solution (in moles per liter)

Converting given values to required units;

V₁ = ?

C₁ = 17.5 M

V₂ = 500 mL = 0.5 L

C₂ = 1.00 M

Now, we can plug in the values into the formula and solve for V₁

V₁ × (17.5 M) = (0.5 L) × (1.00 M)

V₁ = (0.5 L × 1.00 M) / 17.5 M

= 0.0286 L

≈ 28.6 mL

Now, we can plug in the values into the formula and solve for V₁

V₁ × (17.5 M) = (0.5 L) × (1.00 M)

V₁ = (0.5 L × 1.00 M) / 17.5 M

= 0.0286 L

≈ 28.6 mL

Therefore, approximately 28.6 mL of the 17.5 M stock solution of acetic acid is required.

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consider the reaction of alcohol dehydrogenase. ethanol nad --> acetaldehyde nadh h which is the reducing agent? (note the direction of the arrow)

Answers

The reducing agent in the reaction of alcohol dehydrogenase is ethanol.

In the reaction catalyzed by alcohol dehydrogenase, ethanol is oxidized to acetaldehyde, and NAD⁺ is reduced to NADH and H⁺. The reducing agent in this reaction is ethanol, as it donates electrons to NAD⁺, facilitating its reduction to NADH.

The oxidizing agent is NAD⁺, as it accepts electrons from ethanol, causing the oxidation of ethanol to acetaldehyde. The direction of the arrow indicates the conversion of reactants (ethanol and NAD⁺) to products (acetaldehyde, NADH, and H⁺).

Alcohol dehydrogenase is an enzyme that plays a crucial role in alcohol metabolism, helping to detoxify the body by converting ethanol into a less harmful substance, acetaldehyde. In summary, the reducing agent in this reaction is ethanol, as it donates electrons and undergoes oxidation, while the oxidizing agent is NAD⁺, which accepts electrons and becomes reduced to NADH and H⁺.

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chemical weathering processes are particularly effective on limestone landscapes forming

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Chemical weathering processes are particularly effective on limestone landscapes, resulting in the formation of unique landforms and features.

Limestone, primarily composed of calcium carbonate, is highly susceptible to chemical reactions with various agents present in the environment. Through the process of carbonation, limestone can undergo chemical weathering when it reacts with carbonic acid, a weak acid formed from the dissolution of carbon dioxide in water. This reaction leads to the gradual dissolution of calcium carbonate, causing the limestone to be eroded and forming distinctive landforms such as caves, sinkholes, and underground drainage systems. Over time, the continuous dissolution of limestone by carbonic acid can create extensive underground cave networks. Another significant chemical weathering process affecting limestone landscapes is solution weathering. In this process, water containing dissolved acids, such as sulfuric acid from acid rain, infiltrates the limestone. The acidic water reacts with calcium carbonate, resulting in the breakdown and removal of the rock material. This chemical reaction can lead to the formation of karst topography, characterized by rugged terrain, sinkholes, and disappearing streams.

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phosphorous and nitrogen analysis of the bacteriophage show that 51.2y weight of the phage is dna. calculate the molecular weight of t7 dna. each bacteriophage contains one dna molecule.

Answers

Answer:

To calculate the molecular weight of T7 DNA, we need to know the weight of the DNA in grams. We are given that the weight of the DNA in the phage is 51.2 g.

The molecular weight of DNA can be calculated using the following formula:

Molecular weight of DNA = (number of base pairs x 660 g/mol/bp) + (weight of associated ions and water)

The number of base pairs in T7 DNA is approximately 40,000. Assuming that the DNA is in the B form, there are no associated ions, and the weight of water is negligible. Therefore, the molecular weight of T7 DNA can be calculated as follows:

Molecular weight of T7 DNA = (40,000 bp x 660 g/mol/bp) = 26,400,000 g/mol

Therefore, the molecular weight of T7 DNA is approximately 26,400,000 g/mol.

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draw the product obtained when trans-3-octene is treated first with br2 in ch2cl2, second with nanh2 in nh3, and then finally with h2/lindlar's catalyst.

Answers

When trans-3-octene is treated with Br2 in CH2Cl2, it undergoes anti addition of bromine atoms to form a 3,4-dibromooctane. Next, when treated with NaNH2 in NH3, the 3,4-dibromooctane undergoes dehydrohalogenation to form an alkyne, specifically 3-octyne. Finally, treating 3-octyne with Li in NH3 leads to the partial reduction of the alkyne to a cis-alkene, resulting in cis-3-octene as the final product.

When trans-3-octene is treated first with Br2 in CH2Cl2, the product obtained is trans-3-octene dibromide.

Next, when trans-3-octene dibromide is treated with NaNH2 in NH3, the two bromine atoms are replaced by two NH2 groups, resulting in trans-3-octene diimide.

Finally, when trans-3-octene diimide is treated with Li in NH3, the two NH2 groups are replaced by two Li atoms, resulting in trans-3-octene dilithium.

Overall, the reaction sequence results in the formation of trans-3-octene dilithium from trans-3-octene.

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Complete Question is:

Draw the product obtained when trans-3-octene is treated first with Br2 in CH2Cl2, second with NaNH2 in NH3, and then finally with Li in NH3

If 78. 4 mL of a 0. 85M Barium chloride solution is diluted to 350 ml, what is the new concentration?


0. 19M


0. 3M


0. 027


answer not here

Answers

The new concentration of the barium chloride solution, after diluting 78.4 mL of a 0.85 M solution to a final volume of 350 mL, is 0.19 M.

To calculate the new concentration, we can use the equation C₁V₁ = C₂V₂, where C₁ and V₁ are the initial concentration and volume, and C₂ and V₂ are the final concentration and volume. Given that C₁ = 0.85 M and V₁ = 78.4 mL, and V₂ = 350 mL, we can solve for C₂.

Rearranging the equation, we get C₂ = (C₁ × V₁) / V₂ = (0.85 M × 78.4 mL) / 350 mL ≈ 0.19 M. Therefore, the new concentration of the barium chloride solution, after diluting 78.4 mL of a 0.85 M solution to a final volume of 350 mL, is approximately 0.19 M.

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