in order for agbr to dissolve through complex ion formation, the reaction quotient for agbr must be less than its ksp value. if not, agbr dissolution will be exceeded by:

Answers

Answer 1

In order for AgBr to dissolve through complex ion formation, the reaction quotient (Q) for AgBr must be less than its Ksp value. If not, AgBr dissolution will be exceeded by precipitation, meaning that more solid AgBr will form, making the solution less soluble.


If the reaction quotient for AgBr is greater than its Ksp value, then AgBr will not dissolve through complex ion formation. Instead, the dissolution of AgBr will be exceeded by the precipitation of AgBr, resulting in a decrease in solubility.


On the other hand, if the reaction quotient for AgBr is less than its Ksp value, then complex ion formation can occur, leading to an increase in solubility. In this case, the dissolution of AgBr through complex ion formation will not be exceeded by precipitation, and more AgBr will remain dissolved in the solution.

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Related Questions

There are 17 key nutrients essential for bone health in the human body. The ideal intake of calcium is approximately 1.25 g per day. How many atoms of calcium are contained in 1.25 g of calcium?

Answers

Explanation:

6.02×10^23 atoms are present in 40g of Calcium

x atoms are present in 1.25g of Calcium

Therefore, x =

[tex](1.25 \times 6.02 \times {10}^{23}) \div 40[/tex]

x =

[tex]1.88 \times {10}^{22} [/tex]

If 27.0 mL of water containing 0.035 mol HCl is mixed with 28.0 mL of water containing 0.035 mol NaOH in a calorimeter such that the initial temperature of each solution was 24.0C and the final temperature of the mixture is 33.0 C, how much heat (in kJ) is released in the reaction? Assume that the densities of the solutions are 1.00 g/mL. (Volume is additive). O 3.2 kJ O 20.5 kJ O 2.1 kJ O 32 kJ

Answers

The heat released in the reaction is 2.1 kJ, and the correct answer is option C: 2.1 kJ.

What is the heat released?

To calculate the heat released in the reaction, we can use the equation:

q = m * C * ΔT

where:

q = heat released (in Joules)m = mass (in grams)C = specific heat capacity (in J/g°C)ΔT = change in temperature (in °C)

First, we need to calculate the total mass of the mixture. Since volume is additive, the total volume of the mixture is the sum of the volumes of water and it can be calculated as:

V_total = V_HCl + V_NaOH

where:

V_HCl = volume of HCl solution = 27.0 mLV_NaOH = volume of NaOH solution = 28.0 mLV_total = 27.0 mL + 28.0 mL = 55.0 mL

Next, we need to convert the volume from milliliters (mL) to grams (g), using the density of the solutions:

density = mass / volume

mass = density * volume

The density of water is 1.00 g/mL, so the mass of the water in the mixture is:

mass_water = density_water * V_total

mass_water = 1.00 g/mL * 55.0 mL

mass_water = 55.0 g

Now, we can calculate the heat released using the specific heat capacity of water, which is 4.18 J/g°C:

q = mass_water * C_water * ΔT

q = 55.0 g * 4.18 J/g°C * (33.0°C - 24.0°C)

q = 55.0 g * 4.18 J/g°C * 9.0°C

q = 2091.9 J

Finally, we can convert the heat from Joules to kilojoules by dividing by 1000:

q = 2091.9 J / 1000

q = 2.1 kJ

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when aqueous solutions of iron(ii) bromide and sodium carbonate are combined, solid iron(ii) carbonate and a solution of sodium bromide are formed. the net ionic equation for this reaction is:

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The net ionic equation for this reaction is:

Fe2+(aq) + CO32-(aq) → FeCO3(s)

The molecular equation for the reaction between iron(II) bromide and sodium carbonate is:

FeBr2(aq) + Na2CO3(aq) → FeCO3(s) + 2NaBr(aq)

To write the net ionic equation, we need to separate the soluble ionic compounds into their constituent ions:

[tex]Fe2+(aq) + 2Br^-(aq) + 2Na+(aq) + CO32-(aq)[/tex]

[tex]FeCO3(s) + 2Na+(aq) + 2Br^-(aq)[/tex]

Canceling out the spectator ions (Na+ and Br^-) that appear on both sides of the equation, we get the net ionic equation:

Fe2+(aq) + CO32-(aq) → FeCO3(s)

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identify the attacking species in each reaction and determine if it is acting as a nucleophile or a base.A. alkene B. alkyl halide C. water D. hydroxide Is the attacking species a nucleophile or base? Choose one: A. nucleophile B. base

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The attacking species in each reaction are: A. alkene, acting as a nucleophile. B. alkyl halide, acting as an electrophile. C. water, acting as a nucleophile. D. hydroxide, acting as a nucleophile.

In organic chemistry, the concepts of nucleophiles and bases are important when studying reactions between molecules. Nucleophiles are species that donate a pair of electrons to form a chemical bond, while bases are species that accept a proton. In the given reactions, the attacking species are different for each reaction. In the reaction involving an alkene, the alkene itself is the attacking species and it acts as a nucleophile. In the reaction involving an alkyl halide, the attacking species is the alkyl halide and it acts as an electrophile. In the reaction involving water and the one involving hydroxide, the attacking species is either water or hydroxide and they act as nucleophiles.

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A 2.08-L container of H2(g) at 760 mm Hg and 24∘C is connected to a 3.24-L container of He(g) at 710 mm Hg and 24∘C.
After mixing, what is the total gas pressure, in millimeters of mercury, with the temperature remaining at 24∘C?

Answers

To solve this problem, we can use the ideal gas law, which states that PV = nRT, where P is pressure, V is volume, n is the number of moles of gas, R is the gas constant, and T is temperature.

First, we need to find the number of moles of H2 and He in each container. We can use the equation n = PV/RT, where P, V, and T are the values given in the problem and R is the gas constant (0.0821 L⋅atm/mol⋅K).

For the H2 container, n = (760 mm Hg)(2.08 L)/(0.0821 L⋅atm/mol⋅K)(297 K) = 0.097 mol H2.

For the He container, n = (710 mm Hg)(3.24 L)/(0.0821 L⋅atm/mol⋅K)(297 K) = 0.143 mol He.

After the containers are connected and the gases mix, the total volume is 2.08 L + 3.24 L = 5.32 L. The total number of moles of gas is 0.097 mol H2 + 0.143 mol He = 0.240 mol.

To find the total pressure, we can use the equation P_total = (n_total RT)/V_total, where n_total is the total number of moles of gas.

P_total = (0.240 mol)(0.0821 L⋅atm/mol⋅K)(297 K)/(5.32 L) = 1.36 atm

We need to convert this pressure to mm Hg, which we can do by multiplying by 760 mm Hg/atm.

P_total = 1.36 atm × 760 mm Hg/atm = 1034 mm Hg

Therefore, the total gas pressure after mixing is 1034 mm Hg, with the temperature remaining at 24∘C.

To calculate the total gas pressure after mixing H2(g) and He(g), we can use the formula for the partial pressures of each gas and the ideal gas law (PV = nRT). Since the temperature remains constant at 24°C, we can follow these steps:

1. Convert the temperature to Kelvin: T = 24°C + 273.15 = 297.15 K

2. Calculate the moles of each gas using the ideal gas law:
n(H2) = P(H2) × V(H2) / (R × T) = (760 mm Hg × 2.08 L) / (62.364 L mm Hg/mol K × 297.15 K)
n(He) = P(He) × V(He) / (R × T) = (710 mm Hg × 3.24 L) / (62.364 L mm Hg/mol K × 297.15 K)

3. Calculate the total volume of the container: V(total) = 2.08 L + 3.24 L = 5.32 L

4. Calculate the total moles of gas: n(total) = n(H2) + n(He)

5. Calculate the total gas pressure using the ideal gas law:
P(total) = n(total) × R × T / V(total)

Plug in the calculated values for n(total), R, T, and V(total) to find the total gas pressure in millimeters of mercury.

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whcih of the following amino acid contain nonpolar r group

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Glycine, Alanine, and Leucine are all nonpolar amino acids. Nonpolar amino acids are characterized by having R-groups that are hydrophobic, meaning they do not interact well with water molecules. The correct answer is B.

These R-groups are typically composed of carbon and hydrogen atoms only and lack any significant charge, making them less likely to interact with polar or charged molecules in their environment.

Phenylalanine, Tyrosine, and Tryptophan are aromatic amino acids that have nonpolar R-groups but also contain functional groups that can form hydrogen bonds or interact with other polar molecules. Thus, while they are nonpolar, they are not as hydrophobic as Glycine, Alanine, and Leucine.

Lysine, Arginine, and Histidine are all polar amino acids with charged R-groups that are capable of forming ionic bonds or participating in hydrogen bonding. Serine, Threonine, and Cysteine all have polar R-groups that contain functional groups such as hydroxyl (-OH) or thiol (-SH) groups that can participate in hydrogen bonding or form disulfide bonds. Therefore, none of these amino acids have nonpolar R-groups.

Overall, understanding the properties of amino acids is important in fields such as biochemistry, as it helps to predict how proteins will interact with each other and their environment. The correct answer is B.

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The correct question is "which of the following amino acid contain nonpolar r group, options are A ) Phenyl alanine, Tryosine and Tryptophan B) Glycine, Alanine and Leucine C) Lysine, Arginine and Histidine D) Serine, Threonine and Cysteine"

select the mechanism(s) where the concentration of the nucleophile or base has no effect on the reaction rate. sn1sn1 sn2sn2 e2 e1

Answers

The SN1 and E1 reactions are mechanisms where the concentration of the nucleophile or base has no effect on the reaction rate, as they are first-order processes that solely depend on the concentration of the substrate.

The SN1 (Substitution Nucleophilic Unimolecular) and E1 (Elimination Unimolecular) reactions are mechanisms where the concentration of the nucleophile or base has no effect on the reaction rate. These reactions are first-order processes, meaning that their rate depends solely on the concentration of the substrate and not on the concentration of the nucleophile or base. In SN1, the reaction involves two steps, where the leaving group departs first, creating a carbocation intermediate, which then reacts with the nucleophile in the second step. The rate-determining step is the departure of the leaving group, which is independent of the concentration of the nucleophile or base. Similarly, in E1, the reaction also involves the formation of a carbocation intermediate, followed by the loss of a leaving group and the elimination of a proton. The rate-determining step is the formation of the carbocation, which is again independent of the concentration of the nucleophile or base.

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The total pressure of gases A, B, and C in a closed container is 4.1 . If the mixture is 36% A, 42% B, and 22% C by volume, what is the partial pressure of gas C?
a. 0.22 atm
b. 1.5 atm
c. 1.7 atm
d. 0.90 atm

Answers

The answer of partial pressure of gas is option (d) 0.90 atm.

How  partial pressure of gas C is 0.90 atm?

To solve this problem, we need to use the concept of Dalton's law of  partial pressures of gases. The partial pressure of a gas is the pressure it would exert if it occupied the entire volume of the container by itself.

Given that the mixture is 36% A, 42% B, and 22% C by volume, we can find the partial pressure of each gas by multiplying the total pressure by its volume percentage. Therefore, the partial pressure of gas A would be 4.1 x 0.36 = 1.476 atm, the partial pressure of gas B would be 4.1 x 0.42 = 1.722 atm, and the partial pressure of gas C would be 4.1 x 0.22 = 0.902 atm.

Therefore, the answer is option (d) 0.90 atm.

It's important to note that the sum of the partial pressures of all the gases in the mixture must equal the total pressure of the container according to Dalton's law of partial pressures.

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arrange these ions according to ionic radius ba2 cs i- te2- sb3-

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The order of the ions according to their ionic radius is: Te²⁻ < Sb³⁻ < I⁻ < Cs < Ba²⁺

Ionic radius is determined by the size of the ion and the charge. Generally, when moving down a group in the periodic table, the ionic radius increases. In this case, we have: barium (Ba²⁺), cesium (Cs), iodide (I⁻), telluride (Te²⁻), and antimonide (Sb³⁻).

Since negative ions (anions) are larger than positive ions (cations) due to the additional electron(s) in their outer shell, Te²⁻, Sb³⁻, and I⁻ are larger than Ba²⁺ and Cs.

Among the anions, Te²⁻ has the smallest ionic radius because it's higher in the periodic table, followed by Sb³⁻, and then I⁻. For the cations, Cs has a larger ionic radius than Ba²⁺ because it is lower in the periodic table.

So, the order is: Te²⁻ < Sb³⁻ < I⁻ < Cs < Ba²⁺

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A) Calculate Delta G°ΔG° at 298 K for the following reaction:MgCO3 (s) ⇋ Mg2+ (aq) + CO32- (aq). Enter a number to 1 decimal place.B) Use the value of Delta G°ΔG° determined in the previous problem to find K at 298K. Multiply your answer by 1e9 and enter that into the field.MgCO3 (s) ⇋ Mg2+ (aq) + CO32- (aq)

Answers

A. The value of Delta G° for the reaction is 416.6 kJ/mol or 416600 J/mol.

B. The value of K at 298 K for the reaction is 1.3 × 10¹.

What is standard Gibbs free energy?

Standard Gibbs free energy is the Gibbs free energy change that occurs in a reaction under standard conditions, which are defined as a temperature of 298 K,pressure of 1 bar, and concentration of 1 M.

A.) To calculate Delta G° at 298 K for the reaction:

MgCO₃ (s) ⇋ Mg₂+ (aq) + CO₃₂- (aq)

ΔG° = -RT ln K

where ΔG° is the standard Gibbs free energy change, R is the gas constant (8.314 J/K·mol), T is the temperature in Kelvin (298 K), and K is the equilibrium constant.

The standard Gibbs free energy change for the dissociation of MgCO₃ is given by:

ΔG° = ΔG°f(Mg₂+) + ΔG°f(CO₃₂-) - ΔG°f(MgCO₃)

where ΔG°f is the standard Gibbs free energy of formation of the species.

ΔG°f(Mg₂+) = 0

ΔG°f(CO₃₂-) = -677.1 kJ/mol

ΔG°f(MgCO₃) = -1093.7 kJ/mol

Substituting these values into the equation gives:

ΔG° = (0) + (-677.1) - (-1093.7) = 416.6 kJ/mol

Converting to Joules gives:

ΔG° = 416600 J/mol

B.) To find K at 298 K using the value of Delta G° determined above, we rearrange the Gibbs free energy equation:

K = [tex]e^{(\frac{-\Delta G}{RT} )}[/tex]

Substituting the values:

ΔG° = 416600 J/mol

R = 8.314 J/K·mol

T = 298 K

gives:

K = [tex]e^{(-416600 J/mol / (8.314 J/K*mol * 298 K))}[/tex]

K = 1.3 × 10⁻⁸

Multiplying by 1e9 gives:

K = 1.3 × 10¹

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list the symmetry elements of the following molecules and name the point groups to which they belong: (a) naphthalene, (b) anthracene, (c) three dichlorobenzene isomers.

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(a) The symmetry elements of naphthalene are a C2 rotation axis perpendicular to the plane of the molecule, a C2 rotation axis in the plane of the molecule passing through the center of the rings, and a horizontal mirror plane passing through the center of the molecule. Therefore, naphthalene belongs to the point group D2h.

(b) The symmetry elements of anthracene are a C2 rotation axis perpendicular to the plane of the molecule, a C2 rotation axis in the plane of the molecule passing through the center of the rings, and a horizontal mirror plane passing through the center of the molecule. Additionally, there are two vertical mirror planes that bisect the molecule along the long axis. Therefore, anthracene belongs to the point group C2h.

(c) The three dichlorobenzene isomers are 1,2-dichlorobenzene, 1,3-dichlorobenzene, and 1,4-dichlorobenzene. Each of these molecules has a C2 rotation axis perpendicular to the plane of the molecule and a horizontal mirror plane passing through the plane of the molecule. Therefore, all three molecules belong to the point group C2v.

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the vapor pressure of a substance at 20.0 °c is 58.0 kpa and its enthalpy of vaporization is 32.7 kj mol−1. estimate the temperature at which its vapor pressure is 66.0 kpa.

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The temperature at which its vapor pressure is 66.0 kPa is approximately 21.35 °C.

To estimate the temperature at which the vapor pressure of the substance is 66.0 kPa, we can use the Clausius-Clapeyron equation:

ln(P₂/P₁) = -ΔHvap/R * (1/T₂ - 1/T₁)

Where P₁ and P₂ are the initial and final vapor pressures, ΔHvap is the enthalpy of vaporization, R is the ideal gas constant (8.314 J / mol·K), and T₁ and T₂ are the initial and final temperatures in Kelvin.

P₁ = 58.0 kPa
P₂ = 66.0 kPa
ΔHvap = 32.7 kJ / mol = 32,700 J / mol
T₁ = 20.0 °C = 293.15 K

We need to find T₂. Rearrange the equation to solve for T₂:

1/T₂ = 1/T₁ - (R/ΔHvap) * ln(P₂/P₁)

1/T₂ = 1/293.15 - (8.314/32,700) * ln(66.0/58.0)

1/T₂ ≈ 0.003398
T₂ ≈ 294.5 K

Now, convert T₂ back to Celsius:

T₂ = 294.5 - 273.15 = 21.35 °C

So, the estimated temperature at which the vapor pressure of the substance is 66.0 kPa is approximately 21.35 °C.

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Determine the concentration of the cation and anion in each aqueous solution.
A. 0.30 M SrSO4
B. 0.25 M Cr2(SO4)3
C. 0.22 M SrI2

Answers

In the case of 0.30 M SrSO₄, the cation is Strontium (Sr²⁺) and the anion is Sulfate (SO₄²⁻). Therefore, the concentration of the cation is 0.30 M and the concentration of the anion is also 0.30 M.

The same is true for 0.25 M Cr₂(SO₄)₃, where the cation is Chromium (Cr³⁺) and the anion is Sulfate (SO₄⁻²). The concentration of the cation is 0.25 M and the concentration of the anion is also 0.25 M. However, for 0.22 M SrI₂, the cation is Strontium (Sr²⁺) and the anion is Iodide (I-).

In this case, the concentration of the cation is 0.22 M and the concentration of the anion is 2 x 0.22 M, or 0.44 M. Thus, by understanding the molarity of aqueous solutions and the cations and anions within them, the concentrations of both cations and anions can be determined.

Aqueous solutions are composed of cations and anions suspended in water molecules. The concentration of the cations and anions within the solution can be determined by the molarity, or moles per liter, of the solution.

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if the b of a weak base is 1.0×10−6, what is the ph of a 0.15 m solution of this base?

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The basicity constant of a weak base, denoted as Kb, is related to its equilibrium constant for the reaction with water, Kw, and the equilibrium constant for the dissociation of water, Kw = Ka x Kb, where Ka is the ionization constant of water.

At 25°C, Kw = 1.0 x 10^-14, and Ka = 1.0 x 10^-14.

For a weak base, the equilibrium constant for the reaction with water can be written as:

Kb = [BH+][OH-]/[B]

where BH+ is the conjugate acid of the base B, and OH- is the hydroxide ion concentration. In this case, we can assume that [OH-] = [B], because the base is weak and does not completely dissociate. Then:

Kb = BH+ = [BH+][B]/[B] = [BH+]

Since we are given Kb = 1.0 x 10^-6, we can find the concentration of the conjugate acid BH+ in the solution:

[BH+] = Kb = 1.0 x 10^-6 M

The base B will have the same concentration, because it is weak and does not ionize much. Then:

[B] = 0.15 M

To find the pH of the solution, we need to find the concentration of hydroxide ions OH- using the equilibrium expression for water:

Kw = [H+][OH-] = 1.0 x 10^-14

At 25°C, the concentration of H+ in pure water is 1.0 x 10^-7 M, so we can assume that [H+] = 1.0 x 10^-7 M in this solution, because the base is weak and does not affect the pH much.

Then:

[OH-] = Kw/[H+] = (1.0 x 10^-14)/(1.0 x 10^-7) = 1.0 x 10^-7 M

Finally, we can use the equation for the pH of a basic solution:

pH = 14 - pOH = 14 - (-log[OH-]) = 14 - (-log(1.0 x 10^-7)) = 14 + 7 = 21

Therefore, the pH of a 0.15 M solution of this weak base with a basicity constant of 1.0 x 10^-6 is 21.

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The basicity constant of a weak base, denoted as Kb, is related to its equilibrium constant for the reaction with water, Kw, and the equilibrium constant for the dissociation of water, Kw = Ka x Kb, where Ka is the ionization constant of water.

At 25°C, Kw = 1.0 x 10^-14, and Ka = 1.0 x 10^-14.

For a weak base, the equilibrium constant for the reaction with water can be written as:

Kb = [BH+][OH-]/[B]

where BH+ is the conjugate acid of the base B, and OH- is the hydroxide ion concentration. In this case, we can assume that [OH-] = [B], because the base is weak and does not completely dissociate. Then:

Kb = BH+ = [BH+][B]/[B] = [BH+]

Since we are given Kb = 1.0 x 10^-6, we can find the concentration of the conjugate acid BH+ in the solution:

[BH+] = Kb = 1.0 x 10^-6 M

The base B will have the same concentration, because it is weak and does not ionize much. Then:

[B] = 0.15 M

To find the pH of the solution, we need to find the concentration of hydroxide ions OH- using the equilibrium expression for water:

Kw = [H+][OH-] = 1.0 x 10^-14

At 25°C, the concentration of H+ in pure water is 1.0 x 10^-7 M, so we can assume that [H+] = 1.0 x 10^-7 M in this solution, because the base is weak and does not affect the pH much.

Then:

[OH-] = Kw/[H+] = (1.0 x 10^-14)/(1.0 x 10^-7) = 1.0 x 10^-7 M

Finally, we can use the equation for the pH of a basic solution:

pH = 14 - pOH = 14 - (-log[OH-]) = 14 - (-log(1.0 x 10^-7)) = 14 + 7 = 21

Therefore, the pH of a 0.15 M solution of this weak base with a basicity constant of 1.0 x 10^-6 is 21.

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the bod5 of a wastewater sample is determined to be 225 mg/l. the bod rate constant of 0.15 day–1 at 20°c. the ultimate bod is most nearly: (a) 225 mg/l (b) 426 mg/l (c) 476 mg/l (d) 525 mg/l

Answers

We find that the ultimate BOD is approximately 476 mg/L. Therefore, the correct answer is (c) 476 mg/L.

To determine the ultimate BOD (Biochemical Oxygen Demand) of the wastewater sample, we can use the following formula:

Ultimate BOD = BOD5 / (1 - e^(-k * 5))

where BOD5 is the initial BOD value (225 mg/L), k is the BOD rate constant (0.15 day^(-1)), and e is the base of the natural logarithm (approximately 2.71828).

Ultimate BOD = 225 / (1 - e^(-0.15 * 5))

After solving this equation, we find that the ultimate BOD is approximately 476 mg/L. Therefore, the correct answer is (c) 476 mg/L.

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subaru's green plant is an example of the application ofpart 2
a. spc.
b. iso 9000.
c. iso 24700.
d. iso 14000.
e. tqm.

Answers

Subaru's green plant is an example of the application of ISO 14000. This standard focuses on environmental management systems and helps organizations minimize their negative impact on the environment while complying with applicable laws and regulations.

The answer is d. ISO 14000. Subaru's green plant is an example of the application of ISO 14000, which is a set of international standards related to environmental management. These standards provide guidelines for organizations to minimize their impact on the environment and improve their sustainability efforts.

Subaru's green plant has implemented various environmental initiatives, such as reducing greenhouse gas emissions, recycling waste materials, and using eco-friendly technologies, in order to meet the requirements of ISO 14000.

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at 25.0∘c , the molar solubility of lead sulfate in water is 1.40×10^−4 m . calculate the solubility in grams per liter.

Answers

Solubility of lead sulfate in water at 25.0°C is approximately 0.0425 grams per liter.

To calculate the solubility of lead sulfate in grams per liter at 25.0°C with a molar solubility of 1.40×10^−4 M, follow these steps:

1. Determine the molar mass of lead sulfate (PbSO4):
Lead (Pb): 207.2 g/mol
Sulfur (S): 32.07 g/mol
Oxygen (O): 16.00 g/mol (there are 4 oxygen atoms in PbSO4, so multiply 16.00 by 4)

Molar mass of PbSO4 = 207.2 + 32.07 + (4 * 16.00) = 303.27 g/mol

2. Multiply the molar solubility by the molar mass of lead sulfate to find the solubility in grams per liter:

Solubility (g/L) = Molar solubility (M) × Molar mass (g/mol)

Solubility (g/L) = 1.40×10^−4 M × 303.27 g/mol ≈ 0.0425 g/L

Therefore, the solubility of lead sulfate in water at 25.0°C is approximately 0.0425 grams per liter.

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6.6 Indicate whether the asymmetric atom in each of the following compounds has the R or S configuration (a) O, C Он (b) он (c) Me PrN CI Et HC NH CH, н CH: но i-Pr alanine OH malic acid

Answers

The asymmetric atoms in (a) O, C Он (b) ОН (c) Me PrN CI Et HC NH CH, Н CH: Но i-Pr alanine OH malic acid have the S configuration.

The asymmetric atoms in the compounds mentioned have the S configuration because they all have a single non-bonded electron pair in their outermost shell.

This is a characteristic of the S configuration. The asymmetric atoms in (a) O, C Он (b) ОН (c) Me PrN CI Et HC NH CH, Н CH: Но i-Pr alanine OH malic acid can be determined by looking at their molecular structure and counting the number of non-bonded electron pairs around the atom.

If there is one non-bonded electron pair, then the configuration is S.If there are two non-bonded electron pairs, then the configuration is R.

Therefore, the asymmetric atoms in the compounds mentioned have the S configuration.

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if the ph at one half the first and second equivalence points of a dibasic acid is 4.60 and 7.34, respectively, what are the values for pka1 and pka2?

Answers

To determine the pKa values for a dibasic acid given the pH at one-half of the first and second equivalence points, you can use the following equations:
1) pKa1 = pH at one-half of the first equivalence point
2) pKa2 = pH at one-half of the second equivalence point
Given the information provided:
pKa1 = 4.60
pKa2 = 7.34

To find the values of pka1 and pka2, we first need to understand the concept of equivalence points and pH.
Equivalence points are the points during a titration where the amount of acid and base added are equal, meaning that all the acid has been neutralized. pH is a measure of the acidity or basicity of a solution, and it is related to the concentration of hydrogen ions (H+) in the solution.
For a dibasic acid, there are two equivalence points. The first equivalence point corresponds to the neutralization of one hydrogen ion (H+) from the acid, and the second equivalence point corresponds to the neutralization of the second hydrogen ion.

Given that the pH at one-half the first and second equivalence points of the dibasic acid is 4.60 and 7.34, respectively, we can use the Henderson-Hasselbalch equation to calculate the pKa values.
pKa1 = pH at half the first equivalence point + log([A-]/[HA])
pKa1 = 4.60 + log([A-]/[HA])
pKa2 = pH at half the second equivalence point + log([A-]/[HA])
pKa2 = 7.34 + log([A-]/[HA])
where [A-] is the concentration of the conjugate base of the acid and [HA] is the concentration of the acid.
However, we are not given the concentrations of the acid and its conjugate base, so we cannot calculate the pKa values. Therefore, the answer is that the values of pKa1 and pKa2 cannot be determined from the given information.

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calculate [oh-] at 25°c for a solution having [h ] = 6.14 x 10-2 m

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The hydroxide ion concentration ([OH-]) in the solution is 1.63 x 10[tex]^-13[/tex] M at 25°C.

To calculate the hydroxide ion concentration in a solution, we need to use the equation for the ionization constant of water (Kw):

Kw = [H+][OH-]

At 25°C, the value of Kw is 1.0 x 10[tex]^-14.[/tex]

Since the solution has a hydrogen ion concentration ([H+]) of 6.14 x 10[tex]^-2[/tex]M, we can rearrange the equation for Kw to solve for [OH-]:

[OH-] = Kw / [H+] = 1.0 x 10[tex]-14[/tex] / (6.14 x [tex]10^-2)[/tex]

[OH-] = 1.63 x 10[tex]^-13[/tex]M

Therefore, the hydroxide ion concentration ([OH-]) in the solution is 1.63 x 10[tex]^-13[/tex] M at 25°C.

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The following molecule (or ion) acts as a base: CH3CHO Draw the structural formula of the conjugate acid formed in a reaction with HCl.

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When CH₃CHO acts as a base and reacts with HCl, it will accept a proton (H⁺) and form its conjugate acid, which is CH₃CH(OH)²⁺. The structural formula of the conjugate acid formed in this reaction is CH₃CH(OH)²⁺.

To draw the structural formula of the conjugate acid formed in a reaction with HCl, follow these steps:

1. Identify the base: CH₃CHO, also known as acetaldehyde
2. The base (CH₃CHO) reacts with HCl, a strong acid
3. The base will accept a proton (H⁺) from the HCl, forming a conjugate acid
4. The oxygen atom in the aldehyde group (C=O) is the most likely site for protonation, due to its electronegativity

The structural formula of the conjugate acid of CH₃CHO after reacting with HCl is CH₃CH(OH)²⁺.

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Predict which element has the larger first ionization energy based on periodic trends.
a. Cs b. cannot be determined based on periodic trends
c. Sr

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The correct answer is option c) Sr. We can predict that Sr will have a larger first ionization energy than Cs based on periodic trends.

The first ionization energy is the energy required to remove the outermost electron from an atom in the gas phase.

As we move from left to right across a period of the periodic table, the first ionization energy generally increases due to an increase in effective nuclear charge. The effective nuclear charge is the net positive charge experienced by an electron in an atom, taking into account the shielding effect of inner electrons.

As we move down a group of the periodic table, the first ionization energy generally decreases due to an increase in atomic radius and an increase in shielding effect.

Based on these periodic trends, we can predict that Sr (strontium) has a larger first ionization energy than Cs (cesium). This is because Sr is located to the right of Cs in the same period of the periodic table, and therefore has a higher effective nuclear charge. Additionally, Sr has a smaller atomic radius and less shielding effect compared to Cs, which further increases its first ionization energy.

Therefore, the correct answer is (c) Sr.

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complete the following sentence. water will have the higher surface tension since it exhibits ion-dipole interactions exhibits hydrogen bonding

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Water has a higher surface tension compared to other liquids because it exhibits both ion-dipole interactions and hydrogen bonding.

Ion-dipole interactions occur when the positive or negative ions of a substance interact with the partial charges of water molecules, creating a strong attractive force. Additionally, hydrogen bonding is a specific type of dipole-dipole interaction that occurs when a hydrogen atom, which is bonded to a highly electronegative atom such as oxygen, is attracted to the electronegative atom of another molecule. These interactions contribute to the cohesive forces among water molecules, leading to a higher surface tension.

As a result, water molecules at the surface are drawn more tightly together, creating a relatively strong barrier, this phenomenon can be observed in various aspects of nature and everyday life, such as water droplets forming on surfaces, the ability of insects to walk on water, and the capillary action of water in plants. In conclusion, the unique ion-dipole interactions and hydrogen bonding in water lead to its higher surface tension compared to other liquids. Water has a higher surface tension compared to other liquids because it exhibits both ion-dipole interactions and hydrogen bonding.

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On the addition of 6M HCl, the solution remained colorless and no bubbles were observed.When 0.1M BaCl2 was added to the acidified unknown, awhite precipitate was formed.When 0.1 M AgNO3 was added to the unknown, a white precipitate was formed.When 1 M Na2C2O4 was added, a white precipitate formed.On the basis of the test results,which ions are likely present in the unknown?

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Based on the test results, the ions likely present in the unknown solution are: sulfate [tex](SO_4^{2-)[/tex], chloride [tex](Cl^-)[/tex], and calcium ([tex]Ca^{2+[/tex]).

Here's a step-by-step explanation:
1. When 6M HCl was added, the solution remained colorless and no bubbles were observed. This indicates that there were no gas-forming reactions, and the unknown did not contain carbonates or sulfites.

2. When 0.1M [tex]BaCl_2[/tex] was added to the acidified unknown, a white precipitate was formed. This suggests the presence of sulfate ions [tex](SO_4^{2-)[/tex] in the unknown solution, as barium sulfate ([tex]BaSO_4[/tex]) is a white precipitate.

3. When 0.1M [tex]AgNO_3[/tex] was added to the unknown, a white precipitate was formed. This indicates the presence of chloride ions (Cl-) in the unknown solution, as silver chloride (AgCl) is a white precipitate.

4. When 1M [tex]Na_2C_2O_4[/tex] was added, a white precipitate formed. This suggests the presence of calcium ions ([tex]Ca^{2+[/tex]) in the unknown solution, as calcium oxalate ([tex]CaC_2O_4[/tex]) is a white precipitate.

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Calculate the quantity of electrical charge needed to plate 1.386 mol Cr from an acidic solution of K2Cr207 according to half-equation H2Cr2O7(aq) + 12H+(aq) + 12e2Cr(s) + 7 H2O(1) give the answer in four sig figs

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The quantity of electrical charge required can be calculated using Faraday's constant (F = 96,485 C/mol e-). Rounded to four significant figures, the quantity of electrical charge needed is 8.012 x 10^5 C.

To calculate the quantity of electrical charge needed to plate 1.386 mol Cr from the acidic solution, we can use Faraday's law of electrolysis, which states that the amount of substance produced at an electrode during electrolysis is proportional to the amount of charge passed through the cell.

First, we need to determine the number of electrons (mol) required to reduce 1.386 mol Cr. According to the half-equation:

H2Cr2O7(aq) + 12H+(aq) + 12e- → 2Cr(s) + 7 H2O(l)

6 moles of electrons (e-) are needed to reduce 1 mole of Cr. So for 1.386 mol Cr:

(1.386 mol Cr) * (6 mol e- / 1 mol Cr) = 8.316 mol e-

Next, we'll use Faraday's constant, which is the charge per mole of electrons:

1 F = 96,485 C/mol e-

Now we can calculate the total charge:

(8.316 mol e-) * (96,485 C/mol e-) ≈ 802,600 C

To give the answer in four significant figures, we have:

Total charge = 802.6 kC (kiloCoulombs)

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At the threshold of activation (aka critical firing level), which ion has stronger net pressure (combined effects of the forces of EP and Diffusion) acting upon it?a. Na+b. K-c. Na-d. Cl+e. K+

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At the threshold of activation, the ion with the stronger net pressure acting upon it is a. Na+. This is because at the threshold of activation, there is a higher concentration of Na+ ions outside the cell compared to inside the cell, creating a net inward pressure on the Na+ ion.

This is because, at the threshold of activation, the membrane potential reaches a level where voltage-gated sodium channels open, allowing Na+ ions to flow into the cell due to their electrochemical gradient. The combined forces of EP and diffusion create a strong net inward pressure for sodium ions, which leads to the depolarization phase of the action potential.

Additionally, the electrostatic force (EP) acting on Na+ is also inward due to the positively charged extracellular environment. The combined effects of these two forces create a stronger net pressure on Na+ compared to the other ions listed.

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What is the molar equilibrium concentration of uncomplexed Ag+(aq) in a solution composed of 1.1 mol Ag(CN)−2 dissolved in 1.00 L of 0.47 M NaCN? Kf for Ag(CN)−2 is 4.5×10^10.

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The molar equilibrium concentration of uncomplexed Ag⁺(aq) in the solution is 1.29 x 10⁻¹⁶ M.

To find the molar equilibrium concentration of uncomplexed Ag⁺(aq), we'll use the Kf expression and an ICE table. Kf = [Ag(CN)²⁻] / ([Ag⁺][CN⁻]²).

First, find the initial concentration of CN⁻: [CN⁻] = 1.1 mol / 1.00 L + (0.47 mol/L * 1.00 L) = 1.57 M. Set up the ICE table with initial concentrations: [Ag(CN)²⁻] = 1.1 M, [Ag⁺] = 0, [CN⁻] = 1.57 M.

Since Kf is very large, assume x mol of Ag⁺ dissociates: [Ag(CN)²⁻] = 1.1 - x, [Ag⁺] = x, [CN⁻] = 1.57 - 2x. Substitute these into the Kf expression and solve for x, which represents the molar equilibrium concentration of uncomplexed Ag⁺(aq).

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3. Arrange a set of wavelengths for light in order of increasing frequency: 2 (250 nm), 2 (300 nm), and a (350 nm). Explain your arrangement of the light in frequency. 4. Give the electron configuration for each of the following atoms & ions. For a-d give the full configuration (do not abbreviate) and for the others use noble gas shorthand format.

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3. The order of increasing frequency for the given set of wavelengths is 2 (350 nm), 2 (300 nm), and 2 (250 nm). This is because frequency and wavelength are inversely proportional, meaning that as the wavelength increases, the frequency decreases. Therefore, the longest wavelength (350 nm) will have the lowest frequency, while the shortest wavelength (250 nm) will have the highest frequency.

4. The electron configuration for each of the following atoms & ions are a. Carbon atom: 1s² 2s² 2p² b. Sulfur ion (S²⁻): 1s² 2s² 2p⁶ c. Calcium ion (Ca²⁺): 1s² 2s² 2p⁶ 3s² 3p⁶ d. Argon atom: 1s² 2s² 2p⁶ 3s² 3p⁶ e. Potassium ion (K⁺): [Ar] 4s² 3d¹⁰ 4p⁶ f. Chromium ion (Cr³⁺): [Ar] 3d³

To arrange the given set of wavelengths (250 nm, 300 nm, and 350 nm) in order of increasing frequency, we need to understand the relationship between wavelength and frequency. The formula connecting these two properties is:

Speed of light (c) = wavelength (λ) × frequency (ν)

Since the speed of light is constant, when the wavelength increases, the frequency decreases, and vice versa. Therefore, to arrange the wavelengths in order of increasing frequency, we should arrange them in decreasing order of their wavelengths:

350 nm → 300 nm → 250 nm

This arrangement corresponds to increasing frequency because as the wavelengths get smaller, the frequencies get higher.

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At 40.°C, the concentration of hydronium (H3O+) ions in an aqueous solution is 2.9 ✕ 10−5 M. (Note: At 40.°C, the ion-product constant for water is 2.87 ✕ 10−14.) (a) What is the concentration of hydroxide (OH −) ions in this solution?

Answers

To find the concentration of hydroxide (OH-) ions in the solution when the concentration of hydronium (H3O+) ions is 2.9 ✕ 10−5 M at 40°C, you'll need to use the ion product constant of water (Kw).

Step 1: Recall the ion product constant of water (Kw) expression:
Kw = [H3O+] × [OH-]

Step 2: At 40°C, the value of Kw is approximately 2.92 × 10^-14.

Step 3: Use the given concentration of hydronium ions ([H3O+]) and plug it into the Kw expression:
2.92 × 10^-14 = (2.9 × 10^-5) × [OH-]

Step 4: Solve for the concentration of hydroxide ions ([OH-]):
[OH-] = (2.92 × 10^-14) / (2.9 × 10^-5)

Step 5: Calculate the result:
[OH-] ≈ 1.01 × 10^-9 M

The concentration of hydroxide (OH-) ions in the solution is approximately 1.01 × 10^-9 M.

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Consider the following unbalanced chemical equation for the reaction which is used to determine blood alcohol levels:H1+ + Cr2O72− + C2H6O → Cr3+ + CO2 + H2OBalance the equation using the smallest whole number coefficients. What is the coefficient in front of carbon dioxide in the balanced chemical equation?2134

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The coefficient in front of carbon dioxide in the balanced chemical equation is 3.

First, let's identify the atoms that are unbalanced in the equation: On the left side, we have:1 hydrogen atom (H)1 chromium atom (Cr)2 oxygen atoms (O)2 carbon atoms (C)On the right side, we have:1 chromium atom (Cr)1 carbon atom (C)3 oxygen atoms (O)2 hydrogen atoms (H)To balance the equation, we need to make sure that the number of each type of atom is the same on both sides. We can start by balancing the chromium atoms:H1+ + Cr2O72− + C2H6O → 2 Cr3+ + CO2 + H2O.

Now we have:2 chromium atoms (Cr) on both sides. Next, let's balance the oxygen atoms by adding coefficients to the reactants and products:H1+ + Cr2O72− + 3 C2H6O → 2 Cr3+ + 3 CO2 + 7 H2ONow we have:14 hydrogen atoms (H) on both sides2 chromium atoms (Cr) on both sides18 oxygen atoms (O) on both sides6 carbon atoms (C) on both sides. Therefore, the coefficient in front of carbon dioxide in the balanced chemical equation is 3.

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