The Ka of a monoprotic weak acid is 5.16 � 10-3. What is the percent ionization of a 0.153 M solution of this acid? All steps please. I'm a little confused when it comes to quad equations.

Answers

Answer 1

The percent ionization of a 0.153 M solution of a monoprotic weak acid with a Ka of 5.16 x 10⁻³ is approximately 13.8%.

To calculate the percent ionization, follow these steps:

1. Write the ionization equation for the weak acid (HA): HA <=> H⁺ + A⁻
2. Set up an ICE table (Initial, Change, Equilibrium) for the concentrations:
  Initial: [HA] = 0.153 M, [H⁺] = [A⁻] = 0
  Change: [HA] = -x, [H⁺] = [A⁻] = +x
  Equilibrium: [HA] = 0.153 - x, [H⁺] = [A⁻] = x

3. Write the Ka expression: Ka = ([H⁺][A⁻])/([HA]) = (x)(x)/(0.153-x)
4. Substitute the Ka value: 5.16 x 10⁻³ = (x^2)/(0.153-x)
5. Solve for x using the quadratic formula or approximation method (assuming x << 0.153, we can simplify it as x^2/0.153)
6. Calculate x (concentration of H⁺ ions): x ≈ 0.0211 M
7. Calculate percent ionization: (0.0211/0.153) x 100 ≈ 13.8%

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Answer 2

The percent ionization of a 0.153 M solution of a monoprotic weak acid with a Ka of 5.16 x 10⁻³ is approximately 13.8%.

To calculate the percent ionization, follow these steps:

1. Write the ionization equation for the weak acid (HA): HA <=> H⁺ + A⁻
2. Set up an ICE table (Initial, Change, Equilibrium) for the concentrations:
  Initial: [HA] = 0.153 M, [H⁺] = [A⁻] = 0
  Change: [HA] = -x, [H⁺] = [A⁻] = +x
  Equilibrium: [HA] = 0.153 - x, [H⁺] = [A⁻] = x

3. Write the Ka expression: Ka = ([H⁺][A⁻])/([HA]) = (x)(x)/(0.153-x)
4. Substitute the Ka value: 5.16 x 10⁻³ = (x^2)/(0.153-x)
5. Solve for x using the quadratic formula or approximation method (assuming x << 0.153, we can simplify it as x^2/0.153)
6. Calculate x (concentration of H⁺ ions): x ≈ 0.0211 M
7. Calculate percent ionization: (0.0211/0.153) x 100 ≈ 13.8%

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Related Questions

if a jar test demonstrates that the optimum dosage for coagulation is 25 ppm al3 , how many lbs alum are required for a 45 mgd water treatment plant?

Answers

You would need 1,125 pounds of alum per day for a 45 MGD water treatment plant with an optimum coagulation dosage of 25 ppm Al3.

To determine the amount of alum required for a 45 mgd water treatment plant at an optimum dosage of 25 ppm Al3, we need to use a conversion factor. One pound of alum contains 0.553 pounds of Al3. Therefore, we can calculate the amount of alum required as follows:

Alum required (lbs/day) = (Optimum dosage in ppm * Flow rate in MGD * 8.34) / (Al3 content in alum * 1000)

Substituting the values, we get:

Alum required (lbs/day) = (25 * 45 * 8.34) / (0.553 * 1000) = 77.7 lbs/day

Therefore, approximately 77.7 lbs of alum are required per day for a 45 mgd water treatment plant at an optimum dosage of 25 ppm Al3.

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A student conducts an experiment to determine the value of ΔHosoln for the dissolution of NaC2H3O2(s). The student dissolves 10.0g of NaC2H3O2(s) in room-temperature water in a beaker and measures the temperature over time. The data are given in the graph above.
(a) The student touches the side of the beaker after the dissolution has occurred and observes that it is cold. What experimental evidence is consistent with the student's observation?

Answers

The student's observation is consistent with the experimental evidence of a decrease in temperature over time.

What is temperature?

Temperature is a physical property of matter, and is a measure of the average kinetic energy of the particles in a material. It is a measure of how hot or cold something is. Temperature is measured in units such as degrees Celsius (°C), Fahrenheit (°F), and Kelvin (K). The temperature of a system determines its state, such as solid, liquid, or gas. Temperature affects the rate of physical and chemical processes, and thus has an impact on the environment.

This indicates that a endothermic reaction has occurred, releasing energy in the form of heat, which has been absorbed by the beaker and its contents, thus cooling them down. This provides evidence that the dissolution of NaC₂H₃O₂(s) is an endothermic reaction, with a positive value for ΔHosoln.

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solid ammonium phosphate is slowly added to 175 ml of a aluminum iodide solution until the concentration of phosphate ion is 0.0695 m. the maximum amount of aluminum ion remaining in solution is m.

Answers

The balanced chemical equation for the reaction between ammonium phosphate and aluminum iodide is: the maximum amount of aluminum ion remaining in solution is 0.139 M.

([tex]NH_{4}[/tex])[tex]3PO_{4}[/tex](aq) + 3 [tex]AlI_{3}[/tex] (aq) → 3 [tex]NH_{4}[/tex]I (aq) + [tex]AlPO_{4}[/tex] (s)

We know that solid ammonium phosphate is slowly added to 175 ml of an aluminum iodide solution, and the concentration of phosphate ion is 0.0695 M at equilibrium. This means that the equilibrium concentration of phosphate ion ([[tex]PO4^{3-}[/tex]]) is 0.0695 M.

Let's assume that x mol of [tex]Al^{3+}[/tex] ions react with the phosphate ions to form [tex]AlPO_{4}[/tex](s) and hence x mol of [tex]Al^{3+}[/tex] ions are removed from the solution. As a result, the concentration of [tex]Al^{3+}[/tex] ions at equilibrium is [[tex]Al^{3+}[/tex]] = (initial concentration of [tex]Al^{3+}[/tex]+ ions) - x.

Since 3 moles of [tex]Al^{3+}[/tex] ions react with 1 mole of [tex]PO4^{3-}[/tex] ions, we can say that the initial concentration of [tex]Al^{3+}[/tex] ions is three times the concentration of phosphate ion. Therefore, the initial concentration of [tex]Al^{3+}[/tex] ions is:

[[tex]Al^{3+}[/tex]]_initial = 3 × [[tex]PO4^{3-}[/tex]]_equilibrium = 3 × 0.0695 M = 0.2085 M

Thus, at equilibrium, we have:

[[tex]Al^{3+}[/tex]] = [[tex]Al^{3+}[/tex]]_initial - x = 0.2085 M - x

The equilibrium concentration of [tex]PO4^{3-}[/tex] ions is given as 0.0695 M. This means that x moles of [tex]Al^{3+}[/tex] ions have reacted with [tex]PO4^{3-}[/tex] ions to form [tex]AlPO_{4}[/tex](s). As a result, the maximum amount of [tex]Al^{3+}[/tex] ions remaining in solution is:

[[tex]Al^{3+}[/tex]] = 0.2085 M - x = 0.2085 M - 0.0695 M = 0.139 M

Therefore, the maximum amount of aluminum ion remaining in solution is 0.139 M.

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the solubility product for silver chloride is 1.6 x 10−10. what is the molar solubility of silver chloride in a 6.5 x 10−3 m agno3 aqueous solution at 298 k?

Answers

Silver chloride has a molar solubility of 2.5 x 10-8 M in the specified solution.

(B) 2.5 x 10-8 M is the right answer.

What is the solubility of silver chloride solution in molar terms?

Let s denote the solubility of AgCl.

The concentrations of Ag+ and Cl- ions in solution will thereafter be reduced.

The solubility product (Ksp) of AgCl is expressed as: The AgNO₃ injected will dissociate to create Ag+ and NO₃- ions.

However, because the concentration of AgNO₃ is significantly more than the solubility of AgCl, we may infer that the concentration of Ag+ ions in solution is basically equivalent to the initial concentration of AgNO₃, which is 6.5 x 10-3 M.

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Provide a structural explanation for each of the following questions by drawing the appropriate structure and/or
resonance contributors.
Why does the para-nitro phenyl substituent cause the λmax value to be higher than that of the meta-
nitro phenyl substituent?

Answers

The para-nitro phenyl substituent causes a higher λmax value than the meta-nitro phenyl substituent because it has a greater electron-withdrawing effect due to its position relative to the benzene ring.

The nitro group contains both electron-withdrawing (NO₂) and electron-donating (O) groups, which can affect the electron density of the benzene ring through resonance.

In the para-nitro phenyl substituent, the nitro group is positioned directly opposite to the hydrogen on the carbon that is attached to the ring. This allows for maximum overlap between the nitro group's electron-withdrawing pi-system and the pi-system of the benzene ring, resulting in a greater degree of electron withdrawal from the ring. This reduces the electron density of the ring and causes the λmax value to shift to a higher wavelength.

In the meta-nitro phenyl substituent, the nitro group is positioned one carbon away from the hydrogen on the carbon that is attached to the ring. This results in less efficient overlap between the pi-systems of the nitro group and the benzene ring, resulting in a weaker electron-withdrawing effect on the ring. This leads to a smaller shift in λmax compared to the para-nitro phenyl substituent.

Below are the structures and resonance contributors for para-nitro phenyl substituent and meta-nitro phenyl substituent.

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How many formula units are contained in 1.67 g CaO

Answers

There are approximately 1.79 x 10²² formula units of CaO in 1.67 g of CaO.

What is Avogadro's constant?

Avogadro's constant, also known as Avogadro's number (N_A), is a fundamental physical constant that represents the number of constituent particles (usually atoms or molecules) in one mole of a substance.

The value of Avogadro's constant is approximately 6.022 x 10²³ particles per mole. This means that one mole of any substance contains 6.022 x 10²³ particles. For example, one mole of oxygen gas (O2) contains 6.022 x 10²³ oxygen molecules, and one mole of sodium chloride (NaCl) contains 6.022 x 10²³ sodium ions and 6.022 x 10²³ chloride ions.

To determine the number of formula units of CaO in 1.67 g of CaO, we need to use the molar mass of CaO and Avogadro's number.

The molar mass of CaO is:

CaO = 40.08 g/mol (Ca) + 16.00 g/mol (O) = 56.08 g/mol

Using the molar mass, we can calculate the number of moles of CaO:

n = m/M = 1.67 g / 56.08 g/mol = 0.0298 mol

Finally, we can use Avogadro's number, which is 6.022 x 10²³ formula units/mol, to calculate the number of formula units of CaO:

number of formula units = n x N_A = 0.0298 mol x 6.022 x 10²³ formula units/mol = 1.79 x 10²² formula units.

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Which pairs of molecules have the correct boiling point (bp) trend? Show & explain all work.
i.) bp of CS2 > bp of CO2
ii.) bp of O2 > bp of H2
iii.) bp of SiH4 > bp of SnH4

Answers

The correct trend for the first pair is CS₂ > CO₂ due to stronger London dispersion forces. The correct trend for the second pair is O₂ > H₂ because of more electrons and stronger London dispersion forces.

Here's the boiling point trend for each pair of molecules:
i.) bp of CS₂ > bp of CO₂
CS₂ (carbon disulfide) has a boiling point of 46.3°C, while CO₂ (carbon dioxide) has a boiling point of -78.5°C. The reason for this difference is that CS₂ has stronger London dispersion forces due to its larger molecular size and higher number of electrons compared to CO₂. CO₂ has weaker interactions because it is a linear molecule with polar bonds, but the molecule itself is nonpolar, resulting in weaker attractive forces between molecules.
ii.) bp of O₂ > bp of H₂
O₂ (oxygen) has a boiling point of -183°C, and H₂ (hydrogen) has a boiling point of -252.87°C. O₂ has a higher boiling point because it has more electrons, which results in stronger London dispersion forces compared to H₂. The small size and low electron count of H₂ lead to weaker London dispersion forces and a lower boiling point.
iii.) bp of SiH₄ > bp of SnH₄
SiH₄ (silane) has a boiling point of -111.8°C, while SnH₄ (stannane) has a boiling point of -52°C. In this case, the trend is incorrect, as SnH₄ has a higher boiling point than SiH₄. The higher boiling point of SnH₄ is due to its larger molecular size and higher number of electrons, leading to stronger London dispersion forces between its molecules compared to SiH₄.
In summary:
- The correct trend for the first pair is CS₂ > CO₂ due to stronger London dispersion forces.
- The correct trend for the second pair is O₂ > H₂ because of more electrons and stronger London dispersion forces.
- The trend for the third pair is incorrect, and the correct trend is SnH₄ > SiH₄ due to larger molecular size and stronger London dispersion forces.

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what volume of the water in milliliters contains 135 mg of pb ? (assume that the density of the solution is 1.0 g/ml .)

Answers

The volume of water in milliliters containing 135 mg of Pb (lead) with a density of 1.0 g/mL is 0.135 ml.

To calculate the volume of water in milliliters containing 135 mg of Pb, we need to use the density of the solution which is 1.0 g/ml. First, we need to convert 135 mg to grams.

135 mg = 0.135 g

Next, we can use the formula:

density = mass/volume

We know the density is 1.0 g/ml and the mass is 0.135 g, so we can rearrange the formula to solve for volume:

volume = mass/density

volume = 0.135 g ÷ 1.0 g/ml

volume = 0.135 ml

Therefore, the volume of water in milliliters containing 135 mg of pb is 0.135 ml.

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Write the complete electron configuration for the beryllium atom.


Using NOBLE GAS notation, write the electron configuration for the magnesium atom.

Answers

The beryllium atom has four electrons. The electron configuration can be written as:

1s² 2s²

Using NOBLE GAS notation, the electron configuration of magnesium can be written as follows:

[Ne] 3s²

What is electron configuration?

Electron configuration is the distribution of electrons of an atom or molecule in its various atomic orbitals. In other words, it describes how the electrons are arranged in the shells and subshells around the nucleus of an atom.

The electron configuration of an atom can be represented by a series of numbers and letters, where the numbers indicate the energy level (or shell) of the electrons, and the letters indicate the type of orbital (s, p, d, or f) that the electrons occupy within that energy level.

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Calculate the formal potential, E∘′, for the given reaction.
NO−3(aq)+3H+(aq)+2e− ↽−−⇀ HNO2(aq)+H2O(l) ∘= 0.940 V
Nitrous acid, HNO2, has a Ka of 7.1×10−4.
Find E∘′ = ____ V
(Incorrect Attempts: 0.85V, 0.32V, 0.66V, -0.093V, 0.661V, 1.033V)

Answers

The formal potential for the given reaction is 1.34 V.

The Nernst equation relates the standard potential, E∘′, to the actual cell potential, E, and the reaction quotient, Q:

E = E∘′ - (RT/nF)ln(Q)

where R is the gas constant, T is temperature, n is the number of moles of electrons transferred in the reaction, F is the Faraday constant, and ln is the natural logarithm.

At equilibrium, the reaction quotient Q is equal to the equilibrium constant K:

K = [HNO2][H2O]/[NO-3][H+]^3

The relationship between K and the acid dissociation constant, Ka, for the reaction HNO2 + H2O ⇌ H3O+ + NO2- is:

K = [H3O+][NO2-]/[HNO2] = Ka/[HNO2]

Substituting the expression for K into the equation for Q gives:

Q = [HNO2]/Ka[HNO2] = 1/Ka

Substituting the values given in the problem into the Nernst equation and solving for E∘′ gives:

E = 0.940 V = E∘′ - (0.0257 V/K)(298 K)/(2 mol)(96485 C/mol)ln(1/Ka)
E∘′ = 0.940 V + (0.0257 V/K)(298 K)/(2 mol)(96485 C/mol)ln(1/Ka)
E∘′ = 0.940 V + (0.0592 V)ln(1/7.1×10^-4)
E∘′ = 0.940 V + 0.0592(7.09)
E∘′ = 1.34 V

Therefore, the formal potential for the given reaction is 1.34 V.

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Which of the following is FALSE regarding the Lewis structure for PBrg?

a. The total number of valence electrons is 40.
b. There are unpaired electrons on the central atom.
c. There are 5 electron domains around the central atom.
d. The formal charge on each atom is zero.

Answers

The statement that there are unpaired electrons on the central atom in the Lewis structure for PBrg is FALSE. This is because the Lewis structure for PBrg has a central atom, P, bonded to five Br atoms, and each Br atom has six valence electrons.

The total number of valence electrons in the structure is 40, which is the sum of the valence electrons of P and Br atoms. The central atom, P, has five electron domains, which include the lone pair of electrons on the P atom and the five P-Br bonds.

The formal charge on each atom in the structure is zero. Therefore, the only statement that is false regarding the Lewis structure for PBrg is that there are unpaired electrons on the central atom.

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a rate is equal to 0.0200 m/s. if [a] = 0.100 m and rate = k[a]0, what is the new rate if the concentration of [a] is increased to 0.400 m?

Answers

the new rate when the concentration of A is increased to 0.400 m remains the same as the initial rate, which is 0.0200 m/s.

We are given the following information:
1. The initial rate is 0.0200 m/s
2. The initial concentration of A, [A] = 0.100 m
3. The rate equation is given as rate = k[A]^0

Now, we need to find the new rate when the concentration of A, [A] is increased to 0.400 m.
Step 1: Since the rate equation is given as rate = k[A]^0, we can simplify it to rate = k because any number raised to the power of 0 is 1.

Step 2: Use the initial rate and initial concentration to find the value of k. We are given rate = 0.0200 m/s and [A] = 0.100 m, so:
0.0200 m/s = k

Step 3: Now that we have the value of k, we can use the new concentration of A, [A] = 0.400 m, to find the new rate. Plug in the new concentration into the rate equation:

New rate = k * (0.400 m)^0

Since anything raised to the power of 0 is 1, the equation becomes:

New rate = k

Step 4: Use the value of k from Step 2:

New rate = 0.0200 m/s

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write a complete ionic equation for the following reaction. li2so4(aq)+co(no3)2(aq)→

Answers

Reaction between Li2SO4(aq) and Co(NO3)2(aq):



First, let's write the balanced molecular equation for the reaction:

Li2SO4(aq) + Co(NO3)2(aq) → 2 LiNO3(aq) + CoSO4(aq)

Now, we'll write the complete ionic equation by separating all the soluble ionic compounds into their respective ions:

2 Li⁺(aq) + SO₄²⁻(aq) + Co²⁺(aq) + 2 NO₃⁻(aq) → 2 Li⁺(aq) + 2 NO₃⁻(aq) + Co²⁺(aq) + SO₄²⁻(aq)

As you can see, some ions remain unchanged throughout the reaction. These are called spectator ions, and we can remove them to obtain the net ionic equation:

There are no ions that react to form a product, so the net ionic equation is:

No reaction.

This means that all the ions in this reaction are spectator ions, and there is no net ionic reaction between Li2SO4(aq) and Co(NO3)2(aq).

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which reaction does not occur in the atp formation from the oxidation of carbon compound?

Answers

In ATP formation from the oxidation of carbon compounds, the reaction that does not occur is "reduction."

ATP is formed through oxidative phosphorylation, where carbon compounds are oxidized to release energy, which is then used to generate ATP.

During oxidative phosphorylation, the electron transport chain accepts electrons from NADH and FADH2, which are produced during glycolysis and the citric acid cycle.

Oxidative phosphorylation occurs in the mitochondria of the cell and is the final step in the process of ATP formation. During this process, the energy stored in NADH and FADH2 is used to generate a proton gradient across the inner membrane of the mitochondria. This gradient is then used to drive the production of ATP through a process known as ATP synthase.

As electrons pass through the electron transport chain, protons are pumped across the mitochondrial inner membrane, generating a proton gradient. This gradient drives the synthesis of ATP by ATP synthase.

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in which one of the following species is the central atom (the first atom in the formula) an exception to the octet rule? group of answer choices no water i2 bcl4- hydronium ion

Answers

In the given species, the central atom that is an exception to the octet rule is found in BCl4-. In this species, boron (B) is the central atom and has only 6 electrons around it, which is an exception to the octet rule that states atoms generally aim to have 8 electrons in their valence shell.

Boron, the central atom, only has six valence electrons in this compound, instead of the usual eight electrons that would fill its valence shell according to the octet rule. This is because boron is a member of group 3A of the periodic table, and as such, it has only three valence electrons available for bonding. In BCl4-, boron forms four covalent bonds with chlorine atoms, resulting in a stable compound with an incomplete octet around the boron atom. The other species mentioned (water, I2, and hydronium ion) follow the octet rule for their central atoms.

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Consider a 1.0-L solution that is initially 0.690 M NH3 and 0.540 M NH4Cl at 25 °C. What is the pH of this solution after 0.190 moles of NaOH have been added? The Kb of NH3 is 1.8x10-5. 9.87 9.37 10.1 9.66 9.10 please help asap thanks!!!!!!

Answers

After 0.190 moles of NaOH have been added the pH of the solution is 9.37.

This result is calculated using the Henderson-Hasselbalch equation, which shows that the pH of a buffer solution is determined by the ratio of the concentration of the conjugate acid and conjugate base.

In this case, the conjugate acid is NH₄+ and the conjugate base is NH₃. When NaOH is added, the amount of NH₃ increases, shifting the ratio and thus resulting in a lower pH.

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1.Calculate the mass percent of a solution that is prepared by adding 61.3g of NaOH to 492g of H2O. 2. Calculate the mass/volume percent of a NaCl solution in which 124g of NaCl is dissolved in enough water to give a total volume of 2.08L .

Answers

The mass/volume percent of the NaCl solution is 59.6%.

How we can mass/volume is percent of the NaCl?

To calculate the mass percent of a solution, we need to divide the mass of the solute by the total mass of the solution and multiply by 100%. In this case, the solute is NaOH and the solvent is H2O.

mass of NaOH = 61.3 gmass of H2O = 492 g

total mass of solution = mass of NaOH + mass of H2O = 61.3 g + 492 g = 553.3 g

mass percent of NaOH = (mass of NaOH / total mass of solution) x 100%mass percent of NaOH = (61.3 g / 553.3 g) x 100%mass percent of NaOH = 11.1%

Therefore, the mass percent of the solution is 11.1%.

To calculate the mass/volume percent of a solution, we need to divide the mass of the solute by the volume of the solution and multiply by 100%. In this case, the solute is NaCl and the solvent is water.mass of NaCl = 124 gvolume of solution = 2.08 LFirst, we need to convert the volume to milliliters (mL) to match the units of mass.2.08 L x (1000 mL / 1 L) = 2080 mLmass/volume percent of NaCl = (mass of NaCl / volume of solution) x 100%mass/volume percent of NaCl = (124 g / 2080 mL) x 100%Next, we need to convert the volume to liters and the units of the mass to match the units in the formula.mass/volume percent of NaCl = (124 g / 2.08 L) x (1000 mL / 1 L) x 100%mass/volume percent of NaCl = 59.6%

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a metal with a threshold frequency of 1.39×10^15 s^−1 emits an electron with a velocity of 6.76×10^5 m/s when radiation of 1.68×10^15 s−1 strikes the metal.
Part A
Calculate the mass of the electron.

Answers

The mass of the electron is approximately 5.69 × 10⁻³⁵ kg.

We can use the Einstein's famous equation relating energy and mass to solve for the mass of the electron:

E = mc²

where E is the energy of the electron, m is its mass, and c is the speed of light.

First, we can find the energy of the incident radiation using Planck's equation:

E = hf

where h is Planck's constant and f is the frequency of the radiation.

E = (6.626 × 10⁻³⁴ J s) × (1.68 × 10^¹⁵ s⁻¹) = 1.11 × 10⁻¹⁸ J

Next, we can find the kinetic energy of the electron using the formula:

KE = 1/2 mv²

where KE is the kinetic energy of the electron, m is its mass, and v is its velocity.

KE = 1/2 × m × v²

We know that the energy of the incident radiation is equal to the work function plus the kinetic energy of the emitted electron:

E = Φ + KE

where Φ is the work function of the metal.

Solving for KE and substituting the given values, we get:

KE = E - Φ = (1.11 × 10⁻¹⁸ J) - h(f0) = (1.11 ×10⁻¹⁸J) - h(1.39 × 10¹⁵ s⁻¹)

KE = 5.11 × 10⁻¹⁹ J

Now, we can solve for the mass of the electron using the formula:

m = KE/c²

m = (5.11 × 10⁻¹⁹ J)/(3.00 × 10⁸ m/s)² = 5.69 × 10⁻³⁵ kg

Therefore, the mass of the electron is approximately 5.69 × 10⁻³⁵ kg.

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A gas that exerts a pressure of 215 torr in a container with a volume of 51. 0 mL will exert a pressure of ? torr when transferred to a container with a volume of 18. 5L

Answers

The gas will exert a pressure of 0.0062 torr when transferred to a container with a volume of 18.5 L.

The pressure and volume of a gas are inversely proportional, according to Boyle's law. Therefore, we can use the formula P1V1 = P2V2 to solve this problem, where P1 and V1 are the initial pressure and volume, and P2 and V2 are the final pressure and volume.

Substituting the given values, we get:

P1 = 215 torr

V1 = 51.0 mL = 0.051 L

V2 = 18.5 L

Solving for P2, we get:

P2 = P1V1/V2 = 215 torr x 0.0510 L / 18.5 L = 0.595 torr

As a result, when transferred to an 18.5 L container, the gas will impose a pressure of 0.595 torr. It is important to note that the units of volume must be consistent (either both in mL or both in L) in order to obtain the correct answer.

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write the brønsted acid equation for ch3cooh(aq).color of universal indicator in CH3COOH ____ pH ___color of universal indicator after addition of NaCH3CO2 ____ pHeffect of NaCH3CO2 on the equilibrium. use equation 16.14 to account for your observation,color of universal indicator in water _____

Answers

The Bronsted acid equation for CH3COOH(aq) is:
CH3COOH + H2O ⇌ H3O+ + CH3COO-

The color of the universal indicator in CH3COOH is typically orange-yellow, indicating a pH of around 3-4, the color of the universal indicator may change to green or blue-green after the addition of NaCH3CO2, indicating a higher pH of around 8-9.

This is because NaCH3CO2 is a weak base that can react with the acid CH3COOH to form its conjugate base, CH3COO-, and water:

NaCH3CO2 + H2O  ⇌  CH3COO- + Na+ + OH-The reaction shifts the equilibrium to the right, decreasing the concentration of H3O+ and increasing the concentration of CH3COO-. As a result, the pH increases, and the color of the universal indicator changes.

Using equation 16.14, which relates the equilibrium constant (Ka) for a weak acid to its pKa value, we can account for this observation. The pKa value for CH3COOH is approximately 4.76. When NaCH3CO2 is added, it reacts with CH3COOH to form CH3COO-, which is the conjugate base of a weak acid. The pKa value for CH3COOH and CH3COO- are related by the equation:

pKa(acid) + pKa(base) = 14

Thus, the pKa value for CH3COO- is;

pKa(acid) + pKa(base) = 14

pKa(base) = 14 - pKa(acid)

                 = 14 - 4.76

                 = 9.24

This means that CH3COO- is a weaker acid than CH3COOH, and the equilibrium will shift to the right to favor the formation of CH3COO- and H2O.

In water, the color of the universal indicator is typically green, indicating a neutral pH of around 7.

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A sample of silver chloride has a measured solubility of 1.1x10^-5 mol/L at a certain temperature. Calculate its Ksp value. Before any reaction occurs, the system contains solid AgCl and H20. The process that occurs is the dissolving of AgCl to form the separated Ag and crions: AgCl (s) <=> Ag^+ (aq) + Cl^- (aq) where Ksp = [Ag^+] [Cl^-]. What are the initial concentrations of Ag+ and Cl- ? [Ag+]o = _____ M [Cl-]o = _____ M

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The initial concentrations of Ag^+ and Cl^- ions are 0 M, as they have not yet dissociated from the solid AgCl. Therefore, [Ag^+]o = 0 M and [Cl^-]o = 0 M.

In this problem, we are given the solubility of silver chloride (AgCl) as 1.1x10^-5 mol/L. The Ksp value can be calculated using the solubility information.
Since the balanced dissolution reaction is:
AgCl (s) <=> Ag^+ (aq) + Cl^- (aq)
The solubility of AgCl is equal to the concentration of Ag^+ and Cl^- ions in the solution at equilibrium. Thus,
[Ag^+] = [Cl^-] = 1.1x10^-5 mol/L
To calculate the Ksp value, we use the formula:
Ksp = [Ag^+] [Cl^-]
Substituting the concentrations of Ag^+ and Cl^- ions:
Ksp = (1.1x10^-5) (1.1x10^-5) = 1.21x10^-10
Before any reaction occurs, the initial concentrations of Ag^+ and Cl^- ions are 0 M, as they have not yet dissociated from the solid AgCl.
Therefore, [Ag^+]o = 0 M and [Cl^-]o = 0 M.

To calculate the Ksp value of silver chloride, we need to use the formula: Ksp = [Ag^+] [Cl^-].
Since the solubility of silver chloride is given as 1.1x10^-5 mol/L, we can assume that the initial concentration of both Ag+ and Cl- ions is also 1.1x10^-5 mol/L.
Therefore, [Ag+]o = 1.1x10^-5 M and [Cl-]o = 1.1x10^-5 M.
Note that the solubility of silver chloride is affected by the temperature and the concentration of other ions present in the solution. If the concentration of Cl- ions is increased, for example, the solubility of silver chloride would decrease, and vice versa.

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What products would you expect from reaction of the following alkenes with NBS? If more than one product is formed, show the structures of all.

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The products would from reaction of the following alkenes with NBS (N-bromosuccinimide) typically results in the formation of allylic bromides via allylic bromination.

NBS is a selective brominating agent that allows for the replacement of a hydrogen atom at an allylic position with a bromine atom, generating products that are resonance-stabilized. If more than one product is formed, it's likely due to the presence of multiple allylic positions in the starting alkene or the possibility of forming different stereoisomers. In such cases, the major product will be the one that is more stable due to resonance or steric factors.

Structures of all the possible products can be drawn by replacing the allylic hydrogens in the starting alkene with bromine atoms and considering any stereoisomers formed. In summary, the reaction of alkenes with NBS results in allylic bromides, and if multiple products are formed, they will be due to different allylic positions or stereoisomers. The products would from reaction of the following alkenes with NBS (N-bromosuccinimide) typically results in the formation of allylic bromides via allylic bromination.

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be sure to answer all parts. calculate the poh and ph of the following aqueous solutions at 25°c. (a) 0.014 m koh poh: ph: (b) 1.65 m naoh poh: ph: (c) 0.084 m ba(oh)2 poh: ph:

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a. pOH of 0.014 M KOH at 25°c is 1.85 and PH of 0.014 M KOH is 12.15.

b. pOH of 1.65 M NaOH is 0.18 and pH of 1.65 M KOH is 13.82.

c. pOH of 0.084 M Ba(OH)₂ is 0.77 and pH of 0.084 M Ba(OH)₂ is 13.23.

a. 0.014 M KOH:
Since KOH is a strong base, its pOH can be calculated as the negative logarithm of its concentration:

pOH = -log(0.014) ≈ 1.85

To find the pH, use the formula: pH = 14 - pOH

pH = 14 - 1.85 ≈ 12.15

b. 1.65 M NaOH:
NaOH is also a strong base, so follow the same process:

pOH = -log(1.65) ≈ 0.18

pH = 14 - 0.18 ≈ 13.82

c. 0.084 M Ba(OH)₂:

Since each Ba(OH)₂ molecule releases 2 OH⁻ ions when it dissociates, the concentration of OH⁻ ions is 2 × 0.084 = 0.168 M.

pOH = -log(0.168) ≈ 0.77

pH = 14 - 0.77 ≈ 13.23

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The following titrations are all at their equivalence points. Rank the solutions from highest to lowest pH at the equivalence point and explain your reasoning. a. 20.00 mL of 0.10 M NaOH + 10.00 mL of 0.20 M acetic acid b. 20.00 mL of 0.10 M NaOH + 10.00 mL of 0.20 M chloroacetic acid c. 10.00 mL of 0.20 M NaOH + 20.00 mL of 0.10 M HCI

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The ranking from highest to lowest pH at the equivalence point would be: a > b > c.

To rank the solutions from highest to lowest pH at the equivalence point, we need to consider the acid-base reactions involved in each titration.
a. In the first titration, NaOH (a strong base) reacts with acetic acid (a weak acid) to form sodium acetate and water. At the equivalence point, all of the acetic acid has been neutralized by NaOH, and we are left with a solution of sodium acetate. Sodium acetate is the conjugate base of acetic acid, and because acetic acid is a weak acid, its conjugate base is a relatively strong base. Therefore, the pH of the solution will be relatively high at the equivalence point.
b. In the second titration, NaOH reacts with chloroacetic acid (a stronger acid than acetic acid) to form sodium chloroacetate and water. At the equivalence point, all of the chloroacetic acid has been neutralized by NaOH, and we are left with a solution of sodium chloroacetate. Like sodium acetate, sodium chloroacetate is the conjugate base of a weak acid, so the pH of the solution will be relatively high at the equivalence point, but slightly lower than in the first titration because chloroacetic acid is a stronger acid than acetic acid.
c. In the third titration, NaOH (a strong base) reacts with HCl (a strong acid) to form sodium chloride and water. At the equivalence point, all of the HCl has been neutralized by NaOH, and we are left with a solution of sodium chloride. Because both HCl and NaCl are strong acids/bases, there will be no residual acidity/basicity in the solution, and the pH will be neutral (around 7) at the equivalence point.

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why does acetyl chloride (2 carbons with 1 polar functional group) react with water almost violently, but you had to warm and shake the mixture of water and benzoyl chloride (7 carbons)?

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The reason acetyl chloride reacts with water almost violently is because it is a highly reactive compound due to the presence of the polar functional group, chloride.

Chloride ions are highly electronegative and have a strong affinity for water molecules. When acetyl chloride is added to water, the chloride ions attract water molecules, causing the reaction to occur quickly and violently.

On the other hand, benzoyl chloride has a longer carbon chain and is less reactive than acetyl chloride. This means that the reaction with water is slower and requires a higher energy input, such as warming and shaking the mixture. The longer carbon chain also makes it less polar than acetyl chloride, which means it is less attracted to water molecules and therefore does not react as violently.

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Consider the balanced chemical reaction shown below. 1 Ca3P2(s) + 6 H2O(l) 3 Ca(OH)2(s) + 2 PH3(g) In a certain experiment, 9.055 g of Ca3P2(s) reacts with 2.224 g of H2O(l). (A)Which is the limiting reactant? (Example: type Ca3P2 for Ca3P2(s)) (B)How many grams of Ca(OH)2(s) form? (C)How many grams of PH3(g) form? (D)How many grams of the excess reactant remains after the limiting reactant is completely consumed?

Answers

The rate limiting step is calcium phosphide, 4.86g of calcium oxide is formed, 1.49g of phosphate is formed and 2.05 g of water is unrected.

How to identify limiting agentIt follows that Calcium Phosphide is the limiting reagent since the ratio of the masses of Calcium Phosphide to those of water is lower in the balanced chemical equation than it is for the provided masses.Ans. b 122 g of calcium phosphate produces 22 g of calcium oxide. Hence, 3.981 g of calcium phosphate will produce 222 /182 3.981 = 4.86 g of calcium oxide.Ans b 122 g of calcium phosphonate yields 68 g of phosphonate; hence, 3.981 g of calcium phosphonate will yield 68 /182 3.981 = 1.49 g of phosphonate.As a result, 182 g of calcium phosphate will react with 108 g of water, resulting in a reaction of 3.981 g of calcium phosphate and 2.36 g of water.So, unreacted water = 4.412 - 2.36 = 2.05 g

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For a particular reaction in which A→productsA→products, doubling the concentration of AA causes the reaction rate to double. What is the order of the reaction?
For a particular reaction in which , doubling the concentration of causes the reaction rate to double. What is the order of the reaction?
1
0
2
The order of the reaction cannot be determined.

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The order of the reaction is 1.

The given information implies that the rate of the reaction is directly proportional to the concentration of A, i.e., Rate ∝ [A]¹. This indicates that the reaction is a first-order reaction with respect to A. In a first-order reaction, the rate of the reaction is directly proportional to the concentration of a single reactant.

When the concentration of this reactant is doubled, the rate of the reaction also doubles, as observed in the given information. Therefore, the order of the reaction with respect to A is 1.

The overall order of the reaction may be different if there are other reactants involved, but based on the given information, we can conclude that the order of the reaction with respect to A is 1.

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Report your measurements to the correct number of significant figures. From the procedure 1. Place 30 mL of the cyclohexane and toluene mixture in a 50 mL round bottom flask with a few boiling stones or a stir bar. Volume of the starting solution (mL) Graduated cylinder reading 50 40 30 20

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The  volume of the starting solution is 10.0 mL

How we can cyclohexane and toluene mixture in a 50 mL round bottom flask with a few boiling stones or a stir bar?

The significant figures in a measurement represent the precision of the measurement. In this case, the precision of the measurement is limited by the precision of the graduated cylinder, which is typically accurate to within +/- 0.1 mL. Therefore, we should report the measurements to the nearest 0.1 mL.

The volume of the starting solution can be calculated by subtracting the graduated cylinder reading from 50 mL:

For 50 mL: 50 mL - 40 mL = 10.0 mL

For 30 mL: 30 mL - 20 mL = 10.0 mL

Therefore, the volume of the starting solution is 10.0 mL, which has two significant figures. We should report our measurements to the same number of significant figures as the least precise measurement, which in this case is two significant figures. Therefore, we can report our measurements as:

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What is the pressure of 2 moles of carbon dioxide at 70 degrees Celsius contained in a 4000 mL container?

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10.6 atm is the pressure of 2 moles of carbon dioxide at 70 degrees Celsius contained in a 4000 mL container.

The physical force applied to an object is referred to as pressure. Per unit area, a perpendicular force is delivered over the surface of the objects. F/A (Force every unit area) is the fundamental formula for pressure. Pressure is measured in Pascals (Pa).

Absolute, atmospheric, differential, as well as gauge pressures are different types of pressure. 'Pressure' is the term used to describe the thrust (force) applied to a surface every unit area. The proportion of the force can the surface area (more than where the pressure is acting) is another way to describe it.

P×V = n×R×T    

P× 4000 = 2×0.821×330

P = 10.6 atm

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in the summer of 2010, platinum (195.078 g/mol) sold for $1,500/oz. one ounce is equal to 28.35 g. how many platinum atoms could you buy with a penny ($0.01)?

Answers

Answer: 1.14 × 10^20 platinum atoms

Explaination:

$1,500/oz ÷ 28.35 g/oz = $52.96/g

$0.01 ÷ $52.96/g = 0.000189 moles

use Avogadro's number (6.022 × 10^23 atoms/mole) to calculate the number of platinum atoms in 0.000189 moles:

0.000189 moles × 6.022 × 10^23 atoms/mole = 1.14 × 10^20 atoms

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