identify the true statement concerning vapor pressure and the surface area of a liquid.

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Answer 1

The true statement concerning vapor pressure and the surface area of a liquid is that the vapor pressure of a liquid remains constant, irrespective of the surface area.

Vapor pressure is the pressure exerted by the vapor molecules above the liquid's surface when the liquid and vapor phases are in equilibrium. This means that the rate of evaporation equals the rate of condensation. The vapor pressure of a liquid depends on its temperature and the intermolecular forces between its molecules. However, it does not depend on the surface area of the liquid. This is because vapor pressure is an intensive property that is not influenced by the amount or size of the substance.

Vapor pressure remains constant regardless of the surface area of a liquid, as it depends on temperature and intermolecular forces, making it an intensive property.

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A gas at 7.75 × 10^4 pa and 17°c occupies a volume of 850.0 cm^3. At what temperature, in degrees celsius, would the gas occupy 720.0 cm3 at 8.10 × 10^4 pa?

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The gas would occupy 720.0 cm^3 at a temperature of approximately 16.15°C when the pressure is 8.10 × 10^4 Pa.

To solve this problem, we can use the combined gas law, which states that the ratio of the initial pressure, initial volume, and initial temperature is equal to the ratio of the final pressure, final volume, and final temperature.

The combined gas law equation can be written as:

(P1 * V1) / T1 = (P2 * V2) / T2

Given:

P1 = 7.75 × 10^4 Pa

V1 = 850.0 cm^3

T1 = 17°C = 17 + 273.15 K (converted to Kelvin)

P2 = 8.10 × 10^4 Pa

V2 = 720.0 cm^3

T2 = ?

Let's substitute the values into the combined gas law equation and solve for T2:

(P1 * V1) / T1 = (P2 * V2) / T2

(T2 * P1 * V1) = (T1 * P2 * V2)

T2 = (T1 * P2 * V2) / (P1 * V1)

Now let's perform the calculation:

T2 = (T1 * P2 * V2) / (P1 * V1)

T2 = ((17 + 273.15) K * (8.10 × 10^4 Pa) * (720.0 cm^3)) / ((7.75 × 10^4 Pa) * (850.0 cm^3))

Calculating the value of T2:

T2 ≈ 289.3 K

Converting back to degrees Celsius:

T2 ≈ 289.3 - 273.15 = 16.15°C

Therefore, the gas would occupy 720.0 cm^3 at a temperature of approximately 16.15°C when the pressure is 8.10 × 10^4 Pa.

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conductivity in a metal is almost always reduced by the introduction of defects into the lattice. the factor primarily affected by defects is:

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Defects in the lattice disrupt the regular arrangement of atoms, causing scattering of electrons and reducing their ability to move freely through the material, which ultimately reduces its conductivity.

In a perfect crystal lattice, the metal ions or electrons can move freely through the lattice, resulting in high electrical conductivity. However, the introduction of defects such as impurities, vacancies, or dislocations disrupts the regular arrangement of the lattice, and creates obstacles that impede the movement of the metal ions or electrons. As a result, the mobility of the metal ions or electrons is reduced, leading to a decrease in electrical conductivity.

Therefore, conductivity in a metal is almost always reduced by the introduction of defects into the lattice, primarily affecting the mobility of the metal ions or electrons.

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Draw the products for the following Sn2 reactions, if no reaction takes place say that. Br NaCN, Acetone K, Acetonitrile NaOE, Dimethylsulfoxide iodomethane Lithium Chloride, Dimethylfonamide

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1) Br + NaCN → no reaction (NaCN is a weak nucleophile and cannot displace Br in an Sn2 reaction)


2) K + Acetone → no reaction (K is a strong base and not a nucleophile)


3) NaOE + Acetonitrile → OEt- + NaCN (NaOE is a strong base and a good nucleophile, Acetonitrile is a polar aprotic solvent that stabilizes the negative charge on the nucleophile. The leaving group is CN-)


4) Iodomethane + LiCl → no reaction (LiCl is an ionizing solvent and not a nucleophile)


5) Iodomethane + Dimethylformamide → CH₃CONHCH₃+ HI (DMF is a polar aprotic solvent that stabilizes the negative charge on the nucleophile. The leaving group is I-)

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What is the speed of a wave with a frequency of 1,000,000 Hz and a wavelength of 299. 79?

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Given that the frequency of wave is 1,000,000 Hz and the wavelength is 299.79, we can substitute these values into the equation is Speed = 1,000,000 Hz × 299.79

To calculate the speed of a wave, we can use the formula: Speed = Frequency × Wavelength. Speed = 299,790,000 meters per second (m/s)

Therefore, the speed of the wave is approximately 299,790,000 m/s.

It's important to note that the speed of a wave is a fundamental property that represents how fast the wave propagates through a medium. In this case, the calculated speed is exceptionally high, as it represents the speed of light in a vacuum, which is approximately 299,792,458 m/s.

The period is equal to the frequency times the length of a cycle in a recurrent event. Therefore, the strongest, highest frequency, and shortest wavelength rays are gamma rays. The final response is gamma rays.

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given 12.01 gram of carbon (c) = 1 mole of c. how many grams are in 3 moles of carbon (c)?

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A mole is the mass of a substance made up of the same number of fundamental components. Atoms in a 12 gram example are identical to 12C. Depending on the substance, the fundamental units may be molecules, atoms, or formula units.

A mole of any substance has an agadro number value of 6.023 x 10²³. It can be used to quantify the chemical reaction's byproducts. The symbol for the unit is mol.

The formula for the number of moles formula is expressed as

Number of Moles = Mass  / Molar Mass

Molar mass of 'C' = 12.01 g / mol

Mass = n × Molar Mass = 3 × 12.01 = 36.03 g

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heating a sample too quickly in the mp apparatus will result in

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Heating a sample too quickly in the melting point (mp) apparatus can result in inaccurate and unreliable melting point readings.

This is because the sample may not have enough time to fully equilibrate and reach its true melting point. The rapid heating can also cause the sample to decompose or evaporate before melting, leading to erroneous results.

It is recommended to heat the sample slowly and steadily, at a rate of 1-2 degrees per minute, to ensure proper equilibration and melting. This allows the sample to melt uniformly and reach its true melting point. Additionally, it is important to ensure that the sample is uniformly packed in the apparatus and that the temperature sensor is properly positioned to obtain accurate results.

In summary, heating a sample too quickly in the mp apparatus can result in inaccurate and unreliable melting point readings, and it is essential to heat the sample slowly and steadily to ensure proper equilibration and melting.

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Propose a structure for the aromatic hydrocarbon with formula C_6H_6O_2; that would give only one product with formula C_3H_2O_3 after reaction with CH_3C(O)Cl/AlCl_3.

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It is likely that the aromatic hydrocarbon with the formula [tex]C_6H_6O_2[/tex] is a benzoic acid derivative. Benzoyl chloride is created as an intermediate during the reaction of benzoic acid with [tex]CH_3C(O)Cl/AlCl_3[/tex], which is then followed by an electrophilic substitution reaction with the aromatic ring.

The synthesis of a pyruvic acid derivative is suggested by the product [tex]C_3H_2O_3[/tex]. Therefore, 2-hydroxybenzoic acid, also known as salicylic acid, is likely to be the structure of the aromatic hydrocarbon[tex]C_6H_6O_2[/tex] that would only yield one product [tex]C_3H_2O_3[/tex] after reaction with [tex]CH_3C(O)Cl/AlCl_3.[/tex] Salicylic acid would react with[tex]CH_3C(O)Cl/AlCl_3[/tex] to produce 2-(acetyloxy)benzoic acid, also known as aspirin, which is a pyruvic acid derivative and has the formula [tex]C_9H_8O_4[/tex].

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consider the following equation in aqueous solution: cr₂o₇²⁻(aq) s₂o₃²⁻(aq) → cr³⁺(aq) s₄o₆²⁻(aq) which of the elements is oxidized in this reaction?

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Sulfur is oxidized in the reaction while chromium is reduced.

In the given equation, Cr₂O₇²⁻(aq) and S₂O₃²⁻(aq) are reactants and Cr³⁺(aq) and S₄O₆²⁻(aq) are products. During the reaction, Cr₂O₇²⁻(aq) is reduced to Cr³⁺(aq), and S₂O₃²⁻(aq) is oxidized to S₄O₆²⁻(aq). Therefore, sulfur is the element that is oxidized in this reaction.

Oxidation is a process where an atom, molecule or ion loses electrons. In this reaction, sulfur gains two electrons, which means that it is oxidized. On the other hand, chromium gains three electrons, which means that it is reduced. This is a redox reaction, which involves both reduction and oxidation. The oxidation state of sulfur changes from +2 to +6, while the oxidation state of chromium changes from +6 to +3. Therefore, sulfur is the element that is oxidized in this reaction.

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what is the maximum mass of solid barium sulfate (233 g·mol-1) that can be dissolved in 1.00 l of 0.100 m nazs04 solution? ksp (bas04) = 1.5 x 1 o-9

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The maximum mass of BaSO₄ that can be dissolved in 1.00 L of 0.100 M Na2SO4 solution is 23.3 g.

What is the mass of a solid that can dissolve?

The solubility product constant, Ksp, for BaSO₄ is given as 1.5 x 10⁻⁹. The balanced chemical equation for the dissolution of BaSO4 is:

BaSO₄ (s) ⇄ Ba²⁺ (aq) + SO₄⁻ (aq)

The molar solubility of BaSO₄ is x mol/L.

So, Ksp = [Ba2+][SO42-] = x * x = x²

Therefore, x = √(Ksp)

x = √(1.5 x 10^-9)

x = 1.22 x 10^-4 mol/L

The maximum mass of BaSO₄ that can be dissolved in 1.00 L of 0.100 M Na2SO4 solution will be:

Moles of Na₂SO₄ in 1.00 L of 0.100 M solution:

Molarity = moles of solute / volume of solution

moles of Na₂SO = Molarity * volume of solution

moles of Na₂SO₄ = 0.100 mol/L * 1.00 L

moles of Na₂SO₄ = 0.100 mol

The mass of BaSO4 that can dissolve:

mass = moles of BaSO4 * molar mass of BaSO4

mass = 0.100 mol * 233 g/mol

mass = 23.3 g

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arrange the following in order of increasing acidity.(3) explain your logic (3) rb2o, p4o10, li2o, b2o3, so3

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The order of increasing acidity for the given compounds is: Li2O < Rb2O < B2O3 < SO3 < P4O10.

Acidity generally increases with the increasing electronegativity of the central atom and the oxidation state of the compound. Here is a brief overview of each compound:

1. Li2O and Rb2O: These are metal oxides (alkali metal oxides). Metal oxides tend to be basic, but since Rb is larger and less electronegative than Li, Rb2O is slightly more acidic than Li2O.
2. B2O3: This is a non-metal oxide (boron oxide), and non-metal oxides tend to be acidic. Boron has a lower electronegativity than other non-metals in the list, so it's less acidic than SO3 and P4O10.
3. SO3: This is a non-metal oxide (sulfur oxide) with a higher oxidation state (+6) and electronegativity than boron, making it more acidic than B2O3.
4. P4O10: This is a non-metal oxide (phosphorus oxide) with a higher oxidation state (+5) than boron and similar electronegativity to sulfur. The key difference is the structure, as P4O10 can form multiple strong hydrogen bonds, increasing its acidity over SO3.

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is 2(ch3)(ch2)2ch3 13o2 an single replacement or double replacement

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The chemical reaction 2(CH3)(CH2)2CH3 + 13O2 is a combustion reaction.


A single replacement reaction is when one element or ion replaces another element or ion in a compound. A double replacement reaction is when two ionic compounds exchange ions to form two new compounds.

The chemical reaction 2(CH3)(CH2)2CH3 + 13O2 is neither a single replacement nor a double replacement reaction. Instead, it is a combustion reaction. Combustion reactions are a type of redox reaction where a fuel reacts with oxygen to produce carbon dioxide and water.

In this reaction, the fuel is 2(CH3)(CH2)2CH3, which is a hydrocarbon known as octane. The oxygen reacts with the octane to produce carbon dioxide (CO2) and water (H2O) according to the balanced chemical equation:

2(CH3)(CH2)2CH3 + 13O2 → 16CO2 + 18H2O

The heat released by this reaction can be harnessed to produce energy, which is why combustion reactions are commonly used to power engines and generate electricity.

In summary, the chemical reaction 2(CH3)(CH2)2CH3 + 13O2 is a combustion reaction, which involves the reaction of a fuel with oxygen to produce carbon dioxide and water.

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a solid surface with dimensions 2.5 mm × 3.0 mm is exposed to argon gas at 90 pa and 500 k. how many collisions do the ar atoms make with this surface in 15 s?

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The argon atoms make approximately 2.43 x 10^19 collisions with the given solid surface in 15 seconds.

First, we need to calculate the number of argon molecules in the given volume at the given pressure and temperature using the ideal gas law:

n = PV/RT

Converting the given dimensions to volume, we get:

[tex]V = (2.5 * 10^-3 m) * (3.0 * 10^-3 m) * (1 * 10^-9 m) = 7.5 * 10^{-14} m^3[/tex]

Also:

[tex]P = 90 Pa \\T = 500 K[/tex]

Using the values of R and T, we can calculate the number of molecules of argon:

[tex]n = (90 Pa * 7.5 * 10^{-14} m^3) / (8.314 J/(mol*K) * 500 K) = 3.24 * 10^{14}[/tex]molecules

Next, we need to calculate the average speed : [tex]v = \sqrt {(3kT/m)[/tex]

Using the atomic mass of argon and converting it to kilograms:

m = [tex]39.95 g/mol / 6.022 * 10^{23} mol^-1 / 1000 g/kg = 6.64 * 10^{-26} kg[/tex]

Substituting given temperature and mass :

[tex]v = \sqrt {(3 * 1.38 * 10^{-23} J/K * 500 K / 6.64 * 10^{-26} kg) }= 500.2 m/s[/tex]

Finally, we can calculate the number of collisions in 15 seconds:

Number of collisions = [tex]n * v * t = 3.24 * 10^14 * 500.2 * 15 = 2.43 * 10^{19[/tex]collisions

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Solve an equilibrium problem (using an ICE table) to calculate the pHpH of each of the following solutions.
a solution that is 0.165M0.165M in HC2H3O2HC2H3O2 and 0.120M0.120M in KC2H3O2KC2H3O2
Express your answer to two decimal places.
a solution that is 0.185M0.185M in CH3NH2CH3NH2 and 0.130M0.130M in CH3NH3BrCH3NH3Br
Express your answer to two decimal places.

Answers

The pH of a [tex]0.165 M[/tex] [tex]HC_2H_3O_2/0.120 M[/tex] [tex]KC_2H_3O_2[/tex] solution was found to be 1.63 and the pH of a [tex]0.185 M[/tex] [tex]CH_3NH_2/0.130 M[/tex] [tex]CH_3NH_3Br[/tex] solution was found to be 12.11.

The pH

Solution containing [tex]0.165 M[/tex] [tex]HC_2H_3O_2[/tex] and [tex]0.120 M[/tex] [tex]KC_2H_3O_2[/tex]:

First, let's write the equation for the ionization of [tex]HC_2H_3O_2[/tex]:

[tex]HC_2H_3O_2 + H_2O \leftrightharpoons C2H_3O_2- + H_3O+[/tex]

We can assume that the amount of [tex]HC_2H_3O_2[/tex] that ionizes is small compared to the initial concentration, so we can use the initial concentration of [tex]HC_2H_3O_2[/tex] as the concentration of [tex]HC_2H_3O_2[/tex] that remains.

The dissociation constant for [tex]HC_2H_3O_2[/tex] is [tex]Ka = 1.8\times10-5[/tex].

Using the equilibrium concentrations, we can write the expression for Ka:

[tex]Ka = [C_2H_3O_2-][H_3O+] / [HC_2H_3O_2][/tex]

Substituting the values and simplifying, we get:

[tex]1.8\times10−5 = x^2 / (0.165-x)[/tex]

Solving for x using the quadratic formula, we get:

[tex]x = 0.0234 M[/tex]

So the concentration of [tex]H_3O+[/tex] is [tex]0.0234 M[/tex], and the pH is:

[tex]pH = -log[H3_O+] = 1.63[/tex]

Solution containing [tex]0.185 M[/tex] [tex]CH_3NH_2[/tex] and [tex]0.130 M[/tex] [tex]CH_3NH_3Br[/tex]:

First, let's write the equation for the ionization of [tex]CH_3NH_2[/tex]:

[tex]CH_3NH_2 + H_2O \leftrightharpoons CH_3NH_3+ + OH-[/tex]

We can assume that the amount of [tex]CH_3NH_2[/tex] that ionizes is small compared to the initial concentration, so we can use the initial concentration of [tex]CH_3NH_2[/tex] as the concentration of [tex]CH_3NH_2[/tex] that remains.

The dissociation constant for [tex]CH_3NH_2[/tex] is [tex]Kb = 4.4\times10-4[/tex].

Using the equilibrium concentrations, we can write the expression for Kb:

[tex]Kb = [CH_3NH_3+][OH-] / [CH_3NH_2][/tex]

Substituting the values and simplifying, we get:

[tex]4.4\times10-4 = x^2 / (0.185-x)[/tex]

Solving for x using the quadratic formula, we get:

[tex]x = 0.013 M\\[/tex]

So the concentration of OH- is [tex]0.013 M[/tex], and the [tex]pOH[/tex] is:

[tex]pOH = -log[OH-] = 1.89[/tex]

To find the pH, we can use the relationship:

[tex]pH + pOH = 14[/tex]

So the pH is:

[tex]pH = 14 - pOH = 12.11[/tex]

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Use the Nernst equation to calculate the theoretical value of E of th copper-concentration cell and compare this value with th cell potential you measured.
E = E* - 0.0592 / n * logQ
**So I believe this is the equation that I would use. However, i'm don't know what E* is suppose to be...**
The my electrochemistry experiment the cell potential that i measured were: 0.130V, 0.115V, and 0.110V (average cell potential = 0.118V)
The concentration of the copper concentration cells used for this lab were: 0.05M CuSO4 and 1.0M CuSO4
standard reduction potential (in text) = Cu2+ + 2e- --> Cu(s) E* = +0.34V **I believe I use the 2 here for n in the Nernst equation. **
am i doing this right? ---> E= 0.118v - 0.0592V / 2e- * log (1.0M/0.05M) =0.0795V ???

Answers

The theoretical value of E using the Nernst equation is approximately 0.108 V.

How to use the Nernst equation to calculate cell potential?

The Nernst equation can be used to calculate the theoretical value of the cell potential (E) for the copper-concentration cell.

First, let's clarify the values:

Measured cell potential: 0.118 V

Standard reduction potential: E* = +0.34 V

Number of electrons transferred in the reaction (n): 2

Ratio of copper concentrations: 1.0 M / 0.05 M = 20

Now, let's calculate the theoretical value of E using the Nernst equation:

E = E* - (0.0592 V / (n * log(Q)))

where:

E is the cell potential

E* is the standard reduction potential

n is the number of electrons transferred in the reaction

Q is the reaction quotient (ratio of product concentrations to reactant concentrations)

Plugging in the values:

E = 0.118 V - (0.0592 V / (2 * log(20)))

Calculating this equation:

E ≈ 0.118 V - (0.0592 V / (2 * 2.9957))

E ≈ 0.118 V - (0.0592 V / 5.9914)

E ≈ 0.118 V - 0.00986 V

E ≈ 0.108 V

So the theoretical value of E using the Nernst equation is approximately 0.108 V.

Comparing this value to the measured average cell potential of 0.118 V, you can see that the theoretical value is slightly lower than the measured value.

Please note that the concentrations used in the Nernst equation should be in mol/L or M, so the concentrations of 0.05 M and 1.0 M CuSO4 are correct. Also, make sure to use natural logarithm (log base e) in the equation.

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the nuclear mass of cl37 is 36.9566 amu. calculate the binding energy per nucleon for cl37 .

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The binding energy per nucleon for a nucleus can be calculated using the formula: BE/A = (Zmp + (A-Z)mn - M)/A. so binding energy is BE/A = -0.026.

For Cl37, Z = 17 and A = 37, so the number of neutrons, N, is 20. The mass of a proton is approximately equal to 1 amu, and the mass of a neutron is approximately equal to 1.0087 amu. The nuclear mass of Cl37 is given as 36.9566 amu.

BE/A = [(17 × 1) + (20 × 1.0087) - 36.9566]/37

BE/A = (27.1709 - 36.9566)/37

BE/A = -0.026

The binding energy per nucleon for Cl37 is approximately -0.026 amu. This negative value indicates that the nucleus is not stable and may undergo radioactive decay to become more stable.

The binding energy per nucleon is a measure of the stability of an atomic nucleus. The higher the binding energy per nucleon, the more stable the nucleus. In the case of Cl37, the binding energy per nucleon can be calculated using the formula: Binding energy per nucleon = (total binding energy of nucleus) / (total number of nucleons)

The total binding energy of a nucleus can be calculated using the formula: Total binding energy = (atomic mass defect) x (c^2)

where c is the speed of light.The atomic mass defect is the difference between the mass of an atomic nucleus and the sum of the masses of its constituent protons and neutrons.

Using the given nuclear mass of Cl37, the atomic mass defect can be calculated. From there, the total binding energy and binding energy per nucleon can be determined.

Once calculated, the binding energy per nucleon of Cl37 can be compared to the average binding energy per nucleon for stable nuclei, which is around 8.5 MeV. If the binding energy per nucleon for a given nucleus is lower than this average, it is less stable than average, while a higher value indicates greater stability

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You set your music player to shuffle mode. It plays each of the n songs before repeating any. Write a program to estimate the likelihood that you will not hear any sequential pair of songs (that is, song 3 does not follow song 2, song 10 does not follow song 9, and so on)

Answers

The formula for the number of derangements is D(n) = n! * (1 - 1/1! + 1/2! - 1/3! + ... + (-1)^n/n!).

Let's assume we have n songs in the playlist. The total number of possible permutations is n!, which represents all the ways the songs can be arranged. Now, we want to count the number of derangements, which are the permutations where no song appears in its original position.

To calculate the number of derangements, we can use the formula D(n) = n! * (1 - 1/1! + 1/2! - 1/3! + ... + (-1)^n/n!). This formula considers the principle of inclusion-exclusion. The term (-1)^n/n! accounts for the alternating signs, and the sum in the parentheses represents the inclusion-exclusion principle.

To estimate the likelihood, we divide the number of derangements by the total number of permutations: D(n) / n!. The result is an approximation of the probability that no sequential pair of songs will be played in the shuffled playlist.

Note that as the number of songs increases, the probability approaches a specific value known as the derangement constant, which is approximately 1/e (where e is Euler's number, approximately 2.71828).

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Question 11 Not yet answered Marked out of 6 P Flag question For 6 points, determine the initial concentration of a propanoic acid (CH3CH2COOH) in molarity solution that has a pH of 3.5. Select one: a. 7.7 x 10 b. 24 c. 1.3 x 10-12 . d. 4.1 x 109 e. None of the above

Answers

The initial concentration of propanoic acid (CH₃CH₂COOH) in the molarity solution with a pH of 3.5 is 7.7 x 10⁻³ M. The correct option is e. None of the above.

To determine the initial concentration of propanoic acid (CH₃CH₂COOH), we need to use the pH value and the dissociation constant (Ka) of the acid. Propanoic acid is a weak acid, and its dissociation can be represented by the equation:

CH₃CH₂COOH ⇌ CH₃CH₂COO⁻ + H⁺

The dissociation constant (Ka) expression for this reaction is:

Ka = [CH₃CH₂COO⁻][H⁺] / [CH₃CH₂COOH]

We know that the pH is equal to the negative logarithm of the H⁺ concentration:

pH = -log[H⁺]

In this case, the pH is given as 3.5, so we can calculate the H⁺ concentration:

[H⁺] = 10⁻ᵖᴴ = 10⁻³.⁵ = 3.16 x 10⁻⁴ M

Since propanoic acid is a weak acid, we can assume that the [H⁺] concentration is equal to the concentration of the dissociated CH₃CH₂COO⁻ ions:

[H⁺] ≈ [CH₃CH₂COO⁻]

Now, we can substitute the values into the Ka expression and solve for [CH₃CH₂COOH]:

Ka = [CH₃CH₂COO⁻][H⁺] / [CH₃CH₂COOH]

1.3 x 10⁻⁵ = (3.16 x 10⁻⁴)(3.16 x 10⁻⁴) / [CH₃CH₂COOH]

Simplifying the equation, we find:

[CH₃CH₂COOH] = (3.16 x 10⁻⁴)(3.16 x 10⁻⁴) / (1.3 x 10⁻⁵)

[CH₃CH₂COOH] ≈ 7.7 x 10⁻³ M

Therefore, the initial concentration of propanoic acid in the molarity solution with a pH of 3.5 is approximately 7.7 x 10⁻³ M. Option e. is the correct answer.

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1 How many elements of unsaturation (IHD) are represented in the formula C7H11Cl 2 Name this compound: 3 Draw the elimination products of the following 2 reactions. 4 Draw the alkenes formed in this reaction: 5 6 7 8 2-pentyne 9 10 Show a synthetic route from propyne to 2,3 dibromobutane 11 Show a synthetic route to 3-hexanone from 1-butyne

Answers

In the compound [tex]C_{7}H_{11}Cl_{2}[/tex], there are three elements of unsaturation (IHD). The compound is 2,3-dichloroheptane. The elimination products of the given reactions and the alkenes formed cannot be determined without additional information. A synthetic route from propyne to 2,3-dibromobutane involves bromination and substitution reactions. A synthetic route to 3-hexanone from 1-butyne involves oxidation and substitution reactions.

To determine the number of elements of unsaturation (IHD) in the compound C_{7}H_{11}Cl_{2} we use the formula:

IHD = 1/2 * (2C + 2 + N - H - X)

where C is the number of carbon atoms, N is the number of nitrogen atoms, H is the number of hydrogen atoms, and X is the number of halogen atoms.

In this case, C = 7, H = 11, and X = 2 (for chlorine atoms). Plugging these values into the formula, we get:

IHD = 1/2 * (2(7) + 2 + 0 - 11 - 2) = 3

Therefore, there are three elements of unsaturation in the compound C7H11Cl2. The compound itself is called 2,3-dichloroheptane.

The elimination products of the given reactions and the alkenes formed cannot be determined without the specific reactants and reaction conditions. Additional information is needed to identify the specific products formed in these reactions. A synthetic route from propyne to 2,3-dibromobutane would involve bromination of propyne to form 1,2-dibromopropane, followed by substitution of the bromine atom with a nucleophile, such as hydroxide (OH^-) or cyanide (CN^-), to obtain 2,3-dibromobutane.

A synthetic route to 3-hexanone from 1-butyne would involve oxidation of the alkyne functional group to form an enol intermediate, followed by tautomerization to the corresponding ketone. This can be achieved through reactions such as ozonolysis, followed by oxidative workup or treatment with basic or acidic conditions.

The specific reaction conditions and reagents used in these synthetic routes would depend on the desired reaction outcomes and the availability of suitable reagents for the desired transformations.

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what are the coefficients in front of no 3 -( aq) and cu( s) when the following redox equation is balanced in an acidic solution: ___ no3-(aq) ___ cu(s) → ___ no(g) ___ cu2 (aq)?

Answers

The coefficients in front of NO3- and Cu in the balanced equation are 6 and 8, respectively.

To balance the given redox equation in an acidic solution, we need to follow these steps:
1. Write the unbalanced equation:
NO3-(aq) + Cu(s) → NO(g) + Cu2+(aq)
2. Identify the oxidation states of all the elements:
N in NO3-: +5
Cu in Cu(s): 0
N in NO: +2
Cu in Cu2+: +2
3. Separate the equation into half-reactions (oxidation and reduction):
Oxidation: NO3- → NO
Reduction: Cu → Cu2+
4. Balance the non-hydrogen and non-oxygen atoms in each half-reaction:
Oxidation: 2 NO3- → 2 NO
Reduction: Cu → Cu2+
5. Balance the oxygen atoms in each half-reaction by adding H2O:
Oxidation: 2 NO3- + 10 H+ → 2 NO + 5 H2O
Reduction: Cu → Cu2+
6. Balance the hydrogen atoms in each half-reaction by adding H+:
3: 2 NO3- + 10 H+ → 2 NO + 5 H2O
Reduction: Cu + 2 H+ → Cu2+
7. Balance the charges in each half-reaction by adding electrons:
Oxidation: 2 NO3- + 10 H+ + 8 e- → 2 NO + 5 H2O
Reduction: Cu + 2 H+ + 2 e- → Cu2+
8. Multiply each half-reaction by a coefficient to make the number of electrons equal in both half-reactions:
Oxidation: 6 NO3- + 30 H+ + 24 e- → 12 NO + 15 H2O
Reduction: 8 Cu + 16 H+ + 16 e- → 8 Cu2+
9. Add the two half-reactions together and cancel out the electrons:
6 NO3- + 8 Cu + 30 H+ → 12 NO + 8 Cu2+ + 15 H2O
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The neutralization reaction of HNO2 and a strong base is based on: HNO3(aq) + OH-(aq) H2O(1) + NO2 (aq) K= 4.5x1010 What is the standard change in Gibbs free energy at 25 °C? O 1) -2.21 kJ 2) -5.10 kJ 3) -26.4 kJ O4) -60.8 kJ

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The standard change in Gibbs free energy at 25°C for the given reaction is -60.8 kJ/mol.

The standard change in Gibbs free energy (ΔG°) for a reaction is a measure of the spontaneity of the reaction.

It can be calculated using the equation ΔG° = -RTlnK, where R is the gas constant, T is the temperature in Kelvin, and K is the equilibrium constant for the reaction.

In this case, the equilibrium constant (K) is given as 4.5x10^10. Plugging in the values, we get ΔG° = -8.314 J/mol*K * (298.15 K) * ln(4.5x10^10) = -60.8 kJ/mol.

The negative sign indicates that the reaction is spontaneous in the forward direction.

Therefore, the answer is option 4) -60.8 kJ.

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The standard change in Gibbs free energy for the neutralization reaction of HNO2 and a strong base is -60.8 kJ at 25 °C, according to the given equilibrium constant (K = 4.5 x [tex]10^10[/tex]).

The standard change in Gibbs free energy (ΔG°) for a reaction can be determined using the equation: ΔG° = -RT ln(K), where R is the gas constant, T is the temperature in kelvin, and K is the equilibrium constant. In this case, the given reaction has a K value of 4.5x10^10. The temperature is 25 °C, which is 298 K. Using the equation and plugging in the values, ΔG° can be calculated as follows: ΔG° = - (8.314 J/K/mol) x (298 K) x ln([tex]4.5x10^10[/tex]) = -60.8 kJ/mol. Therefore, the correct answer is option (4) -60.8 kJ. This indicates that the reaction is highly spontaneous under standard conditions.

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Given the values of delta H degree_rxn delta S degree_rxn and T below, determine delta S_univ and predict whether or not each reaction will be spontaneous delta H degree_rxn=-95 kJ; delta S degree_rxn=.157 J/k; T=298 k delta H degree_rxn=.95 kJ; delta S degree_rxn=.157 J/k; T=855 K

Answers

For the first reaction, [tex]\Delta S_{\text{univ}}[/tex] is negative and the reaction will not be spontaneous. For the second reaction, [tex]\Delta S_{\text{univ}}[/tex] is positive and the reaction will be spontaneous.

For the first reaction:

[tex]\Delta H^\circ_{\text{rxn}}[/tex] = -95 kJ

[tex]\Delta S^\circ_{\text{rxn}}[/tex]= 0.157 J/K

T = 298 K

Using the equation [tex]\Delta S_{\text{univ}} = \Delta S^\circ_{\text{rxn}} - \frac{\Delta H^\circ_{\text{rxn}}}{T}[/tex]:

[tex]\Delta S_{\text{univ}}[/tex] = 0.157 J/K - (-95 kJ / 298 K) = 0.489 J/K

Since [tex]\Delta S_{\text{univ}}[/tex] is positive, the reaction will be spontaneous.

For the second reaction:

[tex]\Delta H^\circ_{\text{rxn}}[/tex] = 0.95 kJ

[tex]\Delta S^\circ_{\text{rxn}}[/tex] = 0.157 J/K

T = 855 K

Using the equation [tex]\Delta S_{\text{univ}} = \Delta S^\circ_{\text{rxn}} - \frac{\Delta H^\circ_{\text{rxn}}}{T}[/tex]:

[tex]\Delta S_{\text{univ}}[/tex] = 0.157 J/K - (0.95 kJ / 855 K) = -0.013 J/K

Since [tex]\Delta S_{\text{univ}}[/tex] is negative, the reaction will not be spontaneous.

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How many grams of ammonia are consumed in the reaction of 103.0 g of lead(ii) oxide?

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Approximately 15.7 grams of ammonia are consumed in the reaction of 103.0 g of lead(II) oxide.

To answer this question, we need to first write the balanced chemical equation for the reaction of lead(II) oxide with ammonia:

PbO + 2NH3 → Pb(NH3)2O

From this equation, we can see that 1 mole of lead(II) oxide reacts with 2 moles of ammonia. We can use the molar mass of lead(II) oxide to convert the given mass of 103.0 g into moles:

103.0 g PbO × (1 mole PbO/223.2 g PbO) = 0.462 moles PbO

Since 1 mole of PbO reacts with 2 moles of NH3, we can use stoichiometry to calculate the amount of NH3 consumed in the reaction:

0.462 moles PbO × (2 moles NH3/1 mole PbO) = 0.924 moles NH3

Finally, we can convert moles of NH3 to grams using its molar mass:

0.924 moles NH3 × (17.03 g NH3/1 mole NH3) = 15.62 g NH3

Therefore, 15.62 grams of ammonia are consumed in the reaction of 103.0 grams of lead(II) oxide.
To determine how many grams of ammonia are consumed in the reaction of 103.0 g of lead(II) oxide, we need to use stoichiometry. First, we need a balanced chemical equation for the reaction:

PbO (lead(II) oxide) + 2 NH3 (ammonia) → Pb(NH2)2 (lead(II) amide) + H2O (water)

Now, follow these steps:

1. Calculate the molar mass of lead(II) oxide (PbO): 207.2 g/mol (Pb) + 16.0 g/mol (O) = 223.2 g/mol.
2. Determine the moles of PbO: 103.0 g / 223.2 g/mol ≈ 0.461 mol PbO.
3. Use the stoichiometry from the balanced equation to find the moles of NH3: 0.461 mol PbO × (2 mol NH3 / 1 mol PbO) = 0.922 mol NH3.
4. Calculate the grams of NH3: 0.922 mol NH3 × 17.0 g/mol (NH3) ≈ 15.7 g.

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seaborgium (sg, element 106) is prepared by the bombardment of curium-248 with neon-22, which produces two isotopes, 265sg and 266sg.

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The statement is true. Seaborgium, with the symbol Sg and atomic number 106, is a synthetic element that was first synthesized in 1974 by a team of scientists at the Lawrence Berkeley National Laboratory in California.

The production of seaborgium involves the bombardment of a heavy target nucleus with a lighter projectile nucleus to induce a nuclear fusion reaction.

In the case of seaborgium, the element is prepared by bombarding a curium-248 target with neon-22 projectiles, which produces two isotopes: 265Sg and 266Sg. The reaction can be represented by the following equation:

248Cm + 22Ne → 265,266Sg + n

The neutrons produced in the reaction are necessary to maintain the stability of the newly formed isotopes. Seaborgium is a highly unstable element, with a half-life of only a few minutes, and its properties are difficult to study due to its short-lived nature.

The synthesis of seaborgium and other heavy elements has important implications for our understanding of nuclear physics and the structure of matter. It also has potential applications in areas such as nuclear energy and medicine. However, the production of these elements is challenging and requires sophisticated technology and highly skilled scientists.

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calculate the molar solubility of thallium (i) chromate (ksp = 8.67 x 10-13) in k2cro4

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The amount of a material that dissolves in a solvent to form a solution (typically given in grammes of solute per litre of solvent). The solubility of one fluid (liquid or gas) in another can be full (completely miscible; for example, methanol and water) or partial (oil and water only partly dissolve).

To calculate the molar solubility of thallium (I) chromate (Tl2CrO4) in K2CrO4, we need to use the Ksp expression:

Ksp = [Tl2CrO4]

Since we are given the Ksp value (8.67 x 10^-13) for Tl2CrO4, we can use this to calculate the molar solubility:

Ksp = [Tl2CrO4] = (2x)^2 * x = 4x^3

where x is the molar solubility of Tl2CrO4 in K2CrO4.

Substituting the given Ksp value into the expression, we get:

8.67 x 10^-13 = 4x^3

Solving for x, we get:

x = (8.67 x 10^-13 / 4)^(1/3) = 3.38 x 10^-5 mol/L

Therefore, the molar solubility of thallium (I) chromate in K2CrO4 is 3.38 x 10^-5 mol/L.


To proceed further, we need to know the concentration of chromate ions from the K2CrO4 solution. With that information, we can solve for x, which represents the molar solubility of Tl2CrO4 in the K2CrO4 solution.

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At the equivalence point for the titration of nh₃ with hbr, the ph is expected to be: a) 7 b) greater than 7 c) less than 7

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The pH at the equivalence point for the titration of NH₃ with HBr is expected to be less than 7.


The titration of NH₃ with HBr is an acid-base reaction where HBr is the acid and NH₃ is the base. At the equivalence point, the moles of acid and base are equal, and all of the NH₃ has reacted with HBr to form NH₄Br, a salt. The pH of the solution depends on the dissociation of NH₄Br, which is an acidic salt.

Since NH₄Br is acidic, it will dissociate in water to produce H⁺ ions, making the solution acidic. This means that the pH at the equivalence point will be less than 7. The exact pH will depend on the strength of the acid and base used and the concentrations of the solutions. However, it is always expected to be less than 7 due to the acidic nature of NH₄Br.

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How many grams of Cl are in 41. 8 g of each sample of chlorofluorocarbons (CFCs)?



CF2Cl2

Answers

Mass of Cl = Number of moles of CF2Cl2 × Molar mass of Cl= 0.346 mol × 35.45 g/mol= 12.26 g Therefore, the mass of chlorine in 41.8 g of CF2Cl2 is 12.26 g.

The given sample of chlorofluorocarbons (CFCs) is CF2Cl2. We are to determine the mass of Cl (chlorine) in 41.8 g of the sample CF2Cl2. Here is the solution: First of all, we have to find the molar mass of CF2Cl2:Molar mass of CF2Cl2 = Molar mass of C + 2(Molar mass of F) + Molar mass of Cl= 12.01 g/mol + 2(18.99 g/mol) + 35.45 g/mol= 120.91 g/molNow we can calculate the number of moles of CF2Cl2 present in the given sample: Number of moles of CF2Cl2 = mass of CF2Cl2 / molar mass= 41.8 g / 120.91 g/mol= 0.346 moles Now we can find the mass of chlorine in the given sample by multiplying the number of moles by the molar mass of chlorine: Mass of Cl = Number of moles of CF2Cl2 × Molar mass of Cl= 0.346 mol × 35.45 g/mol= 12.26 gTherefore, the mass of chlorine in 41.8 g of CF2Cl2 is 12.26 g.

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2. draw lewis structures and predict molecular geometries for dimethyl sulfide, (ch3)2s, and dimethyl sulfoxide, (ch3)2so. how will the csc bond angles differ?

Answers

Dimethyl sulfide posses tetrahedral geometry with ~109.5° bond angles; Dimethyl sulfoxide makes trigonal pyramidal geometry with ~107° bond angles.

Dimethyl sulfide  and dimethyl sulfoxide are considered natural mixtures that comprises sulfur. In order to make their Lewis structures, we have to measure the valence electrons for every particle and orchestrate them likewise.

In case of  dimethyl sulfide, every methyl bunch contributes one valence electron, and sulfur contributes six. Thusly, the all out number of valence electrons is 14. We can organize them as follows:

Duplicate code in the figure 1

This design has a tetrahedral math, with bond points of roughly 109.5 degrees. The atom is polar because of the electronegativity contrast among sulfur and carbon.

For dimethyl sulfoxide, every methyl bunch contributes one valence electron, sulfur contributes six, and oxygen contributes six. Accordingly, the complete number of valence electrons is 22. We can orchestrate them as follows:

Duplicate code in the figure 2

This design has a three-sided pyramidal math, with bond points of roughly 107 degrees. The atom is polar because of the electronegativity contrast between sulfur, oxygen, and carbon.

The CS-C bond points in dimethyl sulfide will be bigger than those in dimethyl sulfoxide because of the presence of an oxygen particle, which will apply a more grounded horrendous power on the neighboring iotas. This distinction in bond points can influence the physical and substance properties of these mixtures.
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Calculate the equilibrium constant at 25°C for the reaction
Zn (s) + 2H+(aq) ⇄ H2(g) + Zn2+ (aq)
Zn2+ + 2e- → Zn(s) ℰ° = -0.76 V Provide your answer rounded to 2 significant figures.

Answers

To calculate the equilibrium constant (K) for the reaction Zn(s) + 2H+(aq) ⇄ H2(g) + Zn2+(aq) at 25°C, we can use the Nernst equation, which relates the standard cell potential (ℰ°) to the equilibrium constant:
ℰ° = (RT/nF) * ln(K). Rounded to 2 significant figures, the equilibrium constant (K) for the reaction is 4.8 x 10^4.

The equilibrium constant (K) can be calculated using the Nernst equation:
K = e^((-ΔG°)/RT)
Where:
- ΔG° is the standard free energy change for the reaction (-nFE°, where n is the number of moles of electrons transferred, F is Faraday's constant, and E° is the standard electrode potential)
- R is the gas constant (8.314 J/mol*K)
- T is the temperature in Kelvin (25°C = 298 K)
First, we need to calculate the standard electrode potential (E°) for the half-reaction Zn2+ + 2e- → Zn(s):
E° = -0.76 V
Now we can use this value to calculate ΔG°:
ΔG° = -nFE°
     = -(2 mol)(96485 C/mol)(-0.76 V)
     = 146606 J/mol
Next, we can plug in the values for ΔG°, R, and T into the Nernst equation:
K = e^((-ΔG°)/RT)
   = e^((-146606 J/mol)/(8.314 J/mol*K*298 K))
   = 2.2 x 10^-18
Therefore, the equilibrium constant for the reaction Zn (s) + 2H+(aq) ⇄ H2(g) + Zn2+ (aq) at 25°C is 2.2 x 10^-18, rounded to 2 significant figures.

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the conversion of 3-hydroxybutyrate to two molecules of acetyl-coa produces 1 nadh and consumes 1 equivalent of atp. what is the net atp yield from the complete oxidation of 3-hydroxybutyrate?

Answers

Therefore, the net ATP yield from the complete oxidation of 3-hydroxybutyrate is 24 - 1 = 23 ATP.

The complete oxidation of 3-hydroxybutyrate involves several steps in which the molecule is converted to acetyl-CoA. Each molecule of 3-hydroxybutyrate yields 2 molecules of acetyl-CoA. The conversion of one molecule of 3-hydroxybutyrate to 2 molecules of acetyl-CoA produces 1 NADH and consumes 1 ATP equivalent. The NADH can be used to produce ATP through oxidative phosphorylation, which generates about 2.5 ATP per NADH.

Therefore, the net ATP yield from the complete oxidation of 3-hydroxybutyrate is calculated as follows:
- One molecule of 3-hydroxybutyrate yields 2 molecules of acetyl-CoA.
- Each molecule of acetyl-CoA produces 12 ATP through the Krebs cycle (2 ATP for each turn of the cycle).
- The total ATP produced from the 2 acetyl-CoA molecules is 24 ATP.
- One equivalent of ATP is consumed during the conversion of 3-hydroxybutyrate to acetyl-CoA.
- Therefore, the net ATP yield from the complete oxidation of 3-hydroxybutyrate is 24 - 1 = 23 ATP.

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part dclassify the following phase changes as exothermic processes or endothermic processes.drag the appropriate items to their respective bins.

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The classification of the following phase changes as exothermic processes or endothermic processes is as follows: Exothermic processes: Freezing, Condensation, Deposition; Endothermic processes: Melting, Evaporation.


Exothermic processes release heat, while endothermic processes absorb heat.
1. Freezing (exothermic): When a substance changes from a liquid to a solid, it releases heat energy to its surroundings.
2. Condensation (exothermic): When a substance changes from a gas to a liquid, it releases heat energy to its surroundings.
3. Deposition (exothermic): When a substance changes from a gas directly to a solid, it releases heat energy to its surroundings.
4. Melting (endothermic): When a substance changes from a solid to a liquid, it absorbs heat energy from its surroundings.
5. Evaporation (endothermic): When a substance changes from a liquid to a gas, it absorbs heat energy from its surroundings.
6. Sublimation (endothermic): When a substance changes from a solid directly to a gas, it absorbs heat energy from its surroundings.

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