Draw the product.
When 1-pentyne reacts with H2SO4, H2O, HgSO4
When 1-pentyne reacts with one equivalent of HCl
When 1-pentyne reacts with two equivalents of Br2 in CCl4
When 1-pentyne reacts with NaNH2 in NH3 followed by MeI
When 1-pentyne reacts with H2, Pt

Answers

Answer 1

1. When 1-pentyne reacts with H2SO4, H2O, HgSO4, the product is 2-pentanone, an enol that tautomerizes to a ketone.


2. When 1-pentyne reacts with one equivalent of HCl, the product is 1-chloro-1-pentene, formed via Markovnikov addition. 3. When 1-pentyne reacts with two equivalents of Br2 in CCl4, the product is 1,1,2,2-tetrabromopentane, where Br2 adds across the triple bond twice.


4. When 1-pentyne reacts with NaNH2 in NH3 followed by MeI, the product is 1-pentyl methyl ether, an S_N2 reaction where the terminal alkyne is converted into an alkoxide and then substituted by MeI.
5. When 1-pentyne reacts with H2, Pt, the product is pentane, where the triple bond is reduced to a single bond via hydrogenation.

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Related Questions

What makes up nearly all of the atom's mass?
OA. The sum of all neutrons and electrons
OB. The sum of all protons and electrons
OC. The sum of all isotopes
OD. The sum of all protons and neutrons
SUBMIT

Answers

The total of all protons and neutrons is Option D, which is the right response. Protons, neutrons, and electrons are the three fundamental particles that make up an atom.

The nucleus of an atom is made up of protons and neutrons, which are collectively referred to as nucleons and are primarily responsible for an atom's mass. Neutrons weigh 1.6749 x 10-27 kg, whereas protons weigh 1.6726 x 10-27 kg.

Protons and neutrons make up the majority of an atom's mass when added together. However, electrons contribute very little to the mass of the atom due to their much smaller mass of 9.11 x 10-31 kg. As a result, Option D is the right response.

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Which one of the following species will have a negligible effect on the pH of an aqueous solution? A. Bro B. CI- C. NH" D. CO32- E. CH3C00

Answers

The species that will have a negligible effect on the pH of an aqueous solution is CI⁻ (chloride ion). The correct answer is option B.

Chloride ion (Cl⁻) is a conjugate base of a strong acid (HCl), and therefore it is a very weak base. In an aqueous solution, Cl⁻ ion does not readily accept protons (H⁺ ions) from water molecules, and it does not affect the pH of the solution to a significant extent.

On the other hand, the other species listed are either weak bases or weak acids that can affect the pH of the solution to varying degrees.

NH3 is a weak base that can react with water to form NH₄⁺ and OH⁻ ions, and thereby increase the pH of the solution. CO₃²⁻ is a strong base that can accept protons from water molecules to form HCO³⁻ and OH⁻ ions, and thereby increase the pH of the solution. CH₃COO⁻ is a weak acid that can donate protons to water molecules to form H₃O⁺ and acetate ions, and thereby decrease the pH of the solution. Br⁻ is a weaker base than NH³ but still more basic than Cl⁻. Therefore, it can also affect the pH of the solution to some extent, although to a lesser extent than NH₃ or CO₃²⁻.

Therefore option B is correct.

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a 36.0 g sample contains 14.6 g cl and 21.4 g b. what is the percent composition of boron in this sample?

Answers

In the sample provided, boron makes up 59.4% of the total makeup.

What percentage of this sample contains boron?

We must first determine the overall mass of the sample and then the mass of boron in the sample in order to determine the percent composition of boron in the given sample.

Sample mass overall is 36.0 g.

Chlorine mass in the sample is 14.6 g.

The sample's boron weight is 21.4 g.

As a result, the sample's boron content can be determined using the formula:

% composition of boron is calculated as follows: (mass of boron / total mass of sample) x 100%; (21.4 g / 36.0 g) x 100%; % composition of boron = 0.594 x 100%; and % composition of boron = 59.4%

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which compound has only ionic bonds co2 al2o3 h2o2

Answers

The compound with only ionic bonds is Al₂O₃.

Ionic bonds occur between metals and non-metals, where electrons are transferred from the metal to the non-metal. In the given compounds, CO₂ has covalent bonds as both carbon and oxygen are non-metals.

H₂O₂ also has covalent bonds since hydrogen and oxygen are both non-metals. However, Al₂O₃ has ionic bonds as aluminum (Al) is a metal, and oxygen (O) is a non-metal.

The aluminum atoms lose electrons to the oxygen atoms, forming positively charged Al³⁺ ions and negatively charged O²⁻ ions. These ions then attract each other, forming the ionic compound Al₂O₃.

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enough of a monoprotic weak acid is dissolved in water to produce a 0.0143 m solution. the ph of the resulting solution is 2.66 . calculate the ka for the acid.

Answers

The Ka for the monoprotic weak acid is approximately 3.32 x [tex]10^{-5[/tex].

To calculate the Ka for the monoprotic weak acid, follow these steps:

1. Write the dissociation equation for the weak acid (HA) in water: HA <=> H+ + A-
2. Determine the concentration of H+ ions using the given pH. pH = -log[H+]. So, 2.66 = -log[H+]. Solve for [H+]: [H+] = [tex]10^{-2.66[/tex] ≈ 2.18 x [tex]10^{-3[/tex] M
3. Set up an ICE table (Initial, Change, Equilibrium) for the dissociation reaction:
  HA       <=>      H+       +      A-
  0.0143 - x   <=>  x     +    x
  0.0143 - x ≈ 0.0143 (since x is small compared to 0.0143)
4. Use the equilibrium expression for Ka: Ka = [H+][A-]/[HA]. Since [H+] = [A-] = x, and [HA] ≈ 0.0143, the equation becomes: Ka = [tex]x^2[/tex] / 0.0143
5. Plug in the value of x ([H+]) calculated in step 2: Ka = (2.18 x [tex](10^{-3} )^2[/tex]/ 0.0143
6. Calculate Ka: Ka ≈ 3.32 x [tex]10^{-5[/tex]

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what is the ph of a 0.0005m solution of (amphetamines)2so4(aq) at 25 ºc if the kb of amphetamine is 1.3 x 10–4?

Answers

The pH of a 0.0005 M solution of (amphetamines)₂SO₄(aq) at 25°C is approximately 6.89.

To find the pH of a 0.0005 M solution of (amphetamine)₂SO₄(aq) at 25°C, we need to first determine the concentration of the amphetamine ion, then use the Kb value to find the concentration of H₃O⁺ ions, and finally calculate the pH.

1. Determine the concentration of amphetamine ion:
In (amphetamine)₂SO₄, there are 2 amphetamine ions for every 1 sulfate ion. So, the concentration of amphetamine ions is 2 * 0.0005 M = 0.001 M.

2. Use the Kb value to find the concentration of H₃O⁺ ions:
Kb = [H₃O⁺][A⁻]/[AH]
Where A⁻ is the conjugate base of amphetamine and AH is the protonated amphetamine.

Rearranging the equation for [H₃O⁺]:
[H₃O⁺] = Kb * [AH]/[A⁻]

Since [AH] = [A⁻] (due to the stoichiometry of the reaction), we can simplify the equation:
[H₃O⁺] = Kb * [AH]

Now, we can plug in the values:
[H₃O⁺] = (1.3 x 10⁻⁴) * 0.001 M = 1.3 x 10⁻⁷ M

3. Calculate the pH:
pH = -log10[H₃O⁺]
pH = -log10(1.3 x 10⁻⁷) ≈ 6.89

Therefore, the pH of the 0.0005 M solution of (amphetamine)₂SO₄(aq) at 25°C is approximately 6.89.

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Describe how to prepare 100 ml of 0.200 m acetate buffer, ph 5.00, stating with pure liquid acetic acid and solutions containing 3m hcl and 3mnaoh

Answers

To prepare 100 mL of 0.200 M acetate buffer with a pH of 5.00, you'll need to mix appropriate amounts of acetic acid, 3 M HCl, and 3 M NaOH.

1. Calculate the required moles of acetate buffer: 0.200 M * 0.100 L = 0.020 moles.
2. Determine the ratio of acetic acid (CH₃COOH) to sodium acetate (CH₃COONa) using the Henderson-Hasselbalch equation: pH = pKa + log ([CH₃COONa] / [CH₃COOH]). The pKa of acetic acid is 4.74.
3. Calculate the required moles of CH₃COOH and CH₃COONa using the ratio from step 2.
4. Mix the required moles of CH₃COOH with an appropriate amount of 3 M HCl or 3 M NaOH to convert it into CH₃COONa.
5. Adjust the final volume to 100 mL with distilled water.

By following these steps, you'll create 100 mL of 0.200 M acetate buffer at a pH of 5.00 using pure liquid acetic acid, 3 M HCl, and 3 M NaOH.

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Use the bond energies in Table 7.2 to calculate the standard enthalpy change (∆H∘) of the following reaction. Your answer should be kJ. a. Cl2(g)⟶2Cl(g) b. 2N(g)⟶N2(g) c. CH4(g)+Cl2(g)⟶CH3Cl(g)+HCl(g) d. CH4(g)+2H2O(g)⟶4H2(g)+CO2(g)

Answers

Using the bond energies to calculate the standard enthalpy change (∆H₀) of the following reaction are:

Cl₂(g)⟶2Cl(g) ∆H₀ = 4.02 x 10⁻²² 2N(g)⟶N₂(g) ∆H₀ = 15.64 x 10⁻²²CH₄(g)+Cl₂(g)⟶CH₃Cl(g)+HCl(g) ∆H₀ = - 1.727 x 10⁻²²CH₄(g)+2H₂O(g)⟶4H₂(g)+CO₂(g) ∆H₀ = -6.37 x 10⁻²².

Bond Energy, commonly referred to as average bond enthalpy or just bond enthalpy, is a measurement that provides information about how strong a chemical bond is. "The average value obtained from the bond dissociation enthalpies (in the gaseous phase) of all the chemical bonds of a particular type in a given chemical compound," is how the word "bond energy" is defined by the IUPAC. As a result, the average amount of energy needed to break one of these chemical bonds may be thought of as the bond energy of a chemical bond in a specific molecule.

a) Cl₂(g)⟶2Cl(g)

∆H₀ = ( 242 kJmol-1)/Na = 4.02 x 10⁻²²

b) 2N(g)⟶N₂(g)

∆H₀ = ( 942 kJmol-1)/Na = 15.64 x 10⁻²²

c) CH₄(g)+Cl₂(g)⟶CH₃Cl(g)+HCl(g)

∆H₀ =(413+242-328-431)/Na = -1.727 x 10⁻²²

d) CH₄(g)+2H₂O(g)⟶4H₂(g)+CO₂(g)

∆H₀ =(( 4*413)+(4*463)-(4*436)-(2*1072))/Na = -6.37 x 10⁻²².

It is essential to remember that the average value of each chemical bond's individual bond dissociation enthalpies constitutes the bond energy of a chemical bond inside a molecule. The average of the bond dissociation energies of each individual carbon-hydrogen bond, for instance, determines the bond energy of the carbon-hydrogen bond in the methane (CH4) molecule.

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When we are on an airplane above the clouds, why does it look like we're passing up each cloud very slowly even though we're going about 500 mph?

Answers

Answer:

When we are on an airplane above the clouds, it can appear as if we're passing each cloud slowly because there is no frame of reference to judge our speed. Our eyes can't detect any movement on the ground, and there are no other objects in the sky to provide a sense of speed or motion. Additionally, clouds are often quite large, so it can take several minutes to pass over one even at high speeds. This can create the illusion that we're moving slowly, even though we're actually traveling at several hundred miles per hour. Our brains are not accustomed to seeing objects at such a high altitude and speed, so it can be difficult to accurately judge our motion relative to the clouds.

Write a Lewis structure and identify the octet-rule exception for each of the following: (select "expanded octet" or "electron deficient octet")
A. PF6LaTeX: -
B. ClO3
C. H3PO3
D. O3LaTeX: -
E. XeF2

Answers

The octet rule in chemistry asserts that in order to have an entire outer shell of eight electrons, atoms tend to obtain, lose, or share electrons.

However, there are some cases where this rule does not apply, resulting in compounds with an expanded or electron deficient octet.

A. [tex]PF_{6}[/tex]- has an expanded octet since the central phosphorus atom is bonded to six fluorine atoms, and has a total of 12 valence electrons in its valence shell.

B. [tex]ClO_{3}[/tex]- also has an expanded octet, as the central chlorine atom is bonded to three oxygen atoms and has a total of 10 valence electrons in its valence shell.

C. [tex]H_{3} PO_{3}[/tex]-has an electron deficient octet, as the central phosphorus atom is bonded to only three atoms and has a total of 10 valence electrons in its valence shell.

D. [tex]O_{3}[/tex]- has an electron deficient octet, as each oxygen atom is bonded to two other oxygen atoms, resulting in a central oxygen atom with only six valence electrons in its valence shell.

E. [tex]XeF_{2}[/tex] has an electron deficient octet, as the central xenon atom is bonded to two fluorine atoms and has a total of eight valence electrons in its valence shell.

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A balloon is inflated to 665 mL volume at 27°C. It is then cooled down to -78.5°C. What
is its volume, assuming the pressure remains constant?

Answers

Answer:

431 mL

Explanation:

This is a question about the relationship between the volume and temperature of a gas. The volume of a gas is directly proportional to its temperature in kelvins when the pressure is held constant. This relationship is described by Charles’s Law.

To solve this problem, we need to convert the temperatures from degrees Celsius to kelvins by adding 273.15. So 27°C is equivalent to 300.15 K and -78.5°C is equivalent to 194.65 K.

Let’s call the initial volume of the balloon V1 and its initial temperature T1. The final volume of the balloon will be V2 and its final temperature T2. According to Charles’s Law, the relationship between these variables can be expressed as:

V1/T1 = V2/T2

Substituting the known values into this equation, we get:

665 mL / 300.15 K = V2 / 194.65 K

Solving for V2, we find that the final volume of the balloon is approximately 431 mL.

Equation for free energy change associated with transport across a concentration gradient when a species is charged

Answers

The equation ΔG = RTln(C2/C1) + zFΔψ is commonly known as the Nernst equation and is used to calculate the free energy change associated with transport of a charged species across a membrane.

The Nernst equation for free energy change associated with transport across a concentration gradient when a species is charged is given by ΔG = RTln(C2/C1) + zFΔψ, where ΔG is the change in free energy, R is the gas constant, T is the temperature, C1 and C2 are the concentrations of the species on either side of the membrane, z is the charge of the species, F is the Faraday constant, and Δψ is the membrane potential. This equation takes into account both the concentration gradient and the electrical potential across the membrane, and shows that transport of a charged species is dependent on both factors. The concentration gradient is the difference in the concentration of the species on either side of the membrane. If the concentration of the species is higher on one side of the membrane than the other, then the species will tend to move from the side of higher concentration to the side of lower concentration. This movement of the species is known as diffusion.

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Identify the diatomic molecule that is ionic in its pure state.Identify the molecule or molecules containing polar covalent bonds.Please explain!!!

Answers

A diatomic molecule consists of two atoms bonded together. In its pure state, a diatomic molecule that is ionic would be lithium hydride (LiH).

This is because lithium (Li) loses an electron to become positively charged, while hydrogen (H) gains an electron to become negatively charged, resulting in an ionic bond.

Molecules containing polar covalent bonds are those where the atoms have differing electronegativities, causing an uneven distribution of electron density.

Examples of diatomic molecules with polar covalent bonds include hydrogen chloride (HCl), hydrogen fluoride (HF), and hydrogen bromide (HBr). In these cases, the halogens (Cl, F, Br) are more electronegative than hydrogen, leading to a polar bond where the electrons are closer to the halogen atoms.

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what is the ph of a 0.01 m solution of hbf4 , pka = −9. clearly show all your work or reasoning and put a box around your answer.

Answers

Hydrogen tetrafluoroborate (HBF4) is a strong acid with a pKa of -9. This means that in water, it will donate a proton to form the hydronium ion (H3O+). To find the pH of a 0.01 M solution of HBF4,

we need to calculate the concentration of H3O+ ions. HBF4 → H+ + BF4- Let x be the concentration of H+ ions produced in the solution.

[tex][H+][BF4-]/[HBF4] = Ka[H+][BF4-]/(0.01) = 10^-9[H+][BF4-] = 10^-11[/tex]

Since HBF4 dissociates completely, the concentration of H+ ions is equal to the concentration of HBF4. Therefore:

[tex][H+] = [HBF4] = 0.01 MpH = -log[H+]pH = -log(0.01)pH = 2[/tex]

Therefore, the pH of a 0.01 M solution of HBF4 is 2.

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(2S,5S)-2-bromo-5-chlorohexane
* Use only one equivalent of NaI
A) Draw the major SN2 product when the substrate above is treated with sodium iodie in acetone.
B) Name the product above.

Answers

A) The major SN2 product will be (2R,5S)-2-iodo-5-chlorohexane.
B) The name of the product is (2R,5S)-2-iodo-5-chlorohexane.

A) To draw the major SN2 product when (2S,5S)-2-bromo-5-chlorohexane is treated with one equivalent of sodium iodide (NaI) in acetone, follow these steps:
1. Identify the substrate: (2S,5S)-2-bromo-5-chlorohexane
2. Identify the nucleophile: Sodium iodide (NaI)
3. Choose the most reactive electrophilic site for the reaction: The bromine atom at the 2 position is more reactive than the chlorine atom at the 5 position because iodide is a better nucleophile than chloride.
4. Perform the SN2 reaction: The iodide ion (I-) will displace the bromine atom at the 2 position through an SN2 mechanism, inverting the stereochemistry at the carbon.
5. Draw the product: The major SN2 product will be (2R,5S)-2-iodo-5-chlorohexane.
B) The name of the product is (2R,5S)-2-iodo-5-chlorohexane.

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draw a dash-wedge structure for (2r,4s)-2,4-dibromo-2-chloropentane.

Answers

To draw the dash-wedge structure for (2R,4S)-2,4-dibromo-2-chloropentane, we first need to understand the stereochemistry of the molecule.



The prefix (2R,4S) tells us that the two bromine atoms are on the same side (cis) of the molecule, while the chlorine atom is on the opposite side (trans).

Now, let's draw the structure:

1. Start with the structure of pentane:

   CH3CH2CH2CH2CH3

2. Replace one of the hydrogen atoms on the second carbon with a chlorine atom:

   CH3CH(Cl)CH2CH2CH3

3. Next, we need to add the two bromine atoms, which are both on the same side (cis) of the molecule. We'll add them to carbons 2 and 4:

   CH3CH(Cl)CH(Br)CH2(Br)CH3

4. Finally, we need to assign the stereochemistry. Since the bromine and chlorine atoms are both attached to chiral carbons (carbons 2 and 4), we need to use dashes and wedges to show their orientation in 3D space.

   The chlorine atom is on the opposite side (trans) of the molecule, so we draw it as a wedge:

        Cl

        |
   CH3C---H

        |
        CH2

        |
   CH3C---H

   The two bromine atoms are on the same side (cis) of the molecule, so we draw them as dashes:

        Br

        |
   CH3C---H

        |
        CH(Br)

        |
   CH3C---H

I hope this helps! Let me know if you have any other questions.

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A weak acid HA is titrated with strong base. Halfway to the equivalence point, the pH of the solution is 7. What is the value of pKa for HA?Express your answer using at least three significant figures. Do not use scientific notation.

Answers

The value of pKa for the weak acid HA in this scenario is 7.  To determine the value of pKa for a weak acid HA titrated with a strong base halfway to the equivalence point with a pH of 7, follow these steps:


Step:1. Recall that at the halfway point of the titration, [HA] = [A-], where A- is the conjugate base.
Step:2. Use the Henderson-Hasselbalch equation: pH = pKa + log ([A-]/[HA])
Step:3. Since [HA] = [A-], the ratio [A-]/[HA] is equal to 1.
Step:4. Simplify the equation by taking the log of 1, which is 0: pH = pKa + 0
Step:5. In this case, the pH is given as 7, so the equation becomes: 7 = pKa


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what are the product(s) from the reaction of compound a with kmno4 in acid?Dicarboxylic AcidCarboxylic Acid and CO2Ketone and AldehydeKetone and CO2

Answers

The product from the reaction of compound A with KMnO₄ in acid would be dicarboxylic acid, carboxylic acid, and CO₂  (Option A).

KMnO₄ in acid is a strong oxidizing agent that would convert any aldehyde or ketone functional groups into carboxylic acid functional groups. In the case of compound A, which has two carbonyl functional groups, both of them would be converted into carboxylic acid functional groups, resulting in the formation of dicarboxylic acid. The reaction would also produce CO₂ as a byproduct. Therefore, the product(s) from the reaction of compound A with KMnO₄ in acid are dicarboxylic acid, carboxylic acid, and CO₂.

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2. How many grams of Pbl2 can be dissolved in a 500 mL of a 0.050 M Nal solution? Use activities to calculate your answer. Possibly useful information: The temperature is 25 °C. Ksp of Pbl2 is 7.9 x 10-9 at 25 °C. FW of Pbl2 is 461.01 g/mol. FW of Nal is 149.89 g/mol. = = } C ([A]ZĂ + [B]Z+ [C]Z? +...) logy -0.51 Z3 Vu 1+x/305) K2CNaha tkw [H3O+]= V1+Cnaha / Kal

Answers

The solubility of [tex]Pbl_{2}[/tex] in a 0.050 M Nal solution can be calculated using the following equation: 0.028 g of [tex]Pbl_{2}[/tex] can dissolve in 500 mL of a 0.050 M Nal solution at 25°C.

Ksp = [[tex]Pb_{2} ^{+}[/tex]][[tex]2I^{-}[/tex]]

where Ksp is the solubility product constant for [tex]Pbl_{2}[/tex], and [[tex]Pb_{2} ^{+}[/tex]] and [[tex]I^{-}[/tex]] are the molar concentrations of [tex]Pb_{2} ^{+}[/tex] and I- ions, respectively, in solution. Since Nal dissociates completely in solution, we can assume that the molar concentration of [tex]I^{-}[/tex] is equal to the molar concentration of Nal.

Let x be the molar solubility of [tex]Pbl_{2}[/tex] in the Nal solution. Then, at equilibrium, the molar concentrations of [tex]Pb_{2} ^{+}[/tex] and I- are both equal to x. Using the expression for Ksp and the molar concentration of Nal, we can write:

Ksp = x * (2x)

0.050 M = [Nal] = [[tex]I^{-}[/tex]] = x

Solving for x, we get:

x = sqrt(Ksp/2) = sqrt(7.9 x [tex]10^{-9/2}[/tex]) = 1.25 x [tex]10^{-4}[/tex] M

The mass of [tex]Pbl_{2}[/tex] that can dissolve in 500 mL of this solution can be calculated as:

mass of [tex]Pbl_{2}[/tex] = molar solubility x volume of solution x FW of [tex]Pbl_{2}[/tex]

mass of [tex]Pbl_{2}[/tex] = (1.25 x [tex]10^{-4}[/tex] M) x (0.500 L) x (461.01 g/mol) = 0.028 g

Therefore, 0.028 g of [tex]Pbl_{2}[/tex] can dissolve in 500 mL of a 0.050 M Nal solution at 25°C.

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Rank the following compounds in order of increasing strength of intermolecular forces. HF
HCI
H2
F2 Select one:
(A) H2 < HCI < HF < F2
(B) HF < F2 < HCI < H2
(C) H2< F2 < HCI < HE
(D) HCI < HF < < F2 < H2

Answers

Compounds in order of increasing strength of intermolecular forces H2 < HCI < HF < F2

The strength of intermolecular forces depends on the type of forces present. Hydrogen bonds are the strongest, followed by dipole-dipole interactions, and then London dispersion forces. H2 and F2 have nonpolar covalent bonds, so they only exhibit London dispersion forces. Since H2 has a smaller molar mass than F2, it has weaker London dispersion forces.

HCl is a polar molecule, resulting in dipole-dipole interactions, which are stronger than London dispersion forces. HF forms hydrogen bonds, which are the strongest intermolecular forces among the given compounds. The presence of F, a highly electronegative element, enables HF to form strong hydrogen bonds, resulting in the highest intermolecular force strength.

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A precipitation reaction occurs when a solution of potassium carbonate is reacted with aqueous magnesium chloride. Write a balanced total molecular equation for this reaction. Identify the spectator ions in the reaction. Write a balanced net ionic equation for the reaction. Be sure to include states of matter.

Answers

The total molecular equation for the precipitation reaction between a solution of potassium carbonate and aqueous magnesium chloride is: K₂CO₃(aq) + MgCl₂ (aq) → MgCO₃ (s) + 2KCl (aq).

The spectator ions in this reaction are K+ and Cl-. The net ionic equation for the reaction is: Mg²+ (aq) + CO₃2- (aq) → MgCO₃ (s).

The reaction involves the precipitation of magnesium carbonate, which is the solid product of the reaction. This occurs when the anion of one reactant, carbonate, is combined with the cation of the other reactant, magnesium.

The spectator ions, which are ions that do not directly participate in the reaction, are K+ and Cl-, which come from the potassium carbonate and magnesium chloride, respectively. The net ionic equation shows the actual reaction taking place between the magnesium cation and the carbonate anion.

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16.047 g of nh4cl(s) (mw = 53.45, kb nh3 = 1.79 × 10-5) is added to 25 ml of 6 m naoh(aq) (mw = 40). assume the volume of the solution stays constant, what is the ph of the resulting solution?

Answers

the pH of the solution after 5.00 mL of 0.125 M HClO4 have been added is 12.98.

The balanced chemical equation for the reaction between KOH and HClO4 is:

KOH + HClO4 -> KClO4 + H2O

From this equation, we can see that the stoichiometry of the reaction is 1:1, which means that 1 mole of HClO4 reacts with 1 mole of KOH.

To calculate the pH of the solution after each addition of HClO4, we need to determine how many moles of HClO4 have been added and how many moles of KOH remain in solution.

At the start of the titration, the number of moles of KOH in the sample is:

moles of KOH = concentration × volume = 0.150 mol/L × 0.0200 L = 0.00300 mol

When we add x moles of HClO4, they will react completely with x moles of KOH. Therefore, the number of moles of KOH remaining in solution after x moles of HClO4 have been added is:

moles of KOH remaining = 0.00300 mol - x mol

The volume of HClO4 required to react completely with all the KOH is given by:

moles of HClO4 = moles of KOH = 0.00300 mol

volume of HClO4 = moles of HClO4 / concentration of HClO4 = 0.00300 mol / 0.125 mol/L = 0.0240 L

So, we need 0.0240 L of 0.125 M HClO4 to react completely with the KOH in the sample.

To calculate the pH after a certain volume of HClO4 has been added, we can use the following steps:

1. Calculate the number of moles of HClO4 that have been added.
2. Calculate the number of moles of KOH remaining in solution.
3. Calculate the total volume of the solution after the HClO4 has been added.
4. Calculate the concentration of the remaining KOH.
5. Calculate the pOH of the solution using the concentration of the remaining KOH.
6. Calculate the pH of the solution using the formula pH = 14 - pOH.

For example, if 5.00 mL of 0.125 M HClO4 have been added, the number of moles of HClO4 added
is:

moles of HClO4 = concentration × volume = 0.125 mol/L × 0.00500 L = 0.000625 mol

The number of moles of KOH remaining in solution is:

moles of KOH remaining = 0.00300 mol - 0.000625 mol = 0.00238 mol

The total volume of the solution after the HClO4 has been added is:

total volume = initial volume + volume of HClO4 = 20.0 mL + 5.00 mL = 25.0 mL = 0.0250 L

The concentration of the remaining KOH is:

concentration of KOH = moles of KOH remaining / total volume = 0.00238 mol / 0.0250 L = 0.0952 mol/L

The pOH of the solution is:

pOH = -log[OH-] = -log(0.0952) = 1.020

The pH of the solution is:

pH = 14 - pOH = 14 - 1.020 = 12.98

Therefore, the pH of the solution after 5.00 mL of 0.125 M HClO4 have been added is 12.98.
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Calculate the pOH of a solution that contains 3.9 x 10-6 M H3O+ at 25°C.
Here is what I have worked out so far:
(3.9*10^-6)[OH-] = (1.0*10^-14)
[OH-] = (1.0*10^-14) / (3.9*10^-6) = 2.56*10^-9
pOH = -log[OH-]
pOH = -log(2.56*10^-9) = 19?
with a result > 14 I don't think It's correct and am not sure what I am doing wrong.

Answers

The pOH of the solution containing 3.9 x 10-6 M H3O+ at 25°C is approximately 8.59.

To calculate the pOH of a solution that contains 3.9 x 10-6 M H3O+ at temperature 25°C, follow these steps:

1. First, we need to determine the pH of the solution using the H3O+ concentration. The pH is calculated using the formula: pH = -log[H3O+], where [H3O+] is the concentration of hydronium ions.
2. Plug in the H3O+ concentration: pH = -log(3.9 x 10-6)
3. Calculate the pH: pH ≈ 5.41
4. Next, we'll find the pOH using the relationship between pH and pOH at 25°C. For this temperature, the sum of pH and pOH is always 14: pH + pOH = 14
5. Solve for pOH: pOH = 14 - pH
6. Substitute the calculated pH value: pOH = 14 - 5.41
7. Calculate the pOH: pOH ≈ 8.59
So, the pOH of the solution containing 3.9 x 10-6 M H3O+ at 25°C is approximately 8.59.

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if 25.0 ml of 0.19 m nh3 (kb = 1.8 x 10-5) is used to titrate 0.048 l of 0.33 m hci, the ph is

Answers

The pH of the solution at the end of the titration is 9.32.

To solve this problem, we will use the balanced chemical equation for the reaction between NH3 and HCl:

NH3 (aq) + HCl (aq) → NH4Cl (aq)

From this equation, we can see that one mole of NH3 reacts with one mole of HCl to form one mole of NH4Cl. Therefore, we can use the following equation to determine the number of moles of HCl that react with the given amount of NH3:

moles of HCl = (volume of HCl) × (molarity of HCl)

moles of HCl = 0.048 L × 0.33 mol/L = 0.01584 mol

Since NH3 and HCl react in a 1:1 mole ratio, the number of moles of NH3 used in the titration is also 0.01584 mol.

Now we can use the equilibrium constant expression for the reaction between NH3 and water to determine the concentration of OH- ions produced by the reaction of NH3 with water:

Kb = [NH4+][OH-]/[NH3]

Since we are given the initial concentration of NH3, we can assume that the concentration of NH3 at equilibrium is approximately equal to the initial concentration. Therefore:

Kb = [NH4+][OH-]/(0.19 M)

The concentration of NH4+ can be assumed to be negligible compared to the concentration of NH3. Therefore, we can simplify the expression:

Kb = [OH-]^2/(0.19 M)

Solving for [OH-], we get:

[OH-] = sqrt(Kb × 0.19 M) = sqrt(1.8 × 10^-5 × 0.19) = 1.53 × 10^-3 M

Now we can use the fact that NH3 is a weak base and that the reaction between NH3 and HCl is an acid-base neutralization reaction to determine the pH of the solution at the end of the titration. At the equivalence point, all of the NH3 has reacted with the HCl to form NH4Cl. Therefore, the concentration of NH3 at the equivalence point is zero, and the concentration of NH4+ is equal to the number of moles of NH3 used in the titration divided by the total volume of the solution:

[NH4+] = (0.01584 mol)/(0.025 L + 0.048 L) = 0.161 M

Now we can use the fact that NH4+ is a weak acid and that the equilibrium constant expression for its reaction with water is:

Ka = [NH3][H+]/[NH4+]

Since we know the concentration of NH4+ and we can assume that the concentration of NH3 at equilibrium is approximately equal to its initial concentration, we can simplify the expression:

Ka = [NH3][H+]/(0.161 M)

Solving for [H+], we get:

[H+] = Ka × (0.161 M)/[NH3] = (5.7 × 10^-10) × (0.161 M)/(0.19 M) = 4.83 × 10^-10 M

Finally, we can calculate the pH of the solution using the pH formula:

pH = -log[H+] = -log(4.83 × 10^-10) = 9.32

Therefore, the pH of the solution at the end of the titration is 9.32.

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what is the molar solubility of pbi2 (ksp = 8.4 x 10-9) in a solution containing 0.15 m ki(aq)?

Answers

The molar solubility of PbI₂ in the 0.15 M KI solution is approximately 2.49 × 10⁻⁷ M.

To find the molar solubility of PbI₂ in a solution containing 0.15 M KI(aq), we first need to write the balanced equation for the dissociation of PbI2:

PbI₂ (s) ⇌ Pb²⁺ (aq) + 2I⁻ (aq)

The Ksp expression for this reaction is:

Ksp = [Pb²⁺ ][I⁻]² = 8.4 x 10⁻⁹

We can use the common ion effect to calculate the molar solubility of PbI₂ in the presence of 0.15 M KI(aq). Since KI(aq) contains I⁻ ions, we can assume that the concentration of I- ions from PbI₂ will be reduced by 0.15 M.
Let's call the molar solubility of PbI₂ in the presence of KI(aq) "x". Then, the equilibrium concentration of Pb2+ will be "x" and the equilibrium concentration of I- will be "2x - 0.15". We can substitute these values into the Ksp expression and solve for "x":
Ksp = [Pb²⁺ ][I⁻]²
8.4 x 10⁻⁹ = x(2x - 0.15)²

Solving for "x" gives us:
x = 5.5 x 10⁻⁷M

Therefore, the molar solubility of PbI2 in a solution containing 0.15 M KI(aq) is 5.5 x 10⁻⁷M.

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Which salt would form an acidic solution when dissolved in water? The Ka of NH: is 5.6 × 10-10 and the Kb of CN-is 1.6×10- Select the correct answer below ○ NH,CN O Naci O NH, Br O More than one solution will be acidic.

Answers

The salt that would form an acidic solution when dissolved in water is NH₄CN.

Why would NH₄CN form an acidic solution when dissolved in water?

NH₄CN consists of the ammonium ion (NH⁴⁺) and the cyanide ion (CN⁻). NH⁴⁺ is the conjugate acid of NH₃ (ammonia. Ammonia is commonly recognised as a weak base. CN⁻ is the conjugate base of HCN (hydrogen cyanide), which is a weak acid.

The Ka of NH⁴⁺ is 5.6 × 10-10, which means that NH⁴⁺ is a weak acid. The Kb of CN⁻ is 1.6 × 10-5, which means that CN⁻ is a weak base.

When NH₄CN  is dissolved in water, NH⁴⁺ can donate a proton to water to form H3O⁺ (hydronium ion) and NH₃, making the solution acidic.

Therefore, NH₄CN would form an acidic solution when dissolved in water.

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Determine whether the following are polar: a. OCS b. XeF4 c. IF4 + ( + ) d. IF4- ( -)

Answers

OCS, IF4+(+), IF4-(-) They are Polar mplecules.

a. OCS (carbonyl sulfide) is a polar molecule. The OCS molecule has a linear shape with the oxygen atom (O) in the center, and the carbon (C) and sulfur (S) atoms on either side. The oxygen atom is more electronegative than both the carbon and sulfur atoms, resulting in an unequal distribution of charge and creating a permanent dipole moment. Therefore, OCS is a polar molecule.

b. XeF4 (xenon tetrafluoride) is a nonpolar molecule. The XeF4 molecule has a square planar shape with the xenon (Xe) atom in the center and four fluorine (F) atoms surrounding it. The xenon atom and fluorine atoms have similar electronegativities, resulting in an equal distribution of charge and no permanent dipole moment. Therefore, XeF4 is a nonpolar molecule.

c. IF4+ (iodine tetrafluoride cation) is a polar molecule. The IF4+ ion has a square planar shape with the iodine (I) atom in the center and four fluorine (F) atoms surrounding it. The iodine atom is more electronegative than the fluorine atoms, resulting in an unequal distribution of charge and creating a permanent dipole moment. Therefore, IF4+ is a polar molecule.

d. IF4- (iodine tetrafluoride anion) is a polar molecule. The IF4- ion also has a square planar shape with the iodine (I) atom in the center and four fluorine (F) atoms surrounding it. The iodine atom is more electronegative than the fluorine atoms, resulting in an unequal distribution of charge and creating a permanent dipole moment.

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0.175 moles of calcium nitrate are dissolved in a total of 50.00 ml of solution. a) calculate the molarity of the solution. b) how many grams of calcium nitrate are dissolved in this solution?

Answers

a) To calculate the molarity of the solution, use the formula: Molarity = moles of solute / volume of solution in liters.


Given 0.175 moles of calcium nitrate and 50.00 mL of solution, first convert the volume to liters: 50.00 mL * (1 L / 1000 mL) = 0.050 L, Now, calculate the molarity: Molarity = 0.175 moles / 0.050 L = 3.50 M. So, the molarity of the solution is 3.50 M.

(b) To find the grams of calcium nitrate dissolved in the solution, first determine the molar mass of calcium nitrate (Ca(NO₃)₂):
Ca = 40.08 g/mol
N = 14.01 g/mol
O = 16.00 g/mol.



Molar mass of Ca(NO₃)₂ = 40.08 + 2(14.01 + 3(16.00)) = 164.10 g/mol
Now, multiply the moles of calcium nitrate by its molar mass: 0.175 moles * 164.10 g/mol = 28.7175 g
Therefore, 28.72 grams of calcium nitrate are dissolved in the solution (rounded to two decimal places).

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what is the pe value in an acid mine water sample having [fe3 ] = 7.03e-3m and [fe2 ]=3.71e-4m? fe3 e- fe2 pe° = 13.2

Answers

The pe value in the acid mine water sample is approximately 12.641.

To calculate the pe value in an acid mine water sample, we can use the Nernst equation:

pe = pe° + (RT/nF) ln([Fe[tex]^{2+}[/tex]]/[Fe[tex]_{3+}[/tex]])

Given that [Fe3+] = 7.03e-3 M and [Fe[tex]^{2+}[/tex]] = 3.71e-4 M, and pe° = 13.2, we can substitute these values into the equation and solve for pe:

pe = 13.2 + (RT/nF) ln(3.71e-4/7.03e-3)

At room temperature (25°C), the gas constant R = 8.314 J/K/mol, the Faraday constant F = 96,485 C/mol, and n = 2 (since the reaction involves the transfer of 2 electrons). Plugging in these values, we get:

pe = 13.2 + (8.314×298/2/96485) ln(3.71e-4/7.03e-3)
  = 13.2 + (-0.559)
  = 12.641

Therefore, approximately 12.641 is the pe value in the acid mine water sample.

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consider the titration of 30 ml of 0.45 m hi with 0.75 m rboh. a. what is the ph at the equivalence point? b. what is ph after 5 ml of rboh has been added?

Answers

bThe salt sodium formate can be found at the equivalency point. At pH 7.0, a strong acid or base will titrate to their equivalent point. Although the pH at the equivalence point is larger or lower than 7.0 in titrations of weak acids or bases, respectively.

The solution's pH will be (log 5 0.7CH3COOH = 4.76), which is the equivalency point. 0.200 M HBr, a potent acid, serves as the titrant. NaOH has a high base strength, hence the equivalence point will have a pH of 7. As a result, pH = 7 and H = 7.When 0.100M hydroxyacetic acid and 0.0500M KOH are titrated, the pH at the equivalence point is 8.18.

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