the lid is tightly sealed on a rigid flask containing 3.50 l h2 at 17 °c and 0.913 atm. if the flask is heated to 71 °c, what is the pressure in the flask?

Answers

Answer 1

The pressure in the flask will increase due to the increase in temperature.  Since the flask is rigid, the volume remains constant (V1 = V2). Given the initial conditions: P1 = 0.913 atm, V1 = 3.50 L, T1 = 17°C (290 K), and the final temperature T2 = 71°C (344 K).To find the new pressure, we can use the combined gas law, which states:

(P1V1)/T1 = (P2V2)/T2

where P1, V1, and T1 are the initial pressure, volume, and temperature, and P2 and T2 are the final pressure and temperature.

First, we need to convert the initial temperature to Kelvin by adding 273.15:

T1 = 17 + 273.15 = 290.15 K

The initial volume is given as 3.50 L, and the initial pressure is 0.913 atm. We can substitute these values into the equation and solve for P2:

(0.913 x 3.50)/290.15 = (P2 x 3.50)/344

P2 = (0.913 x 3.50 x 344)/290.15

P2 = 4.09 atm

Therefore, the pressure in the flask will increase from 0.913 atm to 4.09 atm when the temperature is raised from 17 °C to 71 °C, assuming the lid remains tightly sealed on the rigid flask.

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Related Questions

Draw the Lewis Structure for NH2CH2CO2H. Now answer the following questions based on your Lewis structure: (Enter an integer value only.) # single bonds in the entire molecule
______
#double bonds in the entire molecule
______ #lone pairs in the entire molecule _______

Answers

The Lewis structure for NH2CH2CO2H is:

  H    H   :O:
   |      |     ||
: N  - C  - C  - :O: - H
   |      |
  H    H

There are:

- 8 single bonds in the entire molecule.
- 1 double bond in the entire molecule (between the C and O atoms)
- 5 lone pairs in the entire molecule (one on N, and two on each O atom)

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1. iodinium ion, i , is a less reactive electrophile than bromonium ion, br . explain why

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The larger size and more diffuse positive charge of the iodinium ion make it a less reactive electrophile than the bromonium ion.

The reactivity of an electrophile is determined by its ability to accept a pair of electrons and form a chemical bond with a nucleophile.

In the case of the iodinium ion (I+), the positive charge is distributed over a larger atomic radius compared to the bromonium ion (Br+), due to the larger size of the iodine atom. This means that the positive charge is more diffuse in the iodinium ion, making it less effective in attracting electrons and forming bonds with nucleophiles.

In contrast, the bromonium ion has a more compact positive charge due to the smaller size of the bromine atom, which allows it to attract electrons more effectively and react more readily with nucleophiles.

Additionally, the iodinium ion is a weaker oxidizing agent than the bromonium ion, as the larger size of the iodine atom makes it more difficult to lose an electron and form a higher oxidation state

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5) what is a difference between a concentration-sensitive and mass-sensitive detector? give an example of each.

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A concentration-sensitive detector is one that responds to changes in the concentration of a substance being analyzed.

An example of a concentration-sensitive detector is a flame ionization detector (FID) used in gas chromatography. FID detects changes in the concentration of hydrocarbons in a gas sample by measuring the current generated by the ionization of the hydrocarbons.

On the other hand, a mass-sensitive detector is one that responds to changes in the mass of a substance being analyzed. An example of a mass-sensitive detector is a quartz crystal microbalance (QCM) used in surface analysis. QCM detects changes in the mass of a surface by measuring the change in frequency of a quartz crystal resonator caused by the adsorption or desorption of molecules on the surface.

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question 6 ©gmu 2020_693727_1given the following nmr spectra for a product you will learn how to make from lecture, decide what the most likely compound is.©gmu 2020

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To determine the most likely compound from the given NMR spectra, we need to analyze the peaks and chemical shifts. The NMR spectra provides information about the types and number of hydrogen atoms present in the compound. By examining the spectra, we can identify the functional groups and their positions in the molecule.

The spectra can provide us with the chemical shifts, which is the relative position of a peak with respect to a reference signal. The chemical shifts can tell us about the electron density around the nucleus and the chemical environment of the hydrogen atoms.

We also need to look at the integration values, which represent the relative number of hydrogen atoms present in each group. The integration values can help us determine the ratio of hydrogen atoms and the overall structure of the molecule.

Based on the given NMR spectra, we can determine the most likely compound by analyzing the chemical shifts and integration values. By comparing the spectra to a database of known compounds, we can identify the possible functional groups present in the molecule. We can also use techniques such as coupling constants and multiplicity to further narrow down the possibilities.

Overall, the NMR spectra is a powerful tool for identifying and characterizing compounds. By carefully analyzing the spectra, we can gain valuable insights into the structure and properties of the molecule.

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Suppose you have 838 mL of a 0.85 MM solution of a weak base and that the weak base has a pKb of 8.50. Calculate the pH of the solution after the addition of 0.92 mol HCl. Approximate no volume change.

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The pH of 838 mL of a 0.85 MM solution of a weak base that has a pKb of 8.50 after the addition of 0.92 mol HCl is 10.16.

To solve this problem, we can use the Henderson-Hasselbalch equation, which relates the pH of a solution containing a weak acid/base and its conjugate acid/base to their dissociation constant (pKa or pKb) and the ratio of their concentrations.

First, we need to find the concentration of the weak base in the solution. We can use the formula:

C = n/V

where C is the concentration (in mol/L), n is the amount of solute (in mol), and V is the volume of the solution (in L).

Since we have 838 mL of a 0.85 mM solution, we can convert mL to L and get:

V = 838 mL x (1 L / 1000 mL)

= 0.838 L

Next, we can use the molarity (mmol/L) to convert to moles (mol):

n = C x V

= 0.85 mmol/L x 0.838 L

= 0.7133 mol

So, the initial concentration of the weak base is:

[Base] = n/V

= 0.7133 mol / 0.838 L

= 0.849 M

Now, we can calculate the pH of the solution after the addition of 0.92 mol HCl. Since HCl is a strong acid, it will completely dissociate in water, producing H⁺ ions and Cl⁻ ions. The H⁺ ions will react with the weak base, forming its conjugate acid.

The balanced chemical equation for this reaction is:

Base + H⁺ → Conjugate acid

We can use stoichiometry to find the amount of conjugate acid produced. Since the ratio of HCl to H⁺ ions is 1:1, we know that 0.92 mol of H⁺ ions will be produced. Since the weak base is the limiting reagent, it will react completely with the H₊ ions, producing the same amount of conjugate acid:

0.7133 mol Base x (0.92 mol H+ / 1 mol Base)

= 0.6564 mol Conjugate acid

The final concentration of the weak base will be:

[Base] = (0.7133 mol - 0.6564 mol) / 0.838 L

= 0.067 M

The final concentration of the conjugate acid will be:

[Conjugate acid] = 0.6564 mol / 0.838

= 0.782 M

Now, we can use the Henderson-Hasselbalch equation to find the pH of the solution:

pH = pKb + log([Conjugate acid] / [Base])

pKb = 8.50 (given)

[Conjugate acid] = 0.782 M

[Base] = 0.067 M

pH = 8.50 + log(0.782 / 0.067)

= 8.50 + 1.662

= 10.16

Therefore, the pH of the solution after the addition of 0.92 mol HCl is approximately 10.16.

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describe a method to determine the melting point of a protein.

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The melting point corresponds to the midpoint of this transition, indicating the temperature at which the protein is half-folded and half-unfolded.

To determine the melting point of a protein, a common method is to use differential scanning calorimetry (DSC). DSC measures the heat absorbed or released by a sample as it is heated or cooled. The melting point of a protein is the temperature at which the protein starts to unfold, resulting in an endothermic (heat-absorbing) peak on a DSC thermogram. This method provides accurate and reproducible results, and can also provide information on the protein stability and structural changes during melting. Another method to determine the melting point is to use circular dichroism (CD) spectroscopy, which measures changes in the secondary structure of the protein as it is heated. The melting point can be determined by monitoring the decrease in the CD signal at a specific wavelength, indicating the loss of secondary structure. However, this method requires purified protein and may not be as accurate as DSC.
To determine the melting point of a protein, you can use a method called differential scanning calorimetry (DSC). DSC measures the heat capacity of the protein as a function of temperature, allowing you to identify the temperature at which the protein undergoes a conformational change, typically from its native folded state to a denatured state. The melting point corresponds to the midpoint of this transition, indicating the temperature at which the protein is half-folded and half-unfolded.

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prepare two test solutions by adding ~10 drops of indicator solution to about 5 ml of deionized water in two separate test tubes. save one as a reference. note the color.

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To prepare two test solutions, you will have to add approximately 5 ml of deionized water to each of the test tubes. Then, add around 10 drops of the indicator solution to each test tube, each with a slightly different color depending on the type of indicator used. To save one of the test solutions as a reference, simply set aside one of the test tubes without adding anything else to it.

How to prepare standard solutions?


1. Obtain two clean test tubes.
2. Measure approximately 5 ml of deionized water and pour it into each test tube.
3. Add around 10 drops of indicator solution to each test tube containing deionized water.
4. Gently mix the contents of each test tube.
5. Save one test tube as a reference, meaning you will not perform any further tests or changes to this tube. This reference will help you compare the color changes in your experiments.
6. Observe and note the color of the solution in each test tube, which should be the same at this point.

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True or False: An ideal gas is defined as any gas that obeys the kinetic molecular theory postulates. True False Question 2 1 pts True or False: The value of the ideal gas constant does not depend on the units used. C True False

Answers

True. An ideal gas is defined as any gas that obeys the kinetic molecular theory postulates.

False. The value of the ideal gas constant does depend on the units used. The most common units used are the SI units, where the value of the ideal gas constant is R = 8.31 J/mol*K. However, if different units are used, such as calories or atmospheres, then the value of the ideal gas constant will be different.
Hi! I'm happy to help you with these questions.

Question 1: True or False: An ideal gas is defined as any gas that obeys the kinetic molecular theory postulates.
Answer: True

Question 2: True or False: The value of the ideal gas constant does not depend on the units used.
Answer: False

An ideal gas is a theoretical gas composed of a large number of small particles that are in constant, random motion. In an ideal gas, the particles have negligible volume and do not interact with each other except in perfectly elastic collisions. The pressure, volume, temperature, and number of particles of an ideal gas are related by the Ideal Gas Law, which is given by the equation:

PV = nRT

where P is the pressure of the gas, V is the volume of the gas, n is the number of particles (in moles), R is the ideal gas constant, and T is the temperature of the gas in kelvins.

An ideal gas is an important concept in thermodynamics and is used as a standard model for real gases under certain conditions. Although no gas is truly ideal, many gases behave like an ideal gas under certain conditions of temperature and pressure.

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for a particular reaction at 170.2170.2 °c, δ=−977.58 kj/molδg=−977.58 kj/mol , and δ=228.69 j/(mol⋅k)δs=228.69 j/(mol⋅k) . calculate δg for this reaction at −3.7−3.7 °c.

Answers

The standard free energy change for the reaction at -3.7°C is -1037.46 kJ/mol.

The standard free energy change for a chemical reaction is given by the formula:

ΔG° = ΔH° - TΔS°

where ΔH° is the standard enthalpy change, ΔS° is the standard entropy change, T is the temperature in Kelvin, and ΔG° is the standard free energy change.

To calculate ΔG for the given reaction at -3.7°C, we need to convert the temperature to Kelvin:

T = (−3.7°C + 273.15) K = 269.45 K

Given:

ΔH = -977.58 kJ/mol

ΔS = 228.69 J/(mol·K)

To use the above equation, we need to convert ΔH to J/mol and divide by 1000 to convert it to kJ/mol:

ΔH = -977.58 × 1000 J/mol = -977580 J/mol

Now we can substitute the given values into the equation and calculate ΔG:

ΔG° = ΔH° - TΔS°

ΔG° = (-977580 J/mol) - (269.45 K)(228.69 J/(mol·K))

ΔG° = -977580 J/mol - 61879 J/mol

ΔG° = -1037459 J/mol

Finally, we can convert the result to kJ/mol:

ΔG° = -1037.46 kJ/mol

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How many moles of argon are there in a 22.4 L sample of gas at 101.3 kPa and
0°C?

Show your work

Answers

Answer:

0.9994 moles of Ar

Explanation:

Convert kPa to atm. 101.3 kPa is equal to approximately 1.0 atm.

Convert Temperature to kelvin K = 273 + C = 273 + 0 = 273K

R = 0.0821

Then use the gas law equation

PV = nRT, where p is pressure 1.0 atm, V is volume 22.4 L, and T is Temperature in Kelvin.

(1.0)(22.4)=n(0.0821)(273)

n = 0.9994 moles of Ar (Argon)

A block of aluminum metal, initially at 95.0°C is submerged into 126g of water at 20.1°C. The final temperature of the mixture is 23.7°C. What is the mass of the aluminum metal? The specific heat capacity of aluminum is 0.903 J/gºC and the specific heat capacity of water is 4.184 J/gºC. Report answer without any units and to the correct number of significant figures.

Answers

The mass of the aluminum metal that initially at 95.0°C is is submerged into 126g of water at 20.1°C is 29.4 grams.

To find the mass of the aluminum metal, we can use the formula for heat transfer: Q = mcΔT, where Q is the heat transferred, m is the mass, c is the specific heat capacity, and ΔT is the change in temperature.

Since energy is conserved, the heat lost by the aluminum block is equal to the heat gained by the water. Therefore, we have:

m_aluminum * c_aluminum * (95.0 - 23.7)

= 126g * c_water * (23.7 - 20.1)

Let's solve for the mass of the aluminum block (m_aluminum):

m_aluminum * 0.903 J/gºC * (71.3ºC) = 126g * 4.184 J/gºC * (3.6ºC)

m_aluminum * 64.3 J/g

= 1893.2 J

Now, we can solve for m_aluminum:

m_aluminum = 1893.2 J / 64.3 J/g

≈ 29.4g

Thus, the mass of the aluminum metal is approximately 29.4 grams.

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An aqueous sample is known to contain Pb. Cu, or Na ions. Treatment of the sample with both NaOH and LiCI solution produces a precipitate. A. Which of the metal cations does the solution contain? Explain your reasoning. B. Write all net ionic equations that could occur to justify your reasoning.

Answers

Hi! Based on the information provided, the aqueous sample contains either Pb, Cu, or Na ions, and it forms a precipitate when treated with NaOH and LiCl solutions.

A. The metal cation present in the solution is most likely Pb²⁺ (lead) or Cu²⁺ (copper). This is because both of these metal cations form precipitates when treated with hydroxide ions (OH⁻) from the NaOH solution. Pb²⁺ forms lead(II) hydroxide (Pb(OH)₂), and Cu²⁺ forms copper(II) hydroxide (Cu(OH)₂). Sodium (Na⁺) does not form a precipitate with hydroxide ions, as sodium hydroxide (NaOH) is highly soluble in water.

B. The net ionic equations for the reactions that justify the reasoning are:

1. For lead(II) ions with NaOH:
Pb²⁺(aq) + 2OH⁻(aq) → Pb(OH)₂(s)

2. For copper(II) ions with NaOH:
Cu²⁺(aq) + 2OH⁻(aq) → Cu(OH)₂(s)

In both cases, a precipitate is formed as a result of the reaction between the metal cations (Pb²⁺ or Cu²⁺) and the hydroxide ions (OH⁻) from the NaOH solution.

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with which layer did the allure red ac interact? why?

Answers

The allure of red ac likely interacted with the top layer of a product, as it is a commonly used pigment in cosmetics and personal care items.

This top layer is usually the visible layer that gives the product its color and can include things like foundation, lipstick, or eyeshadow. The allure of red ac is often chosen for its bright, vibrant shade and ability to add depth and dimension to products. Its interaction with the top layer is crucial in creating a visually appealing product that will attract consumers.
The Allure Red AC interacts with the outermost layer, which is the surface of an object or material. The reason for this interaction is due to the attractive and eye-catching nature of the Allure Red AC, which enhances the appearance and engages individuals with its vibrant color. When people interact with objects featuring Allure Red AC, they are drawn to its visual appeal, making the surface layer the primary point of interaction.

The allure of red ac likely interacted with the top layer of a product, as it is a commonly used pigment in cosmetics and personal care items.

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determine whether each compound is more soluble in an acidic solution than in a neutral solution. (a) baf2 (b) agi (c) ca(oh)

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Determine whether each compound is more soluble in an acidic solution than in a neutral solution.

(a) BaF2: Barium fluoride (BaF2) is more soluble in an acidic solution than in a neutral solution. In an acidic solution, the hydrogen ions (H+) react with the fluoride ions (F-) to form HF, which reduces the concentration of F- ions. This causes the equilibrium to shift to the right, according to Le Chatelier's principle, resulting in increased solubility.

(b) AgI: Silver iodide (AgI) is more soluble in an acidic solution than in a neutral solution. In an acidic solution, hydrogen ions (H+) react with iodide ions (I-) to form HI. This reduces the concentration of I- ions, causing the equilibrium to shift to the right, according to Le Chatelier's principle, and increasing the solubility of AgI.

(c) Ca(OH)2: Calcium hydroxide (Ca(OH)2) is more soluble in an acidic solution than in a neutral solution. In an acidic solution, hydrogen ions (H+) react with hydroxide ions (OH-) to form water (H2O). This reduces the concentration of OH- ions, causing the equilibrium to shift to the right, according to Le Chatelier's principle, and increasing the solubility of Ca(OH)2.

In conclusion, all three compounds (BaF2, AgI, and Ca(OH)2) are more soluble in an acidic solution than in a neutral solution.

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calculate the standard free energy change for the reaction at 25°c for the following reaction: mg fe2 -> mg2 fe

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The standard free energy change for the reaction Mg Fe2₂ -> Mg₂ Fe at 25°C  is K = e^(-ΔG°/(8.314 J/mol K * 298 K).

To calculate the standard free energy change for the reaction at 25°C for the following reaction: Mg Fe2₂ -> Mg₂ Fe, you will need to use the following equation:

ΔG° = -RT ln K

Where:

ΔG° = standard free energy changeR = gas constant (8.314 J/mol K)T = temperature in Kelvin (298 K for 25°C)ln K = natural logarithm of the equilibrium constant

First, you need to write the balanced equation for the reaction:

Mg Fe2₂ -> Mg₂ Fe

Next, you need to determine the value of the equilibrium constant, K, for this reaction. This can be done by using the following equation:

K = [Mg₂][Fe]/[Mg][Fe₂]

The concentrations of the reactants and products are not given, so you will not be able to calculate K at this time.

Assuming that the reaction is at equilibrium, the value of ΔG° will be zero. Therefore, you can rearrange the equation to solve for K:

K = e^(-ΔG°/RT)

Substituting the given values into the equation, you get:

K = e^(-ΔG°/(8.314 J/mol K * 298 K))

Solving for K will give you the equilibrium constant for the reaction. Once you have K, you can use the equation above to calculate ΔG° for the reaction at 25°C.

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Substituents on an aromatic ring can have several effects on electrophilic aromatic substitution reactions. Substituents can activate or deactivate the ring to substitution, donate or withdraw electrons inductively, donate or withdraw electrons through resonance, and direct substitution either to the ortho/para or to the meta positions. From the lists of substituents, select the substituents that correspond to each indicated property. The substituents are written as -XY, where X is the atom directly bound to the aromatic ring.
Which of these substituents activate the ring towards substitution.
−Br
−COOH
−NH2
−OCH3

Answers

The substituents that activate the aromatic ring towards electrophilic substitution are -NH2 and -OCH3.


To determine which of these substituents activate the ring towards substitution, we need to identify the ones that donate electrons either inductively or through resonance, making the ring more nucleophilic and thus more reactive towards electrophiles.
The given substituents are:
-Br
-COOH
-NH2
-OCH3
Step:1. -Br: Halogens like bromine (-Br) are deactivating due to their inductive electron-withdrawing effect, but they are still ortho/para directors because of their ability to donate electrons through resonance.
Step:2. -COOH: This substituent is electron-withdrawing both inductively and through resonance, making the aromatic ring less reactive to electrophilic aromatic substitution. This group is meta-directing.
Step:3. -NH2: The amino group (-NH2) is a strong activating substituent since it can donate electrons through resonance, increasing the electron density on the aromatic ring. It directs electrophilic substitution to the ortho/para positions.
Step:4. -OCH3: The methoxy group (-OCH3) is also an activating substituent as it can donate electrons through resonance, making the aromatic ring more reactive towards electrophiles. It directs substitution to the ortho/para positions.


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a certain acid, ha, has a pka of 8. what is the ph of a solution made by mixing 0.30 mol of ha with 0.20 mol of naa? if you need to, assume the solution is at 25 oc, where the kw is 1.0x10-14.

Answers

The pH of the solution made by mixing 0.30 mol of HA with 0.20 mol of NaA is 8.3.

How to calculate the pH of a solution?

To find the pH of a solution made by mixing 0.30 mol of HA with 0.20 mol of NaA, given that the acid HA has a pKa of 8 and assuming the solution is at 25°C with a Kw of 1.0x10^-14, follow these steps:

1. Calculate the moles of the conjugate base (A-) formed from the reaction of HA and NaA. Since NaA dissociates completely, 0.20 mol of A- is formed.
2. Calculate the moles of the remaining HA. Since 0.20 mol of HA reacts with NaA, 0.30 - 0.20 = 0.10 mol of HA remains.
3. Use the Henderson-Hasselbalch equation: pH = pKa + log([A-]/[HA]). In this case, pH = 8 + log(0.20/0.10).
4. Calculate the log value: log(0.20/0.10) = log(2) ≈ 0.3.
5. Add the log value to the pKa: pH = 8 + 0.3 = 8.3.

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1. Which equation would you use to calculate the pH of a solution containing 0.2 M acetic acid (pKa = 4.7) and 0.1 M sodium acetate? a. Write the name of the equation. b. Write the equation. c. Write the chemical equation of the buffer system describing how the acid is dissociated to form its conjugate base. d. Identify the conjugate base in the buffer solution. Be specific to identify from the above-mentioned buffer. e. A clinical laboratory blood work collected 10 ml of gastric juice from a patient. The gastric juice was titrated with 0.1 M NaOH to neutrality; 7.2 ml of NaOH c. Write the chemical equation of the buffer system describing how the acid is dissociated to form its conjugate base. d. Identify the conjugate base in the buffer solution. Be specific to identify from the above-mentioned buffer. e. A clinical laboratory blood work collected 10 ml of gastric juice from a patient. The gastric juice was titrated with 0.1 M NaOH to neutrality; 7.2 ml of NaOH was required. The patient's stomach contained no ingested food or drinks, thus assume that no buffers were present. What is the pH of the gastric juice? Show your calculation. (Tips: You need to calculate number of moles or molar concentrations in that volume of solutions. Find out.) 2. A weak acid HA, has a pKa of 5.0. If 1.0 mol of this acid and 0.1 mol of NaOH were dissolved in one liter of water, what would the final pH be? a. Write the name of the equation you will use to calculate the pH of the solution. b. Write the equation. c. Write the chemical equation of the buffer system describing how the acid is dissociated to form its conjugate base. d. Identify the conjugate base in the buffer solution. Be specific to identify from the above-mentioned buffer. e. Calculate the pH of the solution. Show your calculation.

Answers

For question 1, Henderson-Hasselbalch equation was used to calculate pH. For question 2, the pH was calculated using the equation for weak acid-base equilibrium.

1. a. Henderson-Hasselbalch equation

b. [tex]pH = pK_a + log ([A^-]/[HA])[/tex], where [tex][A^-][/tex] is the concentration of the acetate ion and [HA] is the concentration of acetic acid.

c. [tex]CH_3COOH + H_2O \rightleftarrows CH_3COO^- + H_3O^+[/tex]

d. The conjugate base in the buffer solution is the acetate ion [tex](CH_3COO^-)[/tex].

e. First, we need to calculate the concentration of the acetate ion:

[tex][CH_3COO^-][/tex] = 0.1 M sodium acetate = 0.1 M

Then, we can use the Henderson-Hasselbalch equation to calculate the pH:

[tex]pH = pK_a + log ([A^-]/[HA])[/tex]

pH = 4.7 + log (0.1/0.2)

pH = 4.7 - 0.301

pH = 4.4

Therefore, the pH of the solution is 4.4.

2. a. The equation we will use is the same Henderson-Hasselbalch equation as in question 1.

b. [tex]pH = pK_a + log ([A^-]/[HA])[/tex], where [A-] is the concentration of the conjugate base (in this case, the concentration of the hydroxide ion from the NaOH) and [HA] is the concentration of the weak acid (HA).

c. [tex]HA + OH^-[/tex] ⇌ [tex]A^- + H_2O[/tex]

d. The conjugate base in the buffer solution is the hydroxide ion ([tex]OH^-[/tex]).

e. First, we need to calculate the concentration of the conjugate base:

[[tex]OH^-[/tex]] = 0.1 mol NaOH/L * 1 L = 0.1 mol/L

Next, we can use the Henderson-Hasselbalch equation to calculate the pH:

[tex]pH = pK_a + log ([A^-]/[HA])[/tex]

pH = 5.0 + log (0.1/1.0)

pH = 5.0 - 1

pH = 4.0

Therefore, the final pH of the solution would be 4.0.

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Ag2S(s) has a larger molar solubility than CuS even though Ag2S has the smaller Ksp value. Explain how this is possible.

Answers

Even though Ag2S has a smaller Ksp value, its molar solubility is larger due to the stoichiometry of its dissolution reaction thats why Ag2S(s) has a larger molar solubility than CuS even though Ag2S has the smaller Ksp value.

The molar solubility of a compound is the maximum amount of solute that can dissolve in a given amount of solvent. The solubility of a compound depends on its Ksp value and the conditions of the solution. Ksp is the equilibrium constant for the dissolution of a solid in a solution. It represents the product of the concentrations of the ions produced when the solid dissolves.

In the case of Ag2S and CuS, although Ag2S has a smaller Ksp value compared to CuS, it has a larger molar solubility. This is because the solubility of a compound also depends on the nature of the ions produced when it dissolves.

When Ag2S dissolves in water, it produces Ag+ and S2- ions. These ions are highly hydrated, which means they are surrounded by water molecules. This hydration decreases the attraction between the ions and prevents them from re-associating to form the solid. As a result, more Ag2S can dissolve in the water, giving it a larger molar solubility.

On the other hand, when CuS dissolves in water, it produces Cu2+ and S2- ions. These ions are not as highly hydrated as Ag+ and S2- ions. Therefore, they have a stronger attraction to each other, which makes it harder for them to stay in the solution. As a result, CuS has a smaller molar solubility compared to Ag2S, even though it has a larger Ksp value.

In summary, the molar solubility of a compound depends not only on its Ksp value but also on the nature of the ions produced when it dissolves. The more highly hydrated the ions are, the more soluble the compound will be.
Hi! The observed phenomenon can be explained by examining the molar solubility and the stoichiometry of the dissolution reactions for Ag2S and CuS.

Ag2S has a smaller Ksp value, which indicates that it is less soluble in water than CuS. However, when Ag2S dissolves, it dissociates into two moles of Ag+ ions and one mole of S2- ions:

Ag2S(s) ⇌ 2Ag+(aq) + S2-(aq)

On the other hand, CuS dissociates into one mole of Cu2+ ions and one mole of S2- ions:

CuS(s) ⇌ Cu2+(aq) + S2-(aq)

The molar solubility of a substance is the number of moles of the substance that can dissolve in a liter of water. Since Ag2S produces two moles of Ag+ ions for every mole of Ag2S that dissolves, its molar solubility is higher than that of CuS, which only produces one mole of Cu2+ ions for each mole of CuS that dissolves.

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In a half hour, a 65 kg jogger can generate 8.0x10 5 J of heat. This heat is removed from the jogger’s body by a variety of means, including the body’s own temperature regulating mechanisms. If the heat were not removed, how much would the jogger’s body temperature increase?

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The increase in body temperature would be 3.5 °C

Mass of jogger - 65 kg

Heat generated - 8.0*10⁵ J

Increase in body temperature can be calculated by the following formula - Q = m*c*∆t, where Q is heat, m is mass of body, c is specific heat capacity and ∆t is change in temperature.

Specific heat capacity of human body = 3500 J/kg °C.

Keeping the values in equation-

∆t = Q/m*c

∆t = 8*10⁵/(65*3500)

∆t = 3.5 °C

Therefore, the increase in body temperature would be 3.5 °C.

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write the balanced equation for the reaction between oxalic acid (H2C2O4) and permanganate ion (MnO4-) in acidic solution to yeild CO2 and manganous ion (Mn+2)

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The balanced equation for the reaction between oxalic acid (H2C2O4) and permanganate ion (MnO4-) in acidic solution to yield CO2 and manganous ion (Mn+2) is: 5H2C2O4 + 2MnO4- + 6H+ → 10CO2 + 2Mn+2 + 8H2O

This equation represents the redox reaction between oxalic acid and permanganate ion in acidic conditions. In this equation, there are 5 molecules of oxalic acid, 2 molecules of permanganate ion, and 6 hydrogen ions on the left-hand side. These react with each other to produce 10 molecules of carbon dioxide, 2 molecules of manganous ion, and 8 molecules of water on the right-hand side. The equation is balanced because the number of atoms of each element is the same on both sides of the equation.

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Calculate the ph at the equivalence point for the titration of 0.180 m methylamine (ch3nh2) with 0.180 m HCl. The b of methylamine is 5.0×10^−4.

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The pH at the equivalence point for the titration of 0.180 M methylamine (CH₃NH₂) with 0.180 M HCl is 8.74.

First, find the Kb of methylamine using the given base dissociation constant (B), Kb = B = 5.0×10⁻⁴. Next, calculate the Ka for the conjugate acid (CH₃NH₃⁺) using the relationship Ka * Kb = Kw, where Kw is the ion product of water (1.0×10⁻¹⁴). Ka = Kw / Kb = 1.0×10⁻¹⁴ / 5.0×10⁻⁴ = 2.0×10⁻¹¹.

At the equivalence point, [CH₃NH₂] = [HCl]. Thus, the pH is determined by the hydrolysis of the conjugate acid (CH₃NH₃⁺).

To calculate the pH, use the expression: Ka = [H₃O⁺][CH₃NH₂]/[CH₃NH₃⁺].

Since [CH₃NH₂] = [H₃O⁺] at the equivalence point, Ka = [H₃O⁺]² / [CH₃NH₃⁺]. Solve for [H₃O⁺]: [H₃O⁺] = √(Ka * [CH₃NH₃⁺]). Finally, calculate the pH using the formula pH = -log[H₃O⁺]. Substituting values, pH = -log(√(2.0×10⁻¹¹ * 0.180)) = 8.74.

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T/F: sequestering and storing calcium ions (ca2 ) so that its cytoplasmic concentration remains very low; also some lipid production

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The given statement ''sequestering and storing calcium ions (Ca₂ ) so that its cytoplasmic concentration remains very low; also some lipid production" is true because The process of sequestering and storing calcium ions (Ca₂⁺) is crucial for many cellular functions, including muscle contraction and neurotransmitter release.

Understanding cytoplasmic concentration

To maintain proper signaling, the cytoplasmic concentration of Ca₂⁺ must remain low. Additionally, some cells produce lipids, which serve as energy sources and structural components of cell membranes.

This lipid production can occur in a variety of cell types, including adipose tissue and skin cells.

Overall, these processes play important roles in maintaining cellular homeostasis and supporting proper physiological function.

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The United Arab Emirates (UAE) is a major producer of crude oil. One barrel of crude oil is equal to 159 liters. The composition of crude oil varies, but on average, it contains 84% carbon and 14% hydrogen by mass. If the combustion of one barrel of crude oil produces 322 kg of carbon dioxide and 126 kg of water, what is the mass percentage of carbon in the carbon dioxide?

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The mass percentage of carbon in the carbon dioxide is 27.0%.

One barrel of crude oil produces 322 kg of carbon dioxide, which is composed of carbon and oxygen. From the balanced chemical equation for the combustion of hydrocarbons, we know that one mole of carbon produces one mole of carbon dioxide. The molar mass of carbon is 12.01 g/mol, and the molar mass of carbon dioxide is 44.01 g/mol. Therefore, the mass percentage of carbon in carbon dioxide is:

(12.01 g C / 44.01 g CO₂) x 100% = 27.0%

This means that for every 100 g of carbon dioxide produced from the combustion of crude oil, 27 g of it is carbon. Since crude oil contains 84% carbon by mass, this suggests that the carbon in the crude oil is not being fully converted to carbon dioxide during combustion, and that other carbon-containing compounds are being produced as well.

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calculate the pka of the weak acid ha, given that a solution that is 1.15 in ha and 0.852 in a- has ph = 5.06. provide your answer rounded to 2 decimal digits.

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The pKa of the weak acid HA is approximately 5.19 when given that a solution that is 1.15 in ha and 0.852 in A- has pH = 5.06.

To calculate the pKa of the weak acid HA, we'll use the Henderson-Hasselbalch equation:
[tex]pH = pKa + log ([A-] / [HA])[/tex]
Given the information in the problem, we know the pH, [A-], and [HA]. Let's plug in the values:
5.06 = pKa + log (0.852 / 1.15)
Now, let's solve for pKa step-by-step:
1. Calculate the value inside the logarithm:
0.852 / 1.15 ≈ 0.7409
2. Rewrite the equation with this value:
5.06 = pKa + log (0.7409)
3. Isolate pKa by subtracting log (0.7409) from both sides of the equation:
pKa = 5.06 - log (0.7409)
4. Calculate log (0.7409):
log (0.7409) ≈ -0.13
5. Substitute this value back into the equation:
pKa = 5.06 - (-0.13)
6. Add 5.06 and 0.13:
pKa ≈ 5.19

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A solution is 0.015 M in both Br– and SO42–. A 0.204 M solution of lead(II) nitrate is slowly added to it with a buret.The ____ anion will precipitate from solution first.(Ksp for PbBr2 = 6.60 ×× 10–6; Ksp for PbSO4 = 2.53 ×× 10–8)What is the concentration in the solution of the first anion when the second one starts to precipitate at 25°C?

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A salt with a low molar solubility makes a saturated solution at a low concentration and thus it will precipitate sooner than the salt having high molar solubility. (A) The anion that will precipitate first will be SO₄²⁻ (B) The concentration of SO₄²⁻ will be 1.572 × 10^-6 when Br⁻ ions start precipitating.

What is meant by molar solubility?

The concentration of a compound at which it makes a saturated solution is the molar concentration of that compound. The solubility (molarity) of solute is the concentration of solute per liter of solution after saturation.

(A) Given, Ksp for PbBr₂= 6.60 × 10^-6

           Ksp for PbSO₄ = 2.53 × 10^-8

Considering the solubility of PbSO₄ to be S mol/L. After dissociation, the concentration of both Pb²⁺ and SO₄²⁻  ions will be S mol/L.

The solubility product can be expressed as

S² = 1.8 × 10^-8

S = 1.34 × 10^-4

Similarly the solubility for PbBr2 is calculated to be 1.145 × 10^-2

From the above values of solubility, it is clear that the molar solubility of PbSO₄ has a lower molar solubility than PbBr₂. So the anion that will precipitate first will be SO₄²⁻

(B) We need to determine the concentration of SO₄²⁻ when Br⁻ ions start to precipitate.

Considering the molar solubility of PbSO₄ to be x mol/L when Br⁻ ions start to precipitate

                                   PbSO₄            Pb²⁺                       SO₄²⁻

Initial                                                1.145 × 10^-2            0

Change                                              +x                          +x

Equilibrium                                  (1.145 × 10^-2) + x          x

The value of Ksp for PbSO₄ is calculated to be 1.572 × 10^-6.

Therefore, the concentration of SO₄²⁻ will be 1.572 × 10^-6 when Br⁻ ions start precipitating.

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. nitrogen and oxygen react at high temperatures. (a) write the expression for the equilibrium constant (kc) for the reversible reaction n2() o2()⇌2no()δ=181kj

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The expression for the equilibrium constant (kc) for the reversible reaction is  Kc = [NO]² / ([N[tex]^{2}[/tex]] × [O[tex]^{2}[/tex]])

Given the reversible reaction: N[tex]^{2}[/tex](g) + O[tex]^{2}[/tex](g) ⇌ 2NO(g); ΔH = 181 kJ

To write the expression for the equilibrium constant (Kc):

1. Identify the balanced chemical equation:

  N[tex]^{2}[/tex](g) + O[tex]^{2}[/tex](g) ⇌ 2NO(g)

2. Write the equilibrium constant expression using the concentrations of the reactants and products:

  Kc = [NO]² / ([N[tex]^{2}[/tex]] × [O[tex]^{2}[/tex]])

In this expression, [NO], [N[tex]^{2}[/tex]], and [O[tex]^{2}[/tex]] represent the equilibrium concentrations of NO, N[tex]^{2}[/tex], and O[tex]^{2}[/tex], respectively. The exponents correspond to the stoichiometric coefficients in the balanced chemical equation.

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what do you have solution before taking into account the equilibrium do you have any weak acid does this reaction apply ch3cooh h20 = h3o ch3coo-

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The equation you have provided is the dissociation of acetic acid ([tex]CH_{3} C_{OO}H[/tex]) in water to form hydronium ions ([tex]H_{3}O[/tex]+) and acetate ions ([tex]CH_{3} C_{OO}[/tex]-): [tex]CH_{3} C_{OO}H[/tex]+ [tex]H_{2}O[/tex]⇌ [tex]H_{3}O[/tex]+ + [tex]CH_{3} C_{OO}[/tex]-

Acetic acid is a weak acid, meaning it only partially dissociates in water. At equilibrium, the concentrations of the reactants and products will depend on the acid dissociation constant (Ka) of acetic acid, as well as the concentrations of the acid and water.

Before taking into account the equilibrium, it is important to note that acetic acid is indeed a weak acid, and the dissociation of acetic acid in water to form hydronium and acetate ions occurs only to a limited extent. The dissociation of acetic acid in water is an important reaction in many chemical and biological processes. It is also the basis of the pH buffering capacity of acetic acid solutions.

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A 0.49 mol sample of oxygen is in a 4.8 L container at 25 ºC. What is the pressure in the container?a)254 atmb)8.6 atmc)2.5 atmd)0.40 atm

Answers

So the pressure in the container is approximately: 2.5 atm. The correct option is (c).

To find the pressure in the container, we will use the Ideal Gas Law equation:
PV = nRT
Where P is pressure,
V is volume,
n is the number of moles,
R is the gas constant, and
T is the temperature in Kelvin.

Let's plug in the given values and solve for pressure (P).
Given:
n = 0.49 mol (moles of oxygen)
V = 4.8 L (volume of container)
T = 25°C = 298 K (temperature in Kelvin)
R = 0.0821 L atm/(mol K) (gas constant)

Now, let's plug the values into the equation:
P * 4.8 L = (0.49 mol) * (0.0821 L atm/(mol K)) * (298 K)

Now, we will solve for P:
P = (0.49 mol * 0.0821 L atm/(mol K) * 298 K) / 4.8 L
P ≈ 2.5 atm

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how do you identify heavy chemicals and fine chemicals

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Explanation:

Heavy chemicals generally refer to chemicals that have a high molecular weight and density, such as metals, minerals, and petrochemicals. They may also have a high toxicity and be hazardous to human health and the environment. Some examples of heavy chemicals include lead, mercury, asbestos, and radioactive materials.

Fine chemicals, on the other hand, are typically smaller molecules that are used in the production of pharmaceuticals, agrochemicals, and other specialty chemicals. They are often produced in smaller quantities and require more specialized manufacturing processes. Examples of fine chemicals include vitamins, amino acids, and specialty solvents.

To identify heavy chemicals and fine chemicals, you can look at their molecular structure, physical properties, and intended use. Heavy chemicals may have a higher melting point, boiling point, and density compared to fine chemicals. Fine chemicals may have a more complex molecular structure and be used in pharmaceuticals or other high-value applications.

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