Calculate the concentration of sodium benzoate that must be present in a 0.20 M solution of benzoic acid (C6H5COOH, Ka = 6.5 × 10-5) to produce a pH of 4.00. The ionization (dissociation) equation is shown below.
C6H5COOH(aq) + H2O (aq) <--> C6H5COO– (aq) + H3O+ (aq)

Answers

Answer 1

To achieve a pH of 4.00 in a 0.20 M solution of benzoic acid, the concentration of sodium benzoate must be 1.0 × 10^-4 M.

To calculate the concentration of sodium benzoate that must be present in a 0.20 M solution of benzoic acid (C6H5COOH, Ka = 6.5 × 10-5) to produce a pH of 4.00. The ionization (dissociation) equation is C6H5COOH(aq) + H2O (aq) <--> C6H5COO– (aq) + H3O+ (aq). The ionization equation for benzoic acid in water is given as:

C6H5COOH(aq) + H2O(aq) ⇌ C6H5COO-(aq) + H3O+(aq). The equilibrium expression for this reaction is: Kw = [C6H5COO-][H3O+]/[C6H5COOH]. The value of the equilibrium constant Kw for water is 1.0 × 10^-14. Since benzoic acid is a weak acid, we can assume that the concentration of [H3O+] is small compared to the initial concentration of benzoic acid [C6H5COOH]. Given that the initial concentration of benzoic acid [C6H5COOH] is 0.20 M, and we want to achieve a pH of 4.00, we can calculate the concentration of [H3O+] using the equation pH = -log[H3O+]. Substituting the pH value, we find [H3O+] = 10^(-pH). Since the concentration of sodium benzoate [C6H5COO-] is equal to the concentration of [H3O+] at equilibrium, we can set [C6H5COO-] equal to 10^(-pH). Therefore, the concentration of sodium benzoate required is 10^(-4.00), which simplifies to 0.0001 M or 1.0 × 10^-4 M. Hence, to achieve a pH of 4.00 in a 0.20 M solution of benzoic acid, the concentration of sodium benzoate must be 1.0 × 10^-4 M.

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Related Questions

Which of the following is TRUE?
a. An effective buffer has a [base]/[acid] ratio in the range of 10-100
b. A buffer is most resistant to pH change when [acid] = [conjugate base]
c. An effective buffer has very small absolute concentrations of acid and conjugate base
d. None of the above are true

Answers

A buffer is most resistant to pH change when [acid] = [conjugate base] is TRUE

Define buffer solution

A buffer is a substance that can withstand a pH change when acidic or basic substances are added. Small additions of acid or base can be neutralised by it, keeping the pH of the solution largely constant. This is crucial for procedures and/or reactions that call for particular and stable pH ranges.

The concentration of acid and conjugate base in the system directly affects how well a buffer functions. Thus, a poor buffer will be one with a very low absolute concentration of acid and conjugate base.

The pH change resistance of a buffer is greatest when the concentration of weak acid is equal to that of conjugate base. A buffer is more efficient when the weak base to conjugate acid ratio is higher.

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Consider an electrochemical cell with a zinc electrode
immersed in 1.0 M Zn2+ and a nickel electrode immersed in
0.10 M Ni2+.
Zn2+ + 2e- → Zn ε° = –0.76 V
Ni2+ + 2e- → Ni ε° = –0.23 V
Calculate the concentration of Ni2+ if the cell is allowed
to run to equilibrium at 25°C.
a. 1.10 M
b. 0.20 M
c. 0.10 M
d. 0 M
e. none of these

Answers

The concentration of Ni²⁺ if the cell is allowed to run to equilibrium at 25°C is 19.7 M.

To calculate the concentration of Ni²⁺ at equilibrium, we need to compare the standard reduction potentials of the two half-reactions and use the Nernst equation.

Given the reduction potentials:

Zn²⁺ + 2e⁻ → Zn    E⁰ = -0.76 V

Ni²⁺ + 2e⁻ → Ni    E⁰ = -0.23 V

The overall cell reaction is:

Zn²⁺ + Ni → Zn + Ni²⁺

E⁰(cell) = E⁰(cathode) - E⁰(anode)

E⁰(cell) = (-0.23 V) - (-0.76 V)

E⁰(cell) = 0.53 V

The Nernst equation relates the cell potential (Ecell) to the standard reduction potentials and the concentrations of the species involved:

Ecell = E⁰cell - (0.059 V/n) log(Q)

where E⁰cell is the standard cell potential, n is the number of electrons transferred, and Q is the reaction quotient.

In this case, the reaction quotient (Q) can be expressed as:

Q = [Ni²⁺] / [Zn²⁺]

At equilibrium, the cell potential (Ecell) is zero.

[tex]0 = 0.53 V - ( \frac{0.0592 V}{2}) log(Q)[/tex]

Since Ecell = 0, we can rearrange the equation to solve for Q:

log(Q) = 1

This implies that Q = 1.

Substituting Q = 1 into the reaction quotient equation:

17.96 = [Ni²⁺] / [Zn²⁺]

Given that the concentration of Zn²⁺ is 1.0 M, we can solve for [Ni²⁺]:

17.96 = [Ni²⁺] / 1.10 M

[Ni²⁺] = 19.7 M

Therefore, the concentration of Ni²⁺ at equilibrium is 19.7 M.

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3. If 1.000 g of aluminum reacts with KOH and H₂SO, to form potassium alum (KAI(SO4)2 12H₂O), how many grams of the alum should be produced in grams?

Answers

Approximately 8.786 grams of potassium alum should be produced. we need to consider the stoichiometry of the reaction and the molar masses of the compounds involved.

The balanced equation for the reaction is:

2Al + 2KOH + H₂SO₄ → KAl(SO₄)₂·12H₂O + 3H₂

From the equation, we can see that 2 moles of aluminum react to produce 1 mole of potassium alum. Therefore, we need to calculate the number of moles of aluminum.

Molar mass of Al = 26.98 g/mol

Number of moles of Al = Mass of Al / Molar mass of Al = 1.000 g / 26.98 g/mol = 0.03706 mol

According to the stoichiometry, 2 moles of aluminum will produce 1 mole of potassium alum. Therefore, the number of moles of potassium alum produced is half the number of moles of aluminum:

Number of moles of KAl(SO₄)₂·12H₂O = 0.03706 mol / 2 = 0.01853 mol

Finally, we can calculate the mass of potassium alum using the molar mass of KAl(SO₄)₂·12H₂O:

Molar mass of KAl(SO₄)₂·12H₂O = 474.38 g/mol

Mass of KAl(SO₄)₂·12H₂O = Number of moles of KAl(SO₄)₂·12H₂O × Molar mass of KAl(SO₄)₂·12H₂O = 0.01853 mol × 474.38 g/mol = 8.786 g

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Place the following gases in order of increasing density at STP.
N₂ NH₃ N₂O₄ Kr
a.Kr < N₂O₄ < N₂ < NH₃
b.N₂ < Kr < N₂O₄ < NH₃
c. Kr < N₂ < NH₃ < N₂O₄
d. NH₃ < N₂ < Kr < N₂O₄
e. N₂O₄ < Kr < N₂ < NH₃

Answers

The correct order of increasing density at STP among the given gases is; NH₃ < N₂ < Kr < N₂O₄. Option D is correct.

To determine the order of increasing density at STP among the given gases, we need to consider their molar masses and the behavior of gases under standard conditions.

The molar masses of gases are as follows;

N₂O₄; 92.01 g/mol

N₂; 28.01 g/mol

Kr; 83.80 g/mol

NH₃; 17.03 g/mol

At STP (Standard Temperature and Pressure), gases behave ideally, meaning they have similar volumes and occupy the same amount of space. The density of a gas will be directly proportional to its molar mass. Therefore, the gas with the lowest molar mass will have the lowest density.

Comparing the molar masses of the given gases, we can determine the order of increasing density;

NH₃ < N₂ < Kr < N₂O₄

Hence, D. is the correct option.

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A sample of a gas has an initial pressure of 0.987 atm and a volume of 12.8 L what is the final pressure if me volume is increased to 25.6 L? a. 1.97 atm b. 323.4 atm c. 0.494 atm d. 0.003 atm e. 2.03 atm

Answers

The final pressure of the gas, when the volume is increased from 12.8 L to 25.6 L, can be calculated using Boyle's Law, which states that the pressure and volume of a gas are inversely proportional at constant temperature.

In the first scenario, the initial pressure is 0.987 atm and the initial volume is 12.8 L. The product of pressure and volume is constant (P₁V₁ = P₂V₂), so we can calculate the final pressure (P₂) using the equation:

P₂ = (P₁ * V₁) / V₂

Plugging in the values, we have:

P₂ = (0.987 atm * 12.8 L) / 25.6 L = 0.494 atm

Therefore, the final pressure of the gas, when the volume is increased to 25.6 L, is 0.494 atm. Hence, the correct answer is option c) 0.494 atm.

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what is the percent ionization in a 0.300 m solution of formic acid (hcooh) (ka = 1.78 × 10⁻⁴)?

Answers

The percent ionization in a 0.300 m solution of formic acid is 0.00403%.

Given data: Formic acid (HCOOH), Ka = 1.78 × 10⁻⁴

Molarity of the solution (M) = 0.300 m

Moles of HCOOH, initial = M × volume = 0.300 × 1000 = 300 mol/L

Let x be the moles of HCOOH ionized . Let's write down the ionization reaction:

HCOOH + H₂O ↔ H₃O⁺ + HCOO⁻

Initial (mol/L): 300 0 0 0

Change (mol/L):

-x +x +x +x

Equilibrium (mol/L): 300 - x x x x

We know that

Ka = [H₃O⁺][HCOO⁻]/[HCOOH]

Let's write down the equation for Ka using the initial and equilibrium concentrations of the species.

Ka = x²/(300-x)

Ka = 1.78 × 10⁻⁴

Solve for x.

x = √[Ka × (300 - x)]

x = √[(1.78 × 10⁻⁴) × (300 - x)]

x = 0.0121 (approx)

The percent ionization can be calculated as follows:

Percent ionization = (moles ionized/initial moles) × 100= x/300 × 100= 0.0121/300 × 100= 0.00403% (approx)

Hence, the percent ionization in a 0.300 m solution of formic acid is 0.00403%.

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1. Predict the major products formed when benzene reacts with the following reagents. (a). tert-butyl bromide, ALC13 (b) bromine + a nail (c) iodine + HNO3 (d) carbon monoxide, HCI, and AICI3/CUCI (e) nitric acid + sulfuric acid.

Answers

The major product formed is nitrobenzene.

When benzene reacts with tert-butyl bromide and AICI3 it produces tert-butylbenzene as a major product. The reaction occurs via an electrophilic substitution reaction. When bromine reacts with a nail in the presence of benzene, the aromatic compound will undergo electrophilic substitution. The major product formed is bromobenzene.  When iodine reacts with HNO3 in the presence of benzene, the electrophilic substitution occurs and the major product formed is nitrobenzene. The major product formed when benzene reacts with carbon monoxide, HCl, and AICI3/CUCI is benzaldehyde, produced via the Gattermann-Koch reaction. Nitric acid and sulfuric acid are nitrating agents that cause benzene to undergo electrophilic substitution. The major product formed is nitrobenzene.

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Consider the four weak acids listed below. Which would not exist primarily as an anion in aqueous solution at a pH = 5.4? a. malonic acid, Ka - 1.5 x 10-3, pKa = 2.8 b. none would be anionic c. all would be anionic d. alloxanic acid, Ka = 2.3 x 10-7pKa = 6.6 e. propanoic acid, Ka = 1.4 x 10-5. pkg = 4.9 f. glyoxylic acid, Ka = 6.6 x 10-4.pkg = 3.2

Answers

a) Malonic acid will exist primarily as an anion in aqueous solution at pH 5.4.

b) This option is not valid.

c) This option is not valid.

d) Alloxanic acid would not primarily exist as an anion at pH 5.4.

e) Propanoic acid will exist primarily as an anion in aqueous solution at pH 5.4.

f) Glyoxylic acid will exist primarily as an anion in aqueous solution at pH 5.4.

To determine which weak acid would not exist primarily as an anion in aqueous solution at pH 5.4, we need to compare the pKa values of the acids with the pH value.

The pKa value represents the negative logarithm of the acid dissociation constant (Ka), and it indicates the strength of the acid. A lower pKa value indicates a stronger acid.

Let's analyze each option:

a. Malonic acid, Ka = 1.5 x 10^-3, pKa = 2.8: The pKa of malonic acid is lower than pH 5.4, indicating that it will exist primarily as an anion in aqueous solution at pH 5.4.

b. None would be anionic: This option suggests that none of the acids would exist primarily as an anion at pH 5.4. However, this statement contradicts the given information, as weak acids do exist as anions to some extent in their dissociated form in aqueous solution. Therefore, this option is not valid.

c. All would be anionic: This option suggests that all the weak acids would exist primarily as anions at pH 5.4. While weak acids do exist as anions to some extent, it is not necessarily the case that all weak acids will be predominantly in their anionic form at a specific pH. Therefore, this option is not valid.

d. Alloxanic acid, Ka = 2.3 x 10^-7, pKa = 6.6: The pKa of alloxanic acid is higher than pH 5.4, indicating that it will exist primarily in its neutral (non-anionic) form in aqueous solution at pH 5.4. Therefore, alloxanic acid would not primarily exist as an anion at pH 5.4.

e. Propanoic acid, Ka = 1.4 x 10^-5, pKa = 4.9: The pKa of propanoic acid is lower than pH 5.4, indicating that it will exist primarily as an anion in aqueous solution at pH 5.4.

f. Glyoxylic acid, Ka = 6.6 x 10^-4, pKa = 3.2: The pKa of glyoxylic acid is lower than pH 5.4, indicating that it will exist primarily as an anion in aqueous solution at pH 5.4.

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The molecular weight of ethanol (CH3CH2OH) is 46 and its density is 0.789 g/cm3.
A. What is the molarity of ethanol in beer that is 5% ethanol by volume? FYI: Alcohol content in beer ranges from about 4% (light beer) to 8% (stouts).
B. The legal limit for blood alcohol for MD and VA drivers is 0.08. This is 80mg of ethanol per 100ml of blood. What is the molarity of ethanol in a person at this legal limit?
C. How many 12-oz (355ml) bottles of beer could a 70kg person drink and remain under the legal limit? A 70kg person contains about 40 liters of water. Ignore the metabolism of the ethanol, and assume that the water content, volume and weight of the person remain constant.
D. Ethanol is metabolized in most people at a constant rate of about 120mg per hour per kg body weight, regardless of its concentration. If a 70kg person were at twice the legal limit (160mg/100ml), how long would it take for their blood alcohol level to fall below the legal limit?

Answers

To find the molarity of ethanol in beer that is 5% ethanol by volume, we first need to calculate the volume of ethanol in the beer. Since the density of ethanol is 0.789 g/cm³ and the beer is 5% ethanol by volume, we can assume that 100 mL of beer contains 5 mL of ethanol.

Volume of ethanol in 100 mL of beer = 5 mL

Next, we convert the volume of ethanol to its mass using its density:

Mass of ethanol in 100 mL of beer = volume × density = 5 mL × 0.789 g/cm³ = 3.945 g

Now we can calculate the number of moles of ethanol using its molecular weight:

Moles of ethanol = mass / molecular weight = 3.945 g / 46 g/mol ≈ 0.0857 mol

Finally, we convert the moles of ethanol to molarity by dividing by the volume of beer in liters:

Molarity of ethanol in beer = moles / volume (in liters) = 0.0857 mol / 0.1 L = 0.857 M

B. To find the molarity of ethanol in a person at the legal blood alcohol limit of 0.08 (80 mg/100 mL), we can follow a similar approach. The person's blood contains 80 mg of ethanol in 100 mL.

Moles of ethanol = mass / molecular weight = 80 mg / 46 g/mol = 1.74 mmol

Convert the moles to molarity by dividing by the blood volume in liters (100 mL = 0.1 L):

Molarity of ethanol in blood = moles / volume (in liters) = 1.74 mmol / 0.1 L = 17.4 M

C. To determine the number of 12-oz (355 mL) bottles of beer a 70 kg person can drink and remain under the legal limit, we need to calculate the total amount of ethanol in the person's blood at the legal limit and then find how many bottles it would take to reach that amount.

Ethanol content in blood = 80 mg/100 mL = 0.08 g/100 mL

Total ethanol content in blood = 0.08 g/100 mL × 40 L = 32 g

Now, we need to calculate the number of moles of ethanol:

Moles of ethanol = mass / molecular weight = 32 g / 46 g/mol ≈ 0.696 mol

Assuming each bottle of beer contains the same amount of ethanol as calculated in part A (0.0857 mol), we can calculate the number of bottles a person can drink:

Number of bottles = Moles of ethanol in blood / Moles of ethanol per bottle = 0.696 mol / 0.0857 mol ≈ 8.12 bottles

Therefore, a 70 kg person could drink approximately 8 bottles of beer and remain under the legal limit.

D. To find the time required for a 70 kg person's blood alcohol level to fall below the legal limit (160 mg/100 mL to 80 mg/100 mL), we can use the constant rate of ethanol metabolism given.

The difference in ethanol concentration is 160 mg/100 mL - 80 mg/100 mL = 80 mg/100 mL

Moles of ethanol to be metabolized = mass / molecular weight = 80 mg / 46 g/mol = 1.74 mmol

Ethanol metabolism rate for a 70 kg person = 120 mg/hour/kg = 120 mg/hour × 70 kg = 8400 mg/hour

Time required to metabolize the ethanol = moles of ethanol / (ethanol metabolism rate / 1000) = 1.74 mmol / (8400 mg/hour / 1000) = 0.207 hours ≈ 12.4 minutes

Therefore, it would take approximately 12.4 minutes for the blood alcohol level to fall below the legal limit for a 70 kg person at twice the legal limit.

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a tank contains 90 kg of salt and 2000 l of water. pure water enters a tank at the rate 8 l/min. the solution is mixed and drains from the tank at the rate 4 l/min.

Answers

The concentration of salt in the tank remains constant at 45 kg/m³.

To determine the concentration of salt in the tank, we need to consider the amount of salt and the volume of water in the tank.

Given:

Amount of salt in the tank: 90 kgVolume of water in the tank: 2000 liters

To calculate the concentration, we divide the mass of salt by the volume of water:

Concentration = Mass of salt / Volume of water

Concentration = 90 kg / 2000 liters

However, we need to convert the volume from liters to cubic meters for consistency. Since 1 liter is equal to 0.001 cubic meters, we have:

Concentration = 90 kg / (2000 liters * 0.001 m³/liter)

Concentration = 90 kg / 2 m³

Concentration = 45 kg/m³

Therefore, the concentration of salt in the tank remains constant at 45 kg/m³, regardless of the flow rates of pure water entering and the solution draining from the tank.

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why is the equilbrium constant of the dissociation of kht equal to the square of the bitartrate concentation

Answers

The equilibrium constant of the dissociation of potassium hydrogen tartrate (KHT) is equal to the square of the bitartrate concentration due to the dissociation of KHT into two hydrogen ions (H+) and bitartrate ions (HC₄H₄O₆⁻) as shown below:

KHT ⇌ H+ + HC₄H₄O₆⁻

Here, the equilibrium constant expression for the dissociation reaction of KHT can be written as follows:

Kc = [H+] [HC₄H₄O₆⁻]/ [KHT]

As we know, KHT dissociates into two moles of bitartrate ion (HC₄H₄O₆⁻) and one mole of hydrogen ion (H+). So, after the dissociation of KHT, the concentration of the bitartrate ion (HC₄H₄O₆⁻) will be double that of the hydrogen ion (H+).

Therefore, the concentration of hydrogen ion (H+) will be equal to the square root of the concentration of bitartrate ion (HC₄H₄O₆⁻).

Hence, Kc = [H+]²[HC₄H₄O₆⁻]/ [KHT] = [HC₄H₄O₆⁻]²/ [KHT]

This is the reason why the equilibrium constant of the dissociation of KHT is equal to the square of the bitartrate concentration.

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Calculate the mass percent of solute in the following solutions.
(a) 5.63 g of NaCl dissolved in 69.8 g of H2O _______%
(b) 3.28 g of LiBr dissolved in 33.3 g of H2O________%
(c) 36.7 g of KNO3 dissolved in 299 g of H2O________%
(d) 2.8×10 -3 g of NaOH dissolved in 4.7 g of H2O_______%

Answers

The mass percent of NaOH in the given solution is 0.0596%.Thus, the required mass percent of solute in the given solutions are:(a) 7.47%(b) 8.96%(c) 10.92%(d) 0.0596%.

(a) Given, Mass of solute NaCl = 5.63 gMass of solvent H2O = 69.8 gThe mass percent of solute in NaCl solution is calculated using the following formula:Mass percent of solute = (Mass of solute / Mass of solution) × 100Now, the mass of solution is the sum of the mass of solute and solvent.Mass of solution = Mass of solute + Mass of solvent= 5.63 g + 69.8 g= 75.43 gMass percent of solute = (5.63 / 75.43) × 100= 7.47 %Hence, the mass percent of NaCl in the given solution is 7.47%.(b) Given, Mass of solute LiBr = 3.28 gMass of solvent H2O = 33.3 gThe mass percent of solute in LiBr solution is calculated using the following formula:Mass percent of solute = (Mass of solute / Mass of solution) × 100Now, the mass of solution is the sum of the mass of solute and solvent.Mass of solution = Mass of solute + Mass of solvent= 3.28 g + 33.3 g= 36.58 gMass percent of solute = (3.28 / 36.58) × 100= 8.96 %

Hence, the mass percent of LiBr in the given solution is 8.96%.(c) Given, Mass of solute KNO3 = 36.7 gMass of solvent H2O = 299 gThe mass percent of solute in KNO3 solution is calculated using the following formula:Mass percent of solute = (Mass of solute / Mass of solution) × 100Now, the mass of solution is the sum of the mass of solute and solvent.Mass of solution = Mass of solute + Mass of solvent= 36.7 g + 299 g= 335.7 gMass percent of solute = (36.7 / 335.7) × 100= 10.92 %Hence, the mass percent of KNO3 in the given solution is 10.92%.(d) Given, Mass of solute NaOH = 2.8 × 10⁻³ gMass of solvent H2O = 4.7 g

The mass percent of solute in NaOH solution is calculated using the following formula:Mass percent of solute = (Mass of solute / Mass of solution) × 100Now, the mass of solution is the sum of the mass of solute and solvent.Mass of solution = Mass of solute + Mass of solvent= 2.8 × 10⁻³ g + 4.7 g= 4.70028 gMass percent of solute = (2.8 × 10⁻³ / 4.70028) × 100= 0.0596 %Hence, the mass percent of NaOH in the given solution is 0.0596%.Thus, the required mass percent of solute in the given solutions are:(a) 7.47%(b) 8.96%(c) 10.92%(d) 0.0596%.

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Which of the following correctly labels the salts? HF (K_a = 7.2 times 10^-4) NH_3 (K_b = 1.8 times 10^-5) HCN(K_a = 6.2 times 10^-10) a) NaCN = acidic, NH_4F = basic, KCN = neutral b) NaCN = acidic, NH_4F = neutral, KCN = basic c) NaCN = basic, NH_4F = basic, KCN = neutral d) NaCN = basic, NH_4F = neutral, KCN = basic e) NaCN = basic, NH_4F = acidic, KCN = basic Suppose a buffer solution is made from formic acid, HCHO_2, and sodium formate, NaCHO_2.

Answers

The correct label for the salts is:

a) NaCN = acidic, NH4F = basic, KCN = neutral

- NaCN: Sodium cyanide (NaCN) is a salt of a weak acid (HCN) and a strong base (NaOH). The weak acid (HCN) partially dissociates in water, producing cyanide ions (CN-) and a small amount of H+ ions, making the solution slightly acidic.

- NH4F: Ammonium fluoride (NH4F) is a salt of a weak base (NH3) and a strong acid (HF). The weak base (NH3) partially reacts with water to produce ammonium ions (NH4+) and hydroxide ions (OH-), making the solution slightly basic.

- KCN: Potassium cyanide (KCN) is a salt of a weak acid (HCN) and a strong base (KOH). Similar to NaCN, KCN produces cyanide ions (CN-) and a small amount of H+ ions in water, resulting in a neutral solution.

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.Which of the following is an example of a buffer? Can be more than one if needed
a.) a weak acid and its conjugate acid
b.) a weak acid and its conjugate base
c.) a weak base and its conjugate base
d.) a weak base and its conjugate acid

Answers

Buffer is a solution that has the ability to resist changes in pH on the addition of small amounts of either acid or base. Buffers are either acidic or alkaline, and they are often composed of a weak acid and its corresponding salt or a weak base and its corresponding salt.

An example of a buffer can be more than one. Given options are as follows:a) A weak acid and its conjugate acid is not an example of a buffer.b) A weak acid and its conjugate base is an example of a buffer. The buffer is created by combining a weak acid and its salt with a weak base. As a result, it resists a change in pH.c) A weak base and its conjugate base is not an example of a buffer.d) A weak base and its conjugate acid is an example of a buffer. The buffer is created by combining a weak base and its salt with a weak acid. As a result, it resists a change in pH. Therefore, option (b) and (d) are both examples of a buffer.

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in the example for distilling miscible liquids, which two compounds were used?

Answers

In the example of distilling miscible liquids, two compounds commonly used are ethanol and water.

One of the common example for distilling miscible liquids are ethanol and water. These two substances can mix in any ratio since they are miscible. Because ethanol and water have different molecular structures, when heated, the boiling temperatures of the two liquids vary.

Compared to water, ethanol has a lower boiling point. The ethanol vaporizes first when the combination is heated, leaving the water behind. After collecting and condensing the vapor, pure ethanol is produced. Distillation is a common practice in many different industries, including the creation of alcoholic beverages and ethanol for fuel.

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what is the direction of the force on the proton in the figure?

Answers

In the given figure, a proton is moving with a velocity v perpendicular to a uniform magnetic field B.

As a result, a force acts on the proton that can be determined using the right-hand rule.For this purpose, the thumb, forefinger, and middle finger of the right hand are used.

If the thumb is pointing in the direction of the velocity of the proton v and the forefinger in the direction of the magnetic field B, the force acting on the proton can be found by curling the middle finger toward the palm of the hand. This force is found to be perpendicular to both the velocity of the proton v and the magnetic field B.

Therefore, the direction of the force on the proton is perpendicular to both the velocity and the magnetic field. This is known as the Lorentz force and is given by the equation F = q(v × B), where F is the force, q is the charge of the proton, v is its velocity, and B is the magnetic field.

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how many grams of aluminum will react fully with 1.25 moles cl2

Answers

A total of 22.41 grams of aluminum will react fully with 1.25 moles of Cl₂.

Given that 1.25 moles of Cl₂ will react fully with aluminum. We need to find the grams of aluminum required to react fully with it.Molar mass of Cl₂ = 35.5 × 2 = 71 g/mol

Molar mass of Al = 27 g/molNow, using the balanced chemical equation:2Al + 3Cl₂ → 2AlCl₃Moles of Al required to react fully with 1.25 moles of Cl₂ can be calculated as follows:

Moles of Cl₂ = given mass / molar mass

=> 1.25 moles = given mass of Cl₂ / 71 g/mol

=> Given mass of Cl₂ = 1.25 × 71 = 88.75 g

Moles of Al required = 2/3 × moles of Cl₂ = 2/3 × 1.25 = 0.83 moles

Now, we can find the grams of aluminum required as follows:Grams of aluminum required = moles of Al × molar mass of Al = 0.83 × 27 = 22.41 g

Therefore, 22.41 grams of aluminum will react fully with 1.25 moles of Cl₂.The balanced chemical equation for the reaction of aluminum with chlorine is:2Al + 3Cl₂ → 2AlCl₃

To calculate the amount of aluminum required to react fully with 1.25 moles of Cl₂, we first need to calculate the number of moles of Cl₂. Given the molar mass of Cl₂ as 71 g/mol, 1.25 moles of Cl₂ correspond to a mass of:1.25 moles x 71 g/mol = 88.75 g

Now, we can use the stoichiometric coefficients of the balanced chemical equation to determine the number of moles of Al required:2 mol Al / 3 mol Cl₂ x 1.25 mol Cl₂ = 0.83 mol Al

Finally, we can use the molar mass of Al to calculate the mass of Al required:0.83 mol x 27 g/mol = 22.41 g

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Given the reaction at 101. 3 kilopascals and 298 K:hydrogen gas + iodine gas → hydrogen iodide gas

This reaction is classified as

(1) endothermic, because heat is absorbed

(2) endothermic, because heat is released

(3) exothermic, because heat is absorbed

(4) exothermic, because heat is released

Answers

Answer:Endothermic, because heat is absorbed.

Explanation:

The given reaction, hydrogen gas + iodine gas → hydrogen iodide gas, is classified as exothermic because it releases heat energy during the formation of the product. Option 4.

The given reaction, hydrogen gas (H2) + iodine gas (I2) → hydrogen iodide gas (HI), is an exothermic reaction because it releases heat. Exothermic reactions are characterized by the release of energy in the form of heat, which means that the products of the reaction have lower energy compared to the reactants.

In this particular reaction, hydrogen gas and iodine gas combine to form hydrogen iodide gas. This process involves the breaking of covalent bonds in the reactants and the formation of new covalent bonds in the product.

The energy released during bond formation is greater than the energy required to break the existing bonds, resulting in a net release of energy in the form of heat.

To determine the classification of the reaction, it is necessary to consider the change in enthalpy (∆H). If ∆H is negative, it indicates an exothermic reaction, while a positive ∆H value would indicate an endothermic reaction.

Given that the reaction is exothermic, it means that the formation of hydrogen iodide gas is accompanied by the release of heat energy. This can be observed experimentally as a temperature increase in the surroundings.

The reaction releases energy in the form of heat due to the stabilization of the product, hydrogen iodide, which is more stable than the reactants, hydrogen gas and iodine gas. Option 4 is correct.

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Solve for missing values using the ideal gas law formula:

1. 10°C, 5. 5 L, 2 mol, __ atm. What is the atm?

2. __ °C, 8. 3 L, 5 mol, 1. 8 atm. What is the temperature in celsius?

3. 12°C, 3. 4 L, __ mol, 1. 2 atm. What is the mole?

Answers

The ideal gas law formula is used to determine the missing values in questions. When dealing with problems that require solving for missing values using the ideal gas law formula, always ensure that all values are expressed in the correct units and temperature is converted to kelvin.

The ideal gas law formula is represented as PV = nRT, where P represents pressure, V represents volume, n represents the number of moles of gas, T represents the temperature in kelvin, and R represents the universal gas constant. Solve for missing values using the ideal gas law formula:1. 10°C, 5. 5 L, 2 mol, __ atm.The temperature must be converted to kelvin first: T(K) = T(°C) + 273.15K = 10°C + 273.15 = 283.15KPV = nRT

Rearrange the equation to isolate P: P = nRT / V

Substitute the given values:

P = (2 mol)(0.0821 L•atm/mol•K)(283.15K) / 5.5 L

: P = 8.28 atm

2. __ °C, 8. 3 L, 5 mol, 1. 8 atm.The equation PV = nRT can be rearranged to T = PV / nRThe temperature must be converted to kelvin first: T(K) = T(°C) + 273.15T = PV / nR

Substitute the given values: T = (1.8 atm)(8.3 L) / (5 mol)(0.0821 L•atm/mol•K)T(K) = T +

: T = 332 K or 59°C

The temperature must be converted to kelvin first:

T(K) = T(°C) + 273.15K

= 12°C + 273.15

= 285.15

KPV = nRT

Solve for n by rearranging the equation: n = PV / RT

Substitute the given values: n = (1.2 atm)(3.4 L) / (0.0821 L•atm/mol•K)(285.15K): n = 0.141 mol

The ideal gas law formula is used to determine the missing values in questions. When dealing with problems that require solving for missing values using the ideal gas law formula, always ensure that all values are expressed in the correct units and temperature is converted to kelvin.

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it takes 11.2 kj of energy to raise the temperature of 145 g of benzene from 25.0°c to 70.0°c. what is the specific heat of benzene?

Answers

The specific heat of benzene is 1.74 J/(g·K) which is required to raise the temperature of 145 g of benzene from 25.0°C to 70.0°C

Specific heat is also referred to as specific heat capacity or simply heat capacity. The formula for calculating specific heat is as follows:

Q = m × c × ΔT

So, for this question, we can solve for the specific heat of benzene using the formula above.

We first need to convert 11.2 kJ to joules: 11.2 kJ × 1000 J/kJ = 11,200 J

Use the formula above to solve for specific heat:

c = Q / (m × ΔT)

c = 11,200 J / (145 g × 45.0°C)

c = 1.74 J/(g·K)

Therefore, the specific heat of benzene is 1.74 J/(g·K).

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The value of ΔH° for the oxidation of solid elemental sulfur to gaseous sulfur trioxide, 2S (s, rhombic) + 3O2 (g) → 2SO3 (g) is ________ kJ/mol.

Answers

The value of ΔH° for the oxidation of solid elemental sulfur to gaseous sulfur trioxide is -791.4 kJ/mol. This means that the reaction is exothermic, and heat is released when it occurs. The reaction is also spontaneous, meaning that it will occur without any outside input of energy.

The oxidation of sulfur to sulfur trioxide is a two-step process. In the first step, sulfur reacts with oxygen to form sulfur dioxide. This reaction is exothermic, meaning that heat is released. In the second step, two molecules of sulfur dioxide react to form one molecule of sulfur trioxide. This reaction is also exothermic.

The overall reaction is exothermic, meaning that heat is released when it occurs. This is because the bonds in the products (sulfur trioxide) are stronger than the bonds in the reactants (sulfur and oxygen). The release of heat lowers the overall energy of the system, making the reaction spontaneous.

The value of ΔH° for the reaction is -791.4 kJ/mol. This means that for every mole of sulfur that is oxidized, 791.4 kJ of heat is released.

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How many electrons in an atom can have each of the following quantum number or sublevel designations?
A. n = 2, l-1
10
B. 3d
28
C. 4s
30

Answers

The maximum number of electrons in this sublevel is 3 ×2 = 6, where n = 2, l = 1. The maximum number of electrons in this sublevel is 5 × 2 = 10 for 3d. The maximum number of electrons in this sublevel is 1 × 2 = 2 for 4s.

A.

n = 2, l = 1 , n = 2 (second energy level) and l = 1 (p sublevel).

In the p sublevel, there are three orbitals: px, py, and pz.

Each orbital can hold a maximum of 2 electrons (one with spin-up and one with spin-down).

Therefore, the maximum number of electrons in this sublevel is 3 × 2 = 6.

B.

For this quantum number 3d, 

n = 3 (third energy level) and l = 2 (d sublevel).

In the d sublevel, there are five orbitals: dxy, dxz, dyz, dx2-y2, and dz2.

Each orbital can hold a maximum of 2 electrons.

Therefore, the maximum number of electrons in this sublevel is 5 × 2 = 10.

C.

For this quantum number 4s, 

n = 4 (fourth energy level) and l = 0 (s sublevel).

In the s sublevel, there is one orbital: 4s.

The 4s orbital can hold a maximum of 2 electrons.

Therefore, the maximum number of electrons in this sublevel is 1 ×2 = 2.

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what assumptions are made when the carbon 14 dating is used?

Answers

Carbon 14 dating is a widely used radiometric dating method for determining the age of archaeological and paleontological specimens up to 50,000 years old.

Here are the assumptions that are made when carbon 14 dating is used:

1. The rate of carbon-14 production in the upper atmosphere is constant over time.

2. The ratio of carbon-14 to carbon-12 in the atmosphere has been constant over time.

3. Carbon-14 is readily absorbed by living organisms and is incorporated into their tissues in proportion to its concentration in the atmosphere.

4. Once an organism dies, the carbon-14 in its tissues decays at a constant rate.

5. The rate of carbon-14 decay has been constant over time.

6. The amount of carbon-14 remaining in a sample can be accurately measured.

7. The sample has not been contaminated with carbon from a different source.

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explain why the replacement of a hydrogen atom in ch4 by a chlorine atom causes an increase in bolining point

Answers

The replacement of a hydrogen atom in CH[tex]_{4}[/tex] by a chlorine atom causes an increase in boiling point because chlorine is more electronegative than hydrogen, resulting in a stronger dipole-dipole attraction between molecules.

When a hydrogen atom in CH[tex]_{4}[/tex] is replaced by a chlorine atom, the resulting molecule becomes CH[tex]_{3}[/tex]Cl. Chlorine is more electronegative than hydrogen, meaning it has a higher affinity for electrons. This causes the chlorine atom to pull the shared electrons closer to itself, creating a partial negative charge. The hydrogen atom in CH[tex]_{4}[/tex], on the other hand, is less electronegative, resulting in a partial positive charge.

The difference in electronegativity between chlorine and hydrogen leads to a stronger dipole-dipole attraction between CH[tex]_{3}[/tex]Cl molecules compared to CH[tex]_{4}[/tex] molecules. This increased intermolecular force requires more energy to break the attractive forces and convert the substance from a liquid to a gas, resulting in a higher boiling point.

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Identify the diatomic molecule that is ionic in its pure state. O HF O CSF O N2 KH O Br2

Answers

The diatomic molecule that is ionic in its pure state is option B: HF (Hydrogen Fluoride).

HF is an example of a diatomic molecule with polar covalent bonding. While it consists of covalent bonds between the hydrogen (H) and fluorine (F) atoms, the electronegativity difference between the two atoms creates a polar bond. The fluorine atom is more electronegative than hydrogen, resulting in a partial negative charge on the fluorine atom and a partial positive charge on the hydrogen atom.

Due to this polarity, HF molecules can exhibit ionic character when dissolved in water or other polar solvents, as the hydrogen atom can dissociate from the fluorine atom and form hydronium ions (H₃O⁺). However, in its pure state, HF is considered a molecular compound with polar covalent bonds rather than a fully ionic compound. Therefore, the diatomic molecule that is ionic in its pure state is option B: HF (Hydrogen Fluoride).

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Calculate the gravimetric factor for converting BaSO4 to sulfite, SO3. Hint: Set up an equation that allows you to covert BaSO4 to sulfite, SO3 using the gravimetric factor

Answers

To gravimetric factor for converting BaSO₄ to sulfite (SO₃) is 1.

What is the gravimetric factor?

To gravimetric factor for converting BaSO₄ to sulfite (SO₃) is determined based on the stoichiometry of the reaction.

The balanced chemical equation for the reaction is:

BaSO₄ + 4 H₂ → BaS + 4 H₂O + SO₃

From the equation, the stoichiometry shows that for every 1 mole of BaSO₄, we obtain 1 mole of SO₃.

Therefore, the gravimetric factor is 1.

This means that if we have a known mass of BaSO₄, we can directly convert it to an equivalent mass of SO₃ using the gravimetric factor of 1.

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The experiment reads:
Cobolt Ions:
Color of CoCl2 is clear pink
Color after the addition of HCl is dark blue
Color after the addition of H2O is clear pink
Account for the changes you observe for the cobalt solutions in terms of Le Chatelier's Principle.

Answers

The observed color changes in the cobalt solutions can be explained in terms of Le Chatelier's Principle, which states that when a system at equilibrium is subjected to a stress, it will adjust to minimize the effect of that stress.

Here, experiment, we start with a solution of CoCl2, which appears as a clear pink color. The pink color is due to the presence of hydrated cobalt(II) ions [Co(H2O)6]2+ in the solution. This complex absorbs certain wavelengths of light, resulting in the observed color.

When HCl is added to the solution, it introduces additional chloride ions (Cl-) into the system. According to Le Chatelier's Principle, the increased concentration of chloride ions will shift the equilibrium towards the formation of the complex [CoCl4]2-, which is dark blue in color.

The shift occurs because the system tries to counteract the stress caused by the increase in chloride ions by favoring the reaction that consumes the excess chloride ions.

Finally, when water (H2O) is added, it dilutes the solution. This decrease in concentration again perturbs the equilibrium, and Le Chatelier's Principle predicts a shift back towards the formation of the hydrated cobalt(II) ions [Co(H2O)6]2+, leading to the restoration of the clear pink color.

In summary, the changes in color observed in the cobalt solutions can be explained by Le Chatelier's Principle, as the system adjusts to counteract the stress caused by changes in concentration.

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: Rank the set of substituents below in order of priority according to the Cahn-Ingold-Prelog sequence rules. -C equivalence N -CH_2 Br -CH_2 CH_2 Br -Br

Answers

The order of the substituents according to CIP sequence rules is as follows: 1. -Br 2. -CH2CH2Br 3. -C equivalence N 4. -CH2Br

The Cahn-Ingold-Prelog (CIP) sequence rules describe how to assign the absolute configuration of a chiral center to an enantiomer. The ranking of substituents can be done with the help of CIP sequence rules. The sequence rules are as follows:At first, the priority of substituents is determined by atomic number. The higher the atomic number, the higher the priority. If a molecule has isotopes, the one with a higher atomic mass takes priority.Next, if the atoms in two substituents have the same atomic number, the atoms in each substituent are compared, going atom by atom down the chains of atoms until a difference is found. When a difference is found, the substituent with the atom of higher atomic number is given the higher priority.The steps for ranking the given set of substituents are as follows:As we can see in the given set of substituents, the most common atoms are carbon and bromine. The carbon has an atomic number of 6, and bromine has an atomic number of 35.5. Hence, Bromine has a higher atomic number than Carbon. Therefore, bromine gets the highest priority among the given substituents.Now, we have to compare the other substituents to the highest priority substituent (Bromine).If we compare -CH2Br with -CH2CH2Br, both substituents have the same atoms up to the second carbon. After that, -CH2Br has a single carbon atom, whereas -CH2CH2Br has two carbon atoms. The substituent with more carbon atoms is given higher priority. Therefore, -CH2CH2Br is ranked higher than -CH2Br.In -C equivalence N, nitrogen has an atomic number of 7, which is higher than the atomic number of carbon in -CH2Br and -CH2CH2Br. Therefore, -C equivalence N is ranked third.Lastly, -Br is ranked the lowest among the substituents.The order of the substituents according to CIP sequence rules is as follows: 1. -Br 2. -CH2CH2Br 3. -C equivalence N 4. -CH2Br.

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in the titration of 25.0 ml of 0.1 m naf(aq) with 0.1 m hcl, how is the ph calculated after 30.0 ml of titrant is added?

Answers

We can calculate the pH by considering the concentration of HCl in the solution after the titration.

To calculate the pH after adding 30.0 mL of the titrant (0.1 M HCl) to 25.0 mL of 0.1 M NaF, we need to consider the reaction that occurs between NaF and HCl.

NaF(aq) + HCl(aq) → NaCl(aq) + HF(aq)

In this reaction, NaF reacts with HCl to form NaCl and HF. HF is a weak acid, so its dissociation in water will contribute to the overall pH of the solution.

Since we are adding a strong acid (HCl) to a weak acid (HF), the pH of the solution will be determined mainly by the strong acid. Therefore, we can calculate the pH by considering the concentration of HCl in the solution after the titration.

By calculating the moles of HCl added and knowing the initial volume and concentration of NaF, we can determine the concentration of HCl in the final solution and use it to calculate the pH.

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how would you synthesize the following compounds from butanenitrile using reagents from the table?

Answers

The given table contains a list of reagents and possible reactions for the synthesis of given compounds from butanenitrile. The compounds include:

1. Butan-1-ol: Butanenitrile can be reduced by using lithium aluminum hydride (LiAlH4) in dry ether, and then hydrolysis of intermediate to get butan-1-ol.


2. Butanoic acid: Butanenitrile can undergo hydrolysis by sodium hydroxide (NaOH) to get butanoic acid.


3. Butanal: Butanenitrile can be reduced by using lithium aluminum hydride (LiAlH4) in dry ether and then hydrolysis of intermediate to get butanal.


4. But-2-enenitrile: Butanenitrile can be treated with sodium amide (NaNH2) in liquid ammonia (NH3) to get but-2-enenitrile.

Therefore, to synthesize the given compounds from butanenitrile, the appropriate reagents from the table can be used according to the desired reaction.

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