The balanced half-reaction in which ethanol, CH3CH2OH, is oxidized to ethanoic acid, CH3COOH. is a____process. 1) six-electron. 2) twelve-electron. 3) four-electron. 4) two-electron. 5) three-electron.

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Answer 1

The balanced half-reaction in which ethanol is oxidized to ethanoic acid is a two-electron process.

To determine the number of electrons involved in the oxidation process, we need to look at the balanced half-reaction. The half-reaction for the oxidation of ethanol to ethanoic acid is:

CH₃CH₂OH → CH₃COOH + 2e⁻

This half-reaction shows that two electrons are involved in the oxidation process. For every ethanol molecule that is oxidized, two electrons are transferred to the oxidizing agent.


Ethanol can be oxidized to ethanoic acid by a variety of oxidizing agents, including potassium permanganate, potassium dichromate, and acidic or basic solutions of potassium or sodium dichromate. During the oxidation process, ethanol loses electrons and is converted to ethanoic acid. The balanced half-reaction for the oxidation of ethanol to ethanoic acid shows that two electrons are transferred during the process. This means that the reaction is a two-electron process. The oxidation of ethanol to ethanoic acid is an important reaction in organic chemistry and is used in the production of acetic acid, which is an important industrial chemical.

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Related Questions

What are the equilibrium partial pressures of CO and CO2 if CO is the only gas present initially, at a partial pressure of 0. 874 atm

Answers

The equilibrium partial pressure of CO would decrease, while the equilibrium partial pressure of CO2 would increase.

According to the given reaction and equilibrium constant, at 1000 K with Kp= 19.9, the reaction Fe2O3 + 3CO = 2Fe + 3CO2 tends to favor the formation of products. Since CO is the only gas initially present, it will react with Fe2O3 to produce Fe and CO2. As the reaction progresses towards equilibrium, the partial pressure of CO would decrease, while the partial pressure of CO2 would increase.

The specific values of the equilibrium partial pressures cannot be determined without additional information, such as the initial and final amounts of the reactants and products or the total pressure of the system. However, based on the given information, we can infer that the equilibrium partial pressure of CO would be lower than the initial partial pressure of 0.872 atm, and the equilibrium partial pressure of CO2 would be higher than zero.

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Complete Question

What are the equilibrium partial pressures of CO and CO2 if CO is the only gas present initially, at a partial pressure of 0.874 atm?

At 1000 K, Kp= 19.9 for the reaction Fe2O3 + 3CO = 2Fe + 3 CO2

Magnesium hydroxide [Mg(OH)2] is an ingredient in some antacids. How many grams of Mg(OH)2 are needed to neutralize the acid in 158 mL of 0. 106 M HCl(aq)? It might help to write the balanced chemical equation first

Answers

0.488 grams of [tex]Mg(OH)_2[/tex] are needed to neutralize the acid in 158 mL of 0.106 M HCl(aq).

The balanced chemical equation for the reaction between magnesium hydroxide and hydrochloric acid is:

[tex]$\text{Mg(OH)}{2}(s) + 2\text{HCl(aq)} \rightarrow \text{MgCl}{2}(aq) + 2\text{H}_{2}\text{O}(l)$[/tex]

From the equation, we can see that 1 mole of [tex]Mg(OH)_2[/tex] reacts with 2 moles of HCl.

To determine how many grams of [tex]Mg(OH)_2[/tex] are needed to neutralize the acid in 158 mL of 0.106 M HCl(aq), we can use the following steps:

Calculate the number of moles of HCl in 158 mL of 0.106 M HCl(aq):

[tex]$0.106 \text{ M} = \dfrac{\text{moles of HCl}}{1 \text{ L}}$[/tex]

[tex]$\text{moles of HCl} = 0.106 \text{ M} \times 0.158 \text{ L} = 0.016748 \text{ mol}$[/tex]

Determine the number of moles of [tex]Mg(OH)_2[/tex] required to react with the HCl:

From the balanced chemical equation, we know that 1 mole of [tex]Mg(OH)_2[/tex] reacts with 2 moles of HCl. Therefore, the number of moles of [tex]Mg(OH)_2[/tex] required to react with 0.016748 moles of HCl is:

[tex]$\text{moles of Mg(OH)}_{2} = \dfrac{0.016748 \text{ mol HCl}}{2} = 0.008374 \text{ mol}$[/tex]

Calculate the mass of [tex]Mg(OH)_2[/tex] required using its molar mass:

The molar mass of [tex]Mg(OH)_2[/tex] is:

[tex]$\text{Mg} = 24.31 \text{ g/mol}$[/tex]

[tex]$\text{O} = 16.00 \text{ g/mol}$[/tex]

[tex]$\text{H} = 1.01 \text{ g/mol}$[/tex]

Molar mass of [tex]Mg(OH)_2[/tex] = [tex]$\text{Mg} + 2\text{O} + 2\text{H} = 58.33 \text{ g/mol}$[/tex]

Therefore, the mass of [tex]Mg(OH)_2[/tex] required is:

mass of [tex]Mg(OH)_2[/tex] = [tex]\text{moles of Mg(OH)}{2} \times \text{molar mass of Mg(OH)}_{2}$[/tex]

mass of [tex]Mg(OH)}_{2} = 0.008374 \text{ mol} \times 58.33 \text{ g/mol} = 0.488 \text{ g}$[/tex]

So, 0.488 grams of [tex]Mg(OH)_2[/tex] are needed to neutralize the acid in 158 mL of 0.106 M HCl(aq).

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Taken together, the Necessary and Proper Clause and the Commerce Clause, provides justification for:

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The Necessary and Proper Clause and the Commerce Clause, both found in Article I, Section 8 of the United States Constitution, provide a legal basis and justification for the expansion of federal powers.

The Necessary and Proper Clause, also known as the Elastic Clause, grants Congress the authority to make laws that are necessary and proper for carrying out its enumerated powers. This clause gives Congress flexibility in interpreting and applying its powers to address new challenges and circumstances that may arise.

The Commerce Clause, on the other hand, empowers Congress to regulate interstate commerce. It grants Congress the authority to regulate economic activities that cross state lines, ensuring a unified and regulated national market.

Together, these clauses provide a legal framework for the federal government to exercise broad authority in areas related to commerce, economic regulation, and the overall functioning of the country. They have been used to justify federal legislation on various issues, including civil rights, environmental regulations, and healthcare, among others.

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Calculate the freezing point of a 14.75 m aqueous solution of glucose. Freezing point constants can be found in the list of colligative constants.

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The freezing point of a solution is lowered due to the presence of solute particles in the solution. This is a colligative property and can be calculated using the formula:ΔTf = Kf × m. Freezing point of a 14.75 m aqueous solution of glucose is -27.44 °C.

where ΔTf is the change in freezing point, Kf is the freezing point depression constant (in units of °C/m), and m is the molality of the solution (in units of moles of solute per kilogram of solvent).

For this problem, we are given that the solution contains glucose, which is a non-electrolyte, so the van't Hoff factor (i) is 1. Therefore, the molality (m) of the solution can be calculated as follows: m = (moles of solute) / (mass of solvent in kg)

We are given that the solution is 14.75 m, which means that it contains 14.75 moles of glucose per 1 kg of water. Now, we can use the freezing point depression constant for water, which is Kf = 1.86 °C/m, to calculate the change in freezing point: ΔTf = Kf × m = 1.86 °C/m × 14.75 m = 27.44 °C

The freezing point of pure water is 0 °C, so the freezing point of the solution will be:Freezing point = 0 °C - ΔTf = 0 °C - 27.44 °C = -27.44 °C. Therefore, the freezing point of a 14.75 m aqueous solution of glucose is -27.44 °C.

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the separation of the rotational lines in the p and r branches of 127i 35cl is 0.2284 cm−1 . calculate the bondlength.

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The correct answer is 1.995 Å

The bond length in the P and R branches of a diatomic molecule is given by the following formula:

Δν = 2B - 4D

where Δν is the separation between the lines, B is the rotational constant, and D is the centrifugal distortion constant.

For the 127I35Cl molecule, we have:

Δν = 0.2284 cm^-1

We can assume that the molecule is in its ground electronic state, so the rotational constant can be related to the moment of inertia (I) and the bond length (r) as follows:

B = h / (8π^2cI) = h / (8π^2cμr^2)

where h is Planck's constant, c is the speed of light, and μ is the reduced mass of the molecule.

Substituting this expression for B into the formula for Δν and solving for r, we get:

r = √[h/(8π^2cμB)] = √[h/(8π^2cμ(Δν/2 + 2D))]

We are given that the separation between the lines in the P and R branches is Δν = 0.2284 cm^-1.

We can assume that the centrifugal distortion constants in the P and R branches are approximately equal and cancel out,

r ≈ √[h/(8π^2cμΔν)]

Plugging in the relevant constants for the I-Cl bond, we get:

μ = (127 amu)(35 amu) / (127 amu + 35 amu) = 27.28 amu

Substituting this and the other constants into the formula for r, we get:

r ≈ √[(6.626 x 10^-34 J s) / (8π^2 x 2.998 x 10^10 cm/s x 27.28 amu x 0.2284 cm^-1)] = 1.995 x 10^-10 m

Therefore, the bond length of the I-Cl bond in 127I35Cl is approximately 1.995 Å (angstroms).

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his minor mineral is absorbed in the stomach and is in the blood within minutes after consumption a. selenium b. chromium c. boron d. fluoride

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The answer to your question is c. boron.

Boron is a minor mineral that is essential for many functions in the body, including bone health, brain function, and hormone regulation. It is absorbed in the stomach and enters the bloodstream within minutes after consumption. Boron is found in many foods, including nuts, fruits, and vegetables, but it is not a widely recognized nutrient. While boron deficiency is rare, it is still important to ensure adequate consumption through a balanced diet. In conclusion, boron is a minor mineral that is rapidly absorbed in the stomach and enters the bloodstream within minutes after consumption, making it an essential nutrient for many bodily functions.

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The value of the ionization constant, Ka, for hypochlorous acid, HOCI, is 3.1 x 10-8. (a) Calculate the hydronium ion concentration of a 0.050 molar solution of HOCI. (b) Calculate the concentration of hydronium ion in a solution prepared by mixing equal volumes of 0.050 molar HOCI and 0.020 molar sodium hypochlorite, NaOCI.

Answers

(a) Hydronium ion concentration of a 0.050 molar solution of HOCI is 1.4 x [tex]10^{-2}[/tex] mol/L. b) concentration of hydronium ion in the solution prepared by mixing equal volumes of 0.050 molar HOCI and 0.020 molar NaOCI is 1.1 x [tex]10^{-8}[/tex]mol/L.

The ionization reaction for hypochlorous acid is: HOCI (aq) + H2O (l) ⇌ H3O+ (aq) + OCI- (aq) The Ka expression is: Ka = [H3O+][OCI-]/[HOCI] We are given the value of Ka as 3.1 x [tex]10^{-8}[/tex]. Let x be the concentration of H3O+ and OCI- in mol/L at equilibrium. At equilibrium, the concentration of HOCI will be (0.050 - x) mol/L.

Substituting these values in the Ka expression, we get: 3.1 x [tex]10^{-8}[/tex] = [tex]x^2[/tex]/(0.050 - x) Solving this quadratic equation, we get x = 1.4 x [tex]10^{-4}[/tex] mol/L. Therefore, the hydronium ion concentration of a 0.050 molar solution of HOCI is 1.4 x [tex]10^{-4}[/tex] mol/L.

(b) When equal volumes of 0.050 molar HOCI and 0.020 molar NaOCI are mixed, the reaction between them can be represented as follows: HOCI (aq) + OCI- (aq) ⇌ OCl- (aq) + H2O (l)

The initial concentration of HOCI is 0.050/2 = 0.025 mol/L and that of OCI- is 0.020/2 = 0.010 mol/L. At equilibrium, let x be the concentration of OCl- in mol/L. The concentrations of HOCI and OCI- will be (0.025 - x) mol/L and (0.010 - x) mol/L, respectively. The equilibrium constant for this reaction can be written as:

K = [OCl-][H2O]/[HOCI][OCI-] The concentration of water is considered to be constant and is usually omitted. Substituting the concentrations at equilibrium in the above expression, we get: K = x/(0.025 - x)(0.010 - x)

The value of K is equal to the product of the ionization constants of HOCI and OCI-. Therefore, we can write: K = Ka(HOCI)Ka(OCI-) Substituting the values of Ka(HOCI) = 3.1 x 10 and Ka(OCI-) = Kw/Ka(HOCI) = 3.2 x [tex]10^{-6}[/tex], where Kw is the ion product constant of water, we get:

[tex]3.1 x 10^{-8} x 3.2 . 10^{-6} = x/(0.025 - x)(0.010 - x)[/tex]

Solving this equation, we get x = 1.1 x [tex]10^{-8}[/tex] mol/L. Therefore, the concentration of hydronium ion in the solution prepared by mixing equal volumes of 0.050 molar HOCI and 0.020 molar NaOCI is 1.1 x [tex]10^{-8}[/tex]mol/L.

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Which substituents will direct the incoming group to the meta position during electrophilic aromatic substitution?

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There are a few substituents that will direct the incoming group to the meta position during electrophilic aromatic substitution. These include groups such as nitro (-NO2), cyano (-CN), carbonyl (-COOH), and sulfonic acid (-SO3H).

These groups are electron-withdrawing, which means they decrease the electron density on the aromatic ring. As a result, the incoming electrophilic species is less likely to be attracted to the ortho or para positions, where there is more electron density. Instead, it is directed towards the meta position, where there is less electron density.

In electrophilic aromatic substitution reactions, substituents that direct the incoming group to the meta position are typically deactivating and electron-withdrawing. Examples of such substituents include nitro (-NO2), cyano (-CN), sulfonic acid (-SO3H), and carbonyl groups (such as -COOH, -COOR, and -COR). These groups stabilize the intermediate formed during the reaction, thus favoring meta substitution.

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1) Under what metabolic condition is pyruvate converted to Acetyl - COA [1] 2) Write a chemical equation for the production of Acetyl-COA from Pyruvate. Under what conditions does this reaction occur? [6] 3) To what metabolic intermediate is the acetyl group of Acetyl-COA transferred in the Citric Acid Cycle? [2] 4) To what final products is the acetyl group of the Acetyl-CoA converted [5]

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1) Pyruvate is converted to Acetyl - COA under aerobic conditions in the presence of oxygen, as part of the process of cellular respiration.


2) The chemical equation for the production of Acetyl-COA from Pyruvate is:
Pyruvate + CoA + NAD⁺ → Acetyl-CoA + CO₂ + NADH + H⁺. This reaction occurs in the mitochondria of eukaryotic cells, and in the cytoplasm of prokaryotic cells.
3) The acetyl group of Acetyl-COA is transferred to oxaloacetate to form citrate, which is the first intermediate of the Citric Acid Cycle.
4) The acetyl group of the Acetyl-CoA is converted to CO₂ and H₂O as part of the Citric Acid Cycle, which generates ATP and other energy-rich molecules. The final products of the Citric Acid Cycle include ATP, NADH, FADH₂, and CO₂.

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Arrange the gases in order of decreasing density when they are all under STP conditions. highest density 1 chlorine 2 neon 3 fluorine 4 argon lowest density Using the information in the table below, how would you convert atmospheric pressure measured in millimeters of mercury (mmHg) to millibars (mbar)? Give your answer to 3 significant figures. Relation to other units Unit name and abbreviation millimeters of mercury, mmHg 760 mmHg = 1 atm 1 bar = 100,000 Pa bar Pascals, Pa 101,325 Pa = 1 atm multiply the pressure in mmHg by type your answer...

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The order of decreasing density of the gases under STP conditions is as follows:
1) Chlorine ; 2) Neon ; 3) Fluorine ; 4) Argon

The order of decreasing density of the gases under STP conditions is as follows: 1) Chlorine (Cl2) with a density of 3.214 g/L, 2) Neon (Ne) with a density of 0.900 g/L, 3) Fluorine (F2) with a density of 1.696 g/L, and 4) Argon (Ar) with a density of 1.784 g/L. This order can be determined by using the molar mass of each gas and the ideal gas law, PV = nRT, where P is the pressure, V is the volume, n is the number of moles, R is the gas constant, and T is the temperature. At STP conditions, the pressure is 1 atm and the temperature is 273.15 K. The molar mass of the gases can be found in the periodic table, and using PV = nRT, the number of moles can be calculated. Then, dividing the mass by the volume will give the density.
To convert atmospheric pressure measured in mmHg to mbar, we can use the relation 1 atm = 1013.25 mbar. We know that 760 mmHg = 1 atm, so we can use this to find the pressure in atm and then convert to mbar. For example, if the pressure is 750 mmHg, we can divide by 760 to get the pressure in atm (0.987 atm), and then multiply by 1013.25 to get the pressure in mbar (1000 mbar, to 3 significant figures). Therefore, to convert pressure in mmHg to mbar, we need to multiply the pressure in mmHg by 1.333 to get the pressure in hPa, and then multiply by 10 to get the pressure in mbar (since 1 hPa = 0.1 mbar).

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select all the ways in which a stress may be applied to a system at equilibrium.

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Stress can be applied to a system at equilibrium by changing the concentration, temperature, or pressure of the system.

A system at equilibrium is one in which the forward and reverse reactions are occurring at the same rate, and the concentrations of reactants and products remain constant.

Any change in the conditions of the system can cause a shift in equilibrium, resulting in changes in concentrations of reactants and products. There are several ways in which stress may be applied to a system at equilibrium.
One way to apply stress is by changing the concentration of one of the reactants or products. This can be done by adding or removing one of the substances from the system. If a reactant is added, the equilibrium will shift towards the products to consume the excess reactant. Similarly, if a product is removed, the equilibrium will shift towards the reactants to replenish the lost product.
Another way to apply stress is by changing the temperature of the system. This can be done by heating or cooling the system. An increase in temperature will cause the equilibrium to shift in the direction of the endothermic reaction, while a decrease in temperature will cause the equilibrium to shift towards the exothermic reaction.
A third way to apply stress is by changing the pressure of the system. This can be done by changing the volume of the container or by adding or removing a gas. An increase in pressure will cause the equilibrium to shift towards the side with fewer moles of gas, while a decrease in pressure will cause the equilibrium to shift towards the side with more moles of gas.
In summary, stress can be applied to a system at equilibrium by changing the concentration, temperature, or pressure of the system.

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A metal complex absorbs light mainly at 420 nm. What is the color of the complex?
The answer is yellow but isn't it violet? Because violet wavelength is 400nm...?

Answers

Metal complexes that absorb strongly in the blue-green region of the visible spectrum (around 420 nm) tend to appear yellow to the human eye.

The answer may depend on the specific metal complex being referred to. This is because they absorb light in the complementary color range, which is violet/blue.

So, in the case of the given metal complex, it is likely that it would appear yellow.

However, it is important to note that the color of a complex can also be influenced by other factors such as ligand field splitting and charge transfer interactions, so it is possible for different complexes with similar absorption spectra to exhibit different colors.

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the relationship between the amount of reactant consumed and time if curvilinear.

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The statement is false. The relationship between the amount of reactant consumed and time is not curvilinear, but rather follows a specific pattern based on the reaction kinetics.

In most chemical reactions, the amount of reactant consumed with respect to time follows a linear or exponential relationship. In a linear relationship, the rate of reaction is constant, and the amount of reactant consumed increases linearly with time. This often occurs in simple reactions with a constant rate. In contrast, an exponential relationship is observed in many reactions governed by complex kinetics. Initially, the reaction rate is high, and the amount of reactant consumed is rapid. As the reaction progresses, the rate slows down, and the amount of reactant consumed per unit of time decreases exponentially. This can occur in reactions with multiple steps, intermediate species, or factors affecting the reaction rate. Therefore, the relationship between the amount of reactant consumed and time is typically linear or exponential, depending on the reaction kinetics, and not curvilinear.

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Calculate the number of grams of 4.9 % (m/m) NaCl solution that contains 7.10 g of NaCl Express your answer to two significant figures and include the appropriate units.

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The mass of the 4.9% (m/m) NaCl solution that contains 7.10 g of NaCl is 145 g.

How many grams of the 4.9% (m/m) NaCl solution contains 7.10 g of NaCl?

In order to calculate the mass of the NaCl solution, we need to consider the concentration of the solution, which is given as 4.9% (m/m). This means that there are 4.9 grams of NaCl for every 100 grams of the solution.

To find the mass of the NaCl solution, we can set up a proportion based on the given information:

(4.9 g NaCl / 100 g solution) = (7.10 g NaCl / x g solution)

Cross-multiplying and solving for x, we can calculate the mass of the solution:

x = (7.10 g NaCl) * (100 g solution) / (4.9 g NaCl)x ≈ 145 g

Therefore, approximately 145 grams of the 4.9% (m/m) NaCl solution contain 7.10 g of NaCl.

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Consider the reaction: Y ? products
The rate law was experimentally determined to be rate = k[Y]2 because
the graph of 1/[Y]2 vs. time was linear.
the graph of ln [Y] vs. time was linear.
the graph of 1/[Y] vs. time was linear.
the graph of [Y]2 vs. time was linear.
the graph of [Y] vs. time was linear.

Answers

The correct answer is the graph of 1/[Y]2 vs. time was linear.

The correct answer is the graph of 1/[Y]2 vs. time was linear.
To understand why, we need to know that the rate law is an equation that describes how the rate of a reaction depends on the concentrations of the reactants. In this case, the rate law is rate = k[Y]2, where [Y] is the concentration of the reactant Y and k is a rate constant. The power of [Y] in the rate law is called the order of the reaction with respect to Y.
To determine the rate law experimentally, we need to measure the rate of the reaction at different concentrations of Y and compare the results. One way to do this is by plotting a graph of the inverse of [Y]2 (1/[Y]2) vs. time. If the reaction follows the rate law, this graph should be linear with a slope of k. Therefore, if we observe a linear graph of 1/[Y]2 vs. time, we can conclude that the rate law for this reaction is rate = k[Y]2. The other graphs listed in the question (ln [Y] vs. time, 1/[Y] vs. time, [Y]2 vs. time, and [Y] vs. time) would not give us a linear relationship that could determine the rate law.

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how many grams of hf must be dissolved in water to create 762 ml of a solution with a ph of 2.13?

Answers

1.11 grams of hf must be dissolved in water to create 762 ml of a solution with a ph of 2.13.

To solve this problem, we need to use the balanced chemical equation for the dissociation of hydrofluoric acid (HF) in water:

HF + [tex]H_2O[/tex] ↔ [tex]H_3O^+[/tex] + [tex]F^-[/tex]

The dissociation of HF in water is a weak acid-base reaction, and the acid dissociation constant, Ka, for HF is 6.8 × [tex]10^{-4[/tex].

The pH of a solution of HF can be calculated using the equation:

pH = -log[tex][H_3O^+][/tex]

Since we know the pH of the solution is 2.13, we can calculate the concentration of [tex][H_3O^+][/tex]:

[tex][H_3O^+][/tex] = [tex]10^{-pH[/tex]

[tex][H_3O^+][/tex]= [tex]10^{-2.13[/tex]

[tex][H_3O^+][/tex] = 6.13 × [tex]10^{-3[/tex] M

The equilibrium constant expression for the dissociation of HF is:

Ka = [tex][H_3O^+][F^-]/[HF][/tex]

Since the concentration of [tex]F^-[/tex]is equal to the concentration of HF (since HF dissociates to give one [tex]H^+[/tex] ion and one [tex]F^-[/tex] ion), we can simplify the expression to:

Ka =  [tex][H_3O^+]^2[/tex] /[HF]

Solving for [HF], we get:

[HF] = [tex][H_3O^+]^2[/tex] /Ka

[HF] = [tex](6.13 \times 10^{-3} M)^2/6.8 \times 10^{-4}[/tex]

[HF] = 5.53 × [tex]10^{-2[/tex] M

Now we can use the concentration and volume of the solution to calculate the mass of HF needed to create the solution:

mass of HF = molar mass of HF × moles of HF

mass of HF = 20 g/mol × 5.53 × [tex]10^{-2[/tex] mol

mass of HF = 1.11 g

Therefore, 1.11 grams of HF must be dissolved in water to create 762 ml of a solution with a pH of 2.13.

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The mass of HF that must be dissolved in water to produce 762 ml of a solution with a pH of 2.13 is 0.113 g.

What mass of HF must be dissolved in water to produce 762 ml of a solution with a pH of 2.13?

The mass of HF that must be dissolved in water to produce 762 ml of a solution with a pH of 2.13 is calculated as follows:

The equation of the dissociation of HF is:

HF (aq )⇄ H+ (aq) + F- (aq)

Ka for HF =  6.8 x 10⁻⁴

pH = 2.13,

[H+] = [tex]10^{-pH}[/tex]

[H+] = [tex]10^{-2.13}[/tex]

The number of moles of HF required will be;

Moles of HF = Concentration of HF (mol/L) × Volume of Solution (L)

Concentration of HF = [H+] = [tex]10^{-2.13}[/tex]

The volume of Solution = 726 mL or 0.762 L

Moles of HF = [tex]10^{-2.13}[/tex] × 0.762

Moles of Hf = 0.00564 moles

Mass of HF = Moles of HF × Molar Mass of HF

the molar mass of HF = 20.01 g/mol:

Mass of HF = 0.00564 moles × 20.01

Mass of HF = 0.113 g

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explain why the reaction was performed under nitrogen when the product is not air sensitive.

Answers

There are several reasons why a reaction may be performed under a nitrogen atmosphere even if the final product is not air-sensitive :-

1.To exclude oxygen and moisture :- Oxygen and moisture can react with some chemicals and cause unwanted side reactions or decrease the yield of the desired product.

By performing the reaction under a nitrogen atmosphere, these reactive species are excluded from the reaction vessel, thereby increasing the purity of the final product.

2. To prevent oxidation or reduction :- Some chemical reactions are sensitive to oxidation or reduction. Performing the reaction under nitrogen can prevent these unwanted reactions from occurring.

3.To prevent contamination: Nitrogen is an inert gas and does not react with most chemicals. By using nitrogen, the risk of contamination from other gases in the atmosphere is reduced.

4. To maintain a constant atmosphere: When working with sensitive or reactive chemicals, it is important to maintain a constant atmosphere. By using nitrogen, the atmosphere in the reaction vessel can be controlled and maintained throughout the reaction, ensuring consistent conditions for the reaction.

Overall, performing a reaction under a nitrogen atmosphere can improve the yield and purity of the desired product, reduce unwanted side reactions, and provide a controlled environment for the reaction to take place.

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Enter your answer in the provided box. How many moles of solute particles are present in 1 L (exact) of aqueous 1.90 M KBr? mol of particles

Answers

There is 3.80 mol of solute particles present in 1 L (exact) of aqueous 1.90 M KBr.

In 1 L of 1.90 M KBr, there are 1.90 moles of KBr.

Since KBr dissociates into 2 ions (K+ and Br-) in an aqueous solution, the number of solute particles (ions) will be doubled.

KBr   →     K+ and Br-

Therefore, there are 1.90 moles × 2 = 3.80 moles of solute particles present in 1 L of aqueous 1.90 M KBr.

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Electrodes respond to the activity of uncomplexed analyte ion.
a. Describe the systematic error if a component in the toothpaste complexes with fluoride. Will the measured fluoride concentrations be higher or lower than it should be? Explain how the STANDARD ADDITION method corrects for this error.

Answers

If a component in the toothpaste complexes with fluoride, the measured fluoride concentrations will be lower than they should be.

This is because the electrodes will only respond to the activity of uncomplexed analyte ion, and if some of the fluoride ions are complexed with other components in the toothpaste, they will not be available to be measured by the electrode.

The standard addition method can correct for this error by adding a known amount of fluoride ion to a sample of the toothpaste.

The added fluoride will not be complexed with other components in the toothpaste and will be available to be measured by the electrode.

By comparing the electrode response before and after the addition of the known amount of fluoride ion, the complexing effect can be accounted for and the true concentration of fluoride ion in the toothpaste can be determined.

In summary, the systematic error due to complexation of fluoride ion with other components in the toothpaste would result in lower measured fluoride concentrations.

The standard addition method corrects for this error by adding a known amount of fluoride ion to the sample and using the difference in electrode response to determine the true concentration of fluoride ion in the toothpaste.

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750. 0 g of water that was just boiled (heated to 100. 0 /C) loses 78. 45 kJ of heat


as it cools. What is the final temperature of the water?

Answers

The final temperature of the water is approximately 26.4°C.

To determine the final temperature of the water, we can use the heat equation: q = mcΔT, where q is the heat transferred, m is the mass of the substance, c is the specific heat capacity, and ΔT is the change in temperature.

Given:

Heat transferred (q) = -78.45 kJ (negative sign indicates heat loss)

Mass of water (m) = 750.0 g

Specific heat capacity of water (c) = 4.18 J/(g·°C) (approximate value)

Rearranging the heat equation to solve for the change in temperature, we have:

ΔT = q / (mc)

Converting the heat value to joules and substituting the given values into the equation, we get:

ΔT = (-78.45 kJ * 1000 J/kJ) / (750.0 g * 4.18 J/(g·°C))

Performing the calculations, we find that the change in temperature (ΔT) is approximately -27.2°C.

Since the initial temperature of the water was 100.0°C, the final temperature can be calculated by subtracting the change in temperature from the initial temperature:

Final temperature = 100.0°C - 27.2°C ≈ 72.8°C.

Therefore, the final temperature of the water is approximately 26.4°C.

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the equilibrium constant, kc, for this process is 326 at a certain temperature. if the initial concentration of br2 = i2 is 0.619 m, what is the equilibrium concentration of ibr in m?

Answers

The equilibrium concentration of IBr is 0.234 M.

To answer this question, we need to use the equilibrium constant expression, which is given as:
Kc = [IBr]/([Br2][I2])
We know that the equilibrium constant (Kc) for this reaction is 326 at a certain temperature. We also know the initial concentration of Br2 and I2, which is 0.619 M.
Let's assume that at equilibrium, the concentration of IBr is x M. Then, the concentration of Br2 and I2 will be (0.619 - x) M each.Now, we can substitute these values into the equilibrium constant expression and solve for x:
326 = x/[(0.619 - x)^2]
326(0.619 - x)^2 = x
Simplifying this equation, we get: 202.094 - 652.792x + 326x^2 = 0
Solving this quadratic equation using the quadratic formula, we get:
x = 0.234 M (rounded to three significant figures)
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Use the tabulated half-cell potentials to calculate the equilibrium constant (K) for the following balanced redox reaction at 25C. Can you please show each step 3I2 (s) + 2Fe (s) ---> 2Fe3+ (aq) + 6I- (aq)

Answers

The equilibrium constant (K) for the given balanced redox reaction at 25°C using the tabulated half-cell potentials. Please provide the half-cell potentials for the reduction of I2 to I- and the oxidation of Fe to Fe3+ to proceed with the calculation.

The Nernst equation relates the standard electrode potential (E°) to the equilibrium constant (K) and the concentrations of the species involved in the redox reaction. It is given as: E = E° - (RT/nF) ln Q
Where:
E = cell potential (measured)
E° = standard electrode potential
R = gas constant (8.314 J/K mol)
T = temperature (in Kelvin)
n = number of electrons transferred in the reaction
F = Faraday's constant (96,485 C/mol)
Q = reaction quotient (ratio of product concentrations to reactant concentrations, raised to their stoichiometric coefficients).

To calculate the equilibrium constant (K) for a redox reaction, we need to use the Nernst equation and the half-cell potentials. The Nernst equation relates the standard electrode potential (E°) to the equilibrium constant (K) and the concentrations of the species involved in the redox reaction. The half-cell potentials are tabulated values that indicate the tendency of a species to gain or lose electrons. By combining these two pieces of information, we can determine the standard cell potential (E°cell), the reaction quotient (Q), and the equilibrium constant (K) for a given redox reaction.

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Given the initial concentrations shown below, find the equilibrium concentrations for A, B, and C. Write the answer in the box below to get credit. Alg) + B(g) <--> 2 C(g) K = 25 Initial Concentrations A= 2.00M B = 3.00M C = 0.00M =

Answers

At equilibrium, the concentrations are A = 0.75 M, B = 1.25 M, and C = 0.50 M.

What are the final concentrations of A, B, and C at equilibrium?In a chemical equilibrium, the concentrations of reactants and products reach a state of balance. The equilibrium constant (K) is a measure of the extent to which a reaction proceeds toward the formation of products. In this case, the given equilibrium equation is Alg) + B(g) <--> 2 C(g), with a K value of 25.

To find the equilibrium concentrations of A, B, and C, we need to determine the changes in their concentrations from the initial values. Let's assume the changes in concentrations are x for A, x for B, and 2x for C. The equilibrium concentrations can be calculated by subtracting x from the initial concentrations of A and B and adding 2x to the initial concentration of C.

Using the equilibrium constant expression, K = [C]^2 / ([A] * [B]), we can substitute the equilibrium concentrations into the equation and solve for x. Rearranging the equation, we have [C]^2 / ([A] * [B]) = 25. Plugging in the values, we get (0.5)^2 / (0.75 * 1.25) = 25.

Simplifying further, 0.25 / 0.9375 = 25, which is true. Thus, x = 0.25. Substituting this value back into the equilibrium concentration expressions, we find that the equilibrium concentrations are A = 2.00 - 0.25 = 1.75 M, B = 3.00 - 0.25 = 2.75 M, and C = 0.25 M. Therefore, at equilibrium, the concentrations of A, B, and C are A = 1.75 M, B = 2.75 M, and C = 0.25 M.

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Determine the change in entropy (AS) for the following reaction at 298 K The standard molar entropies for the substances are as follows:KCIO, 50 - 143 /K.mol; KCIO. 5° - 151 J/K mol; KC1, 50 - 83/K-mol (include units in answer) 4KCIO3(s) 3KCIO(S) + KCHS Based on the value of the reaction quotient) when the solutions are first mixed, determine if precipitate will form when 0.20 L of 2.4x 10 M MEINO), is mixed with 0.20 L of 40 x 10" M Na Kig of Mexis 5.2 x 10-1) For each step, specify what you are solving for. Calculate the molar solubility of AB,CO, in water. (An ICE table is not necessary if you know the relevant mathematical method but you can use an ICE table if you prefer) (K 8.5 x 1012) Which of the following best represents the solubility equilibrium for silver carbonate in water? Asco, Ag lad) + 1/200, 2A) - CO ARCO, Acco) - Arla - Cota A.CO. 1/2'lad CO, The molar solubility of SF, is 0.0010 M. Determine the concentrations of strontium ion and fluoride ion in a saturated solution. Calculate the value of K for SF State clear answers for each part of the question

Answers

The change in entropy for the reaction [tex]KCIO_4 (s) - > KC_1 (s) + 2O_2 (g)[/tex]at 298 K is 207.4 J/mol K.

The change in entropy (ΔS) for a reaction can be calculated using the standard molar entropies of the reactants and products. The formula for ΔS is:

ΔS = ΣS(products) - ΣS(reactants)

In this reaction, KCIO4 (s) decomposes to form KC1 (s) and [tex]O_2[/tex] (g). The standard molar entropies (S) for these substances are:

[tex]S(KCIO_4) = 142.3 J/mol K \\S(KC_1) = 82.3 J/mol K \\S(O_2) = 205.0 J/mol K[/tex]

Using the formula for ΔS, we can calculate the change in entropy for the reaction:

[tex]\Delta S = [S(KC_1) + 2S(O_2)] - S(KCIO_4)[/tex]

ΔS = [(82.3 J/mol K) + 2(205.0 J/mol K)] - 142.3 J/mol K

ΔS = 349.7 J/mol K - 142.3 J/mol K

ΔS = 207.4 J/mol K

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--The complete Question is, Using the standard molar entropies provided, what is the change in entropy (ΔS) for the reaction KCIO4 (s) -> KC1 (s) + 2O2 (g) at 298 K? --

consider the dissolution process of solid naoh in water, where the solution temperature increases. what are the signs ( or −) of δh, δs, and δg for this process?

Answers

Here, the reaction is exothermic (heat released).

δh = -ve

The signs δs, and δg for this process will be;

If ΔS = +ve (increases), then ΔG =  -ve.

If ΔS = -ve (decreases), then ΔG =  +ve.

The dissolution of solid NaOH in water is an exothermic process, meaning that energy is released as heat. This results in a negative value for ΔH, the enthalpy change.

The dissolution of NaOH also increases the entropy of the system, resulting in a positive value for ΔS, the entropy change. The overall spontaneity of the process, as determined by the change in Gibbs free energy, ΔG, will depend on the relative magnitudes of ΔH and ΔS.

ΔG = ΔH - TΔS

If the increase in entropy dominates (+ΔS), then the process will be spontaneous and ΔG will be negative.

If ΔG =  -ve, the reaction is spontaneous.

However, if the increase in enthalpy dominates (+ΔH), then the process will not be spontaneous and ΔG will be positive.

If ΔG =  +ve, the reaction is non-spontaneous.

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Consider the furan-maleic anhydride Diels-Alder adduct. The melting point for the endo-Diels-Alder adduct of furan and maleic anhydride is reported to be 70∘C. The melting point for the exo-Diels- Alder adduct is reported to be 110∘C.
a. What isomer is obtained in the synthesis?
b. Mp of product = _____
c. Is the Product ENDO or EXO? (circle one).
d. Considering that formation of the endo-adduct is kinetically favored in Diels-Alder reactions, how is the result explained?

Answers

In the synthesis of the furan-maleic anhydride Diels-Alder adduct, the isomer obtained is the endo-Diels-Alder adduct.

The melting point (Mp) of the product is 70°C. The product is ENDO.

The endo-Diels-Alder adduct is formed as the major product in the reaction due to its kinetically favored formation. This is because the transition state for the endo-adduct formation is lower in energy than the exo-adduct, leading to a faster reaction and higher yield of the endo product.

Even though the endo-adduct is kinetically favored in Diels-Alder reactions, the exo-adduct has a higher melting point (110°C) compared to the endo-adduct (70°C). This can be attributed to the better packing and stronger intermolecular forces present in the crystalline structure of the exo-adduct, making it more thermodynamically stable. However, as the question is focused on the synthesis, the obtained product is the endo-adduct due to its kinetically favored formation.

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. explain why s8 contains subgroups isomorphic to z15, u(16), and d8 .

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Sulfur (S8) contains subgroups isomorphic to Z15, U(16), and D8 because it has a highly symmetric structure with multiple planes of reflection and rotation.

The S8 molecule has a ring structure with eight sulfur atoms arranged in a crown-like shape. Each sulfur atom forms two covalent bonds with neighboring sulfur atoms, forming a stable ring structure. This structure exhibits a high degree of symmetry, with multiple planes of reflection and rotation.

Due to its symmetry, the S8 molecule has subgroups that are isomorphic to Z15, U(16), and D8, which are mathematical groups that describe different types of symmetry. The Z15 subgroup describes the 15-fold symmetry of the S8 molecule, while the U(16) and D8 subgroups describe the rotational and reflectional symmetries of the molecule, respectively.

Understanding the symmetry properties of molecules is essential in chemistry and materials science, as it can provide insights into their physical and chemical properties. The symmetry of S8 makes it an interesting molecule to study, and its various subgroups offer a rich source of information about its structure and behavior.

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calculate the ph at 25°c of a 0.24m solution of sodium propionate nac2h5co2. note that propionic acid hc2h5co2 is a weak acid with a pka of 4.89. round your answer to 1 decimal place.

Answers

To calculate the pH of a 0.24 M solution of sodium propionate (NaC2H5CO2), we need to consider the dissociation of propionic acid (HC2H5CO2) and the hydrolysis of sodium propionate.

1. First, let's consider the dissociation of propionic acid:

HC2H5CO2 ⇌ H+ + C2H5CO2-

The equilibrium constant expression for this dissociation can be written as:

Ka = [H+][C2H5CO2-] / [HC2H5CO2]

Given that the pKa of propionic acid is 4.89, we can calculate the value of Ka as:

Ka = 10^(-pKa) = 10^(-4.89)

2. Since we have a 0.24 M solution of sodium propionate, the concentration of propionic acid can be assumed to be the same, as sodium propionate will hydrolyze to form propionic acid and sodium hydroxide:

[HC2H5CO2] = 0.24 M

3. The hydrolysis of sodium propionate can be represented as:

NaC2H5CO2 + H2O ⇌ NaOH + HC2H5CO2

Since sodium hydroxide is a strong base, it will completely dissociate in water, resulting in the formation of Na+ and OH- ions. Therefore, the concentration of NaOH will be equal to the concentration of OH-, which we can assume to be x M.

4. The concentration of HC2H5CO2 can be calculated using the initial concentration and the hydrolysis reaction:

[HC2H5CO2] = 0.24 M - x

5. From the dissociation equation, we know that the concentration of H+ ions will also be x M.

6. To calculate the pH, we can use the equation for the ionization constant (Ka):

Ka = [H+][C2H5CO2-] / [HC2H5CO2]

Substituting the values, we have:

10^(-4.89) = x * x / (0.24 - x)

Solving this equation will give us the value of x, which represents the concentration of H+ ions. Once we have x, we can calculate the pH using the formula:

pH = -log[H+]

However, solving this equation requires numerical methods or approximations, and it cannot be solved analytically. Therefore, I'm unable to provide the exact pH value based on the given information.

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How many grams of copper nitrate are required to produce 44. 0 grams of aluminum nitrate

Answers

Approximately 38.72 grams of copper nitrate are required to produce 44.0 grams of aluminum nitrate.

To determine the grams of copper nitrate required to produce 44.0 grams of aluminum nitrate, we need to use the molar ratios between the two compounds.

First, we need to know the molar masses of copper nitrate (Cu(NO3)2) and aluminum nitrate (Al(NO3)3).

The molar mass of copper nitrate (Cu(NO3)2) is:

Cu: 63.55 g/mol (atomic mass of copper)

N: 14.01 g/mol (atomic mass of nitrogen)

O: 16.00 g/mol (atomic mass of oxygen)

The total molar mass is 63.55 + 2(14.01) + 6(16.00) = 187.56 g/mol.

The molar mass of aluminum nitrate (Al(NO3)3) is:

Al: 26.98 g/mol (atomic mass of aluminum)

N: 14.01 g/mol (atomic mass of nitrogen)

O: 16.00 g/mol (atomic mass of oxygen)

The total molar mass is 26.98 + 3(14.01) + 9(16.00) = 213.00 g/mol.

Now, we can set up the ratio between the molar masses of the two compounds:

(187.56 g Cu(NO3)2) / (213.00 g Al(NO3)3) = x g Cu(NO3)2 / 44.0 g Al(NO3)3

Cross-multiplying and solving for x, we get:

x = (187.56 g Cu(NO3)2 * 44.0 g Al(NO3)3) / 213.00 g Al(NO3)3 ≈ 38.72 g

Therefore, approximately 38.72 grams of copper nitrate are required to produce 44.0 grams of aluminum nitrate.

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A structural member 100 mm (4 in.) long must be able to support a load of 50,000 N (11,250 lbf) without experiencing any plastic deformation. Given the following data for brass, steel, aluminum, and titanium, rank them from least to greatest weight in accordance with these criteria. Density (g/cm) Yield Alloy Strength [MPa (ksi)] Brass 415 (60) Steel 860 (125) Aluminum 310 (45) Titanium 550 (80) 8.5 7.9 2.7 4.5 The minimum weight: The next minimum weight: The next weight: The maximum weight:

Answers

The material with the smallest weight is: titanium, followed by steel, aluminum, and brass in increasing order of weight.

titanium < steel < aluminum < brass

To determine the weight of each material, we can calculate the cross-sectional area of the structural member needed to support the given load using the yield strength.

Then, we can multiply the cross-sectional area by the density to obtain the weight. The material with the smallest weight will be the one with the lowest density and the highest yield strength.

Calculating the required cross-sectional area:
A = F/σ_y
where F is the load and σ_y is the yield strength.

Brass: A = 50000 N / 415 MPa = 120.5 mm^2Steel: A = 50000 N / 860 MPa = 58.1 mm^2Aluminum: A = 50000 N / 310 MPa = 161.3 mm^2Titanium: A = 50000 N / 550 MPa = 90.9 mm^2

Multiplying the cross-sectional area by the density:

Brass: 120.5 mm^2 * 8.5 g/cm^3 = 1024.25 gSteel: 58.1 mm^2 * 7.9 g/cm^3 = 459.59 gAluminum: 161.3 mm^2 * 2.7 g/cm^3 = 435.51 gTitanium: 90.9 mm^2 * 4.5 g/cm^3 = 409.05 g

Ranking the materials from least to greatest weight:

1. Titanium (409.05 g)

2. Steel (459.59 g)

3. Aluminum (435.51 g)

4. Brass (1024.25 g)

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