Into which subshell is an electron added in a Cl atom?

Answers

Answer 1

The electron is added to the 3p sub shell in a Cl atom.

How is an electron added in a Cl atom?

n a chlorine (Cl) atom, an electron is added to the 3p sub shell. Electron configuration is a way to represent how electrons are distributed among different energy levels and subshells within an atom. The third energy level, represented by the principal quantum number (n = 3), contains several subshells: 3s, 3p, and 3d. Each subshell can hold a specific number of electrons.

In the case of chlorine, the electron configuration before the addition of an extra electron is 1s² 2s² 2p⁶ 3s² 3p⁵. This means that chlorine has 17 electrons distributed among the various subshells. The 3p subshell, which has an azimuthal quantum number of 1 (l = 1), can accommodate a maximum of six electrons.

When an electron is added to the chlorine atom, it fills up the 3p sub shell, resulting in the electron configuration 1s² 2s² 2p⁶ 3s² 3p⁶. This arrangement completes the 3p sub shell with a total of six electrons.

Understanding electron configuration helps us comprehend the behavior and properties of elements, as it determines their chemical reactivity and bonding patterns. It also provides insight into the arrangement of electrons in atoms and the energy levels they occupy.

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Related Questions

newly discovered compound called coenzyme U is isolated from mitochondria. Severa lines of evidence are presented advancing the claim that coenzyme U is previously unrecognized carrier in the electron transport chain. series of experiments has been performed to determine where in the electron transport chain coenzyme sits_ Which of the following the most convincing evidence that coenzyme U is part of the electron transport chain? a.When added to mitochondria suspension, coenzyme U is readily taken up by mitochondria: b.Removal of coenzyme U from mitochondria results in decreased rate of oxygen consumption:
c. Addition of NADH with coenzyme U to mitochondrial suspension caused rapid reduction of coenzyme U.
d. The rate of oxidation and reduction of coenzyme U in mitochondria is the same as the overall rate of electron transport: e.AIl other known coenzymes are part of the electron transport chain; so coenzyme U must be; too.

Answers

The most convincing evidence that coenzyme U is part of the electron transport chain is option d.

Option d presents a direct link between the oxidation and reduction of coenzyme U and the overall rate of electron transport. This indicates that coenzyme U is involved in the electron transfer process, and its presence is essential for the efficient functioning of the electron transport chain.

The other options also provide evidence that coenzyme U is involved in the electron transport chain, but they do not offer a direct link between coenzyme U and the overall rate of electron transport.

For example, option a shows that coenzyme U is readily taken up by mitochondria, but it does not prove that it is part of the electron transport chain. Similarly, option b indicates that the removal of coenzyme U results in decreased oxygen consumption, but it does not provide a direct link to electron transport.

Option c shows that coenzyme U is rapidly reduced when added with NADH, but this only suggests that it interacts with NADH, not that it is part of the electron transport chain. Option e is not a valid piece of evidence as it is based on a logical deduction rather than empirical data.

Based on the evidence presented, option d is the most convincing evidence that coenzyme U is part of the electron transport chain.

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calculate e°cell for the following reaction: 2 fe2 (aq) cd2 (aq) ↔ 2 fe3 (aq) cd (s)

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I'll gladly help you calculate the E°cell for the given reaction. To do this, we'll use the Nernst equation and the standard reduction potentials for the two half-reactions involved. Here are the steps to calculate E°cell:

1. Identify the half-reactions:
Fe2+ (aq) → Fe3+ (aq) + e-  (Oxidation half-reaction)
Cd2+ (aq) + 2e- → Cd (s)  (Reduction half-reaction)
2. Find the standard reduction potentials (E°) for both half-reactions from a reference table:
E°(Fe3+/Fe2+) = +0.77 V
E°(Cd2+/Cd) = -0.40 V
3. Reverse the oxidation half-reaction's potential, as it needs to be an oxidation potential instead of a reduction potential:
E°(Fe2+/Fe3+) = -0.77 V
4. Add the standard potentials for both half-reactions to find E°cell:
E°cell = E°(Fe2+/Fe3+) + E°(Cd2+/Cd)
E°cell = -0.77 V + (-0.40 V)
E°cell = -1.17 V
The E°cell for the given reaction is -1.17 V. This indicates that the reaction is not spontaneous under standard conditions, as a positive E°cell would be required for a spontaneous reaction.

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the ions ca 2 and po4 3- form a salt with the formula: a. ca po4 b. ca2( po4 )3 c. ca2po4 d. ca(po4 )2 e. ca3( po4 )2

Answers

The ions Ca²⁺ and PO₄³⁻ combine to form a salt with the formula e. Ca₃(PO₄)₂.

In order to understand this, we need to consider the charges of the ions involved. Calcium ions (Ca²⁺) have a positive charge of +2, while phosphate ions (PO₄³⁻) have a negative charge of -3.

When forming a salt, the positive and negative charges must balance out to form a neutral compound.

To achieve this balance, we need three calcium ions (each with a charge of +2) and two phosphate ions (each with a charge of -3).

This is because:

3 Ca²⁺ ions: 3 x (+2) = +6
2 PO₄³⁻ ions: 2 x (-3) = -6

When the charges of these ions combine, they result in a neutral compound (+6 and -6 cancel out). Therefore, the correct formula for the salt formed by the combination of Ca²⁺ and PO₄³⁻ ions is Ca₃(PO₄)₂. Therefore, the correct answer is option e.

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a new species was produced which then formed a blue complex with k3(f2(cn)6) what is the new species

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The information provided suggests that a new species was formed through a chemical reaction involving a complex called "k3(f2(cn)6)" .

Another component that resulted in the formation of a blue complex. However, without additional details or the specific reaction mechanism, it is not possible to determine the exact nature or name of the new species that was produced.

To provide more accurate information, it would be helpful to have more details about the reactants, reaction conditions, and any other relevant information.

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A typical "hard" water sample contains about 2.0x10^-3 mol Ca2+ per L. Calculate the maximum concentration of fluoride ion that could be present in hard water. Assume the only anion present that will precipitate is the calcium ion. (CaF2(s) Ksp,25C=4.0x10^-11)

Answers

The maximum concentration of fluoride ion that could be present in hard water containing about 2.0x10⁻³ mol Ca²⁺ per L is 2.0x10⁻⁵ mol/L.

Hard water is water that contains dissolved minerals, particularly calcium and magnesium ions. In this problem, we are given the concentration of calcium ions in a typical hard water sample and asked to calculate the maximum concentration of fluoride ion that could be present without precipitating as calcium fluoride.

The solubility product constant (Ksp) for calcium fluoride is given as 4.0x10⁻¹¹ at 25°C. This means that the product of the concentrations of calcium ions and fluoride ions in solution cannot exceed this value without precipitating as calcium fluoride.

The balanced chemical equation for the precipitation reaction of calcium fluoride is:

Ca²⁺ + 2F⁻ → CaF2(s)

We know the concentration of Ca²⁺ is 2.0x10⁻³ mol/L, and since the stoichiometry of the reaction is 1:2 for Ca²⁺ to F⁻, we can calculate the maximum concentration of fluoride ion that could be present without precipitation using the Ksp expression:

Ksp = [Ca²⁺][F⁻]²

Rearranging the equation to solve for [F⁻], we get:

[F⁻] = √(Ksp/[Ca²⁺]) = √(4.0x10⁻¹¹/2.0x10⁻³) = 2.0x10⁻⁵ mol/L

Therefore, the maximum concentration of fluoride ion that could be present in hard water without precipitating as calcium fluoride is 2.0x10⁻⁵ mol/L.

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Given the electronegativity values of C (2.5) and O (3.5), illustrate the bond polarity in a carbon monoxide molecule, CO, using delta notation.Group of answer choices(δ-) C-O (δ+)(δ+) C-O (δ-)(δ+) C-O (δ+)(δ-) C-O (δ-)none of the above

Answers

In a carbon monoxide molecule, the C=O bond has a bond polarity of (δ+)C-O. Option 5 is Correct.

This means that the electron density is more concentrated around the oxygen atom (δ+) than around the carbon atom (δ-), causing the oxygen atom to be slightly negatively charged and the carbon atom to be slightly positively charged. The electronegativity difference between C and O (3.5 - 2.5 = 0.5) is the source of this polarity. The electronegativity difference between carbon and oxygen in a carbon monoxide molecule is 0.5.

This means that oxygen is more electronegative than carbon. As a result, the electrons in the C=O bond are pulled slightly closer to the oxygen atom, creating a slight negative charge on the oxygen atom and a slight positive charge on the carbon atom. It's worth mentioning that the concept of electronegativity is based on the ability of atoms to attract electrons in a covalent bond, and it's a relative scale, where the difference between two atoms is measured in comparison to all other atoms in the periodic table.  

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Correct Question:

Given the electronegativity values of C (2.5) and O (3.5), illustrate the bond polarity in a carbon monoxide molecule, CO, using delta notation.Group of answer choices

1. (δ-) C-O

2. (δ+)(δ+) C-O

3. (δ-)(δ+) C-O

4. (δ+)(δ-) C-O (δ-)

5. none of the above.

The bohr radius of the hydrogen atom is 0.0529 nm. that's the radius in the n=1 state. what is the radius of the hydrogen atom in the n=3 state.? 0.0529 nm 0.00588 nm 0.48 nm 0.16 nm

Answers

You want to find the radius of the hydrogen atom in the n=3 state, given that the Bohr radius of the hydrogen atom in the n=1 state is 0.0529 nm. To determine this, we will use the following formula:

radius = (n^2 * a0), where n is the principal quantum number (in this case, n=3), and a0 is the Bohr radius (0.0529 nm).

Step 1: Calculate the square of the principal quantum number:
n^2 = 3^2 = 9

Step 2: Multiply the result with the Bohr radius:
radius = (n^2 * a0) = (9 * 0.0529 nm) = 0.4761 nm

Therefore, the radius of the hydrogen atom in the n=3 state is approximately 0.48 nm.

Mercury (a) is harmless once converted into methylmercury, (b) exposure often occurs through shellfish, (c) is most concentrated in herbivores, (d) can be safely trapped during the production of concrete, (e) damages the immune system.

Answers

The mercury of the answer is: option(a) Mercury is not harmless once converted into methylmercury. option (b) Exposure to mercury often occurs through shellfish.

(a) Mercury is not harmless once converted into methylmercury. Methylmercury is a highly toxic form of mercury that can bioaccumulate in organisms and pose significant health risks. It can accumulate in the food chain, especially in fish and seafood, and prolonged exposure to methylmercury can lead to neurological and developmental problems in humans.

(b) Exposure to mercury often occurs through shellfish. Shellfish, such as certain types of fish and crustaceans, have the ability to accumulate mercury from their environment. This is because mercury can be present in water bodies due to natural processes or human activities, such as industrial pollution. When shellfish are consumed by humans, the mercury they have accumulated can be transferred to the body, leading to potential health risks.

The statements (c), (d), and (e) are incorrect. Mercury is not most concentrated in herbivores (c), it cannot be safely trapped during the production of concrete (d), and it does not directly damage the immune system (e). However, it is important to note that mercury exposure can have various adverse effects on the nervous system, cardiovascular system, and other organs.

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Consider the following equilibrated system: 2NO2(g) 2NO(g) + O2(g). If the Kp value is 0. 648, find the equilibrium pressure of the O2 gas if the NO2 gas pressure is 0. 520 atm and the PNO is 0. 300 atm at equilibrium

Answers

Considering the following equilibrated system:  the equilibrium pressure of [tex]O_2[/tex] gas is approximately 1.944 atm.

In an equilibrated system, the equilibrium constant (Kp) expresses the ratio of the partial pressures of the products to the partial pressures of the reactants, with each raised to the power of their respective stoichiometric coefficients. The balanced equation for the given system is: [tex]2NO_2(g)[/tex](g) ⇌ [tex]2NO(g) + O_2(g).[/tex]

Given that the Kp value is 0.648, we can set up an expression for the equilibrium constant:

Kp = [tex](PNO)^2 * (PO_2) / (PNO_2)^2[/tex]

We are given the partial pressures of [tex]NO_2[/tex] and NO at equilibrium as 0.520 atm and 0.300 atm, respectively. Let’s assume the equilibrium pressure of O2 is “x” atm.

Substituting the given values into the expression, we have:

0.648 = [tex](0.300)^2 * x / (0.520)^2[/tex]

Simplifying the equation:

0.648 = (0.09 * x) / (0.2704)

0.648 = 0.3333 * x

X ≈ 1.944 atm

Therefore, the equilibrium pressure of [tex]O_2[/tex] gas is approximately 1.944 atm.

This indicates that at equilibrium, the partial pressure of [tex]O_2[/tex] is 1.944 atm, while the partial pressures of [tex]NO_2[/tex] and NO are 0.520 atm and 0.300 atm, respectively, in accordance with the given equilibrium constant (Kp) value.

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Benedict's test shows the presence of
Choose...reducing sugars, alcohols, amino acids
.
A positive Benedict's test appears as
Choose...a reddish precipitate, a blue solution ,a color change to purple
.
A negative Benedict's test appears as
Choose...a blue solution, a white precipitate, a colorless solution

Answers

Benedict's test shows the presence of reducing sugars. This test is used to detect the presence of reducing sugars such as glucose, fructose, and maltose.

Reducing sugars are those that have a free aldehyde or ketone group and can reduce other compounds. Benedict's reagent, which contains copper sulfate, sodium carbonate, and sodium citrate, is added to the sample being tested. If reducing sugars are present, they react with the copper ions in the reagent to form a reddish precipitate of copper oxide.A positive Benedict's test appears as a reddish precipitate. This indicates the presence of reducing sugars in the sample being tested.

A negative Benedict's test appears as a blue solution. This indicates the absence of reducing sugars in the sample being tested.1. Benedict's test shows the presence of reducing sugars.2. A positive Benedict's test appears as a reddish precipitate.3. A negative Benedict's test appears as a blue solution. Benedict's test is a biochemical test used to detect the presence of reducing sugars in a solution. In a positive Benedict's test, the reaction between the reducing sugar and the copper sulfate in Benedict's reagent forms a reddish precipitate. On the other hand, a negative Benedict's test indicates that there are no reducing sugars present, and the solution remains blue, which is the color of the original reagent.

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Write the net cell equation for this electrochemical cell. Phases are optional. Do not include the concentrations. Sn(s)∣∣Sn2+(aq, 0.0155 M)‖‖Ag+(aq, 2.50 M)∣∣Ag(s) net cell equation: Calculate ∘cell , Δ∘rxn , Δrxn , and cell at 25.0 ∘C , using standard potentials as needed. (in KJ/mole for delta G)
∘cell= ?
Δ∘rxn= ?
Δrxn=?
cell= V

Answers

For the net cell equation Sn(s) + 2 Ag⁺(aq) → Co²⁺(aq) + 2 Ag(s); The concentrations of both reactants and products are not changing. Thus, ΔGrxn = -318.2 kJ/mol.

Concentration is a measure of how much of a substance is dissolved in a given quantity of a solution.

Net Cell Equation: Sn(s) + 2 Ag⁺(aq) → Co²⁺(aq) + 2 Ag(s)

E°cell = -0.337 V

E cell = -0.337 V

ΔG°rxn = -159.1 kJ/mol

ΔGrxn = -159.1 kJ/mol

The standard potential of the cell, E°cell, is calculated by subtracting the standard reduction potential of the reduction half-reaction (Ag+ + 1e- → Ag, E° = +0.799 V) from the standard reduction potential of the oxidation half-reaction (Sn → Sn²⁺, E° = -1.136 V). Thus, E°cell = -1.136 V + 0.799 V = -0.337 V.

The cell potential, Ecell, is equal to the standard potential, E°cell, since the concentrations of both reactants and products are not changing. Thus, Ecell = -0.337 V.

The standard reaction Gibbs free energy, ΔG°rxn, is calculated by subtracting the Gibbs free energy of the products (2 Ag(s): ΔG°f = 0 kJ/mol) from the Gibbs free energy of the reactants (Sn(s): ΔG°f = 0 kJ/mol, 2 Ag⁺ (aq): ΔG°f = -318.2 kJ/mol). Thus, ΔG°rxn = 0 kJ/mol - (-318.2 kJ/mol) = -318.2 kJ/mol.

The reaction Gibbs free energy, ΔGrxn, is equal to the standard reaction Gibbs free energy, ΔG°rxn, since the concentrations of both reactants and products are not changing. Thus, ΔGrxn = -318.2 kJ/mol.

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What is the mole ratio of methane to water in the reaction?

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The mole ratio of methane to water in a reaction depends on the balanced chemical equation representing the reaction. Without specific information about the reaction, it is not possible to determine the exact mole ratio.

In a balanced chemical equation, the coefficients in front of the reactants and products represent the mole ratios between them. For example, if the balanced equation is:

CH4 + 2O2 -> CO2 + 2H2O

The mole ratio of methane to water is 1:2. This means that for every 1 mole of methane consumed in the reaction, 2 moles of water are produced. The coefficients provide a quantitative relationship between the reactants and products, allowing us to determine the stoichiometry of the reaction and the corresponding mole ratios.

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2. What physiological adaptations cause training- induced changes in VO2max? 3. What specific physiological adaption would cause an increase in in the first 2 weeks of training? VO2max 4. How would VO2max results differ between grade exercise tests (GXT) on a treadmill vs. cycle ergometer? Why? 5. Is VO2max (by itself) the best indicator of endurance performance? Why or why not? What other factors influence endurance performance?

Answers

Physiological adaptations such as increased cardiac output, capillary density, and muscle oxidative capacity cause training-induced changes in VO₂ max.

VO₂ max is the maximum amount of oxygen that an individual can utilize during exercise and is a critical measure of endurance capacity. Training-induced adaptations can increase VO₂ max by improving the delivery and utilization of oxygen in the body. These adaptations include an increase in cardiac output, which is the amount of blood the heart pumps per minute, and an increase in capillary density, which enhances oxygen delivery to the muscles.

Additionally, training can increase muscle oxidative capacity, which enables muscles to use oxygen more efficiently during exercise. This can lead to an increase in VO₂ max within the first two weeks of training due to improved oxygen delivery to the muscles. VO₂ max results may differ between GXT on a treadmill vs. cycle ergometer because the type of exercise and muscle recruitment patterns may affect oxygen utilization.

While VO₂ max is an important measure of endurance performance, other factors such as lactate threshold, economy of movement, and mental toughness also influence performance.

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Does trans-oleic acid have a higher or lower melting point than cis-oleic acid? Explain Which triacylglycerol yields more energy on oxidation: one containing three resides of linolenic acid or three residues of stearic acid?

Answers

Trans-oleic acid has a higher melting point than cis-oleic acid and a triacylglycerol containing three residues of stearic acid yields more energy upon oxidation compared to one containing three residues of linolenic acid.

Trans-oleic acid has a higher melting point than cis-oleic acid. This is because the trans configuration results in a more linear structure, allowing the molecules to pack more closely together, leading to stronger intermolecular forces and a higher melting point.

A triacylglycerol containing three residues of stearic acid yields more energy upon oxidation compared to one containing three residues of linolenic acid.This is because stearic acid is a saturated fatty acid, which means it has a higher carbon-to-hydrogen ratio, leading to more energy release upon oxidation. Linolenic acid, on the other hand, is an unsaturated fatty acid and has a lower carbon-to-hydrogen ratio, resulting in less energy release upon oxidation.

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Trans-oleic acid has a higher melting point than cis-oleic acid. Three residues of stearic acid yield more energy on oxidation than three residues of linolenic acid due to the higher number of carbon atoms and absence of double bonds.

Trans-oleic acid has a higher melting point than cis-oleic acid due to its straighter shape, which allows for closer packing and stronger intermolecular forces. In contrast, cis-oleic acid has a kink in its structure due to the cis double bond, which results in weaker intermolecular forces and a lower melting point.

Stearic acid has a higher number of carbon atoms (18) and lacks double bonds, making it a saturated fatty acid. Saturated fatty acids can pack more closely together, resulting in stronger intermolecular forces and a higher energy yield upon oxidation. In contrast, linolenic acid is an unsaturated fatty acid with three double bonds, making it a polyunsaturated fatty acid. The presence of double bonds causes kinks in the fatty acid chains, making it more difficult for them to pack together, resulting in weaker intermolecular forces and a lower energy yield upon oxidation.

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Rank the following elements in order of increasing ionization energy: Ge,Rb,S,Ne A. Ge

Answers

The correct order of increasing ionization energy for the given elements is:
Ne < Rb < S < Ge.


The amount of energy required for an isolated, gaseous molecule in the ground electronic state to absorb in order to discharge one electron and produce a cation is known as the ionisation energy. The amount of energy required for every atom in a mole to lose one electron is often given as kJ/mol.

First ionisation energy normally rises from left to right over a period on the periodic table. The outermost electron is more tightly connected to the nucleus as a result of the increased nuclear charge.

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How many grams of sodium hydrogen carbonate decompose to give 28.7 mL of carbon dioxide gas at STP?2NaHCO3(s)⟶ΔNa2CO3(s)+H2O(l)+CO2(g)Express your answer with the appropriate units.

Answers

0.215 grams of sodium hydrogen carbonate decompose to produce 28.7 mL of carbon dioxide gas at STP.

To calculate the grams of sodium hydrogen carbonate (NaHCO₃) decomposing to produce 28.7 mL of carbon dioxide (CO₂) at STP, we can use the Ideal Gas Law (PV = nRT) and stoichiometry.

At STP, temperature (T) is 273.15 K, pressure (P) is 1 atm, and the gas constant (R) is 0.0821 L·atm/mol·K.

First, convert the volume of CO₂ to moles.

Rearrange the Ideal Gas Law to solve for n:

n = PV / RT = (1 atm)(0.0287 L) / (0.0821 L·atm/mol·K)(273.15 K) = 0.00128 mol of CO₂.

Now, using the stoichiometry of the balanced equation, find the moles of NaHCO3:

2 moles NaHCO₃ / 1 mole CO₂ = x moles NaHCO₃ / 0.00128 mol CO₂. Solving for x gives 0.00256 mol of NaHCO₃.

Finally, convert moles of NaHCO₃ to grams using its molar mass (84 g/mol):

0.00256 mol NaHCO₃ × 84 g/mol = 0.215 g NaHCO₃.

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The mass of NaHCO3 required is:

0.00256 mol NaHCO3 × 84 g/mol = 0.215 g NaHCO3

What is the mass of sodium hydrogen carbonate that decomposes to produce 28.7 mL of carbon dioxide gas?

The mass of NaHCO3 is 0.215 g NaHCO3.

The balanced chemical equation for the decomposition of sodium hydrogen carbonate is:

2NaHCO3(s) → Na2CO3(s) + H2O(l) + CO2(g)

From the equation, we see that 2 moles of NaHCO3 produces 1 mole of CO2.

At STP (Standard Temperature and Pressure), 1 mole of any gas occupies 22.4 L.

Given that 28.7 mL of CO2 gas is produced, we can convert it to moles

28.7 mL CO2 × (1 L / 1000 mL) × (1 mol CO2 / 22.4 L) = 0.00128 mol CO2

Since 2 moles of NaHCO3 produce 1 mole of CO2, the number of moles of NaHCO3 required is:

0.00128 mol CO2 × (2 mol NaHCO3 / 1 mol CO2) = 0.00256 mol NaHCO3

The molar mass of NaHCO3 is:

Na = 23 g/mol

H = 1 g/mol

C = 12 g/mol

O = 16 g/mol

Total molar mass = 23 + 1 + 12 + 3(16) = 84 g/mol

Therefore, the mass of NaHCO3 required is:

0.00256 mol NaHCO3 × 84 g/mol = 0.215 g NaHCO3 (to three significant figures).

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Propose a structure consistent with the following spectral data for a compound C8H18O2:
IR: 3350 cm–1
1H NMR: 1.24 δ (12 H, singlet); 1.56 δ (4 H, singlet); 1.95 δ (2 H, singlet)

Answers

The proposed structure for the compound is CH₃-CH₂-CH₂-CH₂-CH₂-CH₂-CH₂-OCOCH₃.

Based on the spectral data provided, we can propose the following structure for the compound C₈H₁₈O₂:

CH₃-CH₂-CH₂-CH₂-CH₂-CH₂-CH₂-OCOCH₃.

The IR spectrum shows a strong peak at 3350 cm⁻¹, which indicates the presence of an -OH group. The NMR spectrum shows three distinct signals at 1.24 δ, 1.56 δ, and 1.95 δ, which indicates the presence of three different types of protons.

The signal at 1.24 δ is a singlet with 12 equivalent protons, which indicates the presence of eight methylene (-CH₂-) groups. The signal at 1.56 δ is also a singlet with four equivalent protons, which indicates the presence of two methylene groups. The signal at 1.95 δ is a singlet with two equivalent protons, which indicates the presence of a methyl (-CH₃) group.

Putting these pieces of information together, we can propose a structure for the compound that contains an eight-carbon chain with an -OH group attached to a methylene group at one end and an ester group (-OCOCH0₃) attached to the other end. The structure is consistent with the spectral data and has the following formula:  C₈H₁₈O₂

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7. What additional reactant is required for oxidation of polyunsaturated fatty acids compared to saturated fatty acids? A. Biotin B.O2 C. NADPH D. ATP E. FAD+

Answers

The additional reactant required for oxidation of polyunsaturated fatty acids compared to saturated fatty acids is Biotin.

Biotin is a coenzyme that helps in the carboxylation of fatty acids, which is necessary for their oxidation. Polyunsaturated fatty acids have more double bonds than saturated fatty acids, which makes them more flexible and prone to structural changes.

Therefore, biotin plays a crucial role in the oxidation of these flexible fatty acids. On the other hand, saturated fatty acids have a more rigid structure, making them less dependent on biotin for their oxidation.

In summary, biotin is essential for the oxidation of polyunsaturated fatty acids due to their structural properties, while saturated fatty acids require less biotin for oxidation.

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How many grams of oxygen are needed to combust 20. 0 grams of propane (C3H8) according to the reaction below?



C3H8+5O2⟶3CO2+4H2O

Answers

Approximately 72.48 grams of oxygen are needed to combust 20.0 grams of propane.To determine the amount of oxygen required to combust 20.0 grams of propane (C3H8), we need to use the stoichiometry of the balanced equation.

The balanced equation tells us that 1 mole of propane (C3H8) reacts with 5 moles of oxygen (O2) to produce 3 moles of carbon dioxide (CO2) and 4 moles of water (H2O).

First, we need to calculate the number of moles of propane in 20.0 grams. The molar mass of propane (C3H8) is 44.1 grams/mol (3 carbon atoms + 8 hydrogen atoms).

Moles of propane = mass / molar mass

Moles of propane = 20.0 g / 44.1 g/mol ≈ 0.453 mol

According to the stoichiometry of the balanced equation, 1 mole of propane requires 5 moles of oxygen.

Moles of oxygen = 5 * moles of propane

Moles of oxygen = 5 * 0.453 mol = 2.265 mol

Finally, we can calculate the mass of oxygen needed using its molar mass, which is 32.0 grams/mol.

Mass of oxygen = moles of oxygen * molar mass

Mass of oxygen = 2.265 mol * 32.0 g/mol ≈ 72.48 g

Therefore, approximately 72.48 grams of oxygen are needed to combust 20.0 grams of propane.

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. describe how you will determine the proper recrystallization solvent for your product

Answers

To determine the proper recrystallization solvent for a product, there are several steps that can be followed such as considering the properties of the product, dissolution of product, and finding a solvent system.

The first step is to consider the properties of the product, including its solubility, boiling point, melting point, and chemical structure. This information can be used to identify potential solvents that are likely to dissolve the product while leaving any impurities behind.

Next, a small amount of the product can be dissolved in a test tube or beaker using a potential solvent. The mixture can then be heated to boiling and allowed to cool slowly to see if crystals form. If crystals do not form, another solvent can be tested. This process can be repeated until a suitable solvent is found.

Another approach is to use a mixed solvent system, where two or more solvents are combined to optimize the solubility of the product. For example, a polar solvent may be combined with a non-polar solvent to create a mixed solvent system that can dissolve both the product and any impurities.

Ultimately, the goal is to find a solvent or mixed solvent system that will allow the product to form pure crystals upon cooling. This can be confirmed by measuring the melting point of the crystals and comparing it to the known melting point of the product.

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To determine the proper recrystallization solvent for a product, solubility tests should be performed with different solvents at varying temperatures. The ideal solvent will dissolve the product when hot, but precipitate it when cooled.

To perform a solubility test, a small amount of the product is added to a test tube and various solvents are added in small increments with stirring. The mixture is heated until boiling, and the solvent is added dropwise until the product dissolves. The test tube is then cooled, and the amount of product that recrystallizes is observed.

The solvent that dissolves the product at a high temperature and recrystallizes it at a low temperature is the ideal recrystallization solvent. This method ensures a high yield and purity of the desired product.

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consider the reaction of 75.0 ml of 0.350 m c₅h₅n (kb = 1.7 x 10⁻⁹) with 100.0 ml of 0.425 m hcl. what quantity in moles of h⁺ would be present if 100.0 ml of h⁺ were added?

Answers

If 100.0 mL of H+ were added, the quantity in moles of H+ present would be 0.0425 mol. First, let's write the balanced chemical equation for the reaction between C5H5N and HCl:

C5H5N + HCl → C5H6NCl

From the balanced equation, we can see that the moles of H+ produced in the reaction will be equal to the moles of C5H5N consumed.

Therefore, we need to calculate the moles of C5H5N in the initial solution:

moles of C5H5N = (0.350 mol/L) x (0.0750 L)

                            = 0.0263 mol

Now we can use the stoichiometry of the balanced equation to find the moles of H+ produced:

moles of H+ = moles of C5H5N

                    = 0.0263 mol

Finally, we can calculate the quantity in moles of H+ present if 100.0 mL of H+ were added:

moles of H+ = (0.425 mol/L) x (0.1000 L)

                     = 0.0425 mol

Therefore, if 100.0 mL of H+ were added, the quantity in moles of H+ present would be 0.0425 mol.

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Calculate the molarity of a 17.5% (by mass) aqueous solution of nitric acid.

A)0.274 m

B)3.04 m

C)2.74 m

D)4.33 m

E)The density of the solution is needed to solve this problem

Answers

The molarity of a 17.5% (by mass) aqueous solution of nitric acid. option C) 2.74 m. Hence, option c) is the correct answer.

To calculate the molarity of the solution, we need to know the molar mass of nitric acid and the density of the solution. The molar mass of nitric acid is 63.01 g/mol.

Assuming we have 100 g of the solution, we know that 17.5 g of this is nitric acid. We can convert this mass to moles by dividing by the molar mass:

17.5 g / 63.01 g/mol = 0.2777 mol

Now, we need to calculate the volume of the solution that contains this amount of nitric acid. To do this, we need the density of the solution. Unfortunately, this information is not given in the question, so we cannot proceed further without making an assumption.

Assuming a density of 1.00 g/mL (which is a reasonable assumption for aqueous solutions), we can calculate the volume of the solution:

100 g / 1.00 g/mL = 100 mL = 0.1 L

Now, we can calculate the molarity of the solution:

Molarity = moles of solute / volume of solution in liters

Molarity = 0.2777 mol / 0.1 L = 2.777 M

Rounding this to three significant figures gives us 2.74 m, which is option C).

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If it take 87 mL of 6. 4 M Ba(OH)2 solution to completely neutralize 5. 5 M of HI


solution, what is the volume of the Hl solution needed?

Answers

The concept of molarity (M) and the stoichiometry of the balanced chemical equation between Ba(OH)2 and HI. The balanced equation is Ba(OH)2 + 2HI -> BaI2 + 2H2O.

From the equation, we can see that 1 mole of Ba(OH)2 reacts with 2 moles of HI.  First, we need to calculate the number of moles of Ba(OH)2 used:

Molarity (M) = moles of solute / volume of solution (L)

Rearranging the equation, moles of solute = Molarity × volume of solution (L)

Moles of Ba(OH)2 = 6.4 M × 0.087 L = 0.5568 moles

Since the stoichiometry of the balanced equation tells us that 1 mole of Ba(OH)2 reacts with 2 moles of HI, we can conclude that 0.5568 moles of Ba(OH)2 will react with (0.5568 × 2) = 1.1136 moles of HI.

Now, we can calculate the volume of the HI solution needed:

Volume of HI solution (L) = moles of HI / Molarity of HI

Moles of HI = 1.1136 moles

Molarity of HI = 5.5 M

Volume of HI solution = 1.1136 moles / 5.5 M = 0.2021 L or 202.1 mL Therefore, approximately 202.1 mL of the HI solution is needed to completely neutralize the 87 mL of 6.4 M Ba(OH)2 solution.

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Which of the following is the weakest reducing agent?
a. C
r
3
+
(
a
q
)
b. K
(
s
)
c. C
a
2
+
(
a
q
)
d. C
r
(
s
)
e. F

(
a
q
)

Answers

The weakest reducing agent among the options given is Ca[tex]_{2}[/tex]+(aq). Option C is answer.

The strength of a reducing agent is determined by its ability to donate electrons and undergo oxidation. In this case, we can compare the reduction potentials of the species listed.

Cr[tex]_{3}[/tex]+(aq) is a stronger reducing agent than Ca[tex]_{2}[/tex]+(aq) because it has a higher tendency to donate electrons and get reduced. Similarly, Cr(s) is a stronger reducing agent than Ca[tex]_{2}[/tex]+(aq) because it has a greater tendency to donate electrons.

K(s) is a very strong reducing agent as it readily donates its electron, making it the strongest reducing agent among the options.

F−(aq) is also a strong reducing agent because it readily accepts electrons and gets reduced.

Option C is answer.

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Predict the ideal bond angles around nitrogen in n2f2 using the molecular shape given by the vsepr theory. enter a number without the degree symbol.

Answers

The VSEPR theory predicts that the molecular shape of N2F2 is bent or V-shaped. The ideal bond angles around nitrogen in N2F2 are approximately 109.5 degrees. However, due to the presence of two lone pairs on each nitrogen atom, the bond angles may deviate slightly from the ideal value.


Using the VSEPR theory, the molecular shape of N2F2 is a trigonal planar arrangement with one lone pair on each nitrogen atom. As a result, the ideal bond angle between the nitrogen and fluorine atoms in N2F2 is approximately 120 degrees.

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Half life and Decompositiona. Half life and Decompositionb. When heated to 75°C, 1 mole of compound A decomposes to form 1 mole of compound B and 1 mole of compound C. The reaction follows first-order kinetics, with a rate constant of 4.46 ✕ 10−4 s−1. If the initial concentration of compound A is 1.64 ✕ 10−1 M, what will be the concentration of compound A after 10.0 minutes of reaction?
c. The rate law for a general reaction involving reactant A is given by the equation
rate = k[A]2,
where rate is the rate of the reaction, k is the rate constant, [A] is the concentration of reactant A, and the exponent 2 is the order of reaction for reactant A. What is the rate constant, k, if the reaction rate at 450.°C is 1.25 ✕ 10−1 mol/L·s when the concentration of A is 0.222 mol/L?

Answers

a. The concentration of compound A after 10.0 minutes of reaction is 1.08 × 10⁻¹ M.

b. The half-life of the reaction is 1551 seconds and concentration of compound A after 10.0 minutes of reaction is 1.08 × 10⁻¹ M.

c. The rate constant k is 2.94 L/mol·s.

How to find concentration of compound?

a. The decomposition reaction of compound A to form compounds B and C is given by:

A → B + C

Since the reaction follows first-order kinetics, we can use the following formula to calculate the concentration of compound A after a certain time:

[A] = [A]0 [tex]e^(^-^k^t^)[/tex]

where [A]0 is the initial concentration of compound A, k is the rate constant, and t is the time.

Substituting the given values, we get:

[A] = (1.64 × 10⁻¹ M) e^(-4.46 × 10⁻⁴ s⁻¹ × 600 s)

[A] = 1.08 × 10⁻¹ M

Therefore, the concentration of compound A after 10.0 minutes of reaction is 1.08 × 10⁻¹ M.

How to find concentration of compound?

b. To solve this problem, we first need to determine the rate of the reaction using the rate constant and the concentration of compound A:

rate = k[A]

Substituting the given values, we get:

rate = (4.46 × 10⁻⁴ s⁻¹)(1.64 × 10⁻¹ M) = 7.31 × 10⁻⁵ M/s

We can then use the half-life formula for a first-order reaction to determine the time required for the concentration of compound A to decrease by half:

t1/2 = ln(2) / k

Substituting the given rate constant, we get:

t1/2 = ln(2) / 4.46 × 10⁻⁴ s⁻¹ = 1551 s

Therefore, the half-life of the reaction is 1551 seconds.

To determine the concentration of compound A after 10.0 minutes, we need to convert the time to seconds and use the following formula:

[A] = [A]0 [tex]e^(^-^k^t^)[/tex]

Substituting the given values, we get:

[A] = (1.64 × 10⁻¹ M) e^(-4.46 × 10⁻⁴ s⁻¹ × 600 s)

[A] = 1.08 × 10⁻¹ M

Therefore, the concentration of compound A after 10.0 minutes of reaction is 1.08 × 10⁻¹ M.

How to find the rate constant?

c. The rate law for the reaction is given by:

rate = k[A]²

To determine the rate constant, we need to use the given rate and concentration:

rate = k[A]² = 1.25 × 10⁻¹ mol/L·s

[A] = 0.222 mol/L

Substituting these values, we get:

k = rate / [A]² = (1.25 × 10⁻¹ mol/L·s) / (0.222 mol/L)² = 2.94 L/mol·s

Therefore, the rate constant k is 2.94 L/mol·s.

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one of the factors that influences the behavior of a gas sample is pressure. pressure can be expressed using different units, and it is important to be able to convert between them.

Answers

To convert pressure in atmospheres to Pascals write values down, use conversion factor and multiply given pressure by conversion factor.

One of the factors that influences the behavior of a gas sample is pressure. Pressure is the force exerted by the gas particles on the walls of its container, and it is influenced by factors like temperature and volume. In order to compare pressure values or perform calculations involving pressure, it's crucial to be able to convert between different units of pressure.

Common units for pressure include:
1. Pascal (Pa)
2. Atmosphere (atm)
3. Bar (bar)
4. Torr (torr) or millimeters of mercury (mmHg)

To convert between these units, you can use the following conversion factors:
1 atm = 101325 Pa
1 atm = 1.01325 bar
1 atm = 760 torr (or 760 mmHg)

Now, let's say you have a pressure value in atmospheres and you want to convert it to Pascals. Here's the step-by-step process:

1. Write down the given pressure value in atmospheres (e.g., 2 atm).
2. Use the conversion factor (1 atm = 101325 Pa).
3. Multiply the given pressure by the conversion factor (2 atm * 101325 Pa/atm).

After performing the calculation, you'll get the pressure value in Pascals (202650 Pa).

By following similar steps, you can convert pressure values between any of the mentioned units.


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a solution was made by dissolving 4.73g of sodium chloride in 51.9 g water. what is mole fraction of water in this solution

Answers

The mole fraction of water in this solution is 0.972 when a solution was made by dissolving 4.73g of sodium chloride in 51.9 g water.

To find the mole fraction of water in this solution, we first need to calculate the moles of sodium chloride and water in the solution.

The molar mass of sodium chloride is 58.44 g/mol, so the number of moles of sodium chloride in the solution is:

moles of NaCl = mass of NaCl / molar mass of NaCl
moles of NaCl = 4.73 g / 58.44 g/mol
moles of NaCl = 0.081 moles

The molar mass of water is 18.02 g/mol, so the number of moles of water in the solution is:

moles of water = mass of water / molar mass of water
moles of water = 51.9 g / 18.02 g/mol
moles of water = 2.88 moles

The mole fraction of water in the solution is:

mole fraction of water = moles of water / (moles of NaCl + moles of water)
mole fraction of water = 2.88 moles / (0.081 moles + 2.88 moles)
mole fraction of water = 0.972

Therefore, the mole fraction of water in this solution is 0.972.

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What is E°cell for the following reaction?
2 Ag(s) + Sn2+(aq) ? 2 Ag+(aq) + Sn(s)
Ag+(aq) + e– ? Ag(s) E° = 0.80 V
Sn4+(aq) + 2e– ? Sn2+(aq) E° = 0.13 V
Sn2+(aq) + 2e– ? Sn(s) E° = –

Answers

The E°cell for the given reaction is 0.67 V.

What is the standard cell potential?

The standard cell potential (E°cell) can be calculated by subtracting the reduction potential of the anode from the reduction potential of the cathode. In this case, the reduction potential values are given as follows:

Ag+(aq) + e– → Ag(s)     E° = 0.80 V

Sn2+(aq) + 2e– → Sn(s)   E° = - (unknown value)

To find the reduction potential for Sn2+(aq) + 2e– → Sn(s), we can use the Nernst equation and the given reduction potentials of Sn4+(aq) + 2e– → Sn2+(aq) (E° = 0.13 V) and Sn4+(aq) + 2e– → Sn(s) (E° = - (unknown value)).

Since the Sn4+/Sn2+ half-reaction is the reverse of Sn2+/Sn4+, the reduction potential for Sn2+(aq) + 2e– → Sn(s) will have the same magnitude but with an opposite sign, resulting in E° = -0.13 V.

Now we can calculate the E°cell as follows:

E°cell = E°cathode - E°anode

E°cell = 0.80 V - (-0.13 V)

E°cell = 0.93 V

Therefore, the E°cell for the given reaction is 0.93 V.

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The standard free energy of formation of ammonia is -16.5 Kj/mol. What is the value of K for the reaction below at 575.0 K?
N2(g) + 3 H2(g) --- 2 NH3(g)

Answers

the value of K for the reaction below at 575.0 K is K= 1.4 x 10^2 at 575 K for N2(g) + 3 H2(g) ⇌ 2 NH3(g) with ΔG°f = -16.5 KJ/mol.

The value of K for the given reaction at 575 K can be calculated using the standard free energy change of formation (ΔG°f) of ammonia.

According to the equation ΔG° = -RT ln(K), where R is the gas constant and T is the temperature in Kelvin, we can rearrange the equation to solve for K.

Therefore, K = e^(-ΔG°/RT). Substituting the given values, K = e^(-(-16.5*10^3)/(8.314*575)) = 1.4 x 10^2.

Hence, the equilibrium constant K for N2(g) + 3 H2(g) ⇌ 2 NH3(g) at 575 K is 1.4 x 10^2.

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To find the value of K for the reaction, we need to use the equation:
ΔG° = -RTlnK
Where ΔG° is the standard free energy of formation, R is the gas constant (8.314 J/mol K), T is the temperature in Kelvin, and K is the equilibrium constant.

First, we need to convert the standard free energy of formation from Kj/mol to J/mol:
ΔG° = -16.5 Kj/mol x 1000 J/Kj = -16,500 J/mol
Next, we need to calculate the value of ΔG at 575.0 K. To do this, we use the equation:
ΔG = ΔH - TΔS
Where ΔH is the enthalpy of the reaction, ΔS is the entropy of the reaction, and T is the temperature in Kelvin. We can use the following values for ΔH and ΔS:
ΔH = -92.4 kJ/mol
ΔS = -198.4 J/mol K
ΔG = (-92.4 kJ/mol x 1000 J/kJ) - (575.0 K x -198.4 J/mol K) = -49,933 J/mol
Now that we have ΔG at 575.0 K, we can use the equation:
ΔG° = -RTlnK
To solve for K:
K = e^(-ΔG°/RT) = e^(-(-16,500 J/mol)/(8.314 J/mol K x 575.0 K)) = 7.7 x 10⁸
Therefore, the value of K for the reaction N₂(g) + 3 H₂(g) ↔ 2 NH₃(g) at 575.0 K is 7.7 x 10⁸.

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