how many joules are released when 1.70 mol of 239pu decays if each nucleus releases 5.243 mev? × 10 (select) j enter your answer in scientific notation.

Answers

Answer 1

The amount of energy released when 1.70 mol of 239Pu decays is 8.57 × 10^11 J.

To solve this problem, we need to use the following formula:
Energy released = number of nuclei × energy released per nucleus
First, we need to convert the given energy per nucleus from MeV to joules:
5.243 MeV × 1.602 × 10^-13 J/MeV = 8.39 × 10^-13 J
Now we can plug in the values:
Number of nuclei = 1.70 mol × 6.022 × 10^23 nuclei/mol = 1.02 × 10^24 nuclei
Energy released = 1.02 × 10^24 nuclei × 8.39 × 10^-13 J/nucleus = 8.57 × 10^11 J
Therefore, the amount of energy released when 1.70 mol of 239Pu decays is 8.57 × 10^11 J.

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Related Questions

Rationalize the difference in boiling points between the members of the following pairs of substances. Part A
HF (20 ∘C) and HCl (-85 ∘C) - HF has the higher boiling point because HF molecules are more polar. - HF has the higher boiling point because hydrogen bonding is weaker than dipole-dipole forces. - HF has the higher boiling point because hydrogen bonding is stronger than dipole-dipole forces. - HF has the higher boiling point because of ionic bonding.

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HF has the higher boiling point because hydrogen bonding is stronger than dipole-dipole forces.

The difference in boiling points between AHF (20°C) and HCl (-85°C) can be explained by the strength of intermolecular forces. HF molecules have higher boiling points than HCl due to hydrogen bonding, which is a stronger intermolecular force than dipole-dipole forces.

Hydrogen bonding occurs when a hydrogen atom is bonded to a highly electronegative atom such as fluorine (F), oxygen (O), or nitrogen (N), creating a highly polar bond. This allows the hydrogen atom to attract other polar molecules, resulting in stronger intermolecular forces.

In contrast, HCl molecules have only dipole-dipole forces due to the difference in electronegativity between hydrogen and chlorine atoms, which are weaker than hydrogen bonding. As a result, HF requires more energy to overcome its intermolecular forces and boil compared to HCl.

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Which trial number from the following data set should produce the most amount of heat (energy) in joules in our acid-base neutralization calorimetry experiment? hint: see your data or do stoichiometric calculations using balanced reaction. Trial number volume of phosporic acid added (ml) volume of sodium hydroxide added (ml) 1 10. 0 10. 2000 2 15. 0 5. 2000 3 5. 0 15. 0

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Trial 2 should produce the most amount of heat (energy) in joules in the acid-base neutralization calorimetry experiment.

To determine which trial number should produce the most amount of heat (energy) in joules in the acid-base neutralization calorimetry experiment, we need to consider the stoichiometry of the reaction between phosphoric acid (H3PO4) and sodium hydroxide (NaOH).

The balanced chemical equation for the reaction between H3PO4 and NaOH is as follows:

H3PO4 + 3NaOH → Na3PO4 + 3H2O

From the equation, we can see that the stoichiometric ratio between H3PO4 and NaOH is 1:3. This means that for every 1 mole of H3PO4, we need 3 moles of NaOH to completely react.

Now let's analyze the given data set:

Trial 1: Volume of phosphoric acid added = 10.0 mL, Volume of sodium hydroxide added = 10.0 mL

Trial 2: Volume of phosphoric acid added = 15.0 mL, Volume of sodium hydroxide added = 5.0 mL

Trial 3: Volume of phosphoric acid added = 5.0 mL, Volume of sodium hydroxide added = 15.0 mL

To determine the trial that produces the most heat, we need to calculate the moles of each reactant in each trial and compare them.

Trial 1:

Moles of H3PO4 = (10.0 mL / 1000 mL) * (0.2000 mol/L) = 0.002 mol

Moles of NaOH = (10.0 mL / 1000 mL) * (0.2000 mol/L) = 0.002 mol

Trial 2:

Moles of H3PO4 = (15.0 mL / 1000 mL) * (0.2000 mol/L) = 0.003 mol

Moles of NaOH = (5.0 mL / 1000 mL) * (0.2000 mol/L) = 0.001 mol

Trial 3:

Moles of H3PO4 = (5.0 mL / 1000 mL) * (0.2000 mol/L) = 0.001 mol

Moles of NaOH = (15.0 mL / 1000 mL) * (0.2000 mol/L) = 0.003 mol

From the calculations, we can see that Trial 2 has the highest number of moles of both H3PO4 and NaOH. Therefore, Trial 2 should produce the most amount of heat (energy) in joules in the acid-base neutralization calorimetry experiment.

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You add 1.00 kg of ethylene glycol (C2H6O2) antifreeze to 4450g of water in your car’s radiator. What are the boiling and freezing points of solution?Kb = 0.512 °C/mKf = 1.86 °C/m

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When a solute, such as ethylene glycol, is added to a solvent, such as water, it affects the boiling and freezing points of the solution.

To calculate these changes, we need to use the equations:
ΔTb = Kb x molality
ΔTf = Kf x molality
where ΔTb is the change in boiling point, Kb is the molal boiling point elevation constant, ΔTf is the change in freezing point, and Kf is the molal freezing point depression constant.
First, we need to find the molality of the solution, which is the moles of solute per kilogram of solvent. The molar mass of ethylene glycol is 62.07 g/mol, so 1.00 kg of ethylene glycol is equal to 16.11 mol. The mass of water is 4.45 kg, so the molality is:
molality = (16.11 mol) / (4.45 kg) = 3.62 mol/kg
Using this molality, we can calculate the changes in boiling and freezing points:
ΔTb = (0.512 °C/m) x (3.62 mol/kg) = 1.85 °C
ΔTf = (1.86 °C/m) x (3.62 mol/kg) = 6.73 °C
The boiling point elevation means that the boiling point of the solution is higher than that of pure water. The boiling point of pure water at standard pressure is 100 °C, so the boiling point of the solution is:
boiling point = 100 °C + 1.85 °C = 101.85 °C
The freezing point depression means that the freezing point of the solution is lower than that of pure water. The freezing point of pure water at standard pressure is 0 °C, so the freezing point of the solution is:
freezing point = 0 °C - 6.73 °C = -6.73 °C
Therefore, the boiling point of the solution is 101.85 °C and the freezing point of the solution is -6.73 °C. It is important to note that adding ethylene glycol to the radiator does not prevent the engine from overheating, but it does lower the freezing point of the coolant and prevent the radiator from freezing in cold temperatures.

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Directions: Answer the following questions in your own words using complete sentences. Do not copy and paste from the lesson or the internet.

1. How does the condition of the soil impact all aspects of the environment?

2. Conduct research on an extinct species. Identify the species, discuss the reasons for extinction, and how the extinction may have impacted the environment.

3. Conduct research on a threatened or endangered species. Identify the species, discuss the threats to the species, and any attempts to save the species. The species may be plant or animal.

4. Locate a park or other natural space near your home. Explain what type of natural space it is, when and how it was established, and the major purpose of the space.

5. What impact does it have on the environment if one type of biome is damaged or under threat?

Answers

Answer:

This took forever T-T

Explanation:

1. The condition of the soil has a big impact on the environment. Good soil helps plants grow, supports different kinds of life, and prevents erosion. It also keeps nutrients in balance and affects the quality of water and air. If the soil is unhealthy or polluted, it can harm plants, animals, and the overall ecosystem.

2. The dodo bird is an example of a species that no longer exists. It used to live on an island called Mauritius. Sadly, people hunted the dodo bird for food and destroyed its habitat. They also introduced other animals that harmed the dodo bird's population. Because of these reasons, the dodo bird became extinct. This affected the environment because the dodo bird played a role in spreading seeds and helping plants grow.

3. The Sumatran orangutan is a species in danger of disappearing. Its biggest threats are losing its home due to forests being cut down for palm oil, illegal hunting, and being taken as pets. People are working to protect the orangutans by preserving their habitat, rescuing and rehabilitating them, and educating communities about their importance.

4. Central Park in New York City is a natural area created in 1857. It was made for people to enjoy nature in the middle of the city. People can do many outdoor activities there like walking, picnicking, and playing sports. The park is also home to various birds and animals, which adds to the city's biodiversity.

5. When a certain environment, like a forest or a desert, is damaged or in danger, it has a big impact on the whole ecosystem. Many different plants and animals depend on each other in these environments. If something harms or destroys their homes, it can lead to the loss of species, disruption of food chains, and less diversity. It can also affect important processes like water and carbon cycles, and even influence the climate. People who rely on these environments for resources and livelihoods are also affected. That's why it's important to protect and take care of these natural areas.

Two solid bodies initially at T1 and T2 are brought into thermal contact and heat exchange occurs. Calculate ΔS (positive or negative?) and Tfinal.
Please show complete work on how do you get your answer. Don't just put a very short answer with no work shown.

Answers

Unfortunately, your question does not provide sufficient information to determine the final temperature or sign of the change in entropy.

However, we can provide a general approach to solving such problems. To determine the change in entropy, we can use the equation:

ΔS = Q/T

where ΔS is the change in entropy, Q is the heat transferred between the two bodies, and T is the temperature at which the heat transfer occurs.

If the two bodies are in thermal equilibrium (i.e., they reach the same temperature), we can use the following equation to determine the final temperature:

(T1 + T2)/2 = Tfinal

where T1 and T2 are the initial temperatures of the two bodies, and Tfinal is the final temperature.

To determine the sign of ΔS, we need to consider the direction of heat transfer. If heat flows from the hotter body to the colder body, then ΔS will be positive (i.e., the system becomes more disordered). If heat flows from the colder body to the hotter body, then ΔS will be negative (i.e., the system becomes more ordered).

Overall, to solve this problem we need to know the initial temperatures of the two bodies, the direction of heat transfer, and the amount of heat transferred. With this information, we can determine the final temperature and the sign of the change in entropy.

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find the ph of the equivalence point and the volume (ml) of 0.200 m hcl needed to reach the equivalence point in the titration of 65.5 ml of 0.234 m nh3.

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In the titration of 65.5 ml of 0.234 M NH3 with 0.200 M HCl, the equivalence point is when all the NH3 has reacted with HCl, and the moles of acid and base are equal.                                                                                                                                                                                      

At the equivalence point, the pH will be neutral, or 7. The volume of 0.200 M HCl needed to reach the equivalence point can be calculated using the equation M1V1 = M2V2, where M1 is the molarity of NH3, V1 is the initial volume of NH3, M2 is the molarity of HCl, and V2 is the volume of HCl needed to reach the equivalence point. Solving for V2, we get V2 = (M1V1)/M2 = (0.234 M x 65.5 ml) / 0.200 M = 76.4 ml. Therefore, 76.4 ml of 0.200 M HCl is needed to reach the equivalence point.
In a titration, the equivalence point is reached when the moles of the titrant (HCl) equal the moles of the analyte (NH3). To find the volume of 0.200 M HCl needed, use the equation: moles of NH3 = moles of HCl.

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Even though B contains three ester groups, a single Dieckmann product results when B is treated with NaOCH, in CH,OH, followed by H,0+. OCH, H.COM Part 1: Why is only one product formed from B? Only esters with 2 or 3 H's on the a carbon form enolates that undergo Claisen reaction to form resonance-stabilized enolates of the product keto ester. Thus, the enolate forms on the CH to one ester carbonyl, and cyclization yields a five-membered "ring. Part 2 out of 2 Draw the structure of the product formed. OCH, NaOCH Report problem CH, OH Hint draw structure... Solution

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The structure of the product will have a five-membered ring containing the keto ester and two remaining ester groups in the molecule.

The product formed from B when treated with NaOCH in CH3OH, followed by H3O+ is a cyclic keto ester called 5-methyl-2-oxocyclopentylacetate. The structure is as follows:
CH3OCH2C(=O)CH2C(=O)OCH3
The enolate forms on the CH to one ester carbonyl, and cyclization yields a five-membered ring.
Part 1: Only one product is formed from B because only esters with 2 or 3 hydrogens on the alpha carbon can form enolates that undergo the Claisen reaction, leading to resonance-stabilized enolates of the product keto ester. In this case, the enolate forms on the CH adjacent to one ester carbonyl, and cyclization occurs, resulting in a five-membered ring.
Part 2: To draw the structure of the product formed, follow these steps:
1. Identify the ester group in B with 2 or 3 hydrogens on the alpha carbon.
2. Form an enolate by deprotonating the alpha carbon with NaOCH3 (the base).
3. Undergo a Claisen reaction: the enolate will attack the carbonyl carbon of another ester group in B.
4. Form a resonance-stabilized enolate of the product keto ester.
5. Cyclize the molecule to form a five-membered ring by forming a new bond between the alpha carbon and the carbonyl carbon.
6. Protonate the enolate oxygen with H3O+ to form the final product.
The structure of the product will have a five-membered ring containing the keto ester and two remaining ester groups in the molecule.

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Hi there! Based on your provided information, let's analyze the reaction:

Part 1: Only one product is formed from compound B because the Dieckmann condensation specifically occurs when an ester has two or three hydrogens on the alpha carbon (CH2 or CH3), allowing it to form an enolate ion that undergoes the Claisen reaction. In this case, the enolate forms on the CH2 adjacent to one ester carbonyl, leading to cyclization and a resonance-stabilized enolate of the product keto ester. This process generates a five-membered ring.

Part 2: As a text-based AI, I cannot draw the product's structure. However, I can describe it to you. The product will have a five-membered ring with a keto ester moiety, which will contain a carbonyl group (C=O) adjacent to the ester group (C-O-R) within the ring.

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2. What could you do to make sure the law of conservation of mass is shown?

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Answer:

To ensure the law of conservation of mass is demonstrated, you can conduct an experiment that involves a chemical reaction where the total mass of the reactants is equal to the total mass of the products. Here's an example experiment showcasing this principle:

Materials needed:

- A balance or scale

- Two clear containers

- Baking soda (sodium bicarbonate)

- Vinegar (acetic acid)

- A balloon

Procedure:

1. Set up the balance or scale and make sure it is calibrated properly.

2. Place one of the clear containers on the balance and record its mass.

3. Add a measured amount of baking soda to the container and record the new total mass.

4. Attach the balloon to the mouth of the container without allowing any gas to escape.

5. Carefully pour a measured amount of vinegar into the balloon through the container's opening without mixing it with the baking soda.

6. Observe the reaction between the vinegar and baking soda. The reaction will produce carbon dioxide gas, which will inflate the balloon.

7. Once the reaction is complete and the balloon has stopped inflating, carefully remove it from the container.

8. Place the second clear container on the balance and record its mass.

9. Pour the contents of the balloon (carbon dioxide gas) into the second container.

10. Weigh the second container with the carbon dioxide gas and record the new total mass.

Observation and Conclusion:

By comparing the initial mass of the baking soda and the vinegar with the final mass of the carbon dioxide gas and the container, you will observe that the total mass of the reactants (baking soda and vinegar) is equal to the total mass of the products (carbon dioxide gas and container). This demonstrates the law of conservation of mass, which states that mass cannot be created or destroyed in a chemical reaction, only rearranged.

By carefully measuring the masses before and after the reaction, you visually and quantitatively show that the total mass remains constant throughout the process. This experiment reinforces the fundamental principle of the law of conservation of mass, emphasizing that matter is conserved in chemical reactions, even when it undergoes changes in form or state.

For the reaction 3A -- 2B+3C, the rate of change of A is -0.930 x 10-M.S-1. What is the reaction rate? 0.62 x 10-3M-5-1 0.930 X10-3M-5-1 0.31 x 10">M.5-1 -0.930 x 10-3M-s-l

Answers

The rate of the reaction can be determined by using the stoichiometry of the equation. For every 3 moles of A that reacts, 2 moles of B and 3 moles of C are produced. Therefore, the rate of change of A (-0.930 x 10^-3 M s^-1) can be converted to the rate of change of B and C using the ratios:

Rate of change of B = (-0.930 x 10^-3 M s^-1) x (2/3) = -0.620 x 10^-3 M s^-1
Rate of change of C = (-0.930 x 10^-3 M s^-1) x (3/3) = -0.930 x 10^-3 M s^-1

The overall rate of the reaction is equal to the rate of change of any of the reactants or products. Therefore, the reaction rate is -0.930 x 10^-3 M s^-1. Answer: 0.930 x 10^-3 M^-5 s^-1.

For the reaction 3A → 2B + 3C, the rate of change of A is -0.930 x 10^(-3) M·s^(-1). To find the reaction rate, we can use the stoichiometry of the reaction.

The reaction rate of A can be expressed as:

rate(A) = -(1/3) × rate(reaction)

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A voltaic cell is constructed in which the following cell reaction occurs. The half-cell compartments are connected by a salt bridge 3Sn2*(aq) + 2Cr(s)3Sn(s) + 2Cr3(aq)

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The standard cell potential for the given voltaic cell is -0.74 V.

The reduction potentials for [tex]Sn2+(aq) + 2e- - > Sn(s)[/tex] and [tex]Cr3+(aq) + 3e- - > Cr(s)[/tex] are -0.14 V and -0.74 V, respectively,

while the oxidation potential [tex]Sn(s) - > Sn2+(aq) + 2e-[/tex] is -0.14 V.

We need to use the formula:

E°cell = E°reduction (cathode) - E°reduction (anode)

By adding the reduction potential of Sn2+ to the oxidation potential of Sn, we can obtain the reduction potential for [tex]Sn_2+ + 2e- - > Sn:[/tex]

[tex]Sn_2+(aq) + 2e-[/tex] → Sn(s) E°red = -0.14 V

Sn(s) → [tex]Sn_2[/tex]+(aq) + 2e- E°ox = +0.14 V

[tex]Sn_2+(aq)[/tex] + 2e- → Sn(s) E°red = 0.00 V

The standard reduction potential  [tex]Cr_3+ + 3e- - > Cr[/tex]is -0.74 V.

Now, we can calculate the standard cell potential:

E°cell = E°reduction (cathode) - E°reduction (anode)

E°cell = (-0.74 V) - (0.00 V)

E°cell = -0.74 V

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--The complete Question is, What is the standard cell potential for a voltaic cell constructed with a Sn-Cr half-cell and a Sn3+-Cr3+ half-cell, connected by a salt bridge, where the reaction is 3Sn2+(aq) + 2Cr(s) → 3Sn(s) + 2Cr3+(aq)? --

describe how you would make 1000 ml of a 0.700 m naoh solution from a 12.0 m stock naoh solution.

Answers

We, need to measure 58.3 ml of the 12.0 M stock NaOH solution and dilute it with distilled water to a final volume of 1000 ml to obtain a 0.700 M NaOH solution.

To make 1000 ml of a 0.700 M NaOH solution from a 12.0 M stock NaOH solution, you can use the following formula;

M₁V₁ = M₂V₂

where M₁ is concentration of the stock solution, V₁ is the volume of stock solution needed, M₂ is desired concentration of the new solution, and V₂ is final volume of the new solution.

Substituting the values given in the problem;

M₁ = 12.0 M

M₂ = 0.700 M

V₂ = 1000 ml = 1.0 L

Solving for V₁;

M₁V₁ = M₂V₂

12.0 M × V₁ = 0.700 M × 1.0 L

V₁ = (0.700 M × 1.0 L) / 12.0 M

V₁ = 0.0583 L or 58.3 ml

Therefore, you need to measure 58.3 ml of the 12.0 M stock NaOH solution and dilute it with distilled water to a final volume of 1000 ml to obtain a 0.700 M NaOH solution.

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Estimate the equilibrium composition at 400K and 1 atm of the following gaseous reactions:n C Hi 2(g) → iso-C H12(g) & n-C H12(g) → neo-C H12(g), Standard Gibbs energy of formation data for n-pentane (1), isopentane (2), and neopentane (3) at 400K are 40.195, 34.413, and 37.640 kJ/mol, respectively. Assume ideal-gas behavior.

Answers

To estimate the equilibrium composition at 400K and 1 atm for the given gaseous reactions.At equilibrium, we can expect a higher concentration of neo-C₅H₁₂(g) compared to n-C₅H₁₂(g).

n-C₅H₁₂(g) ⇌ iso-C₅H₁₂(g) (∆G° = 40.195 kJ/mol)

n-C₅H₁₂(g) ⇌ neo-C₅H₁₂(g) (∆G° = 37.640 kJ/mol)

K = exp(-∆G°/RT)

For the reaction n-C₅H₁₂(g) ⇌ iso-C₅H₁₂(g):

K₁ = exp(-40.195 kJ/mol / (8.314 J/(mol·K) * 400 K)) = 2.34 × 10^-14

For the reaction n-C₅H₁₂(g) ⇌ neo-C₅H₁₂(g):

K₂ = exp(-37.640 kJ/mol / (8.314 J/(mol·K) * 400 K)) = 1.46 × 10^-12

Since K₂ (1.46 × 10^-12) is larger than K1 (2.34 × 10^-14), the reaction n-C₅H₁₂(g) ⇌ neo-C₅H₁₂(g) is expected to be more favored.

Therefore, at equilibrium, we can expect a higher concentration of neo-C₅H₁₂(g) compared to n-C₅H₁₂(g).

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If 0-18 labeled water is present during a reaction, and water is the nucleophile, where will the 0-18 label end up

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The 0-18 label will end up on the product of the reaction if the water is the nucleophile, since the water is the species donating electrons in the reaction.

What is electrons?

Electrons are subatomic particles that have a negative electric charge. They are found in the outermost shell of an atom and are responsible for chemical bonding and electrical conductivity. Electrons are considered to be the smallest particles of matter and are found in nature, but can also be created artificially through nuclear processes. Electrons are important in the understanding of the structure of atoms and the forces that bind them together.

The water molecule will be broken apart, with the hydrogen carrying the 0-18 label and the oxygen carrying the rest of the water molecule. The oxygen will then form a bond with the electrophile, while the hydrogen with the 0-18 label will remain as a product of the reaction.

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Determine the molality of a solution prepared by dissolving 1.50 moles of bacl2.

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The molality of the solution prepared by dissolving 1.50 moles of BaCl₂ in 1 kg of solvent is 1.50 mol/kg.

Molality is defined as the number of moles of solute dissolved per kilogram of solvent. Therefore, to determine the molality of a solution prepared by dissolving 1.50 moles of BaCl₂, we need to know the mass of the solvent used to dissolve the solute.

Assuming we use 1 kg of solvent, we can calculate the molality of the solution as follows:

Molality = moles of solute / mass of solvent (in kg)

Since we dissolved 1.50 moles of BaCl₂, the molality would be:

Molality = 1.50 moles / 1 kg = 1.50 mol/kg

Therefore, the molality of the solution prepared by dissolving 1.50 moles of BaCl₂ in 1 kg of solvent is 1.50 mol/kg. It's important to note that molality is different from molarity, which is defined as the number of moles of solute dissolved per liter of solution.

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what is e° for the reaction 2 au(s) 3 ca²⁺(aq) → 2 au³⁺(aq) 3ca(s)?

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The E°, standard electrode potential, for the reaction 2Au(s) + 3Ca²⁺(aq) → 2Au³⁺(aq) + 3Ca(s) is +4.366 V.

E°, or standard electrode potential, is a measure of the tendency of a species to gain or lose electrons and undergo a reduction or oxidation reaction. In the given reaction, 2Au(s) is being oxidized to Au³⁺(aq) while 3Ca²⁺(aq) is being reduced to Ca(s).

To calculate the E° for this reaction, we need to look up the standard electrode potentials for the two half-reactions and use them to calculate the overall potential difference. The half-reactions are:

Au³⁺(aq) + 3e⁻ → Au(s) E° = +1.498 V
Ca²⁺(aq) + 2e⁻ → Ca(s) E° = -2.868 V

To calculate the E° for the overall reaction, we add the two half-reactions together and cancel out the electrons:

2Au(s) + 3Ca²⁺(aq) → 2Au³⁺(aq) + 3Ca(s)

E° = E°(Au³⁺/Au) - E°(Ca²⁺/Ca)
E° = +1.498 V - (-2.868 V)
E° = +4.366 V

Therefore, the E° for the reaction 2Au(s) + 3Ca²⁺(aq) → 2Au³⁺(aq) + 3Ca(s) is +4.366 V.

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An atom of 130Sn has a mass of 129.913920 amu. Calculate the binding energy in MeV per NUCLEON. Use the masses: mass of 1H atom = 1.007825 amu mass of a neutron = 1.008665 amu 1 amu = 931.5 MeV Give your answer to 3 significant figures and DO NOT use E notation. No charity points will be awarded.......

Answers

The binding energy in MeV per NUCLEON for an atom of 130Sn is 8.536 MeV/nucleon. The mass per nucleon is the mass of the nucleus divided by the number of nucleons.

First, we need to calculate the total mass of the atom of 130Sn. This can be done by adding the masses of the protons and neutrons in the nucleus. The number of protons in an atom is equal to its atomic number, which is 50 for tin (Sn). The number of neutrons can be found by subtracting the atomic number from the mass number, which is 130 for this isotope. So, the total number of nucleons (protons + neutrons) in 130Sn is 130.

Determine the total number of protons and neutrons in 130Sn.
Sn has an atomic number of 50, meaning it has 50 protons. Since the mass number is 130, there are 80 neutrons (130 - 50).
2. Calculate the total mass of separate protons and neutrons.
Total mass of protons = 50 protons * 1.007825 amu/proton = 50.39125 amu
Total mass of neutrons = 80 neutrons * 1.008665 amu/neutron = 80.6932 amu
3. Find the mass defect.
Mass defect = (Total mass of protons and neutrons) - (Mass of 130Sn)
Mass defect = (50.39125 amu + 80.6932 amu) - 129.913920 amu = 1.17053 amu
4. Convert the mass defect to energy.
Energy = mass defect * conversion factor
Energy = 1.17053 amu * 931.5 MeV/amu = 1090.778095 MeV
5. Calculate the binding energy per nucleon.
Binding energy per nucleon = Total binding energy / Total number of nucleons
Binding energy per nucleon = 1090.778095 MeV / 130 nucleons = 8.55 MeV (to 3 significant figures).

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calculate the [ki] for run a3 in item 3 of part i in your lab assignment. you will need the volumes in table a in the experimental. t assume that the [ki] for the stock solution is 0.20m.

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The concentration of [KI] will be 0.080 M

Assuming that the [Ki] for the stock solution is 0.20 M, the concentration of KI that would result when the contents of Beaker #2 are mixed with the contents of Beaker #1 in Run #2 in Table 1 of this experiment is 0.25 M.

This is because Beaker #2 contains 0.2 M KI and Beaker #1 contains 0.05 M KI. When the contents of these two beakers are added together, the total concentration of KI is 0.25 M. This is because the concentration of a solution is determined by the amount of solute present divided by the total volume of the solution.

For run 3

initial conc. of KI M₁ = 0.20 M

Volume of KI = 20mL

Total volume = 20mL + 10m L+ 20mL 50mL

Cone of  KI =1 M, V₁ / total volume

(0.20m) (20mL) /50mL

Cone. of KI = 0.08M

Therefore, Cone. of KI  will be 0.08M

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The question is incomplete, the complete question is:

calculate the [ki] for run a3 in item 3 of part i in your lab assignment. you will need the volumes in table a in the experimental. t assume that the [ki] for the stock solution is 0.20m.

. Imagine a one-step reaction with a large rate constant (k) and a small equilibrium constant (K) at a particular temperature. Which statement about this reaction must be INCORRECT? a) This reaction must reach equilibrium quickly but nonetheless be reactant favoured at equilibrium. b) This reaction's products must be more thermodynamically stable than its reactants. c) This reaction must have a small activation energy (E.) in the forward direction. d) This reaction must have a large positive standard Gibbs' free energy

Answers

The statement that must be incorrect in this scenario is This reaction must have a large positive standard Gibbs' free energy.

So, the correct answer is D.

A large rate constant (k) implies that the forward reaction is proceeding rapidly, and a small equilibrium constant (K) indicates that the reaction is not favored in the reverse direction.

Therefore, option a) is correct as the reaction would reach equilibrium quickly but still be reactant favored.

Option b) is also correct since the products of the reaction are more thermodynamically stable than the reactants.

Option c) is also true because a small activation energy (E) in the forward direction would allow the reaction to proceed quickly.

However, a large positive standard Gibbs' free energy would indicate that the reaction is not favorable and will not occur spontaneously, which is contradictory to the given scenario.

Hence, the answer of the question is D.

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How many moles of oxygen(02) are needed to produce 4. 6 g of nitrogen monoxide (NO)?
3. 36 mol
0. 768 mol
0. 233 mol
0. 192 mol
How many moles of ammonía (NH3) are needed if 2. 75 moles of water (H20) were produced? 4. 13 mol
1. 83 mol
4 mol
6. 8 mol
(equation in photo)​

Answers

For the first question, 0.233 mol of oxygen (O2) is needed to produce 4.6 g of nitrogen monoxide (NO). For the second question, 6.8 mol of ammonia (NH3) is needed if 2.75 moles of water (H2O) were produced.

To calculate the number of moles of a substance, we need to use the molar mass. The molar mass of NO is 30.01 g/mol. By dividing 4.6 g by the molar mass, we get 0.153 mol of NO. Since the balanced equation for the reaction is 2 NO + O2 → 2 NO2, we know that the molar ratio between NO and O2 is 1:1. Therefore, we need the same amount of moles of O2, which is 0.153 mol. However, this value is not among the given options. To find the nearest option, we can round it to the nearest hundredth, which is 0.16 mol. Thus, the closest option is 0.233 mol, which is the correct answer.

For the second question, we need to use the balanced equation for the reaction: 4 NH3 + 5 O2 → 4 NO + 6 H2O. The molar ratio between water and ammonia is 6:4, which means for every 6 moles of water produced, 4 moles of ammonia are needed. Given that 2.75 moles of water were produced, we can calculate the moles of ammonia needed by multiplying 2.75 by 4/6, which equals 1.83 mol. The closest option is 1.83 mol, which is the correct answer.

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Calculate the ratio of ch3nh2ch3nh2 to ch3nh3clch3nh3cl required to create a buffer with phphph = 10.30.

Answers

To calculate the ratio of CH3NH2/CH3NH3Cl required to create a buffer with a pH of 10.30, we need to use the Henderson-Hasselbalch equation:

pH = pKa + log([A-]/[HA])

Where:

pH is the desired pH (10.30 in this case)

pKa is the dissociation constant of the weak acid (CH3NH3Cl)

[A-] is the concentration of the conjugate base (CH3NH2)

[HA] is the concentration of the weak acid (CH3NH3Cl)

First, we need to find the pKa value for CH3NH3Cl. The pKa of CH3NH3Cl is given by the negative logarithm of the acid dissociation constant (Ka) for CH3NH3+:

pKa = -log(Ka)

If we assume that the pKa of CH3NH3Cl is 10.30 (since the pH and pKa are the same in a buffer solution), we can calculate the ratio of [A-]/[HA] using the Henderson-Hasselbalch equation:

10.30 = 10.30 + log([A-]/[HA])

Subtracting 10.30 from both sides:

0 = log([A-]/[HA])

Taking the antilog (exponentiating both sides) with base 10:

10^0 = [A-]/[HA]

Simplifying:

1 = [A-]/[HA]

Therefore, the ratio of CH3NH2/CH3NH3Cl required to create a buffer with pH 10.30 is 1:1.

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which of the following is a water contaminant that can cause acid mine drainage? a methane b carbon dioxide c flux d sulfuric acid

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The water contaminant that can cause acid mine drainage is sulfuric acid.

Acid mine drainage is a significant environmental issue that occurs when sulfide minerals, typically found in mines or mining waste, come into contact with water and air. The sulfide minerals react with oxygen and water to form sulfuric acid.

This acidic solution then leaches out other minerals and metals from the surrounding rocks, resulting in highly acidic and metal-rich water. While methane, carbon dioxide, and flux (a material used in metal smelting) may be present in mining environments, they are not directly responsible for causing acid mine drainage.

Methane is a flammable gas, carbon dioxide is a greenhouse gas, and flux is a material used to facilitate metal melting.

Therefore, they do not directly contribute to the formation of acidic mine drainage. Sulfuric acid is the primary contaminant responsible for the acidification of water in mining areas.

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what is the ph at the equivalence point of a weak base-strong acid titration if 20.00 ml of naocl requires 28.30 ml of 0.50 m hcl? ka = 3.0 × 10-8 for hocl.

Answers

The pH at the equivalence point of a weak base-strong acid titration can be determined using the Henderson-Hasselbalch equation.

In this case, the weak base is sodium hypochlorite (NaOCl), and the strong acid is hydrochloric acid (HCl). Given that 20.00 mL of NaOCl requires 28.30 mL of 0.50 M HCl, we can calculate the moles of HCl used. The balanced chemical equation for the reaction between NaOCl and HCl is: NaOCl + HCl → HClO + NaCl. Since the molar ratio between NaOCl and HCl is 1:1, the moles of HCl used is equal to the moles of NaOCl used. By dividing the moles of HCl used by the total volume of the NaOCl solution (20.00 mL), we can determine the concentration of HCl. Next, we can use the dissociation constant (Ka) of HClO (the conjugate acid of NaOCl) to calculate the concentration of HClO at the equivalence point. From the balanced chemical equation, we know that one mole of NaOCl reacts with one mole of HCl to form one mole of HClO. Therefore, the concentration of HClO is equal to the concentration of HCl at the equivalence point. Finally, using the Henderson-Hasselbalch equation, we can calculate the pH at the equivalence point by plugging in the values for the concentration of HClO and the Ka of HClO. It is important to note that in this specific case, the concentration of HClO will be very low due to the weak acid nature of HClO. Consequently, the pH at the equivalence point will be acidic.

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.Using average bond enthalpies (linked above), estimate the enthalpy change for the following reaction:
CH3Cl(g) + Cl2(g)CH2Cl2(g) + HCl(g)
_______ kJ

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The estimated enthalpy change for the reaction CH₃Cl(g) + Cl₂(g) → CH₂Cl₂(g) + HCl(g) is -155 kJ.

The average bond enthalpies of the bonds broken and formed in the reaction are used to estimate the enthalpy change of the reaction. In this reaction, one C-Cl bond and one Cl-Cl bond are broken, while one C-H bond, one C-Cl bond, and one H-Cl bond are formed.

The bond enthalpies for these bonds are found from the given table, which are 328 kJ/mol, 242 kJ/mol, and 431 kJ/mol, respectively. Using these values, the total energy required to break the bonds is (328 kJ/mol + 242 kJ/mol) = 570 kJ/mol, while the total energy released in forming the new bonds is (328 kJ/mol + 431 kJ/mol + 431 kJ/mol) = 1190 kJ/mol.

Therefore, the estimated enthalpy change for the reaction is (-570 kJ/mol + 1190 kJ/mol) = -620 kJ/mol. However, this is the enthalpy change for the formation of two moles of CH₂Cl₂ and two moles of HCl.

To find the enthalpy change for the formation of one mole of CH₂Cl₂ and one mole of HCl, we divide the value by 2, giving an estimated enthalpy change of -310 kJ/mol or -155 kJ for the given reaction.

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Give the structure that corresponds to the following molecular formula and 1H NMR spectrum: C5H10: ? 1.5, s

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The structure corresponding to the molecular formula C5H10 and 1H NMR spectrum with a signal at 1.5 ppm (singlet) is pent-1-ene.

What is the structure of C5H10 with a singlet at 1.5 ppm?

Pent-1-ene is a hydrocarbon with five carbon atoms and a double bond between the first and second carbon atoms. The molecular formula C5H10 indicates that it has 10 hydrogen atoms. In the 1H NMR spectrum, the singlet signal at 1.5 ppm corresponds to the hydrogens attached to the double bond carbon atoms (C=C). Since it is a singlet, it suggests that these hydrogens are not coupled to any neighboring hydrogens. The absence of splitting in the signal further confirms that it is a singlet. Overall, the molecular formula and the 1H NMR spectrum analysis point to the structure of pent-1-ene.

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How many grams of lithium nitrate, LINO3 , will be


needed to make 5. 31 grams of lithium sulfate, Li2SO4,


assuming that you have an adequate amount of lead(IV)


sulfate, Pb(SO4)2, to do the reaction? Round your final


answer to the tenth place, 1 decimal, and NO UNITS.

Answers

To determine the grams of lithium nitrate (LiNO3) needed to produce 5.31 grams of lithium sulfate (Li2SO4), we need to compare the molar masses and stoichiometry of the two compounds.

The balanced chemical equation for the reaction is:
3 LiNO3 + Pb(SO4)2 → 2 Li2SO4 + Pb(NO3)4

From the equation, we can see that 3 moles of LiNO3 react to produce 2 moles of Li2SO4.

To calculate the grams of LiNO3 needed, we can use the following steps:
1. Convert the given mass of Li2SO4 to moles using its molar mass.
2. Set up the mole ratio between LiNO3 and Li2SO4 from the balanced equation.
3. Use the mole ratio to calculate the moles of LiNO3 needed.
4. Convert the moles of LiNO3 to grams using its molar mass.

By following these steps and using the appropriate values, we can find the grams of LiNO3 required to produce 5.31 grams of Li2SO4.

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when aqueous solutions of sodium phosphate and magnesium chloride are mixed together, a solid precipitate forms that contains phosphorus. what is the complete ionic equation for the reaction?

Answers

The complete ionic equation for the reaction between aqueous solutions of sodium phosphate and magnesium chloride can be written as follows:
Na3PO4(aq) + 3MgCl2(aq) → 3NaCl(aq) + Mg3(PO4)2(s)


In this equation, sodium phosphate (Na3PO4) and magnesium chloride (MgCl2) are the reactants, which dissolve in water to form aqueous solutions. When these solutions are mixed together, a double displacement reaction occurs, resulting in the formation of solid precipitate, magnesium phosphate (Mg3(PO4)2), and aqueous sodium chloride (NaCl).
The reaction is driven by the exchange of ions between the reactants. The sodium ions (Na+) in the sodium phosphate solution react with the chloride ions (Cl-) in the magnesium chloride solution, forming aqueous sodium chloride. At the same time, the phosphate ions (PO43-) in the sodium phosphate solution react with the magnesium ions (Mg2+) in the magnesium chloride solution, forming solid magnesium phosphate.
It is important to note that this reaction is also accompanied by the release of heat and the formation of new chemical bonds. The solid precipitate that is formed in this reaction contains phosphorus, which is an essential nutrient for plant growth.

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Using the Nernst Equation, what would be the potential of a cell with [Ni2+] = [Mg2+] = 0.10 M? I found that E cell = 2.11 Volts But I don't know what to put for the n of this proble

Answers

To use the Nernst Equation and determine the potential of a cell, we need to know the balanced equation for the cell reaction. Once we have the equation, we can determine the value of "n," which represents the number of electrons transferred in the reaction.

Without the specific balanced equation, it is not possible to determine the value of "n" for this problem. The balanced equation will indicate the stoichiometry of the reaction and the number of electrons involved.

Once you provide the balanced equation, I can help you determine the appropriate value of "n" and calculate the potential of the cell using the Nernst Equation.

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Using your periodic table and calculator as needed, answer the following question. How many moles are in 11. 2 liters of hydrogen gas at STP?


Group of answer choices

Answers

There are 0.454 moles of hydrogen gas in 11.2 liters of hydrogen gas at STP.

To calculate the number of moles in 11.2 liters of hydrogen gas at STP, we need to use the ideal gas law, which states thatPV = nRT where: P is the pressure of the gas in atmospheres (atm)V is the volume of the gas in liters (L)n is the number of moles of the gas R is the ideal gas constant (0.0821 L·atm/mol·K)T is the temperature of the gas in Kelvin (K)At STP (standard temperature and pressure), the pressure is 1 atm and the temperature is 273 K. Therefore, we can rewrite the ideal gas law as: PV = nRT1 atm · 11.2 L = n · 0.0821 L·atm/mol·K · 273 Kn = (1 atm · 11.2 L) / (0.0821 L·atm/mol·K · 273 K)n = 0.454 molSo, there are 0.454 moles of hydrogen gas in 11.2 liters of hydrogen gas at STP.

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You will have a chance to design a protocol to prepare a 100-mL homogeneous solution of HCI/FeCl3 with a particular concentration that will be assigned to you in the lab. Your lab instructor will give you a card indicating your assigned values. Everyone will be given a different concentration in the class, but it's highly encouraged that you collaborate and work with your lab mates to determine the best protocol to create your solution.
Your mission is to prepare your solution using the following available reagents:
3M HCI,
Solid FeCl3. 6 H2O
You will not have an opportunity to prepare this solution in the lab, but you will be graded based on your written lab report and critical thinking. This is a chance to demonstrate that you can produce your own solutions and write your own procedure.
Lab report:
You must write a 1-2 page write-up that includes the following sections:
-Title
-Introduction/objective
-A list of glassware needed
-Protocol (this would tell us exactly how you would make the assigned solution in the lab) -Calculation (you must show all the calculations).
The report must be typed (the calculation section can be hand written).
Preparing ONE solution that has
0.025 M of FeCl3
1.2 M of HCI

Answers

This protocol provides a reliable and straightforward method to prepare a 100 mL homogeneous solution of HCl/FeCl3 with a concentration of 0.025 M FeCl3 and 1.2 M HCl using the available reagents.

We need to add 0.96 g of solid FeCl3.6H2O to the solution to prepare a 0.025 M FeCl3 and 1.2 M HCl solution.

Title: Preparation of a Homogeneous Solution of HCl/FeCl3 with 0.025 M FeCl3 and 1.2 M HCl

Introduction/Objective:

The objective of this experiment is to prepare a 100 mL homogeneous solution of HCl/FeCl3 with a concentration of 0.025 M FeCl3 and 1.2 M HCl using the available reagents.

Glassware needed:

-100 mL volumetric flask

-50 mL graduated cylinder

-10 mL graduated pipette

-50 mL beaker

-100 mL beaker

-Magnetic stir bar

-Magnetic stirrer

-Weighing balance

-Disposable gloves

-Eye protection

Protocol:

Measure 10.0 mL of 3 M HCl using the 10 mL graduated pipette and transfer it into a 100 mL beaker.

Add 0.3372 g of solid FeCl3.6H2O to the beaker containing HCl.

Stir the mixture with the magnetic stir bar for about 10 minutes until the solid FeCl3 dissolves completely.

Transfer the solution from the beaker to a 100 mL volumetric flask using a funnel.

Rinse the beaker and the funnel with distilled water and add the rinse water to the volumetric flask until it reaches the 100 mL mark.

Cap the flask and shake it gently to mix the solution thoroughly.

Calculation:

To prepare 0.025 M FeCl3, we need to use the following formula:

Molarity (M) = moles of solute / liters of solution

Rearranging the formula, we get:

moles of solute = Molarity (M) x liters of solution

We need 0.025 moles of FeCl3 in 100 mL of solution. Therefore,

moles of FeCl3 = 0.025 mol

liters of solution = 0.100 L

We can use the molar mass of FeCl3 to calculate the amount of solid FeCl3 required:

molar mass of FeCl3.6H2O = (162.2 g/mol) + 6(18.0 g/mol) = 270.2 g/mol

mass of FeCl3 = moles of FeCl3 x molar mass of FeCl3.6H2O

mass of FeCl3 = 0.025 mol x 270.2 g/mol = 6.76 g

Since we have FeCl3.6H2O, we need to adjust the amount of solid FeCl3 accordingly:

mass of FeCl3.6H2O = 6.76 g / (1 + 6) = 0.96 g

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3. when struck with light of a sufficient energy, what are some likely outcomes of the photochemical decomposition of silver chloride? write chemical reactions.

Answers

Outcomes of the photochemical decomposition of silver chloride are Formation of silver (Ag) and chlorine (Cl2) gas and Production of silver and other silver chloride complexes.

When silver chloride (AgCl) is struck with light of sufficient energy, it undergoes a photochemical decomposition reaction. Some likely outcomes of this process are:

1. Formation of silver (Ag) and chlorine (Cl2) gas:
AgCl (solid) + light energy → Ag (solid) + 1/2 Cl2 (gas)

2. Production of silver and other silver chloride complexes, depending on the environment and the presence of other ions:
AgCl (solid) + light energy → Ag (solid) + Cl- (aqueous)

In both reactions, the key factor is that light energy is absorbed by the silver chloride, causing its decomposition into silver and either chlorine gas or other silver chloride complexes.

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Outcomes of the photochemical decomposition of silver chloride are Formation of silver (Ag) and chlorine (Cl2) gas and Production of silver and other silver chloride complexes.

When silver chloride (AgCl) is struck with light of sufficient energy, it undergoes a photochemical decomposition reaction. Some likely outcomes of this process are:1. Formation of silver (Ag) and chlorine (Cl2) gas:AgCl (solid) + light energy → Ag (solid) + 1/2 Cl2 (gas)2. Production of silver and other silver chloride complexes, depending on the environment and the presence of other ions: AgCl (solid) + light energy → Ag (solid) + Cl- (aqueous)In both reactions, the key factor is that light energy is absorbed by the silver chloride, causing its decomposition into silver and either chlorine gas or other silver chloride complexes.

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The 90% confidence interval is Enter your answer in each of the answer boxes. compare the movement of the amoeba to the movement you saw within the elodea leaf cells. how are they the same? how are they different? the stage of an infectious disease when specific signs and symptoms are seen and the pathogen is at peak activity is called the