Sooner or later your new school won't feel so strange​.get.

Answers

Answer 1

I'm hoping the same for my new coaching classes

This is my first time going out to study ngl-

Answer 2
Right a girl just moved 2 months ago and she’s getting use

Related Questions

The molecule(s) that violate(s) the Lewis octet rule among the following is/are:
A.NO2
B.SF4
C.BeCl2
D.All of the above

Answers

The molecule(s) that violate(s) the Lewis octet rule among the given options is (D) All of the above.

The Lewis octet rule states that the atoms of a given molecule tend to share electrons in such a manner that they have eight valence electrons in their outermost shell.The following are the given molecules with their valence electrons:→ NO2 → 17 valence electrons→ SF4 → 34 valence electrons→ BeCl2 → 8 valence electronsBy applying the Lewis structure, we can see that the molecule violating the octet rule is NO2.The valence electrons of Nitrogen and Oxygen are:→ Nitrogen (N) → 5 valence electrons→ Oxygen (O) → 6 valence electronsBy combining, there are 17 valence electrons. Now, by applying the Lewis structure, we can see that the Nitrogen atom does not have an octet of electrons, as shown below:This is because Nitrogen has one lone pair of electrons, which makes a total of 9 electrons around it. Therefore, NO2 violates the Lewis octet rule.

Option D is the correct answer of this question.

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A solution contains a weak monoprotic acid HA and its sodium salt NaH both at 0.1 M concentration. Show that (OH) Kw/Ka.
Buffer Solutions and Concentration
Buffer solutions are composed of a solution of a weak acid and conjugate base. Buffer solutions can resists changes in the pH by neutralizing any added base with the weak acid and any added acid with the conjugate base. The pH of a buffer solution can be controlled up to a point. The pH of a buffer solution depends on the pKa of the weak acid and the ratio in the concentrations of conjugate base to weak acid. The pH can then be related to the concentration of hydroxide and hydrogen ions.

Answers

(OH) Kw/Ka is equal to the concentration of hydroxide ions divided by the equilibrium constant of the weak acid (Ka).

The dissociation of the weak acid HA can be represented by the equation:

HA ⇌ H+ + A-

The equilibrium constant for this dissociation is defined as Ka = [H+][A-]/[HA].

In the presence of its conjugate base A-, the weak acid HA can react with hydroxide ions (OH-) according to the equation:

HA + OH- ⇌ H2O + A-

The equilibrium constant for this reaction is Kw = [H+][OH-].

Rearranging the equation from step 4, we get [OH-] = Kw/[H+].

Substituting this expression for [OH-] in the equation from step 2, we have:

Ka = [H+][A-]/[HA] = ([H+] * Kw/[H+])/[HA] = Kw/[HA]

Rearranging the equation from step 6, we get Kw/Ka = [HA]/Kw.

The expression (OH) Kw/Ka shows the ratio of the concentration of the weak acid HA to the equilibrium constant Kw. It illustrates the relationship between the concentration of hydroxide ions (OH-) and the dissociation constant of the weak acid.

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In a Zn/Cu cell, the standard cell potential is 1.10 V. How could you increase the voltage by changing the solution concentrations o f Zn²⁺ and Cu²⁺? Explain in words.

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To increase the voltage in a Zn/Cu cell, you can change the solution concentrations of Zn²⁺ and Cu²⁺. By increasing the concentration of Zn²⁺ and decreasing the concentration of Cu²⁺, the voltage of the cell can be increased.

In a Zn/Cu cell, the standard cell potential of 1.10 V is determined by the difference in the standard reduction potentials of Zn²⁺ and Cu²⁺. By altering the concentrations of the ions, you can affect the reaction rates and shift the equilibrium of the cell reaction.

Increasing the concentration of Zn²⁺ increases the rate of the Zn oxidation reaction at the anode, while decreasing the concentration of Cu²⁺ decreases the rate of the Cu reduction reaction at the cathode. This leads to an increase in the overall voltage of the cell. The concentration changes affect the reaction rates, which in turn affect the flow of electrons and the overall voltage generated by the cell.

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what is the purpose of washing the precipitate with hot water in step 3(a) of the procedure? be as specific as possible in your answer

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In the procedure, step 3(a) states that washing the precipitate is necessary. The reason for washing the precipitate with hot water is that it removes any remaining impurities and unreacted chemicals.

Washing the precipitate helps to purify it and remove unwanted particles. Hot water is used because it can dissolve impurities and wash them away more effectively than cold water. Additionally, the hot water can increase the rate of precipitation, making the process faster. If the precipitate is not washed properly, it can have a negative effect on the final product. The washing process ensures that the precipitate is pure and ready for further use. Overall, washing the precipitate is a crucial step in the procedure to ensure the purity and quality of the final product.

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Which of the following best predicts the effect of not having ATP available to supply energy to this process? H+ ions will stop moving through the protein. An investigator wants to understand whether a newly found membrane protein is involved in membrane transport of a certain particle.

Answers

The following statement best predicts the effect of not having ATP available to supply energy to the process: H+ ions will stop moving through the protein.ATP is an important molecule in cells, which stores and releases energy.

When ATP molecules break down, they release energy that is used to fuel cellular processes such as muscle contraction, protein synthesis, and cell division. ATP is also essential for active transport in the cell membrane.

Therefore, if ATP is not available to supply energy to this process, the hydrogen ions will stop moving through the protein.The H+ ions move through a protein that forms a channel in the membrane to create an electrochemical gradient in the cell.

The movement of the Hydrogen ions drives the movement of other particles in or out of the cell through the same protein. However, without ATP, the protein cannot actively transport the H+ ions against the electrochemical gradient. Consequently, the H+ ions will stop moving through the protein.

This will prevent the formation of an electrochemical gradient, leading to a lack of energy for cellular processes that rely on this gradient.The newly found membrane protein is possibly involved in membrane transport of a certain particle. This means that the protein might help in moving particles in or out of the cell.

In active transport, the protein uses energy to move particles across the membrane against their concentration gradient. ATP provides this energy.

Therefore, if ATP is not available, the protein cannot actively transport the particle. This means that the particle will not move against its concentration gradient, leading to a lack of transport of that particle.

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Which one of the following undergoes the most rapid nitration upon treatment with HNO3/H2SO4? A) toluene B) benzene C) bromobenzene D) nitrobenzene E) meta-dinitrobenzene

Answers

Benzene undergoes the most rapid nitration upon treatment with HNO₃/H₂SO₄ Option B is correct.

Nitration is a chemical reaction where a nitro group (-NO₂) is introduced into an organic compound. In this case, when benzene is treated with a mixture of nitric acid (HNO₃) and sulfuric acid (H₂SO₄), it undergoes electrophilic aromatic substitution to form nitrobenzene. Benzene has a high reactivity towards nitration due to its aromaticity, which provides a stable electron delocalization system.

The presence of electron-donating groups or substituents on the benzene ring can further increase its reactivity towards nitration. In comparison, toluene, bromobenzene, and meta-xylene are less reactive towards nitration, while nitrobenzene is already a product of nitration and would not undergo further rapid nitration. Option B is correct.

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factor 7y2 53y 28. question 5 options: a) (y 5)(7y 2) b) (7y 4)(y 7) c) (y – 12)(7y – 1) d) (7y – 2)(y – 14)

Answers

The correct factorization is (7y + 4)(y + 7) is (7y + 4)(y + 7) (option B)

How to factor the expression?

For us to factor the expression 7y² + 53y + 28, we need to find two binomial factors that when multiplied together will yield the original expression.

Let us test among the given options, to find the correct factorization:

a. [tex](y + 5)(7y + 2) = 7y^2 + 2y + 35y + 10 = 7y^2 + 37y + 10[/tex]

b.  [tex](7y + 4)(y + 7) = 7y^2 + 49y + 4y + 28 = 7y^2 + 53y + 28[/tex]

c. [tex](7y - 2)(y - 14) = 7y^2 - 14y - 2y + 28 = 7y^2 -16y + 28[/tex]

d. [tex](y - 12)(7y - 1) = 7y^2 - y - 84y + 12 = 7y^2 - 85y + 12[/tex]

Therefore, the correct factorization is (7y + 4)(y + 7), which is option B.

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Complete question:

Factor 7y² + 53y + 28

Question 5 options:

A)

(y + 5)(7y + 2)

B)

(7y + 4)(y + 7)

C)

(7y – 2)(y – 14)

D)

(y – 12)(7y – 1)

A typical airbag in a car is 140 liters. How many grams of sodium azide needs to be loaded into an airbag to fully inflate it at standard temperature and pressure? (see the chemical reaction from the introduction). For credit, please show all work. 405.85 grams

Answers

Therefore, 237.931 grams of sodium azide would be needed to fully inflate a typical car airbag at standard temperature and pressure

To determine the amount of sodium azide needed to fully inflate a typical car airbag, we need to consider the stoichiometry of the chemical reaction involved. The reaction between sodium azide (NaN₃) and a metal oxide, typically potassium nitrate (KNO₃), produces nitrogen gas (N₂) and sodium oxide (Na₂O):

2 NaN₃ + 2 KNO₃→ 3 N₂ + 2 Na₂O + K₂O

According to the reaction equation, 2 moles of NaN₃ produce 3 moles of N₂. We need to find the number of moles of sodium azide required to fill a 140-liter airbag.

First, we need to convert the volume of the airbag from liters to moles of nitrogen gas. To do this, we'll use the ideal gas law:

PV = nRT

Where:

P = Pressure (standard pressure = 1 atm)

V = Volume (in liters)

n = Number of moles

R = Ideal gas constant (0.0821 L·atm/mol·K)

T = Temperature (standard temperature = 273.15 K)

Using the values:

P = 1 atm

V = 140 liters

R = 0.0821 L·atm/mol·K

T = 273.15 K

We can rearrange the ideal gas law to solve for the number of moles (n):

n = PV / RT

n = (1 atm) * (140 L) / (0.0821 L·atm/mol·K * 273.15 K)

n = 5.4956 moles of N2

Now, since the stoichiometry of the reaction tells us that 2 moles of NaN₃ produce 3 moles of N₂, we can set up a proportion:

2 moles NaN₃ / 3 moles N₃ = x moles NaN₃ / 5.4956 moles N₂

Simplifying the proportion, we find:

x = (2 moles NaN₃ * 5.4956 moles N₂) / 3 moles N₂

x = 3.6637 moles NaN₃

Finally, to convert moles of sodium azide to grams, we need to multiply by the molar mass of NaN₃, which is approximately 65 grams/mol:

Mass of NaN₃ = 3.6637 moles * 65 g/mol

Mass of NaN₃ = 237.931 grams

Therefore, 237.931 grams of sodium azide would be needed to fully inflate a typical car airbag at standard temperature and pressure.

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why is yhe greatest amoug of eergy soted in a molecyle of atp

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ATP stands for adenosine triphosphate. It is a compound made up of three phosphate groups, ribose sugar, and an adenine base. It is an energy-rich molecule, and the energy is stored in the phosphate bonds. When ATP is hydrolyzed into ADP (adenosine diphosphate), the stored energy is released, which can be used by the cells for metabolic activities. Hence, the greatest amount of energy stored in a molecule of ATP.

The energy stored in a molecule of ATP is said to be the greatest among all the energy-storing molecules. ATP is the primary source of energy for various cellular processes, including biosynthesis, muscle contraction, and nerve impulse transmission. The energy-rich phosphate bonds are responsible for the stored energy. When these bonds are broken, energy is released and is available for cellular work.ATP has three phosphate groups, and the bonds that hold these phosphate groups together are high-energy bonds. These bonds are easily hydrolyzed, which means they can release energy quickly and efficiently. In contrast, other energy-storing molecules, such as glucose and glycogen, have low-energy bonds that require several chemical reactions to break and release energy. Hence, the greatest amount of energy stored in a molecule of ATP.

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choose the lewis structure for the no2− ion. include resonance structures.

Answers

The resonance structures for the nitrite ion can be shown by option D

What is a resonance structure?

Resonance structures can be used to visualize how electrons delocalize in certain molecules or ions. They are used to describe molecules or ions that have numerous legitimate electron configurations and hence cannot be adequately represented by a single Lewis structure.

In a resonance structure, different double bonds and lone electron pairs can be positioned while keeping the overall connectivity of the atoms the same. The overall description of the molecule or ion is provided by these several resonance structures, with the real structure being an average or hybrid of the various resonance contributors.

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calculate the ph of 0.00345 m solution of strontium hydroxide

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The pH of the 0.00345 M solution of strontium hydroxide will be approximately 11.84.

Strontium hydroxide (Sr(OH)₂) is the strong base which dissociates completely in water. To calculate the pH of a 0.00345 M solution of strontium hydroxide, we need to determine the concentration of hydroxide ions (OH⁻) in the solution.

Since strontium hydroxide dissociates into two hydroxide ions per formula unit, the concentration of hydroxide ions (OH⁻) will be twice the concentration of strontium hydroxide.

Concentration of OH- = 2 × 0.00345 M = 0.0069 M

To calculate the pOH of the solution, we can use the formula:

pOH = -log10[OH⁻]

pOH = -log10(0.0069) ≈ 2.16

Finally, to calculate the pH of the solution, we will use the relationship;

pH + pOH = 14

pH + 2.16 = 14

pH ≈ 14 - 2.16 ≈ 11.84

Therefore, the pH of strontium hydroxide is approximately 11.84.

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Determination of the Equilibrium Constant for FeSCN2+

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The equilibrium constant for the formation of [tex]FeSCN^{+2}[/tex] can be determined through spectrophotometric analysis. This involves measuring the absorbance ofFeSCN^{+2} at a specific wavelength and using the Beer-Lambert law to relate absorbance to concentration.

By varying the concentrations of Fe^{+3} and SCN- ions and measuring the corresponding absorbances, a calibration curve can be created. From the calibration curve, the equilibrium concentrations ofFeSCN^{+2}can be determined, and the equilibrium constant can be calculated using the formula K = [FeSCN^{+2}]/([Fe^{+3}][SCN^{-}]). To determine the equilibrium constant for FeSCN^{+2}, a spectrophotometric method can be employed. This method relies on the fact thatFeSCN^{+2} absorbs light at a specific wavelength. By measuring the absorbance of FeSCN^{+2}solutions at this wavelength, the concentration ofFeSCN^{+2}can be indirectly determined. The absorbance is related to the concentration through the Beer-Lambert law, which states that absorbance is proportional to the product of the molar absorptivity, path length, and concentration.

To create a calibration curve, solutions with known concentrations of FeSCN^{+2}are prepared, and their absorbance values are measured. These measurements are used to plot a graph of absorbance against concentration. By analyzing the data points, a linear relationship between absorbance and concentration can be established, allowing the determination of the equilibrium concentration of FeSCN^{+2}at any given absorbance value.

To determine the equilibrium constant, the concentrations of [tex]Fe^{+3}[/tex]and SCN^{-} ions are varied while keeping the total volume constant. For each set of Fe^{+3} and SCN^{-}concentrations, the absorbance is measured and used to determine the equilibrium concentration of FeSCN^{+2}. The equilibrium constant, K, is then calculated using the formula K = [FeSCN^{+2}]/([Fe^{+3}][[tex]SCN^{-}[/tex]]). By repeating these measurements for different Fe^{+3} and SCN^{-}concentrations, multiple values of K can be obtained and averaged to improve accuracy.

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a fixed container holds oxygen and helium gases at the same temperature. which of the following statements are correct? (there could be more than one correct choice.

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A fixed container holds oxygen and helium gases at the same temperature. The correct options are A) The oxygen molecules have the greater average kinetic energy and C) The oxygen molecules have the greater speed.

Kinetic energy refers to the energy an object possesses due to its motion. The kinetic energy of a gas is a measure of its temperature; that is, the higher the temperature of a gas, the higher its kinetic energy. Thus, the speed and kinetic energy of gas molecules are proportional to each other.

At the same temperature, both oxygen and helium gases have the same average kinetic energy. But they have different molecular weights. For a given temperature, lighter molecules (such as helium) move faster than heavier molecules (such as oxygen).

Thus, oxygen molecules have the greater speed and kinetic energy than helium molecules. So the correct statements are A) The oxygen molecules have the greater average kinetic energy and C) The oxygen molecules have the greater speed.

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for a certain gas reaction mixture at 298k you measured qp=2.3 x 107 and kp= 9.7 x 105. what can you say about δgo and δg for this reaction mixture?

Answers

Both the standard change in free energy and the change in free energy under non equilibrium conditions would be less than  zero.

What happens when Qp >Kp?

The concentrations (or partial pressures) of the reactants and products in a gas-phase reaction are not at equilibrium when Qp (the reaction quotient) is greater than Kp (the equilibrium constant).

If Qp > Kp, it indicates that there are more products than are needed for equilibrium in the reaction. This denotes a shift to the reactant side to achieve equilibrium and lessen the concentration of the surplus product.

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the theoretical van't hoff factor means that total particle concentration

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The theoretical Van't Hoff factor means that the total particle concentration. A solution is a homogenous mixture of two or more substances.

It is composed of a solute and a solvent. A solute is the substance that dissolves in a solvent. Solvent is a substance in which other substances dissolve. The number of ions formed when a solute dissolves in a solvent is calculated using the Van't Hoff factor.

When a solute dissolves in a solvent, the number of particles in the solution increases. The degree of dissociation of an ionic compound in water can be determined using the Van't Hoff factor.

The theoretical Van't Hoff factor is the number of ions that would be present if all of the solute dissolved. It is determined by dividing the measured molality by the expected molality of the solute.

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determine the volume of 0.255 m koh solution required to neutralize each sample of sulfuric acid. the neutralization reaction is: h2so4(aq) 2koh(aq)→ k2so4(aq) 2h2o(l)

Answers

The volume of 0.255 M KOH solution required to neutralize a sample of sulfuric acid can be determined by stoichiometry and the balanced equation of the neutralization reaction.

In the balanced equation for the neutralization reaction between sulfuric acid (H2SO4) and potassium hydroxide (KOH), it is stated that 2 moles of KOH react with 1 mole of H2SO4 to produce 2 moles of water (H2O) and 1 mole of potassium sulfate (K2SO4). This means that the stoichiometric ratio between H2SO4 and KOH is 1:2.

To determine the volume of 0.255 M KOH solution required, you need the molarity and volume of the sulfuric acid solution. Let's assume you have the volume of sulfuric acid in liters (L).

According to the stoichiometry, 1 mole of H2SO4 reacts with 2 moles of KOH. Using the molarity and volume of KOH, you can calculate the number of moles of KOH required. Then, based on the stoichiometric ratio, you can determine the moles of H2SO4 present in the sample.

Finally, using the molarity of the sulfuric acid solution, you can calculate the volume of the solution required to neutralize the given sample. Remember to convert the volume from liters to the desired unit (e.g., milliliters) if needed.

Please provide the volume of the sulfuric acid solution in order to proceed with the calculation.

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1. Draw the transition state for the reaction of 1-chlorobutane and sodium hydroxide. 2. Explain why the following reaction results in racemization of the substitution product. CI CH3OH OCH3 OCH +

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The reaction of 2-chlorobutanol with methanol, leading to the formation of 2-methoxybutane, results in racemization due to the formation of a planar carbocation intermediate.

The reaction between 1-chlorobutanol and sodium hydroxide involves the substitution of chlorine (Cl) by hydroxide (OH) group, resulting in the formation of 1-butanol.

The transition state for this reaction can be envisioned as an intermediate state where the chlorine atom is partially dissociated from the carbon atom it is bonded to, while the hydroxide ion is approaching and getting closer to that carbon atom. In this transition state, the carbon atom undergoes hybridization changes, forming new bonds. The chlorine-carbon bond is weakened, and the carbon-oxygen bond is formed.

2. The reaction of 2-chlorobutanol with methanol to yield 2-methoxybutane involves the substitution of chlorine (Cl) by a methoxy group (OCH₃). This reaction leads to the racemization of the substitution product due to the involvement of an intermediate carbocation.

This reaction proceeds via a [tex]SN_1[/tex] (unimolecular nucleophilic substitution) mechanism, which involves the formation of a carbocation intermediate. During the formation of the carbocation intermediate, the chlorine atom dissociates from the carbon, leaving a positively charged carbon atom behind.

This intermediate carbocation is planar and lacks chirality. Consequently, when the methoxy group (OCH₃) attacks the carbocation from either face of the carbocation with equal likelihood, resulting in the formation of both enantiomers. This leads to a racemic mixture of the product, containing equal amounts of the R and S configurations.

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The complete question is:

1. Draw the transition state for the reaction of 1-chlorobutanol and sodium hydroxide. 2. Explain why the following reaction results in the racemization of the substitution product.

Reaction: 2-chlorobutanol gives rise to 2-methoxy butane in the presence of methanol.

1. How do you think greenhouse gas emissions and global climate will change during the next 50 years?

2. If greenhouse gas emissions and global temperatures continue rising, what other changes might you expect to see throughout the world?

3. Humans are working to reduce the amount of greenhouse gases released into the atmosphere, but are their current solutions going to make a big enough impact?

4. In addition to reducing human dependence on fossil fuels, what other solutions could help combat greenhouse gas emissions and global warming?

Answers

1. It is widely expected that greenhouse gas emissions will continue to increase over the next 50 years, primarily due to population growth, industrialization, and increasing energy demands.

2. Alongside rising temperatures, other changes that may occur include shifts in global precipitation patterns, changes in the distribution of species and ecosystems, increased frequency.

3. While current efforts to reduce greenhouse gas emissions are important, it is widely recognized that they may not be sufficient to prevent significant climate change impacts.

4. Addressing climate change requires a multi-faceted approach, involving policy changes, technological advancements, behavioral shifts, and international cooperation.

1.  As a result, global climate will likely continue to warm, leading to various impacts such as rising sea levels, more frequent and intense extreme weather events, shifts in precipitation patterns, and ecosystem disruptions. The exact extent of these changes will depend on several factors, including future emission levels, technological advancements, and policy decisions.

Alongside rising temperatures, other changes that may occur include shifts in global precipitation patterns, changes in the distribution of species and ecosystems, increased frequency and intensity of droughts and heatwaves, melting of glaciers and polar ice caps, and ocean acidification. These changes can have far-reaching consequences for agriculture, water resources, biodiversity, human health, and socio-economic systems.

3. While current efforts to reduce greenhouse gas emissions are important, it is widely recognized that they may not be sufficient to prevent significant climate change impacts.

Additional and more ambitious measures are needed, including transitioning to renewable and cleaner energy sources, improving energy efficiency, adopting sustainable land-use practices, enhancing public transportation, promoting carbon capture and storage technologies, and implementing policies that incentivize emission reductions across various sectors.

4. In addition to reducing dependence on fossil fuels, other solutions to combat greenhouse gas emissions and global warming include promoting sustainable agriculture and land management practices, protecting and restoring forests and other natural carbon sinks, advancing green technologies and innovation.

Enhancing resilience to climate impacts and investing in climate adaptation measures is also crucial to mitigate the risks associated with ongoing changes. Ultimately, addressing climate change requires a multi-faceted approach, involving policy changes, technological advancements, behavioral shifts, and international cooperation.

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The Ksp for magnesium arsenate (Mg3(AsO4)2) is 2.10 × 10- 20 at 25°C. (i) What is the molar solubility of magnesium arsenate at 25°C? (ii) What is the solubility of magnesium arsenate in g/L? (iii) How many grams of magnesium arsenate will dissolve in 860. ml of water?

Answers

The Correct Answers are

i) the molar solubility of magnesium arsenate:3s = 1.38 × 10-5M

ii) molar solubility (in g/L) = 1.38 × 10-5 M x 594.23 g/mol = 0.0082 g/L

iii) 7.1 mg of magnesium arsenate will dissolve in 860 mL of water.

Explanation :

(i) The balanced equation of magnesium arsenate (Mg3(AsO4)2) is given below:Mg3(AsO4)2(s) ⇌ 3Mg2+(aq) + 2AsO42-(aq)Let's assume that the initial amount of magnesium arsenate is "x" and that the amount dissolved is "s". Therefore,x - s = sThe expression x - s = s is the solubility product, Ksp, expression for magnesium arsenate.Ksp = [Mg2+]3[AsO42-]2 = 2.10 × 10-20We can assume that the solubility of Mg2+ ions is 3s since 1 mole of magnesium arsenate produces 3 moles of Mg2+. Therefore, substituting into the Ksp expression gives:Ksp = (3s)3(2s)2 = 2.10 × 10-20Solving the above equation for s gives the molar solubility of magnesium arsenate:3s = 1.38 × 10-5M

(ii) To find the solubility of magnesium arsenate in g/L, we can use the formula:molar solubility (in g/L) = molar solubility (in mol/L) x molar mass of Mg3(AsO4)2Molar mass of Mg3(AsO4)2 = 3 x (24.31 g/mol) + 2 x (74.92 g/mol) + 8 x (16.00 g/mol) = 594.23 g/molTherefore,molar solubility (in g/L) = 1.38 × 10-5 M x 594.23 g/mol = 0.0082 g/L

(iii) We can find the number of grams of magnesium arsenate that will dissolve in 860 mL of water by using the solubility value in g/L:magnesium arsenate (in g) = solubility (in g/L) x volume of water (in L)magnesium arsenate (in g) = 0.0082 g/L x 0.86 L = 0.0071 g or 7.1 mgTherefore, 7.1 mg of magnesium arsenate will dissolve in 860 mL of water.

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in order to increase the amount of nh3 produced at equilibrium, do you need to increase or decrease the amount of n2 in the reactor? explain your reasoning.

Answers

Yes, to increase the amount of NH[tex]_{3}[/tex] produced at equilibrium, you need to increase the amount of N[tex]_{2}[/tex] in the reactor.

According to Le Chatelier's principle, when a system at equilibrium is subjected to a change, it will shift in a direction that minimizes the effect of that change. In the reaction where NH[tex]_{3}[/tex] is produced from N[tex]_{2}[/tex] and H[tex]_{2}[/tex], increasing the amount of N[tex]_{2}[/tex] in the reactor will increase the concentration of N[tex]_{2}[/tex].

As a result, the equilibrium will shift in the forward direction to consume the excess N[tex]_{2}[/tex] and produce more NH[tex]_{3}[/tex] to restore equilibrium. Therefore, increasing the amount of N[tex]_{2}[/tex] in the reactor will favor the forward reaction and increase the amount of NH[tex]_{3}[/tex] produced at equilibrium.

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consider a sample of water in a closed container. when the reaction h2o(l) h2o(g) has reached equilibrium, what can we say about any specific water molecule?

Answers

At equilibrium, we can say that any specific water molecule in the sample has an equal probability of existing as a liquid water molecule (H2O(l)) or a gaseous water molecule (H2O(g)).

In a closed container, when the reaction H2O(l) ⇌ H2O(g) reaches equilibrium, it means that the forward reaction (H2O(l) → H2O(g)) and the reverse reaction (H2O(g) → H2O(l)) are occurring at the same rate. At equilibrium, the concentrations of liquid water and gaseous water remain constant.

On a molecular level, the equilibrium indicates that the conversion between liquid water molecules and gaseous water molecules is balanced. This means that any specific water molecule has an equal probability of being in the liquid phase or the gas phase. The equilibrium state does not favor one particular state for individual water molecules, and their distribution between the liquid and gas phases is determined by the overall equilibrium conditions, such as temperature and pressure.

Therefore, at equilibrium, we can say that any specific water molecule in the sample has an equal chance of being a liquid water molecule or a gaseous water molecule.

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R-410A at 1 MPa and 60° °C is expanded in a piston/cylinder at 500 kPa, 40° °C in a reversible process. Find the changes of entropy, enthalpy, and volume for this process.

Answers

The changes in entropy, enthalpy, and volume for this process are -0.049 kJ/kg.K, -23 kJ/kg, and 0.00172 m^3/kg respectively.

Given: R-410A at 1 MPa and 60° °C is expanded in a piston/cylinder at 500 kPa, 40° °C in a reversible process. We need to find the changes of entropy, enthalpy, and volume for this process. The basic formula for the change in entropy is given by ∆S = Q/THere, Q is the heat energy that enters or leaves the system during the process and T is the temperature at which this process takes place. The change in enthalpy is given by, ∆H = Q - WHere, Q is the heat energy that enters or leaves the system during the process and W is the work done on or by the system during the process. The change in volume can be calculated by using the formula ∆V = V2 - V1 where V1 and V2 are the initial and final volumes of the gas respectively.

We are given, Initial pressure, P1 = 1 MPa Final pressure, P2 = 500 kPa Initial temperature, T1 = 60 °C = 333 K Final temperature, T2 = 40 °C = 313 K Vaporization/condensation pressure at 60 °C = 2.6 MPa Specific heat of the refrigerant R-410A, cP = 1.15 kJ/kg.K Specific heat of the refrigerant R-410A, cV = 0.88 kJ/kg.K Molar mass of R-410A, M = 72.6 g/mol Universal gas constant, R = 8.314 J/mol.K Using the ideal gas equation PV = nRT, we can find the initial and final volumes of the gas.V1 = n1RT1/P1 = (1/72.6) * 8.314 * 333/1 * 10^6 = 0.00225 m^3/kgV2 = n2RT2/P2 = (1/72.6) * 8.314 * 313/0.5 * 10^6 = 0.00397 m^3/kg Change in volume = V2 - V1 = 0.00172 m^3/kg Now, using the formula for the change in entropy, we can find the entropy change ∆S = cP * ln(T2/T1) - R * ln(P2/P1)∆S = 1.15 * ln(313/333) - 8.314 * ln(500/1)∆S = -0.049 kJ/kg.K Using the formula for the change in enthalpy, we can find the enthalpy change ∆H = cP * (T2 - T1) = 1.15 * (313 - 333)∆H = -23 kJ/kg.

Hence, the changes in entropy, enthalpy, and volume for this process are -0.049 kJ/kg.K, -23 kJ/kg, and 0.00172 m^3/kg respectively.

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A laboratory supervisor is authorized to purchase a new osmometer. The supervisor must decide between a freezing-point and a vapor-pressure model.

Using the information provided, what substance is used as a reference standard in both models?
A. Deionized water
B. NaCl
C. KCl
D. Distilled water

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The substance used as a reference standard in both the freezing-point and vapor-pressure models is A. Deionized water.

In osmometry, a reference standard is used to calibrate the instrument and establish a baseline for measurements. Both freezing-point and vapor-pressure osmometers require a known substance with well-defined properties for accurate calibration.

Deionized water (option A) is commonly used as the reference standard in osmometers because its freezing-point and vapor-pressure properties are well-established and easily reproducible.

The freezing-point of pure water is 0°C (32°F) at standard atmospheric pressure, and its vapor pressure is also well-defined.

Other substances like NaCl (option B) and KCl (option C) are used as calibration standards in specific contexts, but they are not universally applicable to both freezing-point and vapor-pressure osmometers.

Based on the given information, the substance used as a reference standard in both the freezing-point and vapor-pressure models is deionized water (option A). It serves as a reliable and widely accepted calibration standard for osmometers due to its well-defined freezing-point and vapor-pressure properties.

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write the equilibrium expression for the solubility of sodium cholride in water

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The equilibrium expression for the solubility of sodium chloride (NaCl) in water is [Na⁺][Cl⁻].

The equilibrium expression for the solubility of sodium chloride (NaCl) in water is given by the equation NaCl(s) ⇌ Na⁺(aq) + Cl⁻(aq).

This equation represents the dissolution of solid sodium chloride in water, where the solid dissociates into individual sodium ions (Na⁺) and chloride ions (Cl⁻) in the aqueous phase.

The equilibrium expression can be written as [Na⁺] [Cl⁻], where [Na⁺] represents the concentration of sodium ions and [Cl⁻] represents the concentration of chloride ions in the solution at equilibrium.

The equilibrium constant (K) for this solubility equilibrium is the ratio of the concentrations of the dissociated ions to the concentration of the undissolved solid, and it provides a measure of the extent of dissolution of sodium chloride in water.

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The complete question is:

1. Write the equilibrium expression for the solubility of sodium chloride in water.

2. Describe what is happening at the molecular level in the saturated sodium chloride solution.

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

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

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

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

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Of the following, which statement best describes the LD50 dose of a chemical? LD50 is Select one: a. a dose of 50 mg per kilogram of body weight. b. the dose that 50% of people are regularly exposed to. c. the dose that has a 50% chance of killing you. d. the dose that causes adverse effects after 50 years.

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The LD50 dose of a chemical is the dose that has (a) 50% chance of killing you.

LD50 stands for lethal dose 50%, which is the amount of a chemical required to cause the death of 50% of a population exposed to it within a specific time frame. This dose is typically measured in milligrams (mg) of substance per kilogram (kg) of body weight.In simpler terms, LD50 is the amount of a chemical that is lethal to 50% of the test animals that consume it within a specific period of time. The LD50 dose varies between different chemicals and substances, and it's important to know this information when working with or being exposed to hazardous chemicals.In conclusion, the best statement that describes the LD50 dose of a chemical is that it is the dose that has (a) 50% chance of killing you.

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onsider the following reaction at 298 K: 2H2S(g) + SO2(g) → 3S(s, rhombic) + 2H2O(g), ΔG°rxn = −102 k
Is the reaction more or less spontaneous under these conditions than under standard conditions?

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The reaction is more spontaneous under the given conditions (298 K) compared to standard conditions. The standard conditions typically refer to 298 K and 1 bar pressure, whereas the given conditions specify only the temperature.

The spontaneity of a reaction is determined by the Gibbs free energy change (ΔG) of the reaction. In this case, the given value is ΔG°rxn, which represents the standard Gibbs free energy change. Under standard conditions, the reaction has a ΔG°rxn of -102 kJ. A negative ΔG°rxn indicates that the reaction is spontaneous under standard conditions. To determine if the reaction is more or less spontaneous under the given conditions, we need to compare the ΔG value at 298 K to the standard ΔG°rxn. However, the ΔG value at 298 K is not provided. Without this information, we cannot definitively determine whether the reaction is more or less spontaneous under the given conditions. In general, temperature affects the spontaneity of a reaction. Increasing the temperature can make a reaction more spontaneous if it decreases the ΔG value. If the ΔG value at 298 K is smaller (more negative) than the standard ΔG°rxn, then the reaction is more spontaneous under the given conditions.

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.Identify the name of the carboxylic acid derived from propane
a) propanoic acid
b) methanoic acid
c) monocarboxylic acid
d) monoalkane acid

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Propanoic acid is a carboxylic acid derived from propane. It has a wide range of applications in industry and is an important chemical in the production of many products.

Propanoic acid is the name of the carboxylic acid derived from propane. Propanoic acid, also known as propionic acid, is a carboxylic acid with a three-carbon chain and a single carboxyl group. It has the formula CH3CH2COOH and is a clear, colourless liquid with a pungent, rancid odor. Propanoic acid is commonly used as a food preservative and has a variety of industrial applications, including in the production of cellulose acetate propionate, herbicides, and pharmaceuticals. It is also used as a feed additive in livestock to promote growth and increase feed efficiency.

The process of deriving propanoic acid from propane involves the addition of a carboxyl group (-COOH) to the carbon chain of propane. This is achieved through a process known as carboxylation, which involves the reaction of propane with carbon dioxide (CO2) in the presence of a catalyst. The resulting product is propanoic acid, which can be purified and isolated through distillation or other separation techniques. In conclusion, propanoic acid is a carboxylic acid derived from propane. It has a wide range of applications in industry and is an important chemical in the production of many products.

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A piece of unknown metal with a mass of 20.4 g is heated to 108.4∘C and then dropped into a coffee cup calorimeter containing 187.4 g of water at 10.3∘C. When thermal equilibrium is reached, it is found that the temperature of the water increased by 3.2∘C. What is the specific heat of the unknown metal? Note: Specific Heat Capacity of water =4.18 J/g∗∘C

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The specific heat of the unknown metal is 119.069 J/g°C.

When two bodies, each having a different temperature, are in contact with each other, the temperature of the colder body increases and that of the hotter body decreases till they reach a common temperature. The quantity of heat lost by the hot body is equal to the quantity of heat gained by the cold body. This principle is called the principle of calorimetry.So here,The formula for specific heat is:Q = mcΔTwhere Q = heat energy, m = mass, c = specific heat capacity, and ΔT = change in temperature.For the water:Q = (187.4 g) (4.18 J/g*°C) (3.2°C)Q = 2423.424 JFor the metal:Q = (20.4 g) (c) (108.4°C - T)Q = 20.4c(108.4 - T)Set the heat equal to each other:Q = Q2423.424 J = 20.4c(108.4°C - T)T = 10.3°C + 3.2°C = 13.5°C2423.424 J = 20.4c(108.4°C - 13.5°C)2423.424 J = 20.4c(94.9°C)119.069 = cTherefore, the specific heat of the unknown metal is 119.069 J/g°C.

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how does the ratio of h:o atoms in your disaccharaide compare to the h:o ratio in glucose

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The ratio of hydrogen (H) to oxygen (O) atoms in a disaccharide may differ from the H:O ratio in glucose. The disaccharide could have a higher or lower H:O ratio compared to glucose, depending on its chemical structure and composition.

Disaccharides are formed by the condensation of two monosaccharide units, resulting in the formation of a glycosidic bond. The specific arrangement and types of monosaccharides involved in the disaccharide will determine the H:O ratio. For example, sucrose, a common disaccharide composed of glucose and fructose, has a H:O ratio of 2:1, which is the same as glucose. In this case, the H:O ratio remains unchanged.

However, other disaccharides, such as lactose or maltose, may have different H:O ratios compared to glucose. Lactose consists of glucose and galactose, resulting in a H:O ratio of 4:2. Maltose, composed of two glucose units, also has a H:O ratio of 4:2. These disaccharides have a higher H:O ratio than glucose due to the presence of additional hydrogen atoms in the structure.

In summary, the H:O ratio in a disaccharide can vary depending on its composition and structure, and it may be higher or lower than the H:O ratio in glucose.

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