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The reaction below generated 11.6 g Fe2S3 instead of the expected 16.8g. What is the percent yield?
2FeBr3 + 3N12S--> Fe2S3 + 6NaBr
A.) 69.0%
B.) 1.44%
C.) 5.2%
D.) 0.69%

Answers

Answer 1

Answer: A 69.0%

Explanation:

divide the actual yield by the theoretical yield to get the %yield

11.6/16.8= 0.6904 or 69.0%


Related Questions

why is it important to know gas properties at stp? select all that apply: because comparison of properties is possible only if the properties are reported against a standard temperature and pressure. gases can only react at stp. gases must be stored at stp. in order to know that exactly one mole of an ideal gas has a volume of 22.4l.

Answers

It is important to know gas properties at standard temperature and pressure since  comparison of properties is possible only if the properties are reported against a STP  and in order to know that exactly one mole of an ideal gas has a volume of 22.4 l.

Standard temperature and pressure are defined as a standard set of conditions required for experimental measurements which are established to allow comparison between different sets of data.

Standards which are commonly used are those International Union of pure and applied chemistry and national institute of standards and technology.It is useful in determination of one mole of a gas.

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24. What is a commercial application of benzoic acid?

Answers

Commercial Applications of benzoic acid : as food preservative , medicine industry, pharmaceuticals .

Applications of benzoic acid in details :

Benzoic acid is commonly used as a food preservative due to its ability to inhibit the growth of bacteria, yeasts, and molds.

It is also used in the production of various chemicals such as phenol, benzoyl chloride, and sodium benzoate. Benzoic acid is used in pharmaceuticals.

It is used as a preservative in drugs. It is also present in baby products, skin products, cleansing products, hair and nail products, soaps, bath products, detergents etc.

Additionally, benzoic acid is used in the manufacturing of pharmaceuticals, cosmetics, and plastics.

Its antiseptic and antifungal properties also make it useful in the treatment of skin infections. It is used as an antifungal for treating diseases like ringworm and athlete’s foot. It is excreted as hippuric acid after conjugation with glycine in the liver. The excreted hippuric acid is not highly toxic. It is used in the treatment of skin irritation caused by insect bites, burns etc.

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In order for a liq-liq extraction to be successful, an appropriate extraction solvent must be chosen. What are the two most important characteristics of a good extraction solvent? Explain.

Answers

Thus not only should the solvent be selective for the solute being extracted but it should also possess other desirable features such as low cost, low solubility in the feed-phase and good recoverability as well as being noncorrosive and noninflammable.

30) Write the formula for the compound formed between rubidium and sulfur.A) RbSB) RbS2C) Rb2SD) Rb2SO3E) Rb3S2

Answers

The formula for the compound formed between rubidium (Rb) and sulfur (S) is Rb2S. So, the correct answer is C) Rb2S.

This is because rubidium has a +1 charge, and sulfur has a -2 charge. To balance the charges, you need two rubidium atoms for every sulfur atom. So, the correct answer is C) Rb2S.

Chemical compounds are formed when elements combine with each other by exchanging or sharing electrons.

In the case of rubidium and sulfur, rubidium is an alkali metal that readily loses its single valence electron to achieve a stable electron configuration, and sulfur is a non-metal that tends to gain two electrons to form a stable octet.

When rubidium (Rb) reacts with sulfur (S), the electron transfer results in the formation of an ionic compound, where rubidium forms a cation (+1 charge) and sulfur forms an anion (-2 charge).

To balance the charges in the compound, the number of cations and anions must be equal, and the total positive charge must equal the total negative charge.

In this case, since rubidium has a +1 charge and sulfur has a -2 charge, two rubidium atoms are required to balance the charge of one sulfur atom. Therefore, the correct formula for the compound formed between rubidium and sulfur is Rb2S, as it contains two Rb+ ions for every S2- ion.

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ch 14 consider the reaction of A to form B
2A <--> B. Kc= 1.8 x 10^-5 at 298K.
a reaction mixture at 298 initially contains [A]=.50M. what is the concentration of B when the reaction reaches equilibrium?
a. 9.0 x 10^-6
b. .060
c..030
d. 4.5 x 10^-6

Answers

The balanced equation for the given reaction is 2A <--> B. The answer is option d.

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

[tex]Kc = [B]/[A]^2[/tex]

Where [B] is the equilibrium concentration of B and [A] is the initial concentration of A. As we know:

Given: Kc = [tex]1.8 * 10^{-5}, [A][/tex] = 0.50 M

At equilibrium, let the concentration of B be x M.

Using the equilibrium constant expression and the given values, we get:

[tex]Kc = [B]/[A]^2[/tex]. using this now we get:

1.8 * 10^-5 = * /[tex](0.50)^2[/tex]

x = 1.8 * [tex]10^{-5[/tex]* [tex](0.50)^2[/tex]

x = 4.5 * [tex]10^{-6} M[/tex]

Therefore, we can conclude that the concentration of B at equilibrium is[tex]4.5 * 10^-6 M[/tex]. And also the correct answer is option (d).

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How does an uncompetitive inhibitor impact Km?

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Answer: In noncompetitive inhibition, the affinity of the enzyme for its substrate (Km) remains unchanged as the active site is not competed for by the inhibitor.

Km can also be interpreted as an inverse measurement of the enzyme-substrate affinity.

____________ is a polyacrylamide gel electrophoresis method for proteins that occurs under denaturing conditions to separate proteins by mass

Answers

SDS-PAGE is a polyacrylamide gel electrophoresis method for proteins that occurs under denaturing conditions to separate proteins by mass

SDS-PAGE (sodium dodecyl sulfate-polyacrylamide gel electrophoresis) is a widely used technique to separate proteins based on their molecular weight. The method is carried out under denaturing conditions to unfold and linearize the protein molecules, and then separate them based on their size.

In SDS-PAGE, the sample of proteins is first mixed with a buffer containing SDS, a strong anionic detergent that denatures the proteins and coats them with a negative charge proportional to their mass. The sample is then heated to further denature the proteins and break down any secondary and tertiary structures. The SDS-bound proteins are now uniformly negatively charged, and can be separated by size using a polyacrylamide gel.

The polyacrylamide gel acts as a molecular sieve, with smaller proteins migrating more quickly through the gel than larger ones. The gel is formed by polymerizing acrylamide and crosslinking agents to form a three-dimensional network of pores that create a size-dependent resistance to the migration of the negatively charged protein molecules. A voltage gradient is applied across the gel, causing the proteins to migrate towards the positive electrode. The separation is based on the principle that the mobility of a protein is inversely proportional to its size.

After separation, the proteins are visualized by staining with a protein-specific dye, such as Coomassie Brilliant Blue, or transferred to a membrane for detection by Western blotting. The resulting protein bands can be quantified and analyzed to identify and characterize the proteins present in the sample.

Overall, SDS-PAGE is a powerful and versatile tool for protein analysis, widely used in research and diagnostic laboratories for a variety of applications, including protein purification, protein quantification, and protein identification.

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Give the formulae of the compounds formed from the following sets of elements :1) oxygen2) chlorine3) neon4) calcium5) iodine6) hydrogen"

Answers

So, the compounds formed from the given set of elements are [tex]H_{2}O[/tex], ICl, and no compound for neon and calcium.

How to make compounds from elements?

Assuming we form compounds using the following pairs: 1) oxygen and hydrogen, 2) chlorine and iodine, 3) neon and calcium, I can provide the following formulae:

1) Oxygen and hydrogen: When oxygen (O) and hydrogen (H) form a compound, they create water ([tex]H_{2}O[/tex]). The formula for this compound is [tex]H_{2}O[/tex].

2) Chlorine and iodine: When chlorine (Cl) and iodine (I) form a compound, they create iodine monochloride (ICl). The formula for this compound is ICl.

3) Neon and calcium: Neon (Ne) is a noble gas and does not form compounds under normal conditions. Calcium (Ca) typically forms compounds with non-metals, such as oxygen or halogens. Thus, there is no compound formed between neon and calcium.

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Two moles of nitrogen gas are contained in an enclosed cylinder with a movable piston. If the molecular mass of nitrogen is 28, how many grams of nitrogen are present?

Answers

In the enclosed cylinder with two moles of nitrogen gas and a molecular mass of 28 grams/mole, there are 56 grams of nitrogen present.

How to determine the mass of an element in a compound?

To calculate the grams of nitrogen present in the enclosed cylinder with two moles of nitrogen gas, you can use the following steps:

1. Identify the given information:
  Moles of nitrogen gas ([tex]N_{2}[/tex]) = 2 moles
  Molecular mass of nitrogen ([tex]N_{2}[/tex]) = 28 grams/mole

2. Apply the formula to convert moles to grams:
  Grams of nitrogen = Moles of nitrogen × Molecular mass of nitrogen

3. Substitute the given values into the formula:
  Grams of nitrogen = 2 moles × 28 grams/mole

4. Calculate the grams of nitrogen:
  Grams of nitrogen = 56 grams

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If you change the solution volume but keep the solute amount the same what happens to the Molarity?

Answers

Answer:

If you increase the solution volume but keep the solute amount the same, the molarity will decrease.

If you decrease the solution volume but keep the solute amount the same, the molarity will increase.

If you change the solution volume but keep the solute amount the same, the molarity will change inversely.

daniel was trying to make a polyester. he knew that he needed to utilize condensation polymerization, so he added ethyl alcohol and butanoic acid together in the presence of sulfuric acid. however, when the reaction ceased, he was left with a clear, non-viscous liquid that had a fruity odor. it appeared as if no polymerization had occurred. what did daniel do wrong?

Answers

Daniel's approach to making a polyester using condensation polymerization was incorrect.

Although he used the correct starting materials, ethyl alcohol, and butanoic acid, the reaction conditions were not appropriate for polymerization.

In condensation polymerization, a polymer is formed by a reaction between two monomers that releases a small molecule, such as water or alcohol.

This process requires the removal of the small molecule in order to link the monomers together and form a polymer.

However, in Daniel's case, he added sulfuric acid as a catalyst to the reaction mixture. Sulfuric acid is a strong acid and can cause dehydration of the alcohol and acid, leading to the formation of an ester rather than a polyester.

Esters are clear, non-viscous liquids with a fruity odor, which is what Daniel observed in his reaction mixture.

To make a polyester using condensation polymerization, Daniel should have used a different catalyst, such as a base, and ensured that the reaction conditions were appropriate for the polymerization process.

Additionally, he should have used a suitable solvent to dissolve the starting materials and allow for efficient mixing and reaction.

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Consider the titration of 25.0 mL of 0.500 M HF with 0.500 M NaOH. Find the pH in the four regions. For HF, Ka = 6.8 × 10-4.Region 1: 0.00 mL of NaOH addedRegion 2: 12.5 mL of NaOH addedRegion 3: 25.0 mL of NaOH addedRegion 4: 25.1 ml of NaOH added

Answers

The pH in the four regions of the titration of 25.0 mL of 0.500 M HF with 0.500 M NaOH, where Ka for HF is 6.8 × 10⁻⁴, are: Region 1: pH = 2.17, Region 2: pH = 3.15, Region 3: pH = 7.00 and Region 4: pH = 11.23

Region 1: Before the addition of NaOH, the solution contains only HF. Since HF is a weak acid, we can assume that it dissociates very little, and therefore we can use the approximation that [H₃O⁺] ≈ [HF].

The pH can then be calculated from the Ka expression for HF:

Ka = [H₃O⁺][F⁻] / [HF]

Ka = (x)(x) / (0.500 - x)

where x is the concentration of H₃O⁺, which is equal to the concentration of F⁻ since HF dissociates to form H₃O⁺ and F⁻ ions in a 1:1 ratio.

Solving for x gives x = 7.3 × 10⁻³ M, so [H₃O⁺] = [F⁻] = 7.3 × 10⁻³ M, and pH = 2.17.

Region 2: In this region, we have added enough NaOH to neutralize half of the initial moles of HF. At this point, we have a buffer solution containing HF and F⁻ ions.

The Henderson-Hasselbalch equation can be used to calculate the pH:

pH = pKa + log([F⁻] / [HF])

pH = -log(6.8 × 10⁻⁴) + log(0.250 / 0.250)

pH = 3.15

Region 3: At this point, we have added enough NaOH to completely neutralize all of the HF. The solution now contains only F⁻ ions, which are the conjugate base of HF. Since F⁻ is a very weak base, we can assume that it does not react with water to produce OH⁻ ions, and therefore the solution is neutral. The pH is 7.00.

Region 4: In this region, we have added more NaOH than is needed to neutralize all of the HF. The excess NaOH will react with the F⁻ ions to produce the weak base NaF. Since NaF is a salt of a weak acid and a strong base, it will undergo hydrolysis and produce OH⁻ ions, making the solution basic.

We can use the Kb expression for F⁻ to calculate the pOH and then the pH:

Kb = [HF][OH⁻] / [F⁻]

Kb = (6.8 × 10⁻⁴)(x) / (0.500 + x)

where x is the concentration of OH⁻, which is also equal to the concentration of F⁻ since HF has been completely neutralized.

Solving for x gives x = 1.12 × 10⁻² M, so pOH = 1.95 and pH = 11.23.

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a chemist determines that a sample contains 0.15ug of U-235 and that the sample has undergone two half lives how much U-235 was there originally, before the same decayed?

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The sample contains 0.15 μg of Uranium-235 and has undergone two half-lives, then the original amount of Uranium-235 would have been 0.6 μg.

The half-life of U-235 is 7.04 × 10⁸ years.

The amount remaining can be calculated using the formula:

Amount remaining = Original Amount × (1/2)^(number of half-lives)

We know that the sample contains 0.15ug of U-235 and has undergone two half-lives. Let’s call the original amount of U-235 “X”. Then we can write:

0.15ug = X × (1/2)²

Solving for X gives us:

X = 0.15ug / (1/4) = 0.6ug

Therefore, there was 0.6ug of U-235 originally before it decayed.

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As a bicyclist pedals up a hill to the finish line of a race andʺfeels the burnʺin his leg muscles,those muscle cells are most likely utilizingA) only cellular respiration for maximum ATP production.B) only oxygen for maximum ATP production.C) both cellular respiration and oxygen for maximum ATP productionD) some lactate fermentation and lactic starting to build up in his muscle tissue causing a cramp

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As  bicyclist pedals up the hill to the finish line of the race and it feels the burn in the leg muscles, those muscle cells that are most likely utilizing is the only cellular respiration for the maximum ATP production. The correct option is A.

The cellular respiration is the process where the chemical reactions takes place which will break down the glucose and to produce the ATP, this may be used as the energy which will power the many reactions occurring throughout the body.

The three main steps for the cellular respiration are the glycolysis, and the citric acid cycle, and the oxidative phosphorylation. The option A is correct.

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(A)Acidity(B)Turbidity(C)Hardness(D)Dissolved oxygen(E)SalinityMeasured by the amount of Ca and Mg ABCDE

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The terms you've mentioned are all related to water quality parameters.

(A) Acidity refers to the level of hydrogen ions (H+) in water. It is often measured in terms of pH, with lower pH values indicating more acidic water.

(B) Turbidity refers to the level of suspended particles in water, which can cause it to appear cloudy or opaque. It is often measured in nephelometric turbidity units (NTUs).

(C) Hardness refers to the level of dissolved minerals, particularly calcium and magnesium, in water. It is often measured in parts per million (ppm).

(D) Dissolved oxygen refers to the amount of oxygen that is available in water for aquatic organisms to breathe. It is often measured in milligrams per liter (mg/L).

(E) Salinity refers to the level of dissolved salts in water. It is often measured in parts per thousand (ppt) or practical salinity units (PSU).

Regarding your statement, "measured by the amount of Ca and Mg," this is specifically referring to the measurement of water hardness, as mentioned in (C) above. Calcium and magnesium are both minerals that contribute to water hardness, and their levels can be measured to determine the overall hardness of the water.

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The atomic radius of a nitrogen atom is 70 pm. What is the distance between the nuclei of two bonded nitrogen atoms in a N(2) molecule?

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The distance between the nuclei of two bonded nitrogen atoms in a N(2) molecule is double the atomic radius of a nitrogen atom, which is 140 pm.

This is because when two nitrogen atoms bond together to form a N(2) molecule, they share a pair of electrons between them to form a covalent bond. This covalent bond brings the two nitrogen atoms closer to each other, reducing the distance between their nuclei.

In a N(2) molecule, the two nitrogen atoms are bonded together by a triple bond. The bond length of this triple bond is around 109.76 pm, which is shorter than the bond length of a double bond (around 120 pm) or a single bond (around 140 pm) between two nitrogen atoms.

The shorter bond length of a triple bond is due to the stronger attraction between the two atoms, which results in a tighter bond.

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7) Name the major organic product which results when 3-ethylbenzenesulfonic acid is heated in aqueous acid

Answers

The major organic product that results when 3-ethylbenzenesulfonic acid is heated in aqueous acid is 3-ethylbenzene. Here's a step-by-step explanation:


Step:1. 3-ethylbenzenesulfonic acid is an organic compound containing a benzene ring with an ethyl group (C2H5) and a sulfonic acid group (SO3H) attached to it.
Step;2. When 3-ethylbenzenesulfonic acid is heated in aqueous acid, the sulfonic acid group undergoes desulfonation, a process in which the SO3H group is removed and replaced with a hydrogen atom.
Step:3. This reaction results in the formation of 3-ethylbenzene, which is the major organic product in this case.

The reaction can be represented by the following equation:3-ethylbenzenesulfonic acid + H2O → 1-ethyl-1,2-dihydronaphthalene + H2SO4Overall, the reaction results in the conversion of a sulfonic acid group to an alkene, which is a useful transformation in organic synthesis.

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explain what the partial charges and bond character button display. use complete sentences to answer. (

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The "Partial Charges" button displays the partial charges on the atoms in the molecule, while the "Bond Character" button displays the type of bond between the atoms in the molecule.

Partial charges are a measure of the distribution of electrons in a molecule, and they are assigned based on the electronegativity of the atoms involved in the bonds.

Electronegativity is a measure of an atom's ability to attract electrons toward itself in a covalent bond.

In a molecule, atoms with higher electronegativity tend to have a partial negative charge, while atoms with lower electronegativity tend to have a partial positive charge.

The magnitude of the partial charges depends on the difference in electronegativity between the atoms involved in the bond.

The "Bond Character" button displays the type of bond between the atoms in the molecule. Bonds can be classified as either covalent, polar covalent, or ionic, depending on the difference in electronegativity between the atoms involved in the bond.

A covalent bond is formed when two atoms share electrons equally, whereas a polar covalent bond is formed when two atoms share electrons unequally, resulting in partial charges on the atoms involved in the bond.

An ionic bond is formed when electrons are completely transferred from one atom to another, resulting in the formation of ions with opposite charges.

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101) What is the stoichiometric coefficient for oxygen when the following equation is balanced using the lowest, whole-number coefficients? _____ C H4O (l) + _____ O2(g) → _____ CO2(g) + _____ H2O(l)A) 9B) 7C) 5D) 3

Answers

The stoichiometric coefficient for oxygen when the given equation is balanced using the lowest, whole-number coefficients is option D, which is 3.

To balance the equation, we need to first balance the carbon atoms by placing a coefficient of 1 in front of [tex]CO_{2}[/tex]. Then, we balance the hydrogen atoms by placing a coefficient of 2 in front of [tex]H_{2}O[/tex].

Finally, we balance the oxygen atoms by placing a coefficient of 3 in front of O2. This gives us the balanced equation [tex]1CH_{4}O[/tex] (l) + [tex]3O_{2}[/tex](g) → [tex]1CO_{2}[/tex](g) + [tex]2H_{2}O[/tex](l)

The stoichiometric coefficient refers to the coefficients of the balanced equation, which indicates the relative number of moles of reactants and products involved in the chemical reaction.

In this case, the stoichiometric coefficient for oxygen is 3, which means that 3 moles of [tex]O_{2}[/tex] are required to react completely with 1 mole of [tex]CH_{4}O[/tex] to produce 1 mole of [tex]CO_{2}[/tex] and 2 moles of [tex]H_{2}O[/tex].

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Buffer A is a better physiological buffer because its pK is closer to bloods pH of 7.4 than the pK of buffer B. Two physiological buffers are being studied. Buffer A has a pK = 7.2 and buffer B has a pK of 7.9.Which is the better buffer and why?

Answers

Based on the given information, buffer A is a better physiological buffer than buffer B because its pK is closer to the pH of blood, which is 7.4.

How does Buffer work?

A buffer works by maintaining a stable pH level by accepting or donating hydrogen ions. The pK value is a measure of the acidity of a solution and indicates the concentration of hydrogen ions needed to make the solution acidic or basic. The closer the pK value is to the pH of the solution, the more effective the buffer is in maintaining a stable pH. In this case, buffer A's pK value of 7.2 is closer to the pH of blood than buffer B's pK value of 7.9, making it a more effective buffer. Therefore, buffer A would be preferred as a physiological buffer over buffer B.

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Comment on eneg of P and N, what effect does this have on energies?

Answers

To comment on the energies of P and N and their effects on energies, we need to understand that P and N represent particles in the atom - protons (P) and neutrons (N). Both particles are located in the nucleus and contribute to the mass and stability of the atom.

The energy of P is primarily determined by its positive charge, which creates an electrostatic force, while the energy of N is mainly related to its neutral charge, which provides stability against the repulsive forces between protons.

When there is an increase in the number of protons or neutrons, the overall energy of the atom can change. An increased number of protons can result in a higher electrostatic repulsion, potentially making the atom less stable.

On the other hand, adding neutrons can provide stability to the nucleus by increasing the distance between protons, thereby reducing the repulsive forces. However, if too many neutrons are added, it could lead to an unstable nucleus, resulting in radioactive decay.

In conclusion, the energies of P and N can affect the stability and energy levels of atoms. Balancing the number of protons and neutrons is crucial for maintaining a stable atomic structure.

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Calculate the amount of heat (in kJ) necessary to raise the temperature of 47.8 g benzene by 57.0 K. The specific heat capacity of benzene is 1.05 J/g°C

Answers

It takes 2.79669 kJ of heat to raise the temperature of 47.8 g of benzene by 57.0 K.

To calculate the amount of heat necessary to raise the temperature of benzene, we can use the formula:

Q = m * c * ΔT

where Q is the amount of heat, m is the mass of benzene, c is the specific heat capacity of benzene, and ΔT is the change in temperature.

Substituting the given values, we get:

Q = 47.8 g * 1.05 J/g°C * 57.0 K

Q = 2796.69 J

To convert J to kJ, we divide by 1000:

Q = 2.79669 kJ

Therefore, it takes 2.79669 kJ of heat to raise the temperature of 47.8 g of benzene by 57.0 K.

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After extraction you have an organic and an aqueous layer. Describe how you will recover the solutes from each layer.

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The recovery of solutes from each layer depends on the nature of the solutes and the solvent used for the extraction. Proper selection of the extraction method and appropriate recovery steps are necessary to achieve optimal recovery and purity of the solutes.

After extraction, the solutes are partitioned between the organic and aqueous layers. To recover the solutes from each layer, different methods can be used.

For the organic layer, the solutes can be recovered by evaporating the solvent or by adding a suitable reagent that will react with the solutes and form a precipitate. Once the solutes have been recovered, they can be further purified if necessary.

For the aqueous layer, the solutes can be recovered by adjusting the pH and adding salt or a solvent that will extract the solutes from the aqueous layer into the organic layer. Alternatively, the solutes can be recovered by using a solid phase extraction (SPE) column, which selectively adsorbs the solutes from the aqueous layer onto a solid support.

To recover the solutes from the organic and aqueous layers after extraction, follow these steps:

1. Separate the layers: Using a separatory funnel, carefully separate the organic layer and the aqueous layer into two distinct containers.

2. Recover solutes from the organic layer: Evaporate or distill the organic solvent to isolate the solute, leaving behind a solid or concentrated solution of the solute.

3. Recover solutes from the aqueous layer: Perform a crystallization or evaporation process to remove the water, yielding a solid or concentrated solution of the solute.

By following these steps, you can efficiently recover the solutes from both the organic and aqueous layers after extraction.

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what is the correct classification of a mixture in which both a solid and a liquid are visible?a homogeneous mixture and a solutiona homogeneous mixture and a suspensiona heterogeneous mixture and a solutiona heterogeneous mixture and a suspension

Answers

The correct classification of a mixture in which both a solid and a liquid are visible is a heterogeneous mixture and a suspension.

A heterogeneous mixture is a mixture that has different regions with different compositions and properties.

A suspension is a type of heterogeneous mixture in which the particles of the solid are suspended in the liquid and can be seen with the eye.

In a suspension, the solid particles are not dissolved in the liquid and can settle at the bottom of the container over time if left undisturbed.

In contrast, a homogeneous mixture has a uniform composition and properties throughout the mixture, and the particles are evenly distributed.

Examples of suspensions include muddy water, blood, and paint. In these mixtures, the solid particles are suspended in the liquid and can be seen with the eye.

In contrast, a solution is a homogeneous mixture in which the particles are evenly distributed and cannot be seen with the eye.

In conclusion, a mixture in which both a solid and a liquid are visible is a heterogeneous mixture and a suspension.

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Name the following compounds: a.) ClF3b.) COc.) N2F4d.) k2Oe.) MgSf.) CuCl2g.) Cr2O3h.)ZnF2i.) SCl2j.) MgCl2k.) KHCO3l.) Na2 CO3 m.) Cu3 (PO4)2

Answers

Here are the names of the compounds you listed:

a.) ClF3: Chlorine trifluoride
b.) CO: Carbon monoxide
c.) N2F4: Dinitrogen tetrafluoride
d.) K2O: Potassium oxide
e.) MgS: Magnesium sulfide
f.) CuCl2: Copper(II) chloride
g.) Cr2O3: Chromium(III) oxide
h.) ZnF2: Zinc fluoride
i.) SCl2: Sulfur dichloride
j.) MgCl2: Magnesium chloride
k.) KHCO3: Potassium bicarbonate
l.) Na2CO3: Sodium carbonate
m.) Cu3(PO4)2: Copper(II) phosphate

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Why do we call alpha-D-glucose alpha-D-glucopyranose?

Answers

We call alpha-D-glucose alpha-D-glucopyranose because it is a glucose molecule with a specific stereochemistry (alpha and D), and it forms a six-membered pyranose ring structure.

Explain on alpha-D-glucose structure.



Alpha-D-glucose refers to the specific stereochemistry of the glucose molecule. The "D" designation comes from the spatial orientation of the hydroxyl group (-OH) on the penultimate carbon of the molecule, which is on the right side when drawn in the Fischer projection. The "alpha" indicates that the anomeric hydroxyl group (attached to the first carbon) is below the ring when represented in the Haworth projection.

The term "glucopyranose" is derived from two parts: "gluco" refers to the sugar glucose, and "pyranose" indicates that the molecule forms a six-membered ring structure resembling a pyran (a six-membered ring containing five carbon atoms and one oxygen atom). When glucose forms this cyclic structure, it is specifically called a "glucopyranose" ring.

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19) Calculate the molar mass of Ca3(PO4)2.A) 87.05 g/molB) 215.21 g/molC) 310.18 g/molD) 279.21 g/molE) 246.18 g/mol

Answers

The molar mass of Ca3(PO4)2 is 310.18 g/mol, which corresponds to option C.

Hi! To calculate the molar mass of Ca3(PO4)2, you need to consider the molar masses of the elements present and their proportions in the compound. Here's a step-by-step explanation:

1. Identify the elements present in the compound: Calcium (Ca), Phosphorus (P), and Oxygen (O).
2. Determine the molar masses of these elements: Ca = 40.08 g/mol, P = 30.97 g/mol, and O = 16.00 g/mol.
3. Calculate the molar mass of the compound:
  - For Calcium (Ca): 3 × 40.08 g/mol = 120.24 g/mol
  - For Phosphorus (P): 2 × 30.97 g/mol = 61.94 g/mol
  - For Oxygen (O): 8 × 16.00 g/mol = 128.00 g/mol
4. Add the molar masses together: 120.24 g/mol + 61.94 g/mol + 128.00 g/mol = 310.18 g/mol

So, the molar mass of Ca3(PO4)2 is 310.18 g/mol, which corresponds to option C.

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Reducing Benzil
1. Is your percent yield within reason of what you would expect? Explain your answer

Answers

To determine if your percent yield for the reduction of Benzil is within reason, you should carefully analyze the Stoichiometry, reaction conditions, and potential side reactions or product losses, and compare your experimental yield with the theoretical yield.

When determining whether your percent yield is within reason for the reduction of Benzil, you'll want to consider the following factors: stoichiometry, reaction conditions, and side reactions or product losses during the process.

1. Stoichiometry: Ensure that the stoichiometric amounts of reactants were used in the experiment. This will help in predicting the theoretical yield, which is the maximum amount of product that can be formed from the given reactants.

2. Reaction conditions: Check if the temperature, pressure, and other reaction conditions were maintained at optimal levels. If not, it could lead to lower yields.

3. Side reactions or product losses: During the process of reducing Benzil, there might be side reactions or product losses due to factors like purification or handling. These factors can impact the percent yield.

After considering these factors, compare your experimental yield with the theoretical yield. If your percent yield is within the range of 60-90% (a common range for organic reactions), it can be considered reasonable. However, the exact acceptable range may vary depending on the specific reaction being performed.

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What is the pH of a saturated solution of Mg(OH)2? Ksp = 1.8 × 10-11.

Answers

The pH of a saturated solution of Mg(OH)2 is approximately 10.8. This means that the solution is slightly basic or alkaline in nature.

The pH of a saturated solution of Mg(OH)2 can be calculated by using the equation for the dissociation of the compound in water. Mg(OH)2 dissociates into one Mg2+ ion and two OH- ions. The concentration of Mg2+ ions in the solution is twice that of the OH- ions since there are two OH- ions for every Mg2+ ion.

The Ksp value of the compound is given as 1.8 x 10-11. The pH of the solution can be calculated by using the expression for the ion product constant, which is the product of the concentration of Mg2+ and OH- ions in the solution.

Since the concentration of OH- ions in the solution is twice that of the Mg2+ ions, the pH of the solution can be calculated using the equation: pH = 14 - 1/2log(Ksp).

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a tank contains a mixture of helium, neon, and argon gases. if the total pressure in the tank is 490 mmhg and the partial pressures of helium and argon are 215 mmhg and 102 mmhg, respectively, what is the partial pressure of neon?

Answers

The partial pressure of neon in the mixture is 173 mmHg.

To find the partial pressure of neon, we need to use the fact that the sum of the partial pressures of all the gases in the mixture is equal to the total pressure of the system.

Let P_neon be the partial pressure of neon. Then we can write:

P_total = P_helium + P_neon + P_argon

Substituting the given values, we get:

490 mmHg = 215 mmHg + P_neon + 102 mmHg

Simplifying this equation, we get:

P_neon = 490 mmHg - 215 mmHg - 102 mmHg = 173 mmHg

Partial pressure is the pressure that a gas contributes to the total pressure of a mixture of gases. In a mixture of gases, each gas exerts a pressure that is proportional to its concentration (in terms of moles or volume) and its temperature.

The partial pressure of a gas can be calculated by multiplying its concentration (in moles or volume) by the total pressure of the mixture and dividing it by the total concentration (in moles or volume) of all gases in the mixture.

The concept of partial pressure is particularly important in the study of gases, especially in relation to the behavior of gases in chemical reactions, as it helps to determine the direction and extent of the reaction.

For example, in the ideal gas law, the partial pressure of a gas can be used to calculate its volume, temperature, and number of moles in a mixture.

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