calculate time in hours required for 99.9% of the 2-chloro-2-methylpropane to hydrolyze if reaction proceed at room temperature

12.5 mmol/L is the molar concentration of the sample having 0.5 M solution dissolved in water.

To answer this question, we need to calculate the molar concentration of the sample.
First, we need to find the amount of ammonium in the 500 mL of the 0.5 m solution.

We can calculate this by multiplying the molarity by the volume, which gives us 500 mL x 0.5 mol/L = 250 mmol.
Now, to find the molarity of the 20 mL sample, we need to divide the amount of ammonium by the volume of the sample: 250 mmol / 20 mL = 12.5 mmol/L.

Therefore, the molar concentration of the sample is 12.5 mmol/L.

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The total mass of precipitate (BaSO4) that can be produced is 175.6 grams.

Total mass refers to the weight of the shell, its service and structural apparatus, and the largest cargo permitted to be carried

To determine the mass of precipitate that can be produced when solutions of barium chlorate and lithium sulfate are mixed, we need to first write and balance the chemical equation for the reaction:

Ba(ClO3)2 (aq) + Li2SO4 (aq) → BaSO4 (s) + 2LiClO3 (aq)

The balanced equation shows that for every one mole of barium chlorate that reacts, one mole of barium sulfate is produced. Therefore, we need to calculate the number of moles of barium chlorate in the solution to determine the maximum amount of barium sulfate that can be formed.

First, we need to calculate the number of moles of barium chlorate in the solution:

Mass of solid barium chlorate = 300 g

Molar mass of barium chlorate = 2 x atomic mass of Ba + 6 x atomic mass of Cl + 6 x atomic mass of O = 2(137.33 g/mol) + 6(35.45 g/mol) + 6(16.00 g/mol) = 398.22 g/mol

Number of moles of barium chlorate = mass / molar mass = 300 g / 398.22 g/mol = 0.753 mol

Next, we need to calculate the maximum amount of barium sulfate that can be formed from this amount of barium chlorate:

According to the balanced equation, 1 mole of Ba(ClO3)2 produces 1 mole of BaSO4

Therefore, the maximum number of moles of BaSO4 that can be formed is also 0.753 mol

Finally, we can calculate the mass of BaSO4 that can be formed using its molar mass:

Molar mass of BaSO4 = atomic mass of Ba + atomic mass of S + 4 x atomic mass of O = 137.33 g/mol + 32.06 g/mol + 4(16.00 g/mol) = 233.39 g/mol

Mass of BaSO4 = number of moles x molar mass = 0.753 mol x 233.39 g/mol = 175.6 g

Therefore, the total mass of precipitate (BaSO4) that can be produced is 175.6 grams.

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To prepare a 35% alcohol solution containing 15.0 ml of alcohol, you will need 27.9 ml of water and 15 ml of alcohol.

To calculate this, you can use the equation C1V1 = C2V2, where C1 is the concentration of the alcohol (in this case, 35%), V1 is the volume of alcohol you need (15 ml), C2 is the desired concentration of the solution (35%), and V2 is the total volume of the solution (25 ml).

To prepare a 35% alcohol solution containing 15.0 ml alcohol, you will require 27.9 ml of water. The amount of alcohol and water required to prepare a 35% alcohol solution containing 15.0 ml alcohol is given below:

Given data:

Let us find the amount of water required.

Using the above formula, Volume of solution = 15 + Volume of water

Let us find the percentage of water in the solution.

35% alcohol solution implies that the solution contains 35 ml of alcohol in 100 ml of solution. Therefore, the amount of solution that contains 1 ml of alcohol is:

Therefore, the amount of solution required to prepare 15 ml of alcohol is:

Using the formula for volume of solution, 42.9 ml of solution = 15 ml of alcohol + Volume of water.

Therefore, you will require 15 ml of alcohol and 27.9 ml of water to prepare a 35% alcohol solution containing 15 ml of alcohol.

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8.0 moles of potassium hydroxide (KOH) produces 2.67 moles of potassium phosphate (K₃PO₄).

The reaction is written as:
3KOH + H₃PO₄ -> K₃PO₄ + 3H₂O

This reaction can be described as a double replacement reaction, meaning that two reactants swap partners and form two new products. In this case, the two reactants are KOH and H₃PO₄ and the two products are K₃PO and H₂O.

According to the reaction, 3 moles of KOH will give 1 mole of K₃PO₄.

Therefore, since 8.0 moles of KOH are reacted with phosphoric acid, the number of moles of potassium phosphate (K₃PO₄)produced will be (8/3) = 2.67 moles.

The amount of potassium phosphate produced is directly proportional to the amount of potassium hydroxide used in the reaction.

Therefore, when  8.0 moles of potassium hydroxide (KOH) reacts with H₃PO₄, 2.67 moles of potassium phosphate(K₃PO₄) are produced.

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The formula of sodium tetrahydroxochromate III is Na₂Cr(OH)₄, and its shape is tetrahedral.

The formula of potassium hexachlorocobaltate II is K₃CoCl₆, and its shape is octahedral.

The formula of hexaaquairon III chloride is [Fe(H₂O)₆]Cl₃, and its shape is octahedral.

Tetrahedral Geometry: The tetrahedral geometry is characterized by four electron pairs that are distributed around a central atom. It has an angle of 109.5 degrees between adjacent hydrogen atoms.

Octahedral Geometry: An octahedron is a polygon with eight faces. This geometry has an angle of 90 degrees between adjacent molecules.

The six surrounding atoms are all positioned at the same distance from the central atom. The hexaaquairon III chloride compound has six water molecules that are coordinated to an iron center, giving it octahedral geometry.

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It is a nucleophilic reducing agent that works best on polar multiple bonds such as C=O. Aldehydes can be converted to primary alcohols, ketones to secondary alcohols, carboxylic acids and esters to primary alcohols, amides and nitriles to amines using the LiAlH₄ reagent.

Any of a class of organic compounds characterized by one or more hydroxyl (OH) groups attached to an alkyl group's carbon atom (hydrocarbon chain). Alcohols are organic derivatives of water in which one of the hydrogen atoms has been replaced by an alkyl group, which is typically represented by the letter R in organic structures.

Ketones are a type of chemical produced by your liver when it breaks down fats. When you fast, exercise for long periods of time, or don't eat as many carbohydrates, your body uses ketones for energy. Low levels of ketones in the blood are not necessarily harmful.

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Ethers are fairly unreactive. The reagent that can transform symmetrical ethers into two equivalents of the same alkyl halide is a. PBr3.

Symmetrical ethers have two identical alkyl or aryl groups attached to the oxygen atom in the ether. In addition, symmetrical ethers can be synthesized by the reaction between alkoxides and alkyl halides. Symmetrical ethers are stable and have a low reactivity with most nucleophiles and electrophiles. They are susceptible to acid-catalyzed cleavage of their C-O bond. Thus, in most cases, the breaking of the ether linkage requires strong acids, making the cleavage of ethers a slow reaction.

The reaction of symmetrical ethers with PBr3, a strong nucleophile, can transform symmetrical ethers into two equivalents of the same alkyl halide. PBr3 reacts with the ether oxygen atom to produce a bromide anion, which is then displaced by the alkyl group. A second equivalent of PBr3 can then react with the alkyl halide product to produce another alkyl bromide.

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Answer: The X+ and Y- ions are most directly involved in redox chemistry, as the transfer of electrons between them is the basis of the reaction.

The molecule to the right is a diatomic molecule composed of a positively charged cation, X+, and a negatively charged anion, Y-.

The circled components are the X+ and Y- ions. The redox chemistry involves the transfer of electrons between these two components. In a redox reaction, electrons are transferred from the X+ ion (oxidation) to the Y- ion (reduction). This transfer of electrons results in changes to the oxidation states of the ions, X+ and Y-.

The net effect is the conversion of energy, which can be used to drive various chemical reactions.

In summary, the X+ and Y- ions are most directly involved in redox chemistry, as the transfer of electrons between them is the basis of the reaction.


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molecules

B.

~~~~~~~~~~~~~~~~~~~~~~~~~~~~`

The final molarity of HCl of the resulting solution when 5.56 ml of 2.896 m HCl is added to 4.44 ml of water is 1.61 m.

The final molarity of HCl in the resulting solution can be calculated using the formula:

M₁V₁ = M₂V₂

where M₁ and M₂ are the concentrations of the first HCl solution and the resulting solution, and V₁ and V₂ are the volumes of the first solution and the resulting solution.

For this particular question, M₁ is equal to 2.896 mol/L, V₁ is equal to 5.56 mL, and V₂ is equal to (5.56 + 4.44) = 10 mL.

Substituting in the values, we can get the final concentration in molarity of the resulting solution.

M₂ = M₁V₁ / V₂

M₂ = (2.896 mol/L)(5.56 mL) / 10 mL

M₂ = 1.61 mol/L

In summary, when 5.56 mL of 2.896 m HCl is added to 4.44 mL of water, the final molarity of HCl in the resulting solution is 1.61 mol/L.

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Answer: Halogenated hydrocarbons will eventually break into more harmful component parts if they are exposed to ultraviolet radiation.

Halogenated hydrocarbons are organic compounds that contain one or more halogen atoms in the form of fluorine, chlorine, bromine, or iodine. When they react with other elements, they produce alkyl radicals and halogen atoms, both of which are reactive.

This reaction can be initiated by exposure to light or heat, which can cause the halogen-carbon bond to break and release halogen atoms.

Thus, halogenated hydrocarbons are a significant source of pollution, particularly in the atmosphere. They are also very durable and will linger in the environment for a long time. As a result, they have a significant effect on the environment and human health.

When exposed to ultraviolet radiation, halogenated hydrocarbons break down into more dangerous component parts that can be toxic to humans and animals.

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Answer: The equation that summarizes the reaction being measured in the experiment examining catalase activity is  2H2O2 → 2H2O + O2.

What is Catalase?

Catalase is a type of enzyme that aids in the decomposition of hydrogen peroxide into water and oxygen. It is present in most living organisms exposed to oxygen, including plants and animals such as humans. Catalase is one of the body's most active enzymes.

Catalase is responsible for breaking down hydrogen peroxide, a toxic byproduct of cell metabolism, into harmless water and oxygen. Catalase has one of the highest turnover rates of any known enzyme, meaning that it can process millions of molecules of hydrogen peroxide per second.

The reaction being measured in the experiment examining catalase activity is the breakdown of hydrogen peroxide into water and oxygen by the enzyme catalase. The equation for this reaction is: 2H2O2 → 2H2O + O2

The reaction is a decomposition reaction, in which hydrogen peroxide breaks down into water and oxygen. The oxygen is released as a gas, which can be measured to determine the rate of the reaction. The experiment examining catalase activity is often used to study enzyme kinetics, which is the study of the rate and mechanism of enzyme-catalyzed reactions.



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The equation for the production of sulfur trioxide gas from sulfur dioxide (57.50 g) and oxygen (20.0 L) using the ideal gas law indicates;

The volume of sulfur trioxide that will be formed at STP is 20.1 L

The volume of sulfur trioxide formed at 15.0°C and 98920 Pa is 21.7 L

The ideal gas law is an equation of state that describes an ideal gas behavior. It relates the pressure (P), volume (V), and temperature (T) of a gas to the number of moles (n) of the gas and the universal gas constant. The equation is written as P·V = n·R·T

The balanced chemical equation for the reaction is: 2SO₂ (g) + O₂ (g) --> 2SO₃ (g)

First, we need to convert the given amounts of reactants to moles. We can do this by using the molar mass of SO₂ (64.07 g/mol) and the ideal gas law for O₂ (P·V = n·R·T). At STP (Standard Temperature and Pressure), the temperature is 0°C (273.15 K) and the pressure is 1 atm (101325 Pa). The gas constant R is 8.314 J/Kmol.

The number of moles of SO₂ is: 57.50 g/(64.07 g/mol) = 0.897 moles

The number of moles of O₂ is; (101325 Pa)·(20.0 L)/(8.314 J/K.mol)·(273.15 K) = 0.892 moles

Since the ratio of SO₂ to O₂ in the balanced equation is 2:1, SO₂ is the limiting reactant and will determine the amount of product formed.

The number of moles of SO₃ produced is; (0.897 mol SO₂)·(2 mol SO₃/2 mol SO₂) = 0.897 mol (Which is based on the number of moles of SO₂ in the reactant side of the equation)

To find the volume of SO₃ at 15°C and 98920 Pa, we can use the ideal gas law again; P·V = n·R·T

Therefore, the volume of sulfur trioxide formed at STP is 20.1 L and at 15°C and 98920 Pa is 21.7 L

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The process in which an atom of uranium-235 splits into smaller nuclei and produces a great amount of energy when bombarded with neutrons is called nuclear fission.

What is nuclear fission?

Nuclear fission is a process in which a large nucleus is split into smaller nuclei by bombarding it with slow neutrons.

The slow-moving neutrons have a greater likelihood of being absorbed by the nucleus and initiating the fission process. In nuclear fission, an enormous amount of energy is released.

The splitting of uranium-235 (U-235) produces a lot of energy, and the reaction is used in nuclear power plants to generate electricity.

The process of nuclear fission occurs when a neutron is fired at the nucleus of a heavy atom, such as uranium-235.

The resulting nucleus is very unstable and breaks into two smaller nuclei, releasing a large amount of energy in the process. This energy is used to generate electricity in a nuclear power plant.

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The balanced chemical equation for the reaction between barium chromate and water in order to form a saturated barium chromate solution can be written as follows:

[tex]BaCrO_4 (s) \rightarrow Ba^{2+} (aq) + CrO_4^{2-} (aq)[/tex]

The formula of barium chromate is [tex]BaCrO_4[/tex].

The solution will be saturated once the amount of [tex]BaCrO_4[/tex] dissolved in water reaches its maximum solubility, after which no more [tex]BaCrO_4[/tex] can dissolve in water.

Thus, at the saturation point, the equilibrium equation can be written as follows:

[tex]BaCrO_4 (s) \rightarrow Ba^{2+} (aq) + CrO_4^{2-} (aq)[/tex]

The law of mass action, states that at equilibrium, the rate of the forward reaction is equal to the rate of the reverse reaction. This allows us to write an expression for the equilibrium constant (K) based on the concentrations of the reactants and products at equilibrium. The equilibrium constant expression varies depending on the balanced chemical equation for the reaction.

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To plot a theoretical distillation curve please follow the steps while we continue our discussion. Since their boiling point difference is higher it is easier to separate Cyclohexane and toluene by distillation than 1-propanol and 2-propanol.

Plot a theoretical distillation curve of temperature (y-axis) vs. volume in ml (x-axis) for a 15 ml mixture containing 60% 1-propanol and 40% 2-propanol, follow these steps:

1. Determine the boiling points of 1-propanol and 2-propanol. 1-propanol has a boiling point of 97°C, while 2-propanol has a boiling point of 82°C.

2. Calculate the volumes of each compound in the mixture. 60% of 15 ml is 9 ml (1-propanol) and 40% of 15 ml is 6 ml (2-propanol).

3. Plot the boiling points of each compound on the y-axis, and their respective volumes on the x-axis.

4. Draw a curve connecting the two points to represent the theoretical distillation curve.

To determine if 1-propanol and 2-propanol are easier to separate by distillation than cyclohexane and toluene, compare the boiling point differences between the compounds. The boiling point difference between 1-propanol and 2-propanol is 15°C (97°C - 82°C). The boiling point difference between cyclohexane and toluene is 34°C (110°C - 76°C).

Since the boiling point difference between cyclohexane and toluene is greater than that of 1-propanol and 2-propanol, it can be concluded that cyclohexane and toluene are easier to separate by distillation than 1-propanol and 2-propanol.

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David's results did not appear to agree with the law of conservation of mass due to the release of carbon dioxide gas, which caused a reduction in the total mass of the beaker and its contents.

The law of conservation of mass states that in a chemical reaction, the total mass of the reactants is equal to the total mass of the products. In this case, David added dilute hydrochloric acid to solid calcium carbonate, which is a classic example of an acid-base reaction. The reaction can be represented by the following equation:

CaCO₃ + 2HCl → CaCl₂ + CO₂ + H₂O

The reaction produces calcium chloride, carbon dioxide, and water. Carbon dioxide gas is released as bubbles, which can be seen as effervescence.

When David weighed the beaker after the bubbling had stopped, he noticed a reduction in mass. This apparent violation of the law of conservation of mass can be explained by the fact that some of the products of the reaction escaped from the beaker in the form of gas. Since carbon dioxide is a gas, it was released into the air, causing a reduction in the total mass of the beaker and its contents. This means that some of the products were not present in the beaker at the end of the reaction, leading to an apparent decrease in mass.

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A reaction in which simple compounds are assembled into more complex compounds is most accurately described as a Anabolic reaction.The correct answer is "Anabolic Reaction."

An anabolic reaction is the process of creating more complicated molecules from simpler molecules or small substances. They usually require energy to take place, so anabolic reactions often occur in the body when the energy is released, such as when a person eats food. In biological organisms, this reaction process is important since it allows the organism to build more complicated structures necessary for life and growth.The following is a summary of the five types of chemical reactions:Oxidation-reduction reactionsAcid-base reactionsPrecipitation reactionsComplexation reactionsExchange reactionsAnabolic reactions belong to the family of oxidation-reduction reactions. Anabolic reactions need the input of energy to synthesize more complex molecules. Therefore, they are endergonic. Catabolic reactions, on the other hand, break down molecules into simpler forms and produce energy. They are exergonic as they release energy.A chemical reaction refers to a chemical transformation that involves the breaking and forming of bonds between atoms. Chemical reactions take place in the natural world, and they can be observed every day. The transformation of food into energy in our bodies, for example, is an example of a chemical reaction.

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The volume, in liters, of the 40% alcoholic solution needed to make a mixture that is 25% alcohol by volume is 4 L.

To find the amount of 40% alcoholic solution needed to make a mixture that is 25% alcohol by volume, we need to use the following formula:

C₁V₁ + C₂V₂ = CfVf

where C₁ is the concentration of the first solution, V₁ is the volume of the first solution, C₂ is the concentration of the second solution, V₂ is the volume of the second solution, Cf is the desired concentration of the resulting mixture, and Vf is the volume of the resulting mixture.

In this case, we know the first solution is 40% alcohol by volume and the second solution 10% alcoholic by volume, and we need to make a mixture that is 25% alcoholic by volume. We need to know the volume of the first solution, V₁.

Plugging in the values, we get:

C₁V₁ + C₂V₂ = CfVf

0.40V₁ + (0.10)(4) = (0.25)(4 + V₁ )

Solving for the value of V₁, we get:

0.40V₁ + 0.40 = 1 + 0.25V₁

0.15V₁ = 0.60

V₁ = 4

Therefore, 4 liters of the first solution is needed.

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The spectator ions in  [tex]Na^{+}[/tex] + [tex]OH^{-}[/tex] + [tex]H^{+}[/tex] + [tex]Cl^{-}[/tex]  → [tex]H_{2} O[/tex] +  [tex]Na^{+}[/tex] +  [tex]Cl^{-}[/tex] is sodium ions and chloride ions.

The spectator ion are defined as the ions which do not participate in chemical reactions and present the same on both sides of the reactions. If we write a net chemical reaction the spectator ions are cancelled from both sides of the equation.

          [tex]Na^{+}[/tex] + [tex]OH^{-}[/tex] + [tex]H^{+}[/tex] + [tex]Cl^{-}[/tex]  → [tex]H_{2} O[/tex] +  [tex]Na^{+}[/tex] +  [tex]Cl^{-}[/tex]

If we compare the chemical solutions before and after the reaction, sodium and chloride ions are present in both solutions but they do not undergo any chemical change at all. These ions present in the solution are called spectator ions since they don't participate in the chemical reaction at all.

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The correct question is,

What are the spectator ions in

 [tex]Na^{+}[/tex] + [tex]OH^{-}[/tex] + [tex]H^{+}[/tex] + [tex]Cl^{-}[/tex]  → [tex]H_{2} O[/tex] +  [tex]Na^{+}[/tex] +  [tex]Cl^{-}[/tex] ?

This indicates that when methanol is dissolved in water, an endothermic reaction is taking place, as the heat energy of the mixture is used up to break the bonds of the methanol molecules and dissolve them in the water.

When methanol (CH3OH) is dissolved in water, the temperature of the mixture drops. This indicates that the dissolution of methanol in water is exothermic. During the dissolution process, energy is released, which is transferred from the mixture to the surroundings. This leads to a decrease in the temperature of the mixture.

The following equation represents the dissolution of methanol in water: CH3OH (l) + H2O (l) → CH3OH(aq). When the methanol and water molecules interact with each other, hydrogen bonds are formed between them. The hydrogen bonds lead to the release of energy, which is the cause of the temperature drop.

Therefore, when methanol is dissolved in water, the temperature of the mixture drops, indicating that the process is exothermic.

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The components that are common to both ATP and NAD are: adenine and ribose. Adenine and ribose are both found in ATP and NAD molecules.

ATP stands for Adenosine Triphosphate, which is the primary energy carrier in cells. ATP is an energy-rich molecule that stores energy that can be used by the cell. It is composed of three phosphate groups, an adenine base, and a ribose sugar.

NAD stands for Nicotinamide Adenine Dinucleotide, which is an electron carrier molecule that is involved in many cellular metabolic reactions. It is composed of two nucleotides (adenine and ribose) linked by two phosphate groups.

The oxidized form of NAD is NAD+ while the reduced form is NADH.

The components of ATP and NAD are: Adenine and ribose are the two components common to both ATP and NAD.

Other components are specific to each molecule, as follows: ATP components: Three phosphate groups An adenine base A ribose sugar NAD+ components: Nicotinamide (a type of vitamin B3)Adenine A ribose sugar Two phosphate groups.

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Student question: You have a 100 mL solution of 0.02 M sodium carbonate (Na2 CO3 ). You are given the following information:

Your answer: To work with this 0.02 M sodium carbonate (Na2CO3) solution, you can follow these steps:

Step 1: Calculate the moles of Na2CO3 in the solution.
To do this, use the formula:

Moles = Molarity × Volume (in L)
Moles = 0.02 M × 0.100 L (since 100 mL = 0.100 L)
Moles = 0.002 mol Na2CO3

Step 2: Utilize the information given in the problem.
As you haven't provided any additional information, you can now use the 0.002 moles of Na2CO3 in the 100 mL solution for your further calculations or reactions, depending on the context of your problem.

The three-step synthesis of the product from 1-methylcyclohexene is as follows: converted into 1-bromo-1-methylcyclohexane with HBr, use NaNH2 (sodium amide) with the product obtained from step 1 and treat the obtained intermediate from step 2 with D2O (heavy water)

It will convert the lithium (Li) atom on the cyclohexyl ring's tertiary carbon atom to a deuterium (D) atom. Here's the answer to the question: Select reagent 1: Hydrobromic acid (HBr)Select reagent 2: Sodium amide (NaNH2)Select reagent 3: Heavy water (D2O). To synthesize the desired product from 1-methylcyclohexene, follow these three steps with the corresponding reagents:

1. Reagent 1: Osmium tetroxide (OsO4)
2. Reagent 2: Sodium periodate (NaIO4)
3. Reagent 3: Sodium borohydride (NaBH4)


Add osmium tetroxide (OsO4) to the 1-methylcyclohexene. This will form a diol via dihydroxylation of the double bond. Add sodium periodate (NaIO4) to the resulting diol. This will cleave the diol into two aldehyde groups through oxidative cleavage. Add sodium borohydride (NaBH4) to the aldehydes formed in step 2. This will reduce the aldehyde groups to the corresponding alcohol groups, resulting in the desired product.

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The molarity of the commercial vinegar is 0.833 M.

To calculate the molarity of the commercial vinegar, we need to know the formula of acetic acid, which is CH3COOH. Then, we need to convert the percentage w/v to grams per liter (g/L) by assuming 100 mL of solution.

Finally, we can use the formula of molarity to calculate the concentration of acetic acid in moles per liter (mol/L). Here are the steps:

Step 1: Determine the formula of acetic acid (CH3COOH).

Step 2: Convert the percentage w/v to g/L by assuming 100 mL of solution.5.0% w/v = 5.0 g/100 mL = 50 g/L

Step 3: Calculate the molar mass of acetic acid. C = 12.01 g/mol, H = 1.01 g/mol, O = 16.00 g/mol.Molar mass = (2 x C) + (4 x H) + (2 x O) = 60.05 g/mol

Step 4: Calculate the number of moles of acetic acid in 1 L of solution.Number of moles = mass / molar massNumber of moles = 50 g / 60.05 g/mol = 0.8327 mol

Step 5:Calculate the molarity of the solution.Molarity = number of moles / volume Molarity = 0.8327 mol / 1 L = 0.833 M

Therefore, the molarity of the commercial vinegar is 0.833 M.

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Answer : If you mix 312 g of a solute in water and bring it to a final volume of 378 mL, the concentration of the resulting solution will be 0.82 g/mL.

To calculate the concentration, divide the mass of solute (312 grams) by the volume of the resulting solution (378 mL). Thus, 312 g/cc/378 mL = 0.82 g/mL. The concentration of a solution is the ratio of the amount of solute (in this case, 312 grams) to the total volume of the solution (in this case, 378 mL). The concentration can be expressed as either grams of solute per milliliter of solution (g/mL) or moles of solute per liter of solution (mol/L).

The concentration of a solution can be increased by either adding more solute or decreasing the volume of the solution. For example, if you mix 500 g of a solute in 500 mL of water, the concentration of the resulting solution will be 1 g/mL. If you then reduce the volume of the solution to 250 mL, the concentration will increase to 2 g/mL.

It is also important to note that the concentration of a solution cannot be greater than the solubility of the solute. This means that the solute must be completely dissolved before it can be added to the solution in order for the concentration to be increased.

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The increased electron density around a carbon affects the chemical shift of attached hydrogen by causing it to experience an upfield shift or a lower chemical shift value.

This occurs because the increased electron density surrounding the carbon atom shields the attached hydrogen nucleus from the applied magnetic field, resulting in a decreased resonance frequency and a smaller chemical shift value.

When there is increased electron density around a carbon atom, the electrons act as a shield for the attached hydrogen nucleus. The shielding effect reduces the influence of the external magnetic field on the hydrogen nucleus. As a result, the resonance frequency of the hydrogen nucleus decreases.

This decrease in resonance frequency corresponds to an upfield shift in the chemical shift value.

Therefore, increased electron density around a carbon atom leads to a lower chemical shift value for an attached hydrogen nucleus.

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The half life of 2n-71 is 2.4 minutes. if we started with 50g at the beginning, approximately 0.781 g grams would be left after 12 minutes.

Given that the half-life of N-71 is 2.4 minutes. Hence, T₁/₂=2.4 minutes.

Initial mass of N-71 is 50 g.

We need to find out the mass of N-71 left after 12 minutes. We know that half-life is the time required to reduce the initial quantity to half of its value.

Therefore, we can use the following formula: M(t) = Mo (1/2)^{(t/T1/2)}

Where, M(t) is the mass of the isotope at time 't'.

Mo is the initial mass of the isotope.

T₁/₂ is the half-life of the isotope.

t is the time at which the isotope mass is measured.

Substituting the given values in the above formula, we get:

M(12) = 50 (1/2)^{(12/2.4)}

= 50 (1/2)^{(5)}

= 50/32

= 1.5625 g.

Therefore, the number of grams left after 12 minutes would be approximately 0.781 g.

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True statements for real gases are:

Real gases are gases that do not behave perfectly like ideal gases at all conditions of temperature and pressure. They deviate from ideal behavior under certain conditions, especially at high pressures and low temperatures.

The assumptions of the Kinetic Theory of Gases that make gases to be called ideal gases are not valid under all conditions of temperature and pressure. However, ideal gases serve as a reference point for understanding the behavior of real gases. The molecules of a real gas do occupy some space and have some volume. Therefore, they will cause an increase in pressure compared to ideal gases.

The attractive forces between the molecules of a real gas cause a decrease in the volume of the gas compared to the ideal gas. This results in an increase in pressure.Therefore, statement a is true.

Attractive forces between the molecules of gas become more significant as the temperature is decreased. This will result in deviations from ideal behavior. The attractive forces between the molecules cause them to stay close to each other. Therefore, the size of the molecules is more apparent at high pressures. Thus, statement b is true.

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