10.20 is the pH after 26.0 mL of base is added as a 25.0 mL sample of 0.150 M hypochlorous acid is titrated with a 0.150 M NaOH solution.
Define titration.
To ascertain the concentration of an identified analyte, titration is a typical laboratory technique for quantitative chemical analysis. A standard solution with a known concentration and volume is prepared as the reagent, also known as the titrant or titrator.
It is a method of chemical analysis where the amount of a sample's ingredient is determined by mixing a precisely measured amount of the desired constituent with a different substance in a precise, known proportion.
HClO + NaOH → H2O + NaClO
1.0x10⁻¹⁴ / 3.0x10⁻⁸ = 3.33x10⁻⁷ = [HClO] [OH-] / [NaClO]
[NaClO] = 0.075M
The K a of hypochlorous acid is 3.0 × 10^-8.
[HClO] = [OH-] = X
3.33x10⁻⁷ = [X] [X] / [0.075M]
X = 1.58x10⁻⁴M = [OH-]
pOH = -log [OH-] i.e. 3.80
pH = 14 - pOH = 10.20
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Hydrogen manufactured on an industrial scale by this sequence of reactions: CH4 (g)+Hzo(g) =co (g)+3Hz (g) CO (g)+Hzo(g) = COz (g)+Hz (g) K, Kz The net reaction is: CH4 (g)+2H20 (g) COz (g)+4Hz Write an equation that gives the overall equilibrium constant K in terms of the equilibrium constants K_ and Kz.
Answer:
K = K_ * Kz^2 / (1 + K_ * Kz)^2
Explanation:
The net reaction for the manufacture of hydrogen can be written as:
CH4(g) + 2H2O(g) → CO2(g) + 4H2(g)
The equilibrium constant for this net reaction is the product of the equilibrium constants for the two steps involved:
K = K_ * Kz^2
where K_ is the equilibrium constant for the first step and Kz is the equilibrium constant for the second step.
However, the net reaction involves two moles of water, whereas the first step involves only one mole of water. This means that the first step will not be at equilibrium under the conditions of the net reaction. To take this into account, we can write an expression for the concentration of water in terms of the equilibrium constants:
[H2O]^2 = [H2]^4 * Kz^2 / ([CO]^1 * [H2O]^1 * [H2O]^1 * K_)
where [H2O], [H2], and [CO] are the equilibrium concentrations of water, hydrogen, and carbon monoxide, respectively.
Substituting this expression into the equilibrium constant expression for the net reaction gives:
K = [CO]^1 * [H2O]^2 * [H2]^4 / [CH4]^1
= ([CO]^1 * [H2O]^1 * [H2O]^1 * [H2]^2)^2 / ([CH4]^1 * [H2O]^1 * [H2O]^1 * [H2]^4)
= K_ * Kz^2 / (1 + K_ * Kz)^2
Therefore, the overall equilibrium constant for the net reaction can be expressed as K = K_ * Kz^2 / (1 + K_ * Kz)^2.
The equation for the overall equilibrium constant K in terms of the equilibrium constants K1 and K2 is:
K = K1 × K2
To find the overall equilibrium constant K for the net reaction [tex]CH_4 (g) + 2H_2O (g) = CO_2 (g) + 4H_2 (g)[/tex], we'll use the given sequence of reactions and their respective equilibrium constants, K1 and K2.
Reaction 1: [tex]CH_4 (g) + H_2O (g) = CO (g) + 3H_2 (g)[/tex] with equilibrium constant K1
Reaction 2: [tex]CO (g) + H_2O (g) = CO_2 (g) + H_2 (g)[/tex] with equilibrium constant K2
To obtain the net reaction, we can multiply reaction 1 with reaction 2:
[tex](CH_4 (g) + H_2O (g))(CO (g) + H_2O (g)) = (CO(g) + 3H_2 (g))(CO_2 (g) + H_2 (g))[/tex]
By canceling out the common terms, we get the net reaction:
[tex]CH_4 (g) + 2H_2O (g) = CO_2 (g) + 4H_2 (g)[/tex]
Now, to find the overall equilibrium constant K, we multiply the equilibrium constants of the individual reactions:
K = K1 × K2
So, the equation for the overall equilibrium constant K in terms of the equilibrium constants K1 and K2 is:
K = K1 × K2
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is the reaction shown here esterification, hydrogenation, hydrolysis, saponification, or substitution?
However, a brief description of each term esterification, hydrogenation, hydrolysis, saponification, or substitution is
1. Esterification: A reaction between an acid and an alcohol to form an ester and water.
2. Hydrogenation: A reaction where hydrogen is added to a molecule, typically involving the reduction of double or triple bonds in an unsaturated compound.
3. Hydrolysis: A reaction involving the breakdown of a compound by adding water.
4. Saponification: A process in which a fat or oil reacts with an alkali to produce soap and glycerol.
5. Substitution: A reaction in which an atom or a group of atoms in a molecule is replaced by another atom or group of atoms.
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Classify each change as physical or chemical.
a) Rusting of iron
b) the evaporation of fingernail-polish remover from the skin.
c) the burning of coal
d) the fading of a carpet upon repeated exposure to sunlight
a) Chemical change
b) Physical change
c) Chemical change
d) Physical change
a) Rusting of iron is a chemical change because it involves a chemical reaction between iron and oxygen in the presence of water or moisture to form hydrated iron oxide (rust).
The chemical equation for the rusting of iron is:
4Fe + 3[tex]O_{2}[/tex] + 6[tex]H_{2}[/tex]O → 4Fe(OH)3
This equation shows that four iron atoms react with three oxygen molecules and six water molecules to produce four molecules of iron (III) hydroxide, which is the chemical name for rust.
The rusting process occurs in stages. Initially, the iron surface is oxidized to form Fe2+ ions and hydroxide ions (OH-). These ions then react further with oxygen to form Fe(OH)2, which is a greenish compound that is commonly known as rust. Over time, the Fe(OH)2 compound reacts further with oxygen and water to produce Fe(OH)3, which is a reddish-brown compound that is also known as rust.
b) The evaporation of fingernail-polish remover from the skin is a physical change because it involves a change in the state of the liquid from a liquid to a gas without any chemical reaction taking place. When the solvent evaporates, it changes from a liquid to a gas, but it does not change its chemical composition. The skin may feel cool as the solvent evaporates because the process of evaporation requires energy, and this energy is taken from the surrounding environment, including the skin. However, if the solvent is left on the skin for too long, it can cause skin irritation or dryness.
c) The burning of coal is a chemical change because it involves a chemical reaction between coal and oxygen in the air to produce carbon dioxide, water, and other combustion products. The process of burning coal involves breaking down the carbon compounds in the coal, which produces a number of gases and particulate matter. These include carbon dioxide, sulfur dioxide, nitrogen oxides, and particulate matter such as ash and soot.
The combustion of coal also produces a significant amount of heat, which can be used to generate electricity or provide heat for industrial processes. However, burning coal also has negative environmental impacts, including the release of greenhouse gases and other pollutants that contribute to air pollution and climate change.
d) The fading of a carpet upon repeated exposure to sunlight is an example of a physical change. Sunlight contains ultraviolet (UV) radiation, which can break down the molecules in dyes and pigments that give color to the carpet fibers. When the molecules are broken down, they become less effective at absorbing and reflecting light, which causes the color to fade. This process is called photodegradation.
While the color of the carpet is changed, the chemical composition of the carpet fibers themselves is not altered. Additionally, the fading process can be slowed down or prevented by using UV-blocking window treatments or by avoiding direct sunlight exposure to the carpet.
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Why do cr and cu not have the expected electron configurations?.
Cr (chromium) and Cu (copper) do not have the expected electron configurations because they achieve greater stability by having a half-filled or fully filled d-subshell.
According to the Aufbau principle, electrons are filled in orbitals following a specific order. However, chromium and copper are exceptions to this rule. Chromium's expected electron configuration is [Ar] 4s2 3d4, but it actually has [Ar] 4s1 3d5 configuration.
Copper's expected electron configuration is [Ar] 4s2 3d9, but its actual configuration is [Ar] 4s1 3d10.
These exceptions occur because having a half-filled (in chromium) or fully filled (in copper) d-subshell provides extra stability due to a lower energy state and better electron repulsion minimization.
Summary: Cr and Cu have unexpected electron configurations because they achieve greater stability by having half-filled (Cr) or fully filled (Cu) d-subshells, which lowers their energy state and minimizes electron repulsion.
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What are the two general rules of heating in the laboratory?
The two general rules of heating in the laboratory are to always use a heating source that is appropriate for the task at hand, and to never leave the heating source unattended.
Using the appropriate heating source means selecting the type of heat that is best suited for the particular task. For example, if the task involves heating a small amount of liquid, a hot plate may be appropriate. However, if the task involves heating a larger volume of liquid or a solid, a Bunsen burner or other open flame heating source may be necessary. It is important to use the correct type of heating source to prevent accidents and to ensure that the task is completed efficiently.
The second rule, to never leave the heating source unattended, is critical for laboratory safety. Leaving a heating source unattended can lead to accidents such as fires or explosions, especially if the heating source is being used with flammable or explosive materials. It is important to monitor the heating source at all times and to turn it off when it is no longer needed.
In summary, the two general rules of heating in the laboratory are to use the appropriate heating source for the task and to never leave the heating source unattended. These rules are important for ensuring laboratory safety and for completing tasks efficiently.
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Calculate the volume in cm³ of oxygen evolved at s.t.p. when a current of 5A is passed through acidified water for 1..(Molar volume of gas at STP =22.4DM³
The volume of the oxygen gas that is produced at STP in the electrolysis is 57 cm³.
What is electrolysis?Electrolysis is a process that uses electricity to drive a non-spontaneous chemical reaction.
We know that the anodic half reaction is;
[tex]4OH^-(aq) --- > 2H_{2} O(l) + O_{2} (g) + 4e[/tex]
We can see that;
4 * 96500 C produces 1 mole of [tex]O_{2}[/tex]
(5 * 198)C produces (5 * 198) * 1/4 * 9650
= 990/386000
= 0.00256 moles
Now;
1 mole of the gas occupies 22.4 L
0.00256 moles of the gas occupies 0.00256 moles * 22.4 L/1 mole
= 0.057 L or 57 cm³
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what molecule acts as a positive effector (activator) of aspartate transcarbamoylase (atcase)?
The molecule acts as a positive effector (activator) of aspartate transcarbamoylase (atcase) is ATP (adenosine triphosphate).
Aspartate transcarbamoylase (ATCase) is an enzyme involved in the biosynthesis of pyrimidine nucleotides. ATP (adenosine triphosphate) acts as a positive effector (activator) of this enzyme, binding to a specific regulatory site on ATCase and causing a conformational change that increases its activity. ATP is an important molecule involved in cellular energy production and various metabolic pathways, including nucleotide biosynthesis. The binding of ATP to ATCase represents an example of allosteric regulation, where a molecule binds to a site on an enzyme distinct from its active site, modulating its activity.
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Select the answer that best describes an aqueous solution made from each of the following substances:
solid sodium carbonate (Na 2CO 3)
acidic
basic
neutral
cannot tell
none of these (A-D)
An aqueous solution made from solid sodium carbonate (Na2CO3) would be basic.
The best description for an aqueous solution made from solid sodium carbonate (Na2CO3) is:
Your answer: basic
Sodium carbonate is a salt of a strong base (sodium hydroxide) and a weak acid (carbonic acid). When it dissolves in water, it undergoes hydrolysis and forms sodium hydroxide (NaOH) and carbonic acid (H2CO3). Since sodium hydroxide is a strong base and carbonic acid is a weak acid, the resulting solution will be more basic than acidic, making the aqueous solution basic.
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Mark leamed that the boiling points are indicative of the relative strength of the secondary forces. Which of the following substances would you oxpect to have the highest boling point? NH 3
CH 4CO2
H2
CO
All of them have the same boling point
The substance which has the highest boiling point is [tex]NH_3[/tex].
Ammonia is expected to have the highest boiling point among the given options. This is due to the fact that ammonia molecules are polar and capable of hydrogen bonding between molecules. Hydrogen bonding is a strong intermolecular force that requires a significant amount of energy to break, resulting in a higher boiling point.
In contrast, methane and carbon dioxide are nonpolar molecules and have only weak van der Waals forces, resulting in relatively low boiling points. hydrogen and CO (carbon monoxide) are also nonpolar molecules with only weak van der Waals forces, resulting in even lower boiling points than [tex]CH_4[/tex] and [tex]CO_2[/tex].
Thus, ammonia would have a higher boiling point than the other molecules listed due to its polar nature and the presence of hydrogen bonding.
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The specific heat for liquid argon and gaseous argon is 25. 0 j/mol·°c and 20. 8 j/mol·°c, respectively. The enthalpy of vaporization of argon is 6506 j/mol. How much energy is required to convert 1 mole of liquid ar from 5°c below its boiling point to 1 mole of gaseous ar at 5°c above its boiling point?.
the energy required to convert 1 mole of liquid argon from 5°C below its boiling point to 1 mole of gaseous argon at 5°C above its boiling point is 6735 J/mol.
To calculate the energy required to convert 1 mole of liquid argon from 5°C below its boiling point to 1 mole of gaseous argon at 5°C above its boiling point, we need to consider two steps:
Heating the liquid argon from 5°C below its boiling point to its boiling point and converting it to gaseous argon at its boiling point.
Heating the gaseous argon from its boiling point to 5°C above its boiling point.
Step 1: To heat the liquid argon from 5°C below its boiling point to its boiling point, we need to supply energy equal to the heat of vaporization of argon, which is 6506 J/mol. This energy is used to overcome the intermolecular forces between the argon molecules and convert the liquid to gaseous state. Since the specific heat of liquid argon is 25.0 J/mol·°C, the energy required to heat 1 mole of liquid argon from 5°C below its boiling point to its boiling point is:
q1 = (25.0 J/mol·°C) x (5°C) = 125 J/mol
Adding the energy required for vaporization, the total energy required for step 1 is:
q1_total = 6506 J/mol + 125 J/mol = 6631 J/mol
Step 2: To heat the gaseous argon from its boiling point to 5°C above its boiling point, we need to supply energy equal to the product of its specific heat and the temperature change. Since the specific heat of gaseous argon is 20.8 J/mol·°C, the energy required to heat 1 mole of gaseous argon from its boiling point to 5°C above its boiling point is:
q2 = (20.8 J/mol·°C) x (5°C) = 104 J/mol
The total energy required to convert 1 mole of liquid argon from 5°C below its boiling point to 1 mole of gaseous argon at 5°C above its boiling point is the sum of the energies required for step 1 and step 2:
q_total = q1_total + q2 = 6631 J/mol + 104 J/mol = 6735 J/mol
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which of the following compounds is most basic? group of answer choices aniline p-nitroaniline p-toluidine p-methoxyaniline
Out of the given compounds, aniline is the most basic.
This is because aniline has an unshared electron pair on the nitrogen atom, which can easily accept a proton to form a positively charged ion. This makes it a strong nucleophile and a good Lewis base. In comparison, p-nitroaniline and p-methoxyaniline have electron-withdrawing groups attached to the ring, which reduces their basicity. p-Toluidine is a weaker base than aniline because the methyl group on the nitrogen atom decreases the availability of the lone pair a of electrons on the nitrogen. Therefore, aniline is the most basic among the given compounds.
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For the circuit shown below, complete the expressions for each mesh in terms of Vi, V2, i1, i2, i3, R1, R2, R3, R4, and Rs Note, you do not have to format the subscript. For example Vi would be entered in as V1 R2 3 fR1 R2) {R3) V1 V2 R4 R5 1 iV1) R5} fV2) For mesh 1,0- * Preview syntax error syntax error syntax error For mesh 2, 0= Preview For mesh 3, 0= Preview
Finding expressions for each mesh in the given circuit. For mesh 1: 0 = V1 - i1 * R1 - (i1 - i2) * R3,For mesh 2: 0 = V2 - i2 * R2 - (i2 - i1) * R3 - (i2 - i3) * R4,For mesh 3: 0 = i3 * Rs - (i3 - i2) * R4.
To find the expressions for each mesh, we use Kirchhoff's Voltage Law (KVL) which states that the sum of voltages around any closed loop in a circuit is zero.
1. For mesh 1: We start at V1, then move across R1 with a voltage drop i1 * R1, and finally move across R3 with a voltage drop (i1 - i2) * R3.
2. For mesh 2: We start at V2, then move across R2 with a voltage drop i2 * R2, then move across R3 with a voltage drop (i2 - i1) * R3, and finally move across R4 with a voltage drop (i2 - i3) * R4.
3. For mesh 3: We start at the ground, then move across Rs with a voltage drop i3 * Rs, and finally move across R4 with a voltage drop (i3 - i2) * R4.
These expressions can be used to analyze the circuit and find the values of the mesh currents i1, i2, and i3.
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a solution is prepared by dissolving 17.75 g sulfuric acid, h2so4, in enough water to make 100.0 ml of solution. if the density of the solution is 1.1094 g/ml, what is the mole fraction h2so4 in the solution? a solution is prepared by dissolving 17.75 g sulfuric acid, h2so4, in enough water to make 100.0 ml of solution. if the density of the solution is 1.1094 g/ml, what is the mole fraction h2so4 in the solution? 0.0350 19.0 0.0338 0.0181
To find the mole fraction of H2SO4 in the solution, we need to first calculate the moles of H2SO4 present in the solution.
Moles of H2SO4 = mass of H2SO4 / molar mass of H2SO4
Molar mass of H2SO4 = 2(1.008) + 32.06 + 4(16.00) = 98.08 g/mol
Moles of H2SO4 = 17.75 g / 98.08 g/mol = 0.1806 mol
Next, we can calculate the total mass of the solution using the density:
Mass of solution = density x volume = 1.1094 g/mL x 100.0 mL = 110.94 g
Now, we can calculate the mass of the solvent (water) in the solution:
Mass of solvent = total mass - mass of solute
Mass of solvent = 110.94 g - 17.75 g = 93.19 g
Finally, we can calculate the mole fraction of H2SO4:
Mole fraction of H2SO4 = moles of H2SO4 / (moles of H2SO4 + moles of H2O)
Moles of H2O = mass of H2O / molar mass of H2O
Molar mass of H2O = 2(1.008) + 16.00 = 18.02 g/mol
Mass of H2O = mass of solution - mass of solute = 110.94 g - 17.75 g = 93.19 g
Moles of H2O = 93.19 g / 18.02 g/mol = 5.17 mol
Mole fraction of H2SO4 = 0.1806 mol / (0.1806 mol + 5.17 mol) = 0.0338
Therefore, the mole fraction of H2SO4 in the solution is 0.0338.
To find the mole fraction of H2SO4 in the solution, follow these steps:
1. Calculate the mass of the solution using density:
Density = mass/volume
1.1094 g/mL = mass/100.0 mL
mass = 1.1094 g/mL * 100.0 mL = 110.94 g
2. Calculate the mass of water in the solution:
mass_water = mass_solution - mass_H2SO4
mass_water = 110.94 g - 17.75 g = 93.19 g
3. Calculate the moles of H2SO4 and water:
Molar mass of H2SO4 = 98 g/mol
moles_H2SO4 = 17.75 g / 98 g/mol = 0.1811 mol
Molar mass of water (H2O) = 18 g/mol
moles_water = 93.19 g / 18 g/mol = 5.1772 mol
4. Calculate the mole fraction of H2SO4:
mole_fraction_H2SO4 = moles_H2SO4 / (moles_H2SO4 + moles_water)
mole_fraction_H2SO4 = 0.1811 mol / (0.1811 mol + 5.1772 mol) = 0.0338
The mole fraction of H2SO4 in the solution is 0.0338.
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After washing glassware with acetone, how should the acetone be disposed?
After washing glass ware with acetone, the acetone should be disposed of properly in a designated hazardous waste container.
Acetone is considered a hazardous waste due to its flammability and potential harm to human health and the environment. Pouring acetone down the drain or into the trash can contaminate the water supply or harm wildlife. It is important to follow the regulations and guidelines set by your local waste management facility when disposing of acetone and other hazardous materials.After washing glass ware with acetone, the acetone should be disposed of properly in a designated hazardous waste container. Contact your local waste management facility or a licensed hazardous waste disposal company to inquire about proper disposal methods. It is also important to handle acetone with care, as it is a highly flammable substance that should be stored in a cool, dry, and well-ventilated area. Always wear protective gloves, goggles, and a respirator when working with acetone to minimize exposure to its harmful effects.
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6. Which one is not a derivative of carboxylic acids?
a. esters b. carboxylic acid anhydrides c. acid chlorides d. amides e. Schiff's base
E. Schiff's base is not a derivative of carboxylic acids. It is a derivative of aldehydes or ketones.
What is aldehydes?Aldehydes are a class of organic compounds made up of a carbonyl group attached to at least one hydrogen atom. The carbonyl group is a carbon double bonded to an oxygen atom, while the hydrogen atom is single bonded to the same carbon atom. Aldehydes are highly reactive molecules and can easily react with other organic molecules, such as alcohols, to form new compounds. Aldehydes are also important in many biological processes and are even used as food additives. In addition, aldehydes are used in the production of many industrial products, such as plastics and pharmaceuticals. Aldehydes can also be used to make fragrances, as well as many types of dyes.
Therefore the correct option is E.
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What temperature is 35.5 g chlorine gas that exerts a pressure of 70.0 KPa and occupies a volume of 15.0 L?
Using the Ideal Gas Law, the temperature of 35.5 g of chlorine gas at a pressure of 70.0 KPa and a volume of 15.0 L is approximately 291 K.
The ideal gas law, PV = nRT, can be used to calculate the temperature of chlorine gas given its pressure, volume, and the amount of substance present. Rearranging the equation to solve for temperature, we get T = PV/nR, where P is the pressure, V is the volume, n is the amount of substance (in moles), R is the gas constant, and T is the temperature in Kelvin.
First, we need to calculate the amount of substance using the molar mass of chlorine gas (70.9 g/mol) and the given mass of 35.5 g. This gives us 0.5 moles of chlorine gas.
Next, we can substitute the values into the equation T = PV/nR. Using units of KPa, L, and mol, we get T = (70.0 KPa) x (15.0 L) / (0.5 mol x 8.31 L⋅kPa/mol⋅K) = 511 K.
Therefore, the temperature of the chlorine gas is 511 K.
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The acid catalyzed dehydration of a secondary alcohol proceeds through e1 and e2 mechanisms. In both mechanisms, the first step is the protonation of the alcohol oxygen to form an oxonium ion. Complete the two boxes according the directions in the boxes.
The formation of the oxonium ion, the E1 mechanism proceeds through carbocation formation and proton elimination, while the E2 mechanism involves a concerted elimination step.
The acid-catalyzed dehydration of a secondary alcohol proceeding through E1 and E2 mechanisms, let's break down the steps for each mechanism after the formation of the oxonium ion.
1. Formation of oxonium ion: In both E1 and E2 mechanisms, the first step is the protonation of the alcohol oxygen to form an oxonium ion. The secondary alcohol reacts with a strong acid (e.g., H2SO4) which protonates the alcohol oxygen, creating a positive charge on the oxygen atom.
E1 mechanism:
2. Formation of carbocation: The oxonium ion then undergoes a heterolytic cleavage, leading to the departure of the water molecule as a leaving group. This forms a carbocation, an intermediate with a positive charge on the carbon atom.
3. Elimination of a proton: In the final step, a base (usually a weak one, such as the conjugate base of the acid used) removes a proton from an adjacent carbon, resulting in a double bond formation and the formation of the alkene product.
E2 mechanism:
2. Concerted elimination: In the E2 mechanism, the elimination of the proton and the departure of the leaving group (water) occur in a single, concerted step. A strong base abstracts a proton from an adjacent carbon atom while the oxonium ion's C-O bond breaks, and the water molecule leaves simultaneously. This results in the formation of a double bond and the alkene product.
So, in summary, after the formation of the oxonium ion, the E1 mechanism proceeds through carbocation formation and proton elimination, while the E2 mechanism involves a concerted elimination step.
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Draw the structure of the major organic products of the reaction.
The structure of the major organic products of a chemical reaction depends on the reactants involved and the reaction conditions. However, in general, the products are formed due to the breaking and forming of chemical bonds between atoms.
In organic chemistry, reactions can involve various types of functional groups such as alcohols, alkenes, alkynes, and carbonyls. The products formed from a reaction involving these functional groups can vary widely.
For example, if we consider the reaction between an alkene and a halogen, such as bromine, the major organic products formed would be a vicinal dibromide. This is because the double bond of the alkene is broken and two bromine atoms are added to each carbon atom that previously had the double bond.
Similarly, if we consider the reaction between an alcohol and a carboxylic acid, the major organic product formed would be an ester. This is because the alcohol reacts with the carboxylic acid to form a water molecule and an ester functional group.
Therefore, understanding the structures of the reactants and the reaction conditions is crucial for predicting the major organic products of a chemical reaction.
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The barometric pressure on top of Mt. Everest is 250 mmHg. At an ambient temp of -30°C and 50% relative humidity, what is the PO2a) in the atmospheric air and b) in the mammalian lung (assume that PCO2 is "normal"). Is this possible? Early text books flatly stated no one would ever summit Everest without supplemental oxygen, now you see why. Reinhold Messner was the first to summit Everest with no supplemental oxygen in 1978. C) Should a person eat a diet of fat or carbohydrates on Everest? Explain why (with numbers!)**
The value of the partial pressure PO₂ in atmospheric air is 12.5mm Hg in mammalian lung it is 35 torr and a person should eat carbohydrate diet on Everest.
Each gas that makes up a mixture of gases has a partial pressure, which is the notional pressure of that gas as if it alone filled the original combination's complete volume at the same temperature.
a) Oxygen constitutes 20.95% atmosphere. If pressure is 250mm Hg,
Then, partial pressure of oxygen = 250*20.95% =52.4 mm Hg
50% relative humidity is there. So, partial pressure of water vapor = 250*50% =12.5mm Hg
Partial pressure of oxygen in lung =52.4-12.5 =39.9mm Hg.
b) PCO2 in mammalian lung is about 35 torr. Partial pressure of oxygen should always be higher than partial pressure of carbon-di-oxide. Although the difference is very less, still this condition is possible.
Supplemental oxygen will increase the amount of available oxygen. But under the above conditions, it is still possible to survive. Therefore, Messner' summit to Everest was possible.
C) When one molecule of glucose (of 6 carbons) is burnt, 6 oxygens are used up producing about 36 ATP. So, production of one ATP molecule uses about 1/6 oxygen molecules.
When one molecule of fat is burnt, 8.5N-7 ATP molecules are produced, where N is the chain length. Let N be 6, then the amount of ATPs produced will be 44, which will utilize 7.3 molecules of oxygen. So, a 6C carbohydrate utilizes 6 molecules of oxygen; while a 6C fatty acid utilizes 7.3 (1.3 more) oxygen molecules.
Now, this simply proves that fat produces more energy than carbohydrates and will therefore use more oxygen than carbohydrates at a time. Therefore, a person should eat carbohydrate diet on Everest.
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Calculate the ph during the titration of 30. 00 ml of 0. 1000.
It's also worth noting that the pH will change rapidly near the equivalence point, where the moles of acid and base are equal, due to the sudden change in the concentration of the acid and its conjugate base. This is important to keep in mind when performing titrations and interpreting the resulting data.
To calculate the pH during the titration of 30.00 ml of 0.1000 M acid, we need to know what the acid is being titrated with. Assuming it is being titrated with a strong base, such as NaOH, we can use the following formula:
moles of acid = moles of base
M1V1 = M2V2
In this case, we don't have enough information to solve for the pH during the titration. We need to know the volume and concentration of the base being added, as well as the acid dissociation constant (Ka) of the acid being titrated. Once we have this information, we can use the Henderson-Hasselbalch equation to calculate the pH at any point during the titration.
It's also worth noting that the pH will change rapidly near the equivalence point, where the moles of acid and base are equal, due to the sudden change in the concentration of the acid and its conjugate base. This is important to keep in mind when performing titrations and interpreting the resulting data.
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Assume the buffer system in blood is carbonic acid/sodium bicarbonate is pH = 7.41. What is the molar
ratio of HCO -1 to H CO ? (A) 0.01. (B) 1. (C) 11. (D) 7. (E) 3. 323
The molar ratio of HCO -1 to H CO is approximately 20:1 or 11:0.55.
The chemical equation for the carbonic acid/bicarbonate buffer system in blood can be written as:
H2CO3 ⇌ HCO3- + H+
The pKa value for this buffer system is 6.1. At pH = 7.41, the ratio of [HCO3-]/[H2CO3] can be calculated as follows:
pH = pKa + log([HCO3-]/[H2CO3])
7.41 = 6.1 + log([HCO3-]/[H2CO3])
log([HCO3-]/[H2CO3]) = 1.31
[HCO3-]/[H2CO3] = 10^1.31
[HCO3-]/[H2CO3] = 20.1
Therefore, the molar ratio of HCO3- to H2CO3 in the buffer system is approximately 20:1 or 11:0.55 (which can be simplified to 11:1).
The answer is (C) 11.
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The reaction2A + B → Chas the following proposed mechanism.Step 1: A + B D (fast equilibrium)Step 2: D + B → EStep 3: E + A → C + BIf step 2 is the rate-determining step, what should be the rate of formation of C?
The correct answer is option e. The details for the reaction are given in the below section.
Overall reaction: 2A+B → C
Mechanism:
Step1: A+B ⇋ D (fast equilibrium)
Step 2: D+B → E (rate-determining step)
Step 3: E+A → C +B
Rate of formation of C = k[A][E]
But, E is an unstable intermediate so it cannot be expressed in rate law expression.
We need to write E in terms of reactants A and B.
As E is an unstable intermediate,
Apply steady-state approximation (SSA) to E which states that,
Rate of formation of E = Rate of deformation of E
Rate of formation of E= k2[D][B]
Rate of deformation of E= k3[E][B]
So, k2[D][B]= k3[E][B]
[E]=k2[D] / k3
Also,
In step 1, the reaction is in equilibrium, so the equilibrium constant (K) is equal to:
K= [D] / [A][B]
[D]=K[A][B]
Put this value of [D] in the above equation.
We get,
[E]=k2K[A][B]/k3
Assume k2K / k3 = k(constant)
So, [E]=k[A][B]
Now, Rate of formation of C = k[A][E]
Put the value of [E],
Rate of formation of C = k[A][A][B]
Rate of formation of C = k[A]2[B]
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Complete question-
The reaction, 2A + B → C, has the following proposed mechanism: Step 1: A + B ⇌ D (fast equilibrium) Step 2: D + B → E Step 3: E + A → C + B If Step 2 is the rate-determining step, then the rate of formation of C should equal: (a) k[B] (b) k[A][B] (c) k[A][B]² (d) k[A]² [B]² (e) k[A]² [B]
determine the concentration of the sugar standards in g/100 ml of solution. the first two have been done for you. note: 1 sugar packet contains 3.5 g of sugar number of packs of sugar dissolved in 100 ml of solution 0 1 2 3 4 g sugar/100 ml (% w/v) 0 3.5 ? ? ? concentration of solution 2 ( g sugar/100 ml): concentration of solution 3 ( g sugar/100 ml): concentation of solution 4 ( g sugar/100 ml):
By using the information provided in the table and the amount of sugar packets added to 100 ml of solution, we can determine the concentration of sugar standards in g/100 ml.
To determine the concentration of the sugar standards in g/100 ml of solution, we can use the information provided in the table. The sugar standards are solutions with varying amounts of sugar dissolved in 100 ml of solution. The sugar concentration is expressed as g sugar/100 ml or % w/v.
According to the table, the first two sugar standards have been done for us. The first standard has 0 g sugar/100 ml, which means no sugar was added to the solution. The second standard has 3.5 g sugar/100 ml, which means one sugar packet was dissolved in the solution.
To determine the concentration of the third sugar standard, we need to know how many sugar packets were dissolved in 100 ml of solution. Since the second standard has 3.5 g sugar/100 ml, we can assume that one sugar packet was used. Therefore, to make the third standard, we need to add two sugar packets to 100 ml of solution, which gives us a concentration of 7 g sugar/100 ml.
Similarly, to determine the concentration of the fourth sugar standard, we need to add three sugar packets to 100 ml of solution, which gives us a concentration of 10.5 g sugar/100 ml.
Therefore, the concentrations of the sugar standards in g/100 ml of solution are:
- Standard 1: 0 g sugar/100 ml
- Standard 2: 3.5 g sugar/100 ml
- Standard 3: 7 g sugar/100 ml
- Standard 4: 10.5 g sugar/100 ml
In summary, by using the information provided in the table and the amount of sugar packets added to 100 ml of solution, we can determine the concentration of sugar standards in g/100 ml.
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How do the following changes affect the value of the equilibrium constant for a gas-phase exothermic reaction: Drag the appropriate items to their respective bins. Reset Help addition of a catalyst decrease in the temperature removal of a product decrease in the volume removal of a reactant Increase equilibrium constant Decrease equilibrium constant No effect on equilibrium constant
The following changes affect the value of the equilibrium constant for a gas-phase exothermic reaction:
Addition of a catalyst- Increase equilibrium constant
Decrease in the temperature - Decrease equilibrium constant
Removal of a product- No effect on equilibrium constant
Decrease in the volume- Decrease equilibrium constant
Removal of a reactant- Decrease equilibrium constant
Define exothermic process
An exothermic process in thermodynamics is a thermodynamic process or reaction that releases energy from the system to its surroundings, typically in the form of heat but occasionally in the form of light (such as a spark, flame, or flash), electricity (such as from a battery), or sound (such as the explosion produced by the burning of hydrogen).
The relationship between a reaction's products and reactants with regard to a certain unit is expressed by the equilibrium constant, K. The equilibrium constant is temperature-dependent and unaffected by the precise ratios of reactants to products, the presence of a catalyst, or the presence of inert substances. Additionally, it is unaffected by the volumes, pressures, and concentrations of the reactants and products.
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for crude oil, if 150 pounds of co2 is released per million btus of energy, how much co2 is produced by each barrel of crude oil? (use information from the previous problem)
The amount of CO2 released by each barrel of crude oil is 150 pounds of CO2 per million BTUs multiplied by 5.8 million BTUs, which equals 870,000 pounds of CO2.
What is barrel?Barrels are cylindrical containers used for storing and transporting materials such as oil, wine, beer, and other liquids. Barrels are usually made of metal, usually steel, or wood, which is often used for storing alcohol. Barrels come in many different sizes and shapes, with the most common being the 55 gallon drum. Barrels have been used for centuries for storing and transporting goods, and are still used today in many industries. Barrels are often used in wineries and breweries to store and age wine and beer. Barrels are also used to transport oil and other hazardous materials, and even as a form of storage for food and other items.
A barrel of crude oil contains approximately 5.8 million BTUs of energy. Therefore, the amount of CO2 released by each barrel of crude oil is 150 pounds of CO2 per million BTUs multiplied by 5.8 million BTUs, which equals 870,000 pounds of CO2.
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2. if you or one of your laboratory partners misread the procedure and added 100 ml of distilled water to the solid khp rather than 50 ml of water (procedure 1.5), how would this affect the concentration of sodium hydroxide solution that you measured? explain briefly. (10 points)
If 100 ml of distilled water was added to the solid khp instead of 50 ml (as stated in procedure 1.5), the concentration of the sodium hydroxide solution that was measured would be lower than the actual concentration.
The concentration of the sodium hydroxide solution is determined by titrating it with the khp solution. The khp solution is prepared by dissolving solid khp in water, and the concentration of the khp solution is dependent on the amount of water added to the solid khp. If more water than required is added, the resulting khp solution would be more dilute, which would lead to a lower concentration of the sodium hydroxide solution when titrated.
Therefore, adding 100 ml of distilled water instead of 50 ml to the solid khp would dilute the khp solution, resulting in a lower concentration of the sodium hydroxide solution that was measured during titration. It is important to carefully follow the procedures to obtain accurate results in the laboratory.
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If 13. 5mol Zn and 3. 5mol S are mixed together and heated, what mass of ZnS will be produced?
If 13.5 mol Zn and 3.5 mol S are mixed together and heated,341.25 g is the mass of ZnS that will be produced in the reaction.
Stoichiometry is the branch of chemistry that deals with the relation of masses, moles, and other things of substrates and products.
The reaction followed in the question is:
Zn + S → ZnS
1 mole of Zn reacts with 1 mole of S
13.5 moles of Zn to completely react it would thus require 13.5 moles of S which is not mixed. Thus, S is the limiting regent in the given question
3.5 moles of S react with 3.5 moles of Zn completely and produces 3.5 moles of ZnS.
The molar mass of Zn or Mass of 1 mole of ZnS = 97.5
Mass of 3.5 moles of ZnS = 3.5 * 97.5 = 341.25 g
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the molar solubility for compound mx2 equals 4.8 x 10-15. what are the values for [m2 ] and [x-]. what is the value of ksp?
The values for [M2+] and [X-] are 4.8 x 10-15 and 9.6 x 10-15, respectively. The value of Ksp is 4.67 x 10-44.
Since the compound is MX2, it means that for every mole of MX2 that dissolves, there will be 2 moles of X- and one mole of M2+. Therefore, we can use the molar solubility of MX2 to determine the values for [M2+] and [X-].
The molar solubility for MX2 is given as 4.8 x 10-15. This means that for every mole of MX2 that dissolves, there will be 4.8 x 10-15 moles of M2+ and 2 x 4.8 x 10-15 moles of X-. Therefore, [M2+] = 4.8 x 10-15 and [X-] = 9.6 x 10-15.
To determine the value of Ksp, we need to use the equation for the solubility product constant, which is Ksp = [M2+][X-]2. Substituting the values we just calculated, we get Ksp = (4.8 x 10-15)(9.6 x 10-15)2 = 4.67 x 10-44.
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How can we obtain even lower temperatures than with Ice-salt baths?
While ice-salt baths can produce temperatures as low as -18°C (0°F), it is possible to obtain even lower temperatures using other cooling methods. Here are a few examples:
1. Dry ice-acetone bath: A dry ice-acetone bath can produce temperatures as low as -78°C (-109°F). To create this bath, place dry ice pellets in a container and add acetone until the pellets are submerged. The acetone will evaporate quickly, so it is important to add more acetone as needed to maintain the desired temperature.
2. Liquid nitrogen: Liquid nitrogen has a boiling point of -196°C (-321°F) and can be used to achieve very low temperatures. However, it is important to handle liquid nitrogen with extreme caution, as it can be dangerous if mishandled.
3. Cryogenic fluids: Other cryogenic fluids, such as helium, hydrogen, and neon, can be used to achieve very low temperatures. These fluids have boiling points below -200°C (-328°F) and can be used for specialized applications.
4. Ultra-low temperature freezers: Ultra-low temperature freezers are designed to maintain temperatures below -80°C (-112°F) and are commonly used in laboratories to store biological samples. These freezers use a combination of refrigeration and insulation to achieve and maintain these low temperatures.
It is important to note that extreme caution should be exercised when handling and working with extremely low temperatures, as these can pose risks to health and safety.
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Which list of elements is arranged in order of increasing electronegativity.
Francium has the lowest electronegativity while lithium has the highest.
Electronegativity is the ability of an atom to attract electrons towards itself in a covalent bond.
In general, electronegativity increases from left to right across a period and decreases from top to bottom within a group in the periodic table.
Therefore, the list of elements arranged in order of increasing electronegativity goes from francium (which is located at the bottom left of the periodic table) to lithium (which is located at the top right of the periodic table).
Summary: The elements are arranged in order of increasing electronegativity from francium to lithium, with francium having the lowest electronegativity and lithium having the highest electronegativity.
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