The reaction is given by:C2H6(g) + 3O2(g) → 2CO2(g) + 3H2O(g), o) From the balanced chemical equation, we can see that 1 mole of ethane gas reacts with 3 moles of oxygen gas to produce 2 moles of carbon dioxide gas. 3.92 moles of oxygen gas will react with (1/3) × 3.92 = 1.307 moles of ethane gas. This will produce 1.307 × 2 = 2.614 moles of carbon dioxide gas. q) 6.20 moles of ethane gas will react with 6.20 × 3 = 18.60 moles of oxygen gas. This will produce 6.20 × 2 = 12.40 moles of carbon dioxide gas.r) This means that all the oxygen gas will be consumed in the reaction. Therefore, there will be no excess oxygen gas remaining after the reaction. s) 4.203 moles of ethane gas will be in excess after the reaction.
The equation is now balanced as there are equal numbers of each type of atom on both sides of the equation. 6.20 moles of ethane gas will react with 6.20 × 3 = 18.60 moles of oxygen gas. This will produce 6.20 × 2 = 12.40 moles of carbon dioxide gas. From the balanced chemical equation, we can see that 3 moles of oxygen gas react with 1 mole of ethane gas to produce 2 moles of carbon dioxide gas. Therefore From the balanced chemical equation, we can see that 1 mole of ethane gas reacts with 3 moles of oxygen gas to produce 2 moles of carbon dioxide gas.
From the balanced chemical equation, we can see that 1 mole of ethane gas reacts with 3 moles of oxygen gas to produce 2 moles of carbon dioxide gas. Therefore, 5.69 moles of oxygen gas will react with (1/3) × 5.69 = 1.897 moles of ethane gas. This will produce 1.897 × 2 = 3.794 moles of carbon dioxide gas. This means that 6.10 − 1.897 = 4.203 moles of ethane gas will be in excess after the reaction.
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A 0.598 g sample of a green metal carbonate, containing unknown metal M, was heated to give the metal oxide and 0.222 g of CO2 (g) according to the reaction below. MCO3(s) + MO(s) + CO2(g) What is the metal M? Prove your answer with appropriate calculations for the number of moles of metal carbonate MCO3, the molar mass of MCO3, and finally the molar mass of the metal M.
The green metal carbonate is decomposed according to the given equation: MCO₃(s) → MO(s) + CO₂(g)
What is molar mass of MCO₃?
The number of moles of CO₂(g) produced can be used to determine the number of moles of the green metal carbonate (MCO₃) that decomposed.0.222 g of CO₂ (g) represents 1 mol of CO₂ (g), since its molar mass is 44 g/mol.
Therefore,1 mol of MCO₃ will produce 1 mol of CO₂ (g) in the reaction. So, 0.222 g of CO₂ (g) corresponds to 1 mol of MCO₃.
Hence, the number of moles of MCO₃ is:
moles of MCO₃= mass/Molar
mass= 0.598 g/Molar mass of MCO₃
The molar mass of MCO₃ can be calculated using the following:
mass percent of MCO₃ = [(mass of M)/(molar mass of M)] × 100%molar mass of MCO₃ = mass of MCO₃/moles of MCO₃
By substituting the value of moles of MCO₃ and the mass of MCO₃ into the equation above, the molar mass of MCO₃ can be calculated.
molar mass of MCO₃= (mass of MCO₃) / (moles of MCO₃)
Finally, to determine the molar mass of metal M, subtract the molar mass of CO3 from the molar mass of MCO₃.
MCO₃ = 12.011 + 3(15.999) + M(55.845)
= 181.76 + 55.845MM
= 55.845 - 60.01MM
= -4.165
The molar mass of the metal M is 4.165 g/mol.
To summarize, the metal M is sodium (Na) and its molar mass is 4.165 g/mol.
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(a) Compute the specific heat at constant volume of nitrogen (N2) gas, and compare it with the specific heat of liquid water. The molar mass of N2 is 28.0 g/mol. (b) You warm 1.00 kg of water at a constant volume of 1.00 L from 20.0∘C to 30.0∘C in a kettle. For the same amount of heat, how many kilograms of 20.0∘C air would you be able to warm to 30.0∘C? What volume (in liters) would this air occupy at 20.0∘C and a pressure of 1.00 atm? Make the simplifying assumption that air is 100% N2.
Answer:
(A).Liquid water has a specific heat of 4.184J/g.k
(B)Volume = 39,420 LSo, kilograms= 44.7 kg
Explanation:
(a) The specific heat at constant volume of nitrogen (N2) gas is 20.8 J/K.mol. Compare it with the specific heat of liquid water.Liquid water has a specific heat of 4.184 J/g.K
(b) For the same amount of heat, we would be able to warm 44.7 kg of 20.0 °C air to 30.0 °C. Air has a molar mass of 28.97 g/mol. We can use the ideal gas law to determine the volume of 44.7 kg of air at 20.0 °C and 1.00 atm pressure.
We know that 1 mol of a gas at STP (standard temperature and pressure) occupies 22.4 L. Since air is 100% N2, its molar mass is 28.0 g/mol. The ideal gas law is given by PV = nRT where P = pressure, V = volume, n = number of moles, R = the universal gas constant, and T = temperature.
Substituting values, we have:
PV = nRTV = nRT/PAt
20.0 °C and 1.00 atm, T = 293 K and P = 1.00 atm.
Therefore, we have:
n = mass/molar mass = 44.7 kg / (28.97 g/mol) = 1543.8 mol
R = 0.082 L.atm/K.mol
Substituting these values into the equation, we have:
V = (1543.8 mol)(0.082 L.atm/K.mol)(293 K) / (1.00 atm)
V = 39,420 LSo, 44.7 kg of 20.0 °C air occupies a volume of 39,420 L at 20.0 °C and 1.00 atm pressure.
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what is BEFORE and AFTER when you put the baking soda in vinegar?
When you mix baking soda and vinegar, a chemical reaction occurs that produces carbon dioxide gas, water, and a type of salt called sodium acetate.
What happens at the mixing of baking soda in vinegar?Before: Before mixing baking soda and vinegar, they are both in their separate states. Baking soda is a white powder, and vinegar is a clear liquid.
During: When you mix the baking soda and vinegar, the baking soda (sodium bicarbonate) reacts with the vinegar (acetic acid) to produce carbon dioxide gas (CO2), water (H2O), and sodium acetate (NaC2H3O2).
After: After the chemical reaction has taken place, you will see bubbles of carbon dioxide gas being released. The solution will also become cloudy as the sodium acetate precipitates out. The resulting mixture may feel warmer due to the exothermic nature of the reaction (meaning it releases heat).
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The idea of __________ asserts that some evolutionary changes may not even involve intermediate forms.
punctuated equilibrium
The idea of punctuated equilibrium asserts that some evolutionary changes may not even involve intermediate forms.
What is punctuated equilibrium?The idea of punctuated equilibrium is a theory in evolutionary biology that proposes that most evolutionary changes occur relatively rapidly, with long periods of stability punctuated by rare instances of rapid evolutionary change.
The theory was first introduced by Niles Eldredge and Stephen Jay Gould in 1972 as a challenge to the traditional Darwinian theory of gradualism, which posits that evolution proceeds slowly and steadily over long periods of time.
According to punctuated equilibrium, some evolutionary changes may not even involve intermediate forms.
There are several examples of punctuated equilibrium in the fossil record, including the Cambrian explosion, which saw the sudden appearance of most major animal phyla in a relatively short period of time, and the rapid diversification of mammals following the extinction of the dinosaurs at the end of the Cretaceous period.
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What procedures can be performed on trials 2 and 3 so that the rate of dissolving is the same as trial 1? A student wants to determine how different factors affect the rate of dissolving solid in water: Trial Size of Particles Rate_of_Dissolving small 10 sec medium 20 sec large 30 sec 2 3 What procedures can be performed on trials 2 and 3 so that the rate of dissolving is the same as trial 1? A_ the student can increase the pressure B. the student can decrease the pressure C the student can decrease the temperature D. the student can increase the temperature'
The size of particles has an effect on the rate of dissolving, but temperature is also a significant factor that affects how quickly a solid will dissolve in water. Lowering the temperature slows down the movement.
What is the temperature ?Temperature is a measure of the average kinetic energy of the particles in a substance or system. In simpler terms, it is a measure of how hot or cold something is. The temperature of a substance or system is commonly measured in degrees Celsius (°C) or degrees Fahrenheit (°F), and it can be influenced by various factors such as heat transfer, pressure, and the presence of other substances. Temperature is an important physical property that affects many aspects of daily life, including weather patterns, cooking, and the functioning of electronic devices. It is also a critical factor in many scientific processes, such as chemical reactions, phase transitions, and the behavior of materials at the atomic and molecular level.
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) Predict the product for the following reaction. Assume you have an excess of potassium tert-butoxide. (CH3),COK Br
The potassium tert-butoxide is final product of the reaction is (CH3)3COH.
Why potassium tert-butoxide is (CH3)3COH?
The product for the given reaction is (CH3)3COH.
Reaction: (CH3)3CBr + KOtBu →(CH3)3COH + KBr
Potassium tert-butoxide (KOtBu) is a strong base that can deprotonate hydrogen from (CH3)3COH to form (CH3)3CO-.On the other hand,
(CH3)3CBr is a tertiary halide that can undergo an E2 reaction.
E2 is the abbreviation for bimolecular elimination reactions,
which involve the abstraction of a proton from the adjacent carbon and the removal of the halide anion.
The hydrogen that is abstracted by KOtBu can only come from the carbon that is adjacent to the bromine in (CH3)3CBr, according to Saytzeff's rule, because this is the carbon with the least number of hydrogens.
As a result, an alkene intermediate will be formed.
The KBr salt will be the by-product.
The alkene intermediate, however, is not present in the end product because it is a reactive molecule and quickly reacts with any available hydrogen.
The hydrogen is provided by the KOtBu base.
As a result, the final product of the reaction is (CH3)3COH.
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The bent rod is supported at A, B, and C by smooth journal bearings. Determine the magnitude of F2 which will cause the reaction Cy at the bearing C to beequal to zero. The bearings are in proper alignment and exert only force reactions on the rod. Set F1 = 300 lb.
The magnitude of F2 which will cause the reaction Cy at the bearing C to be equal to zero is 600 lb.
Let's assume the direction of F2 is x-axis and direction of Cy is y-axis. Apply the force balance equation along x-axis:
F2 = F1 + F3F3 = F2 - F1
As we know, the force along the y-axis is zero. So, there is no force balance equation along y-axis. Let's apply the moment balance equation about point A (taking clockwise moments as positive):
F1 × 4 + F2 × 6 = F3 × 2F1 × 4 + F2 × 6 = (F2 - F1) × 2
Now substitute F1 = 300 lb in the above equation.
300 × 4 + F2 × 6 = (F2 - 300) × 2300 × 4 + 6F2 = 2F2 - 600F2 = 600 lb
So, the magnitude of F2 which will cause the reaction Cy at the bearing C to be equal to zero is thus calculated to be 600 lb.
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g the half life of 2n-71 is 2.4 minutes. if we started with 50g at the beginning, how many grams would be left after 12 minutes?
After 12 minutes, the amount of 2N-71 remaining would be 25 grams. This is because the half-life of 2N-71 is 2.4 minutes, meaning that after 2.4 minutes, half of the initial amount (50 grams) will remain. After 12 minutes, half of the remaining 25 grams will have decayed, leaving 25 grams.
The initial amount of 2n-71 is 50 g, and the half-life of 2n-71 is 2.4 minutes. We need to determine how many grams of 2n-71 would be left after 12 minutes. During radioactive decay, the amount of a radioactive substance decreases exponentially over time. The formula for determining the amount remaining of a radioactive substance after time t is:A = A₀(1/2)^(t/h)Where, A₀ = the initial amount of the substance,A = the amount of the substance after time t,h = the half-life of the substance, and t = time elapsedPlugging the given values in the formula, we get:A = 50(1/2)^(12/2.4)A = 50(1/2)^5A = 50(1/32)A = 1.5625Therefore, the amount of 2n-71 left after 12 minutes is 1.5625 g.
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If 110 grams of potassium chloride are mixed with 100 grams of water at 20°C, how much will not dissolve?
76 grams of potassium chloride will not dissolve in 100 grams of water at 20°C.
What is the solubility of the potassium chloride?
The solubility of potassium chloride in water at 20°C is approximately 34 grams per 100 grams of water.
So, if 100 grams of water can dissolve 34 grams of potassium chloride, then the maximum amount of potassium chloride that can be dissolved in 100 grams of water at 20°C is 34 grams.
Therefore, the amount of potassium chloride that will not dissolve in 100 grams of water at 20°C is:
110 grams - 34 grams = 76 grams
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in which case the reaction in the gas mixture will proceed nonspontaneously in the forward direction?
The reaction in the gas mixture will proceed non-spontaneously in the forward direction when the standard free energy change (∆G°) is positive or zero.
What is spontaneous reaction?In chemical reactions, the term spontaneity refers to whether the reaction proceeds on its own or requires an input of energy to occur. When ∆G° is negative, a reaction is said to be spontaneous in the forward direction, meaning it occurs naturally without any external input of energy. When ∆G° is positive or zero, on the other hand, the reaction proceeds nonspontaneously in the forward direction.
In other words, the reaction requires energy input to proceed. The free energy change (∆G) of a reaction is related to its standard free energy change (∆G°) through the equation:
∆G = ∆G° + RT ln(Q)
where, R is the gas constant, T is the temperature in Kelvin, and Q is the reaction quotient.
If Q = 1, the reaction is at equilibrium and ∆G = ∆G°. If Q < 1, the reaction proceeds spontaneously in the forward direction (∆G < 0), and if Q > 1, the reaction proceeds spontaneously in the reverse direction (∆G > 0).
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20pcm3 og a gas has a pressure of 510mmhg what will be the volume of the pressure is increased to 780mmhg, assuming there is no change in temperature
The volume of the gas will decrease from 20 cm³ to 13.08 cm³.
What is Boyle's law?Boyle's law is a gas law that states that the product of the pressure and volume of a gas is constant at constant temperature.
What is the significance of assuming no change in temperature in this problem?Assuming no change in temperature is significant because it allows us to apply Boyle's law to solve the problem. If the temperature were to change, we would need to use a different gas law, such as Charles's law or the combined gas law, to account for the change in temperature.
We can use Boyle's law to solve this problem, which states that the product of the pressure and volume of a gas is constant at constant temperature. Mathematically, we can express this as P₁V₁ = P₂V₂, where P₁ and V₁ are the initial pressure and volume, respectively, and P₂ and V₂ are the final pressure and volume, respectively.
Using this equation, we can solve for V₂:
P₁V₁ = P₂V₂
V₂ = (P₁V₁)/P₂
Substituting the given values, we get:
V₂ = (510 mmHg x 20 cm³) / 780 mmHg
V₂ = 13.08 cm³
Therefore, if the pressure is increased from 510 mmHg to 780 mmHg at constant temperature, the volume of the gas will decrease from 20 cm³ to 13.08 cm³.
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knowing that solid sodium acetate is soluble and that acetic acid dissociates into hydrogen ions and acetate ions, why will sodium acetate influence the equilibrium of acetic acid dissociation?
As sodium acetate is added to the solution, the sodium ions (Na+) will replace the hydrogen ions (H+) in the equation. This causes a shift in the equilibrium as the number of hydrogen ions (H+) decreases, while the number of acetate ions (CH3COO-) increases.
Sodium acetate is an ionic compound composed of Na⁺ and CH₃COO⁻ ions.
It dissociates in water to create these ions, which are then available to affect the dissociation of acetic acid.
The equilibrium of acetic acid dissociation is influenced by the addition of sodium acetate.
Acid dissociation equilibria are influenced by salt addition (usually sodium salts), particularly when the acid is weak.
This is due to the fact that the anion of the salt reacts with hydrogen ions from the acid's dissociation.
This decreases the concentration of hydrogen ions in the solution, causing the reaction to shift towards more dissociation.
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Can any help with this chemistry question?? I have an exam tomorrow
Answer:
Explanation:
To calculate the standard enthalpy of formation for TICL(I), we need to use the given thermochemical equations and Hess's law. The equation for the formation of TICL(I) is:
C(s) + TiO₂ (s) + 2Cl(g) → TICL(I) + CO(g)
Using the given equations for the formation of CO(g) and TiO2(s), we can manipulate them to get the necessary reactants for the formation of TICL(I):
Ti(s) + O₂(g) → TiO₂(s) (reverse the equation)
C(s) + 1/2O₂(g) → CO(g) (multiply by 2)
Adding these two equations, we get:
Ti(s) + 2C(s) + O₂(g) → TiO₂(s) + 2CO(g)
This equation is the reverse of the equation given for the formation of TICL(I), so we need to flip its sign to get the correct value for the enthalpy change:
TICL(I) → C(s) + TiO₂ (s) + 2Cl(g) + CO(g)
ΔH° = -(-394 kJ/mol + 286 kJ/mol + 0 + (-221 kJ/mol))
ΔH° = -(-329 kJ/mol)
ΔH° = +329 kJ/mol
Therefore, the correct value for the standard enthalpy of formation for TICL(I) is +329 kJ/mol, which is option D.
A 250.0-mL flask contains 0.2500 g of a volatile oxide of nitrogen. The pressure in the flask is 760.0 mmHg at 17.00°C.
As the molar mass calculated is 24.90 g/mol, hence the gas is most likely to be NO.
What is molar mass?The ratio between mass and the amount of substance of any sample is called molar mass.
To determine whether the gas is NO, NO2, or N2O5, we need to calculate the molar mass of the gas and compare it to the molar masses of these three possible gases.
n = PV/RT
Given, P = 760.0 mmHg, V = 250.0 mL = 0.2500 L, T = 17.00°C + 273.15 = 290.15 K, and R = 0.08206 L atm/mol K.
So, n = (760.0 mmHg)(0.2500 L)/(0.08206 L atm/mol K)(290.15 K) = 0.01003 mol
M = m/n
Given m = 0.2500 g.
M = 0.2500 g/0.01003 mol = 24.90 g/mol
Comparing this molar mass to the molar masses of NO (30.01 g/mol), NO2 (46.01 g/mol), and N2O5 (108.01 g/mol), we see that the gas is most likely NO.
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Note: The question given on the portal is incomplete. Here is the complete question.
Question: A 250.0-mL flask contains 0.2500 g of a volatile oxide of nitrogen. The pressure in the flask is 760.0 mmHg at 17.00°C. Is the gas NO, NO2, or N2O5?
Does electronegativity increase as atomic radius increases?
Actually, when atomic radius grows, electronegativity often decreases.
The capacity of an atom to draw electrons into a chemical connection is known as electronegativity. The separation between the nucleus and the farthest electrons grows with increasing atomic radius. As a result, the nucleus's attraction to the electrons is reduced, making it more challenging for the atom to draw electrons to itself. The electronegativity values of bigger atoms are therefore often lower than those of smaller ones. Despite this general tendency, there are certain outliers since electronegativity also depends on other elements including nuclear charge and electron configuration. For instance, the rising nuclear charge in halogens causes the electronegativity to rise as the atomic radius falls.
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what is the function of the electron transport chain in cellular respiration ?
The electron transport chain (ETC) is an essential part of cellular respiration, which is a series of molecules that transfer electrons from one molecule to another used by cells to convert nutrients into energy.
This starts with the oxidation of molecules such as glucose, which releases electrons that are then transferred to a series of electron carriers in the ETC. The electron carriers are molecules that hold the electrons and can transfer them to other molecules which is known as redox reactions. As the electrons move through the ETC, they release energy which is used to form a proton gradient that is then used to drive the synthesis of ATP, the energy currency of the cell. The ETC is an essential part of cellular respiration as it is the process responsible for generating the energy necessary for cells to function.
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students conducting research observe the rate of an enzyme-catalyzed reaction under various conditions with a fixed amount of enzyme in each sample. when will increasing the substrate concentration likely result in the greatest increase in the reaction rate?
Increasing the substrate concentration will likely result in the greatest increase in the reaction rate when the substrate concentration is lower than the concentration of the enzyme.
The concentration of the substrate affects the rate of reaction since there is a direct correlation between the number of enzyme-substrate complexes that are formed and the rate of reaction.
When there is more substrate, more enzyme-substrate complexes can form, resulting in an increase in the rate of reaction.
So, it is highly likely that when the substrate concentration is low, increasing the substrate concentration will result in the greatest increase in the reaction rate.
However, when the substrate concentration is already high, the reaction rate may not continue to increase as a result of increasing the substrate concentration.
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which scientist conducted the gold foil experiment and discovered that the atom has a positively charged nucleus?
Ernest Rutherford, a New Zealand physicist, conducted the gold foil experiment and discovered that the atom has a positively charged nucleus.
In 1911, he conducted an experiment in which he fired alpha particles at a thin sheet of gold foil. The majority of the particles went straight through the gold foil, but a small percentage of the particles bounced back. He discovered that the bouncing back was caused by a small, positively charged nucleus at the center of the atom. Rutherford's experiment was crucial to our understanding of the structure of the atom. Prior to his experiment, the prevailing model of the atom was that it was a solid, indivisible sphere.
However, Rutherford's experiment showed that the atom was mostly empty space, with a positively charged nucleus at its center. This discovery paved the way for future research into atomic structure and helped to lay the foundation for the development of nuclear physics.
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Practice Problem 11.15b Propose an efficient synthesis for the following transformation. y The transformation above can be performed with some reagent or combination of the reagents listed below. Give the necessary reagent(s) in the correct order, as a string of letters (without spaces or punctuation, such as "EBF"). If there is more than one correct solution, provide just one answer. A B с Br2 HBr, ROOR cat. OsO4, NMO D HBr E H2, Pd F H2SO4, H2O, HgSO4 I 1) O3; 2) DMS H 1) xs NaNH2, 2) H20 1) R2BH; 2) H2O2, NaOH Practice Problem 11.18d Propose an efficient synthesis for the following transformation. The transformation above can be performed with some reagent or combination of the reagents listed below. Give the necessary reagent(s) in the correct order, as a string of letters (without spaces or punctuation, such as "EBF"). If there is more than one correct solution, provide just one answer. B с HBr, ROOR 1) O3; 2) DMS Br2, hv F D H2S04, H20, HgSO4 E H2, Lindlar's cat. HC=CNa I G HBr H NaOme 1) R2BH; 2) H2O2, NaOH Practice Problem 11.21a X Incorrect. Propose an efficient synthesis for the following transformation. The transformation above can be performed with some reagent or combination of the reagents listed below. Give the necessary reagent(s) in the correct order, as a string of letters (without spaces or punctuation, such as "EBF"). If there is more than one correct solution, provide just one answer. A B HBr, ROOR HC=CNa 1) R2BH; 2) H2O2, NaOH D HBr E CH3CH2Br H2S04, H2O, HgSO4 G NaOH н conc. H2SO4, heat I 1) LiAlH4; 2) H307 Practice Problem 11.21b Propose an efficient synthesis for the following transformation. :- The transformation above can be performed with some reagent or combination of the reag spaces or punctuation, such as "EBF"). If there is more than one correct solution, provide j B с t-BuOK 1) O3; 2) DMS Br2, hv D H2SO4, H20, HgSO4 E H2, Lindlar's cat. F HC=CNa H HBr, ROOR HBr I 1) R2BH; 2) H202, NaOH Practice Problem 11.21c Propose an efficient synthesis for the following transformation. SOH The transformation above can be performed with some reagent or combination of the reagents listed below. Give the necessary reagent(s) in the correct order, as a string of letters (without spaces or punctuation, such as "EBF"). If there is more than one correct solution, provide just one answer. B с HBr, ROOR HC=CNa 1) R2BH; 2) H202, NaOH F D HBr E CH3CH2Br H2SO4, H20, HgSO4 I G NaOH H conc. H2S04, heat 1) 03; 2) H20 Propose an efficient synthesis for the following transformation. - li The transformation above can be performed with some reagent or combination of the reagents listed below. Give the necessary reagent(s) in the correct order, as a string of letters (without spaces or punctuation, such as "EBF"). If there is more than one correct solution, provide just one answer. А B HBr conc. H2S04, heat HC=CNa D HBY, ROOR E Hy, Lindlar's cat. 1) O3; 2) DMS G Brą, hv H dilute H2SO4 I H2, Pt Practice Problem 11.25a Propose an efficient synthesis for the following transformation: % Br The transformation above can be performed with some combination of the reagents listed below. Give the necessary reagents in the correct order for each transformation, as a string of letters (without spaces or punctuation, such as "EBF"). If there is more than one correct solution, provide just one answer. А t-BuOK B OsO4, NMO c 1) O3; 2) DMS D H2, Pt E H2, Lindlar's cat F xs HBr I G 1) BH 3.THF; 2) H202, NaOH H MeONa Br2, hv Reagent(s);
The reagent(s) for the given transformation is "A B C D E F G H I", which is t-BuOK, OsO4, NMO, O3, DMS, H2, Pt, H2, Lindlar's cat., xs HBr, BH3.THF, H202, NaOH, MeONa, Br2, hv.
What is transformation?Transformation is the process of changing something into a different form or state. It can involve altering the physical characteristics, behaviors, attitudes, or perceptions of an entity. Transformation is a process that occurs in a variety of contexts including business, education, technology, and personal development.
A) t-BuOK - For the given transformation, the initial step is to add an alkoxide, here t-BuOK, to the starting material.
B) OsO4, NMO - After the addition of the alkoxide, the resulting intermediate has to be oxidized by OsO4 and NMO reagents.
C) 1) O3; 2) DMS - The intermediate then has to be ozonolyzed using ozone and dimethyl sulfide (DMS).
D) H2, Pt - The ozonolysis will result in a mixture of aldehyde and ketone. The aldehyde has to be hydrogenated using H2 and Pt.
E) H2, Lindlar's cat. - The ketone has to be hydrogenated using H2 and Lindlar's catalyst.
F) xs HBr - The product of the hydrogenation has to be converted to a tertiary alcohol by an elimination reaction with HBr.
G) 1) BH3.THF; 2) H202, NaOH - The tertiary alcohol has to be oxidized to a tertiary ketone using BH3.THF, H202 and NaOH.
H) MeONa - The tertiary ketone has to be methylated using MeONa.
I) Br2, hv - The product of the methylation has to be brominated using Br2 and heat.
Therefore, the reagent(s) for the given transformation is "A B C D E F G H I", which is t-BuOK, OsO4, NMO, O3, DMS, H2, Pt, H2, Lindlar's cat., xs HBr, BH3.THF, H202, NaOH, MeONa, Br2, hv.
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57.0 ml of 0.90 m solution of hcl was diluted by water. the ph of this diluted solution is 0.90. how much water was added to the original solution insert your answer rounded to 3 significant figure.
57.0 ml of 0.90 m solution of Hcl was diluted by water. the pH of this diluted solution is 0.90. 50.5 mL water was added to the original solution .
There are a few steps to solve this.
Here they are: First, calculate the initial concentration of HCl in the solution.
Molarity = moles of solute / volume of solution in liters.
The volume of the solution is 57.0 mL, which is 0.0570 L.
The molarity is 0.90 M. So,0.90 M = moles of HCl / 0.0570 L
Now we can solve for moles of HCl:
moles of HCl = 0.90 M x 0.0570 L = 0.0513 mol
Next, we need to use the pH to find the concentration of H+ ions.
pH = -log[H+]0.90 = -log[H+]
Solving for [H+],
we get:[H+] = 7.94 x 10^-1 M
Finally, we can use the concentration of H+ ions to find the new volume of the solution after dilution using the equation:[H+] x V = moles of HCl7.94 x 10^-1 M x V = 0.0513 mol
Solving for V,
we get: V = 6.47 x 10^-2 L
To find how much water was added,
we subtract the final volume from the initial volume:
Volume of water added = 57.0 mL - 6.47 mL = 50.5 mL (rounded to 3 significant figures)
Therefore, 50.5 mL of water was added to the original solution.
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If a substance is removed from a reaction in equilibrium, the equilibrium will shift toward
the side where the concentration was ________.
If a substance is removed from a reaction in equilibrium, the equilibrium will shift towards the side where the concentration was higher.
What is substance?A substance is a category of stuff with certain physical and chemical qualities as well as a set or definite composition. A substance might be an element or a compound. A substance made up of atoms with the same atomic number, or the same number of protons in their atomic nuclei, is referred to as an element.
This is known as the Le Chatelier's principle, which holds that a system in equilibrium would react to any stress by trying to counteract the stress and return to equilibrium. When a drug is removed from the reaction mixture, the system is put under stress due to the substance's lower concentration. The balance will change in a way that increases the production of the substance that was eliminated in order to counteract this drop.
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Which of the following molecules would have the highest boiling point?
a) hexane
b) octane
c) 2-propylpentane
d) 2-methylhexane
The molecule which would have the highest boiling point is 2-methylhexane. Thus, the correct option will be D.
What is boiling point?The boiling point is the temperature at which the vapor pressure of a liquid is equal to the external pressure. The boiling point of a liquid is a measure of its vapor pressure. The higher the boiling point, the higher the vapor pressure of the liquid, and the more heat is required to vaporize it.
The boiling point of a substance is affected by the strength and types of intermolecular forces. The stronger the intermolecular forces, the higher the boiling point. 2-methylhexane has highest boiling point because it has the highest number of carbons and branches, which contribute to its strong intermolecular forces that lead to a higher boiling point.
Therefore, the correct option is D.
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Predict the product(s) obtained when benzoquinone is treated with excess butadiene:
When benzoquinone is treated with excess butadiene, the products obtained are 2,5-dimethylcyclohexadiene-1,4-dione and cyclohexene.
What is benzoquinone?Benzoquinone is also known as 1,4-benzoquinone or cyclohexa-2,5-diene-1,4-dione, is a colorless organic compound. The presence of two carbonyl groups in its structure provides it its characteristic quinone chemistry.
Butadiene, also known as 1,3-butadiene, is a conjugated diene. The reaction between benzoquinone and butadiene is called a Diels-Alder reaction.
The Diels-Alder reaction is a conjugate addition reaction that joins a diene and a dienophile to create a new six-membered ring. The most important characteristic of the Diels-Alder reaction is its stereospecificity. This reaction occurs between a cyclic diene and an alkene or alkyne dienophile.
The products obtained when benzoquinone is treated with excess butadiene are:2,5-dimethylcyclohexadiene-1,4-dioneCyclohexeneThe reaction proceeds with the dienophile (benzoquinone) being attacked by the diene (butadiene) in the Diels-Alder reaction to produce a cyclic adduct. The product is 2,5-dimethylcyclohexadiene-1,4-dione. Cyclohexene is formed as a byproduct of the reaction.
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The phenomenon in which electrons that are closer to the nucleus slightly repel those that are farther out, is known as: select the correct answer below: - shielding - deflecting - building up - converging
The phenomenon in which electrons that are closer to the nucleus slightly repel those that are farther out is known as Shielding.
Electrons in an atom are negatively charged particles, and they are attracted to the positively charged nucleus. However, the outer electrons of an atom are also repelled by the inner electrons that are closer to the nucleus. This repulsion is due to the negative charges of the electrons, and it partially cancels out the attraction of the nucleus for the outer electrons.
Shielding is the phenomenon in which electrons that are closer to the nucleus slightly repel those that are farther out. This makes it possible for electrons in higher energy levels to be farther from the nucleus, so they are less strongly attracted and easier to remove.
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The Chernobyl nuclear disaster led to the release of massive radiation, specifically iodine-131 and cesium-137, which has been connected to a variety of environmental problems in the 30 years following the disaster. A meltdown in which of the following structures at a nuclear power plant, such as Chernobyl, would most likely lead to the accidental release of radiation?
Cooling tower
Turbine
Generator
Reactor core
Reactor core
Answer:
The meltdown in which of the following structures at a nuclear power plant, such as Chernobyl, would most likely lead to the accidental release of radiation is reactor core. Answer:e
Explanation:
What is the Chernobyl nuclear disaster?
The Chernobyl nuclear disaster was a catastrophic nuclear accident that occurred on April 26, 1986, at the No. 4 reactor in the Chernobyl Nuclear Power Plant, located in the northern Ukrainian Soviet Socialist Republic.
The explosion and subsequent fires resulted in the release of significant amounts of radioactive material into the atmosphere, as well as widespread contamination of the environment.
What was the cause of the Chernobyl nuclear disaster?
During a reactor systems test, an unforeseen combination of factors caused the core of one of Chernobyl's reactors to overheat and explode, releasing radioactive material into the surrounding area. The resulting steam explosion and fires killed two plant workers at the time of the accident and injured hundreds of others.
The explosion also resulted in the deaths of dozens of firefighters and other emergency workers in the aftermath of the disaster.
What was the impact of the Chernobyl nuclear disaster on the environment?
The Chernobyl nuclear disaster resulted in the release of significant quantities of radioactive material, including iodine-131 and cesium-137, which have been linked to a variety of environmental issues. These substances are still present in the environment, and their long-term effects on humans and wildlife are still being investigated.
However, the disaster has had a significant impact on the environment in the years following the accident, including the contamination of water and soil, the displacement of wildlife, and the potential long-term health effects on local populations.
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Give the complete ionic equation for the reaction (if any) that occurs when aqueous solutions of lithium sulfide and copper (II) nitrate are mixed.a. 2 Li+(aq) + S2-(aq) + Cu2+(aq) + 2 NO3-(aq) → CuS(s) + 2 Li+(aq) + 2 NO3-(aq)B) Li+(aq) + SO42-(aq) + Cu+(aq) + NO3-(aq) → CuS(s) + Li+(aq) + NO3-(aq)C) Li+(aq) + S-(aq) + Cu+(aq) + NO3-(aq) → CuS(s) + LiNO3(aq)d) 2 Li+(aq) + S2-(aq) + Cu2+(aq) + 2 NO3-(aq) → Cu2+(aq) + S2-(aq) + 2 LiNO3(s)E) No reaction
The complete ionic equation for the reaction that occurs when aqueous solutions of lithium sulfide and copper (II) nitrate are mixed is as follows: 2 Li+(aq) + S2-(aq) + Cu2+(aq) + 2 NO3-(aq) → CuS(s) + 2 Li+(aq) + 2 NO3-(aq)
It is important to write the complete ionic equation when aqueous solutions of lithium sulfide and copper (II) nitrate are mixed. The reaction of lithium sulfide with copper (II) nitrate is a double displacement reaction. Lithium sulfide reacts with copper (II) nitrate to form copper sulfide and lithium nitrate.
The balanced chemical equation for the reaction is given as follows:Li2S(aq) + Cu(NO3)2(aq) → CuS(s) + 2 LiNO3(aq)The complete ionic equation can be written by representing all the ions in the aqueous solutions as dissociated ions.
Thus, the complete ionic equation for the reaction that occurs when aqueous solutions of lithium sulfide and copper (II) nitrate are mixed is as follows:2 Li+(aq) + S2-(aq) + Cu2+(aq) + 2 NO3-(aq) → CuS(s) + 2 Li+(aq) + 2 NO3-(aq.
)In the above equation, the lithium and nitrate ions do not take part in the reaction and are present in the same form in the reactant and product side. Hence, they are called spectator ions.
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vinegar is a solution of acetic acid, hc2h3o2, dissolved in water. a 5.54-g sample of vinegar was neutralized by 30.10 ml of 0.100 m naoh. what is the percent by weight of acetic acid in the vinegar?
The percent by weight of acetic acid in the vinegar is 3.27% for the given 5.54-g sample of vinegar was neutralized by 30.10 ml of 0.100 m NaOH.
What is the percent of weight of acetic acid?Vinegar is a solution of acetic acid, HC₂H₃O₂, dissolved in water. A 5.54-g sample of vinegar was neutralized by 30.10 mL of 0.100 M NaOH. Find the percentage of acetic acid by weight in vinegar. As per the question, vinegar is a solution of acetic acid, HC₂H₃O₂, dissolved in water.
A 5.54-g sample of vinegar was neutralized by 30.10 mL of 0.100 M NaOH.
Since NaOH and HC₂H₃O₂ reacts in a 1:1 molar ratio, moles of NaOH used = moles of HC₂H₃O₂ in vinegar
So,0.100 mol/L solution of NaOH = 0.100 mol/L solution of HC₂H₃O₂ in vinegar (as they react in 1:1 ratio).
Also, Volume of NaOH = 30.10 mL = 30.10/1000 = 0.0301L
Thus, Amount of HC₂H₃O₂ in vinegar = 0.100 mol/L × 0.0301 L = 0.00301 mol.
Molar mass of HC₂H₃O₂ = 60.05 g/mol.
Weight of HC₂H₃O₂ in 5.54 g vinegar = 0.00301 mol × 60.05 g/mol = 0.18086 g.
Percentage by weight of acetic acid in the vinegar = 0.18086 / 5.54 × 100 = 3.27%.
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What is the hybridization of the carbon that is attached to the oxygens in CH;COOH (acetic acid)? 4) Which molecule has the greatest dipole moment? A. CCl B. CH,Clz C. CFa D. BrzCClz CH,Fz
The carbon that is attached to the oxygens in CH₃COOH (acetic acid) is sp2 hybridized. This is because it is attached to three atoms (one oxygen and two hydrogens) and has a trigonal planar geometry.
The molecule with the greatest dipole moment is CH₂Cl₂(dichloromethane) because it has a tetrahedral geometry and the two C-Cl bonds are oriented in opposite directions, creating a net dipole moment. The other molecules (CCl₄, CF₄, and Br₂CCl₂) are all symmetric and have zero dipole moment.
A chemical concept known as hybridization describes the bonding and geometry of molecules. It entails combining atomic orbitals to create hybrid orbitals, which can more accurately capture the bonding in a molecule. The number of hybrid orbitals formed is equal to the number of atomic orbitals combined. Atomic orbitals with similar energy levels are merged to create the hybrid orbitals. An atom's geometry, bond angles, and polarity can all be impacted by hybridization, which can then have an impact on the molecule's reactivity and physical characteristics. Foreseeing the forms and characteristics of molecules as well as explaining their chemical behaviour requires an understanding of atom hybridization.
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2. write the mechanism for the nitration of toluene showing explicitly why ortho and para products are favored over meta.
Nitration of toluene takes place in four steps which include formation of nitronium ion, formation of electrophile, deprotonation, and elimination of HNO₃.
What is the mechanism of nitration?The mechanism for the nitration of toluene showing explicitly why ortho and para products are favored over meta is as follows:
Step 1: Formation of the Nitronium Ion
NO₂⁺ is formed by nitric acid's reaction with sulfuric acid.
2HNO₃ + H₂SO₄ → 2 NO₂⁺ + 2HSO₄⁻ + H₃O⁺
The following is the formation of a nitronium ion:
Step 2: Formation of the electrophile
A nitronium ion is created, which is the electrophile. Because of the strong electron-releasing effect of the methyl group, the nitronium ion is drawn to the ring.
Due to the stability of the resulting carbocation, ortho and para products are favored over meta. In this, the bond on the methyl carbon is broken and the electrophile is added to it:
Step 3: Deprotonation: After the nitration reaction, an intermediate is formed in which a proton has been extracted from the methyl group. The formation of this intermediate indicates that the electrophile has been added to the ring's ortho or para positions.
Step 4: Elimination of HNO₃: An acid base reaction occurs to complete the nitration process, yielding nitrotoluene, HNO₃, and sulfuric acid. Here the intermediate is used to illustrate that the reaction has occurred with the ortho product. This reaction may also result in a para product in a similar manner.
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How much potassium chloride will dissolve in 50 grams of water at 50°C?
The amount of potassium chloride that will dissolve in 50 grams of water at 50°C depends on the solubility of the salt at that temperature. The solubility of potassium chloride in water at 50°C is approximately 42 grams per 100 grams of water. Therefore, about 21 grams of potassium chloride will dissolve in 50 grams of water at 50°C.