Calculate the grams of O2 required for the combustion of 25.9 g of ethylcyclopentane

Answers

Answer 1
To calculate the grams of O2 required for the combustion of 25.9 g of ethylcyclopentane, we need to first write the balanced chemical equation for the combustion of ethylcyclopentane:

C11H20 + 15O2 → 11CO2 + 10H2O

From the balanced equation, we can see that 15 moles of O2 are required to react with 1 mole of C11H20.

To calculate the grams of O2 required, we can use the following steps:

1. Calculate the number of moles of C11H20:

moles of C11H20 = mass of C11H20 / molar mass of C11H20
moles of C11H20 = 25.9 g / 140.28 g/mol
moles of C11H20 = 0.1847 mol

2. Calculate the number of moles of O2 required:

moles of O2 = 15 moles of O2 / 1 mole of C11H20 * 0.1847 moles of C11H20
moles of O2 = 2.7705 moles

3. Calculate the mass of O2 required:

mass of O2 = moles of O2 * molar mass of O2
mass of O2 = 2.7705 mol * 32.00 g/mol
mass of O2 = 88.97 g

Therefore, the grams of O2 required for the combustion of 25.9 g of ethylcyclopentane is 88.97 g.

Related Questions

Calculate the number of moles of each substance.
a. 5.45 x 1026 molecules of methane, CHA
b. 3.22 x 1023 atoms of xenon, Xe
c. 9.6 x 1023 formula units of sodium chloride, NaCl

Answers

ANSWERS:

A: there are 905.1 moles of methane.
B: there are 0.535 moles of xenon.
C: there are 1.594 moles of sodium chloride.


Explanation :

a. To calculate the number of moles of methane, CH4, we need to use Avogadro's number, which is 6.022 x 10^23 molecules per mole.

So, 5.45 x 10^26 molecules of methane would be:

5.45 x 10^26 molecules / 6.022 x 10^23 molecules/mol = 905.1 mol

Therefore, there are 905.1 moles of methane.



b. To calculate the number of moles of xenon, Xe, we need to use Avogadro's number again, but this time for atoms. There are 6.022 x 10^23 atoms per mole.

So, 3.22 x 10^23 atoms of xenon would be:

3.22 x 10^23 atoms / 6.022 x 10^23 atoms/mol = 0.535 mol

Therefore, there are 0.535 moles of xenon.



c. To calculate the number of moles of sodium chloride, NaCl, we again need to use Avogadro's number, but this time for formula units. There are 6.022 x 10^23 formula units per mole.

So, 9.6 x 10^23 formula units of sodium chloride would be:

9.6 x 10^23 formula units / 6.022 x 10^23 formula units/mol = 1.594 mol

Therefore, there are 1.594 moles of sodium chloride.


HOPE THIS HELPS!!!

23. The acid catalyzed decomposition of hydrogen peroxide is a first order reaction with the rate constant given below. For an experiment in which the starting concentration of hydrogen peroxide is 0.110 M, what is the concentration of H₂O2 450 minutes after the
reaction begins?

2H2O2 → 2H₂O +0₂ k-1.33 x 10-4 min-1

a) 0.0961 M
b) 0.104 M
c) 0.117 M
d) 0.00658 M
e) 0.0156 M

Answers

An experiment in which the starting concentration of hydrogen peroxide , the concentration of H₂O₂ 450 minutes after the reaction started is 0.104 M.

Option B is correct.

What is a first-order reaction?

A chemical reaction of the first order in which the rate of the reaction is solely determined by the concentration of a single reactant raised to the first power is known as a first-order reaction. To put it another way, the concentration of the reactant has a direct bearing on the rate of the reaction.

The rate law for a first-order reaction can be obtained by:

                          rate = k[H₂O₂]

The rate constant for the acid-catalyzed breakdown of hydrogen peroxide, k = 1.33 x 104 min1, is given to us. The integrated rate law for a first-order reaction must be utilized in order to ascertain the H₂O₂ concentration after 450 minutes:

                           ln([H₂O₂]t/[H₂O₂]0) = -kt

where [H₂O₂]t is the concentration of H₂O₂ at time t, [H₂O₂]0 is the initial concentration of H₂O₂, k is the rate constant, and t is time. Solving for [H₂O₂]t, we get:

                                   [H₂O₂]t = [H₂O₂]0

Substituting the given values, we get:

                                      [H₂O₂]450 = 0.110 M e⁻¹.³³ˣ¹⁰⁻⁴ˣ⁴⁵⁰

[H₂O₂]450 = 0.104 M

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Which of the following is NOT an impact of using gasoline mixed with ethanol instead of pure petroleum-based gasoline?



Multiple choice question.
cross out

A)
decreases cost of fuel

cross out

B)
reduces dependency on petroleum

cross out

C)
increases smog

cross out

D)
decreases acid rain

Answers

The impact that is NOT associated with using gasoline mixed with ethanol instead of pure petroleum-based gasoline is D) decreases acid rain.

Explain about gasoline ?

Gasoline is a flammable liquid fuel that is widely used to power internal combustion engines in automobiles, boats, small engines, and other machinery. It is a complex mixture of hydrocarbons, which are molecules composed of carbon and hydrogen atoms.

Gasoline is derived from crude oil through a refining process that separates it from other petroleum products. The refining process can also vary the composition of gasoline, creating different grades and blends that are suited to different purposes.

Gasoline is highly combustible and must be handled with care.

The impact that is NOT associated with using gasoline mixed with ethanol instead of pure petroleum-based gasoline is D) decreases acid rain.

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The volume of a gas is 325 mL when the temperature is 57°C. If the temperature is reduced to 10°C without changing the pressure, what is the new volume of the gas? Combined gas law 2 P₁V₁ T₁ P₂V2 T2 = 278.7 mL​

Answers

Answer:

The new volume of the gas is 278.7 mL.

Explanation:

To solve this problem, we can use the combined gas law:

P₁V₁/T₁ = P₂V₂/T₂

where P is the pressure, V is the volume, and T is the temperature.

We can start by plugging in the given values for the initial state of the gas:

P₁ is not given, so we can assume it remains constant.

V₁ = 325 mL

T₁ = 57°C + 273.15 = 330.15 K

Now we can solve for P₂V₂/T₂:

P₂V₂/T₂ = P₁V₁/T₁

We want to solve for V₂, so we can rearrange the equation:

V₂ = (P₁V₁/T₁) * T₂/P₂

We are given that the pressure remains constant, so P₁ = P₂.

Now we can plug in the remaining values:

V₂ = (P₁V₁/T₁) * T₂/P₂

V₂ = (P₁ * 325 mL / 330.15 K) * (10°C + 273.15) / P₁

V₂ = 278.7 mL

Therefore, the new volume of the gas is 278.7 mL.

Hope I helped you!

18. Why do metal cooking utensils have plastic handles to protect your hands from
heat?
A. Metal is an insulator, and the heat doesn't pass through it.
B. Metal contains more air pockets than plastic.
C. Metal isn't a good conductor, but plastic is.
D. Metal easily conducts heat, but plastic doesn't.

Answers

Answer: D. Metal easily conducts heat, but plastic doesn't.

Explanation: because plastic is a bad conductor of heat so the metallic pans are provided with handles made up of plastic to avoid hands getting burned due to the heat of the pan.

The answer is D because it’s self explanatory metal easily conducts heat and plastic is a good insulator

Which one is it
london dispersion forces (LDF)
dipole-dipole
hydrogen bonding

Answers

Hydrogen bonds are the sort of intermolecular force present in the sample molecule.

Hydrogen bonds

A hydrogen atom develops a strong dipole-dipole contact with another electronegative atom in a neighboring molecule when it is covalently bound to a strongly electronegative element (such as nitrogen, oxygen, or fluorine). This is known as hydrogen bonding.

The electronegative oxygen atom in the given molecule, which can also establish a hydrogen bond with another electronegative atom (such as another oxygen or nitrogen atom) in an adjacent molecule, is bound to the hydrogen atoms attached to the carbon atom in the middle.

London dispersion forceAll molecules, even nonpolar ones, experience London dispersion forces (LDF), a sort of intermolecular interaction. Polar molecules engage in dipole-dipole interactions, whereby the positive end of one molecule attracts the negative end of another. Although this molecule is capable of LDF and dipole-dipole interactions, hydrogen bonding is the most powerful intermolecular force because of how polar the oxygen-hydrogen bond is.

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EDTA^-4 is used as a complexing agent. Solutions of EDTA^-4 are used to treat heavy metal poisoning by removing the heavy metal in the form of a soluble complex ion. The complex ion virtually eliminates the heavy metal ions from reacting with biochemical systems. The reaction of EDTA^-4 with Hg^2+ is: Hg^2+(aq) + EDTA^-4 (aq) = HgEDTA^-2 (aq), Kf= 6.3*10^21
Consider a solution that is 0.025 M Hg(NO3)2 buffered to pH=7.50 and containing 0.10 M NaEDTA. Does Hg(OH)2 precipitate from the solution? Ksp Hg(OH)2 = 3.0*10^-26

Answers

The concentration of free Hg²⁺ ions in the solution is extremely low, which is much less than the solubility product of Hg(OH)2, Ksp= 3.0×10⁻²⁶. Therefore, Hg(OH)₂ will not precipitate from the solution.

Describe Solution?

A solution is a homogeneous mixture of two or more substances. In a solution, the solute is uniformly dispersed in the solvent. The solute can be a solid, liquid, or gas, while the solvent is usually a liquid, such as water.

Solutions can be classified as dilute or concentrated, depending on the amount of solute present in the solution. A dilute solution has a low concentration of solute, while a concentrated solution has a high concentration of solute.

To determine whether Hg(OH)₂ will precipitate from the solution, we need to calculate the concentration of free Hg²⁺ ions in the presence of EDTA⁻⁴. We can use the formation constant (Kf) of HgEDTA⁻² to calculate the concentration of HgEDTA⁻² complex ion:

Hg²⁺ + EDTA⁻⁴ → HgEDTA⁻², Kf = 6.3×10²¹

The equilibrium constant expression for this reaction is:

Kf = [Hg]/([Hg²⁺][EDTA⁻⁴])

We can rearrange this equation to solve for the concentration of free Hg²⁺ ions:

[Hg²⁺] = [HgEDTA⁻²]/(Kf[EDTA⁻⁴])

We are given that the concentration of Hg(NO3)2 is 0.025 M, which means the concentration of  Hg²⁺ ions is also 0.025 M. We can assume that all the  Hg²⁺ ions are complexed with EDTA⁻⁴, so the concentration of HgEDTA⁻² complex ion is also 0.025 M.

Therefore,

[ Hg²⁺] = [HgEDTA⁻²]/(Kf[EDTA⁻⁴])

[ Hg²⁺] = (0.025 M)/(6.3×10²¹ × 0.10 M)

[ Hg²⁺] = 3.97 × 10⁻²⁷ M

The concentration of free Hg²⁺ ions in the solution is extremely low, which is much less than the solubility product of Hg(OH)2, Ksp= 3.0×10⁻²⁶. Therefore, Hg(OH)2 will not precipitate from the solution.

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Can someone please help me ASAP

Please write it on paper then upload the picture also please make it readable!​

Answers

Calculating relative atomic mass of an element is ordered sequentially as followed:

Isotopes are varieties of the same type of atomHowever, they have more or less neutronsThey have the same amount of protonsRelative atomic mass is the average mass of the isotopesIt can be calculated as followsWrite down all the isotopes givenWrite down the percentage abundance for each isotope Multiply the % abundance by the RAM for each isotopeAdd together all of the values obtained in step 7Divide by 100Sometimes the answer can have a decimal value

How to calculate RAM and percentage abundance?

Part 2:

1. Relative atomic mass of Magnesium =

((23.99 x 0.787) + (24.99 x 0.1013) + (25.98 x 0.1117)) / 100 = 24.31 amu

a) Percentage abundance of silver-109 =

100% - 51.86% = 48.14%

b) Average atomic mass of silver = (106.90509 x 0.5186) + (108.90470 x 0.4814) = 107.8682 amu.

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If an EMT has 5g of Dextrose and if the volume of the water is 121 mL, what is the concentration of the solution the EMT can make in molarity?

Answers

The concentration of the dextrose solution that the EMT can make is 0.2295 M.

How to calculate the molarity of the solution ?

We need to know the number of moles of dextrose in the solution and the total volume of the solution.

First, we need to convert the mass of dextrose from grams to moles using its molar mass. The molar mass of dextrose (C6H12O6) is 180.16 g/mol. Therefore:

Number of moles of dextrose = 5 g / 180.16 g/mol = 0.02777 mol

Next, we need to calculate the total volume of the solution in liters. We can convert the given volume of 121 mL to liters by dividing by 1000:

Total volume of solution = 121 mL / 1000 = 0.121 L

Finally, we can calculate the molarity of the solution using the formula:

Molarity (M) = moles of solute / liters of solution

Molarity = 0.02777 mol / 0.121 L = 0.2295 M

Therefore, the concentration of the dextrose solution that the EMT can make is 0.2295 M.

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Fe2O3 (s) +3CO (g) ----> 2Fe (l) + 3CO2 (g)
how many moles of CO2 are produced by the reaction of 64.0 mol of CO

Answers

The amount of CO2 produced by the reaction of 64.0 moles of CO is 64.0 moles.

According to the balanced chemical equation, 64.0 moles of CO react with Fe2O3:

Fe2O3 (s) + 3CO (g) ----> 2Fe (l) + 3CO2 (g)

We can see that 3 moles of CO2 are produced for every 3 moles of CO reacted. As a result, we can calculate the number of moles of CO2 using the mole ratio of CO2 to CO, which is 3:3 or 1:1. Because we have 64.0 moles of CO, we will produce the same amount of CO2, which is also 64.0 moles.

As a result, the amount of CO2 produced by the reaction of 64.0 moles of CO is 64.0 moles. These data help calculate the theoretical yield of a reaction and determine the stoichiometry of an equilibrated chemical equation.

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The following are different combinations of mixtures. Mention the most suitable separation technique that may be used to separate the components and explain briefly how separation is achieved under the separation technique

A miscible solution of ethanol and water

A dye

A mixture of several components with different boiling points

A mixture of sand, table salt and iron fillings

Solid components from blood​

Answers

The separation technique for each of the mixtures are:

miscible solution of ethanol and water ; fractional distillationdye ; Chromatographymixture of several components with different boiling points; DistillationA mixture of sand, table salt and iron fillings ; magnetSolid components from blood​ ; centrifuge

What is separation technique?

Separation techniques in chemistry are used to isolate or purify substances from a mixture. There are many different separation techniques used in chemistry, including:

Distillation: This technique is used to separate two or more liquids based on their boiling points. The mixture is heated until one of the liquids evaporates, and then the vapor is collected and condensed to separate it from the other liquids.

Filtration: This technique is used to separate a solid from a liquid or a gas. The mixture is passed through a filter, which traps the solid and allows the liquid or gas to pass through.

Chromatography: This technique is used to separate different components of a mixture based on their physical and chemical properties. The mixture is passed through a stationary phase, which separates the components based on their interactions with the phase.

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“HELP”
Consider the homogeneous equilbrium reaction of gaseous compound "A" to produce gaseous compound "B" :


2A (g) <--> 3B (g)


(<--> is the double headed equilibrium arrow)


A flask is filled with 1.608 M of A and 1.135 of B. This flask is then allowed to reach equilbrium. At that point the flask contains an equilbrium amount of B equal to 0.533 M. What is the equilibrium molarity of compound "A" ?

Answers

When the reactants and products of a chemical reaction are in equilibrium, the reaction is referred to as an equilibrium reaction.

When the rate of products becoming reactants is equal to the rate of reactants becoming products, equilibrium has been reached. Chemical equilibrium has four requirements:

Close the computer system.Dynamic reactions are required.Reactions in both directions are equal.Lastly, the ratio of reactants to products must remain constant.

Practically speaking, these conditions indicate that the reaction cannot absorb or lose substances (gases, liquids, etc.) from the environment. There must be a response that has both a forward and a backward reaction that can counterbalance one another. Both reactants and products must be present in the reaction.

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List five types of chemical reactions

Write short notes and give a representative balanced chemical equation in each of the type of chemical reaction mentioned in the above statemeny

Name two types of salts.

List four methods of preparing salts and give a representative balanced chemical equation in each case.​

Answers

Answer:

Combination reactions: In this type of reaction, two or more substances combine to form a single product. The general form of the equation is A + B → AB. An example of a combination reaction is:

2Na + Cl2 → 2NaCl

Decomposition reactions: In this type of reaction, a single reactant breaks down into two or more products. The general form of the equation is AB → A + B. An example of a decomposition reaction is:

2H2O → 2H2 + O2

Single replacement reactions: In this type of reaction, one element replaces another element in a compound. The general form of the equation is A + BC → AC + B. An example of a single replacement reaction is:

Zn + CuSO4 → ZnSO4 + Cu

Double replacement reactions: In this type of reaction, two compounds exchange ions to form two new compounds. The general form of the equation is AB + CD → AD + CB. An example of a double replacement reaction is:

NaCl + AgNO3 → NaNO3 + AgCl

Combustion reactions: In this type of reaction, a substance reacts with oxygen to produce heat and light. The general form of the equation is A + O2 → CO2 + H2O. An example of a combustion reaction is:

C3H8 + 5O2 → 3CO2 + 4H2O

Two types of salts are:

Acid salts: These are salts that contain hydrogen ions. An example of an acid salt is sodium hydrogen sulfate (NaHSO4).

Basic salts: These are salts that contain hydroxide ions. An example of a basic salt is copper(II) hydroxide carbonate (Cu2(OH)2CO3).

Four methods of preparing salts and their balanced chemical equations are:

Acid-base reaction: This involves the reaction of an acid and a base to produce a salt and water. The general form of the equation is acid + base → salt + water. An example of an acid-base reaction is:

HCl + NaOH → NaCl + H2O

Precipitation reaction: This involves the reaction of two solutions to produce an insoluble salt, which can be collected by filtration. The general form of the equation is A + B → AB(s). An example of a precipitation reaction is:

AgNO3 + NaCl → AgCl(s) + NaNO3

Direct combination: This involves the reaction of two elements to produce a salt. The general form of the equation is A + B → AB. An example of direct combination is:

Sodium + chlorine → sodium chloride

Neutralization reaction: This involves the reaction of an acid and a base to produce a salt and water. The general form of the equation is acid + base → salt + water. An example of a neutralization reaction is:

H2SO4 + 2NaOH → Na2SO4 + 2H2O

Explanation:

Which of the following is a means of creating a buffer of H₂CO₃/NaHCO₃?

Answers

Answer: Mixing a solution of H₂CO₃ and NaHCO₃ in water at the appropriate ratios is a means of creating a buffer of H₂CO₃/NaHCO₃.

Enjoy the answer!

Explanation:

A solution which can resists change in its pH value even when small amount of acid or base are added to it is called the buffer solution. Based on pH, buffer are of two types acidic and basic buffer. The given buffer is an acidic buffer. The correct option is A.

What is an acidic buffer?

An acidic buffer is prepared by mixing solutions of a weak acid and its salt from a strong base in suitable proportions. An equimolar mixture of acetic acid and sodium acetate solutions forms an acidic buffer. It maintains the pH around 4.74.

The mixture of  H₂CO₃ and NaHCO₃ acts as an acidic buffer solution. In the presence of NaHCO₃ , the concentration of salt increases. So the term log [salt]/[acid] also increases. The given mixture contains an acid and a conjugate base. So it is an excellent buffer.

H₂CO₃/NaHCO₃ maintains pH of our blood.

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What is required to make a large amount of energy?

Answers

Rare earth elements.

Water (2230 g ) is heated until it just begins to boil. If the water absorbs 4.81×105 J of heat in the process, what was the initial temperature of the water?

Answers

Initial temperature of the water was 62.5°C.

What is the specific heat capacity of water and why is it important?

The specific heat capacity of water is the amount of heat required to raise the temperature of one gram of water by one degree Celsius. It is an important property of water because it makes it a good heat storage medium, which is why it is used in many cooling and heating systems.

We can use the formula Q = mcΔT, where Q is the heat absorbed, m is the mass of the water, c is the specific heat capacity of water, and ΔT is the change in temperature.

Since the water is heated until it just begins to boil, we know that ΔT = 100°C (the boiling point of water at atmospheric pressure).

The specific heat capacity of water is c = 4.184 J/(g·°C).

Plugging in the values we know, we get:

4.81×10^5 J = (2230 g) × (4.184 J/(g·°C)) × (100°C - initial temperature)

Simplifying and solving for the initial temperature, we get:

initial temperature = 100°C - (4.81×10^5 J) / (2230 g × 4.184 J/(g·°C))

= 62.5°C

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Why does lowered air pressure allow water to boil at room temperature? A. The mass of the liquid is reduced, making it easier to form a gas. B. The lowered air pressure increases the temperature of the liquid. C. Less force pushes down on the liquid, making it easier for gas to escape. D. The kinetic energy of the liquid molecules increases, causing gas to form.4

Answers

The right response is C. Less pressure is applied to the liquid, which makes it simpler for gas to escape.

Why is it possible for water to boil at room temperature despite the reduced air pressure?

Less pressure allows the water molecules to flow more freely, gaining kinetic energy in the process. As a result, less heat energy is needed to break the intermolecular interactions. (the boiling point decreases). Water boils and transforms into water vapour after the boiling point is reduced to room temperature.

Why does water boil at lower temperatures and lower pressures?

When air pressure is lower, it requires less energy to get water to the boiling point. Water will boil at a lower temperature at higher altitudes because there is less energy and hence less heat there.

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The figure (Figure 1) shows the reaction of element A
(lavender spheres) with element B
(tan spheres). Write the balanced chemical equation for this reaction in terms of A
and B
.
Express your answer as a chemical equation.

Answers

The balanced reaction equation is; 4A + 6B2 ----> 4AB3

What is a balanced reaction equation?

A balanced reaction equation is a chemical equation that shows the complete chemical reaction, with the same number of atoms of each element on both the reactant and product side. In other words, the total number of atoms of each element is equal on both sides of the equation.

Balancing a chemical equation involves adjusting the coefficients (numbers in front of the chemical formulas) in order to ensure that the number of atoms of each element is equal on both sides of the equation. This is important because in a chemical reaction, atoms are not created or destroyed, but only rearranged into new molecules.

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ILL mark YOU as a brainlist

What is the mass of 6.30 moles of magnesium chloride, MgCl2 ?
Express your answer with the appropriate units.

Answers

To calculate the mass of 6.30 moles of MgCl2, we need to find the molar mass of MgCl2 first.

The molar mass of MgCl2 can be found by adding the atomic masses of magnesium and chlorine, which are 24.31 g/mol and 35.45 g/mol respectively. So:

MgCl2: (1 x 24.31 g/mol) + (2 x 35.45 g/mol) = 95.21 g/mol

Now we can use this value to calculate the mass of 6.30 moles of MgCl2:

mass = moles x molar mass
mass = 6.30 mol x 95.21 g/mol
mass = 599.4 g

So the mass of 6.30 moles of MgCl2 is 599.4 g.
To find the mass of 6.30 moles of MgCl2, we need to use the molar mass of MgCl2, which is the sum of the molar masses of magnesium and chlorine.

1. Find the molar mass of MgCl2:
Mg has a molar mass of 24.31 g/mol, and Cl has a molar mass of 35.45 g/mol. Therefore, the molar mass of MgCl2 is 24.31 g/mol + 2(35.45 g/mol) = 95.21 g/mol.

2. Calculate the mass of 6.30 moles of MgCl2:
mass = moles x molar mass = 6.30 mol x 95.21 g/mol = 600.0 g

Therefore, the mass of 6.30 moles of MgCl2 is 600.0 g.

Complete and balance each combustion reaction.
1.Si(s)+O2(g)→
2.C9H20(l)+O2(g)→
3.C4H10O(l)+O2 (g)→
4.SiC(s)+O2(g)→

Answers

The balanced combustion reactions are: 1. 2 Si(s) + O₂(g) → 2 SiO₂(s) 2. C₉H₂0(l) + 14 O₂(g) → 9 CO₂(g) + 10 H₂O(g)

3. C₄H₁₀O(l) + 6 O₂(g) 4 CO₂(g) + 5 H₂O(g)

4. SiC(s) + 2 O₂(g) SiO₂(s) + CO₂(g)

What is Combustion Reaction?

A combustion reaction is a chemical reaction that occurs between a fuel (such as a hydrocarbon) and an oxidizing agent (usually oxygen) to produce heat and usually light in the form of a flame. During the reaction, the fuel is oxidized, and carbon dioxide and water vapor are produced as waste products.

Combustion reactions are exothermic, which means they release energy in the form of heat. They are often used to produce energy in engines and power plants, as well as in various industrial processes. Combustion reactions are also important in the environment, as they play a role in the carbon cycle and can contribute to air pollution when incomplete combustion occurs.

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How many atoms are in 3.47 g Li?
The molar mass of Li is 6.94 g/mol.
A. 3.01 x 10²³ atoms Li
B. 8.31 x 10-25 atoms Li
C. 0.50 atoms Li
D. 1.45 x 1025 atoms Li
PH

Answers

3.47 moles Li is made up of 3.01x1023 atoms. The cubic body-centered structure of lithium metal. Its molarity is 6.94 g mol1, and its dense is 0.53 g cm3. Determine the lithium metal unit cell's edge.

Correct option  is, A.

Is the mass number of lithium seven?

Lithium has a mass number of 7. Every element's mass number is equal to the sum of its protons and neutrons. With data from the Cyclic Table of Elements, you can calculate the number if neutrons, protons, or the mass number of each element. Since lithium has a 3 atomic number, that has 3 protons.

Where is lithium-7 produced?

Lithium-7 is a stable (non-radioactive) isotope of the metal lithium. Both naturally occuring and produced by fission. Lithium 7 metal is one of the almost 250 metal based isotopes that American Element produces for base material, biological and medical tagging, or other purposes.

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What volume of oxygen is produced at STP when 6.58 x 1024 molecules of water is decomposed according to the following reaction?
2 H2O → 2 H2 + O2
What mole ratio would need to be used when completing step 2 of this conversion?

options:
2 molecules of H2O/1 molecule of O2
2 molecules of H2O/2 molecules of H2
1 molecule of O2/ 2 molecules of H2O
2 molecules of H2 /1 molecule of O2

Answers

So, 5.47 x 22.4 = 122 L has now become the volume of oxygen.

What is the volume of oxygen?

Depending on the type of combination and where the carbon atom is attached, oxygen can be divided into three volumes: 251, 445, and 753.

How can you figure out volume?

You really do have to know a box's height, breadth, and depth in order to determine its volume. These three dimensions can be multiplied to determine the volume.

The volume of a three-dimensional item is expressed in cubic units and represents the amount of space it occupies. On the other hand, an item's mass can be used to calculate how much matter it contains. The most frequent method of calculating mass is by weighing an object (in units like pounds or kilograms).

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Question 3 (1 point)
A neutral atom has 14 protons and 18 neutrons. Choose the correct nuclide symbol
for this atom (1 point).
a. 3218 Ar
A
B
C
D
b. 32 14 Si
C. 181
14 Si
d. ¹32 Ge
14

Answers

The correct nuclide symbol for this atom is: D. ¹³²⁴⁶Ge, where ¹³² is the mass number (protons + neutrons) and ⁴⁶Ge is the chemical symbol for the element germanium, which has 32 protons.

What is atom?

An atom is the basic unit of matter, consisting of a nucleus composed of protons and neutrons, surrounded by a cloud of negatively charged electrons. The protons and neutrons are located in the nucleus at the center of the atom and are collectively known as nucleons. The number of protons in the nucleus determines the atomic number of the atom, which in turn determines the identity of the element. Each element has a unique atomic number, and the elements are arranged in the periodic table in order of increasing atomic number. Electrons are negatively charged particles that orbit the nucleus in shells or energy levels. The number and arrangement of electrons in an atom's shells determine its chemical and physical properties, such as reactivity, conductivity, and melting point.

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Select the correct statements about the chemical equation shown.

6CO2(g)+6H2O(l)⟶C6H12O6(s)+6O2(g)

A. Both products are solids in this chemical reaction.

B. Only liquids and gases are involved in this chemical reaction.

C. In this chemical equation, (g) means gram.

D. Solids, liquids, and gases are involved in this chemical reaction.

E. A gas reacts with a liquid in this chemical reaction.

Answers

Answer:

D

Explanation:

If you calculate the percent completion of elements in a compound is there enough information to determine the empirical formula for the compound

Answers

Answer:

Combustion analysis

Explanation:

Combustion analysis can only establish a compound's empirical formula; it cannot establish the compound's molecular formula.

I CHOSE THE WRONG SUBJECT SORRY
Photosynthesis and cellular respiration have a unique relationship in that the products of one are the reactants of the other. Evaluate the model provided. The reactants and products are missing from the diagram. Select ALL of the answers below that correctly pair the letter on the diagram with the product or reactant.



A) A is sunlight.A is sunlight.

B) D is ATP.D is ATP.

C) B is H2O.

D) C is CO2 + C6H12O6.C is CO 2 + C 6 H 12 O 6 .

E) F is CO2 + H2O.

Answers

The correct answers are A, B, C, D, and E.  A is sunlight, D is ATP, B is H2O,  C is CO2 + C6H12O6, and F is CO2 + H2O.  

What is the connection between photosynthesis' end product and cellular respiration?

In cellular respiration, the products and reactants for photosynthesis are switched around: Carbon dioxide and water, which are byproducts of cellular respiration, are the reactants in photosynthesis. Oxygen and sugar, byproducts of photosynthesis, are the reactants of cellular respiration.

What ingredients make up the cellular respiration equation's reactants and products?

The reactants are oxygen and glucose, and the products are carbon dioxide, water, and energy.

What components make up the chemical reaction that gives my cells their energy?

The reactants in the process of cellular respiration are oxygen and glucose. ATP is the primary product of cellular respiration, and carbon dioxide and water are waste products.

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Identify the precipitate that forms (if any) when aqueous solutions of strontium nitrate and potassium sulfate are mixed.
1. SrSO4(s)
2. SrK(s)
3. NO3SO4(s)
4. KNO3(s)

Answers

Answer:Srasao4(a)

Explanation:

Determine the % ionization of the following drugs at the specified pH. (i) A basic drug, pKb of 8.2, pkw of 14 and physiological pH of 7.4 (ii) Acidic drug, pKa 5.1 and pH 6.2.​

Answers

(i). The % ionization of the basic drug at a pH of 7.4 is: % ionization = 16.6%. (ii). The % ionization of the acidic drug at a pH of 6.2 is: % ionization = 71.5%

How did we get these values?

(i) To determine the % ionization of a basic drug at a pH of 7.4, we need to compare the drug's pKb to the pH of the environment. The pKb is the negative logarithm of the drug's base dissociation constant, which measures the drug's tendency to accept protons and become ionized.

At a pH of 7.4, which is lower than the pKb of 8.2, the drug will be partially ionized. The degree of ionization can be calculated using the Henderson-Hasselbalch equation:

pH = pKb + log([A-]/[HA])

where [A-] represents the concentration of the ionized form of the drug and [HA] represents the concentration of the unionized form of the drug.

Solving for [A-]/[HA], we get:

[A-]/[HA] = 10^(pH-pKb) = 10^(7.4-8.2) = 0.1995

Therefore, the % ionization of the basic drug at a pH of 7.4 is:

% ionization = [A-]/([A-] + [HA]) x 100% = 0.1995/(0.1995 + 1) x 100% = 16.6%

(ii) To determine the % ionization of an acidic drug at a pH of 6.2, we need to compare the drug's pKa to the pH of the environment. The pKa is the negative logarithm of the drug's acid dissociation constant, which measures the drug's tendency to donate protons and become ionized.

At a pH of 6.2, which is higher than the pKa of 5.1, the drug will be partially ionized. The degree of ionization can be calculated using the Henderson-Hasselbalch equation:

pH = pKa + log([A-]/[HA])

where [A-] represents the concentration of the ionized form of the drug and [HA] represents the concentration of the unionized form of the drug.

Solving for [A-]/[HA], we get:

[A-]/[HA] = 10^(pH-pKa) = 10^(6.2-5.1) = 2.5119

Therefore, the % ionization of the acidic drug at a pH of 6.2 is:

% ionization = [A-]/([A-] + [HA]) x 100% = 2.5119/(2.5119 + 1) x 100% = 71.5%

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A graduated cylinder with water reads 15.5 mL. If 20.50 g of copper is dropped in, what will the new water level be in the graduated cylinder?

Answers

The new water level in the graduated cylinder will be 17.79 mL. When an object is submerged in a liquid, it expels a volume-equivalent amount of liquid.

How does one interpret volume measurements on a graduated cylinder using the meniscus?

With your eyes level with the liquid and the graduated cylinder placed on a flat surface, measure the liquid's height. The liquid will slant downward naturally. The meniscus is the name of this curvature. Always read the measurement on the meniscus's bottom.

Density = mass / volume

With the above formula, we can obtain the volume of the copper. This can be obtained as follow:

Mass of copper = mass/volume

Density of copper = 8.96 g/mL

Volume of copper = Mass of copper / Density of copper

Volume of copper = 20.50 g / 8.96 g/mL

Volume of copper = 2.29 mL

we shall determine the new height of the water. This can be obtained as follow:

Initial height of water = 15.5 mL

Volume of copper = 2.2 mL

New water level = Initial water level + Volume of copper

New water level = 15.5 mL + 2.29 mL

New water level = 17.79 mL

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K3PO4 + Al(NO3)3 → 3KNO3 + AlPO4


How many moles of potassium nitrate, KNO3, are produced when 15.7 moles of potassium phosphate, K3PO4, react?

Answers

Answer:

K3PO4 + Al(NO3)3 → 3KNO3 + AlPO4

The stoichiometry of the reaction indicates that 1 mole of K3PO4 produces 3 moles of KNO3.

Therefore, to calculate the moles of KNO3 produced, we need to multiply the moles of K3PO4 by the stoichiometric coefficient of KNO3, which is 3:

Moles of KNO3 = 15.7 moles K3PO4 x (3 moles KNO3/1 mole K3PO4) = 47.1 moles KNO3

So, 15.7 moles of K3PO4 will produce 47.1 moles of KNO3.

Explanation:

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