How many grams of co2 are contained in 550 ml of the gas at stp?

Answers

Answer 1
v = 550 mL = 0.550 L
V = 22.4 L/mol   (STP)
M(CO₂)=44.01 g/mol

n(CO₂)=v/V

m(CO₂)=n(CO₂)M(CO₂)=vM(CO₂)/V

m(CO₂)=0.550*44.01/22.4=1.08 g
Answer 2

There are 1.08 grams of co2 contained in 550 ml of the gas at stp

Given that    Volume of gas   =550 ml   = 0. 550  L

                 Standard Temperature  =  T  = 273.15 K

                 Standard Pressure  =  P  =  1 atm

                 Gas Constant  =  R  =  0.08205 L⋅atm⋅K⁻¹⋅mol⁻¹

        Mass=?

From the question,    the CO₂ gas is acting ideally so we will apply Ideal Gas equation;

                              P V  =  n R T

Solving for n,

                             n  =  P V / R T

Putting values,

               n  =  1 atm × 0.55 L / 0.08205 L⋅atm⋅K⁻¹⋅mol⁻¹ × 273.15 K

               n  =  0.0245 moles

Remember that  

Number of Moles  =  Mass / Molar.Mass

Solving for Mass,

Mass  =  Moles × M.Mass

Mass  =0.0245 mol × 44.01 g/mol

Mass = 1.08 grams of CO₂

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Related Questions

Which laws can be combined to form the ideal gas law?
Boyle’s law and Charles’s law
Gay-Lussac’s law and Avogadro’s law
Charles’s law, Avogadro’s law, and Boyle’s law
Dalton’s law, Gay-Lussac’s law, and Avogadro’s law

Answers

Charles’s law, Avogadro’s law, and Boyle’s law can be combined to form the ideal gas law.

What is Boyle's law?

Boyle's law is an experimental gas law which describes how the pressure of the gas decreases as the volume increases. It's statement can be stated as, the absolute pressure which is exerted by a given mass of an ideal gas is inversely proportional to its volume provided temperature and amount of gas remains unchanged.

Mathematically, it can be stated as,

P∝1/V or PV=K. The equation states that the product of of pressure and volume is constant for a given mass of gas and the equation holds true as long as temperature is maintained constant.

According to the equation the unknown pressure and volume of any one gas can be determined if two gases are to be considered.That is,

P₁V₁=P₂V₂

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Consider the reaction between hcl and o2: 4hcl(g)+o2(g)→2h2o(l)+2cl2(g) when 63.1 g of hcl are allowed to react with 17.2 g of o2, 59.6 g of cl2 are collected.

Answers

Final answer:

The chemistry question involves a reaction of HCl and O2 to form H2O and Cl2. This involves principles of stoichiometry and energy dynamics, as well as the concept of limiting reactants.

Explanation:

The reaction being described here is a chemical reaction where hydrochloric acid (HCl) and oxygen (O2) react to form water (H2O) and chlorine gas (Cl2). Because 59.6g of Cl2 are formed when 63.1g of HCl reacts with 17.2g of O2, this reaction demonstrates the concept of stoichiometry, where the amount of reactants determines the amount of product formed. We can also talk about the energy changes during this reaction. For example, when H-Cl bonds are formed, energy is released. Therefore this is also an exothermic reaction.

Further, it looks like this situation involves a limiting reactant, since there seems to be excess HCl or O2 left over after the reaction is complete. This is because the ratios of the reactants are important in determining how much product is produced. Here, it seems either HCl or O2 was in excess and hence remained unreacted at the end of the reaction.

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HCl is the limiting reactant. The theoretical yield of Cl₂ is 61.37 g, and the percent yield is 75.1%.

To determine the limiting reactant, theoretical yield, and percent yield for the reaction between HCl and O₂, follow these steps:

Step A: Determine the Limiting Reactant

The balanced reaction is:

4 HCl(g) + O₂(g) → 2 H₂O(l) + 2 Cl₂(g)

First, calculate the moles of HCl and O2:

63.1 g HCl × (1 mol HCl / 36.46 g HCl) ≈ 1.73 mol HCl
17.2 g O₂ × (1 mol O2 / 32.00 g O₂) ≈ 0.5375 mol O₂

Using the stoichiometric ratio from the balanced equation:

0.5375 mol O₂ × (4 mol HCl / 1 mol O₂) = 2.15 mol HCl

Since only 1.73 mol of HCl are available, HCl is the limiting reactant. Hence, HCl is the limiting reactant.

Step B: Determine the Theoretical Yield of Cl₂

From the balanced equation, 4 mol HCl produces 2 mol Cl₂. Therefore:

1.73 mol HCl × (2 mol Cl₂ / 4 mol HCl) = 0.865 mol Cl₂

Convert moles of Cl₂ to grams:

0.865 mol Cl₂ × 70.90 g Cl₂ / 1 mol Cl₂ ≈ 61.37 g Cl₂

The theoretical yield of Cl₂ is 61.37 g.

Step C: Determine the Percent Yield

The percent yield is given by:

Percent yield = (Actual yield / Theoretical yield) × 100
Percent yield = (46.1 g / 61.37 g) × 100 ≈ 75.1%

The percent yield of Cl₂ is 75.1%

Complete Question.

Consider the reaction between HCl and O2: 4HCl(g)+O2(g)→2H2O(l)+2Cl2(g) When 63.1 g of HCl are allowed to react with 17.2 g of O2, 46.1 g of Cl2 are collected.

A. Determine the limiting reactant for the reaction.

Express your answer as a chemical formula.

B. Determine the theoretical yield of Cl2 for the reaction.

C. Determine the percent yield for the reaction.

Biology




which variable is measured in an experiment?

A. dependent variable

B. independent variable

C. experimental variable

Answers

The correct option is A.
The dependent variable is the variable that is measured during the experiment, it is the  variable that is affected during the experiment. Experiments are design in such a way that the dependent variable depends on and respond to independent variable.

Anwser:

The correct option is A.

Explnation:

The dependent variable is the variable that is measured during the experiment, it is the  variable that is affected during the experiment. Experiments are design in such a way that the dependent variable depends on and respond to independent variable.

Calculate the vapor pressure of a solution containing 28.0 g of glycerin (c3h8o3) in 120 ml of water at 30.0 âc. the vapor pressure of pure water at this temperature is 31.8 torr. assume that glycerin is not volatile and dissolves molecularly (i.e., it is not ionic) and use a density of 1.00 g/ml for the water.

Answers

First step is to get the number of moles of glycerin in 28 gm:
From the periodic table:
molar mass of carbon = 12
molar mass of oxygen = 16
molar mass of hydrogen = 1
molar mass of glycerin = 3(12) + 8(1) + 3(16) = 92 gm
number of moles = 28/92 = 0.304 moles

Second step is to get the number of moles of water:
mass = 120 ml x 1 gm/ml = 120 gm
molar mass of water = 2(1) + 16 = 18 gm
number of moles = 120/18 = 6.667 moles

Third step is to get the mole fraction of water:
mole fraction of water =
number of water moles / (number of water moles+number of glycerin moles)
mole fraction of water = (6.667) / (6.667+0.304) = 0.956

Last step is to calculate the pressure:
p = vapor pressure of pure water x mole fraction of water
      31.8 x 0.956 = 30.4008  torr

A combination reaction occurs when one reactant forms two or more products true or false

Answers

A combination reaction is a type of reaction which has two reactants that yields one product. For example, the electrolytic synthesis of water would be:

H2 + 1/2O2 ---> H2O

The reactions, hydrogen and oxygen, yield a water molecule. Therefore, the statement above is False. That type of reaction is a decomposition reaction, which is the opposite of combination.

Answer:

its true for apex ;)

Explanation:

What is the mass number of an atom having 16 protons and 13 neutrons?

Answers

To find mass number, add the number of protons and neutrons together.
16+13=29
Final answer: 29 amu

Write balanced chemical equation for the oxidation of fe2+(aq) by s2o2−6 (aq).

Answers

To write a balanced chemical equation for the given redox reaction, we need to know the half reactions of the substances involved. Redox reaction means oxidation-reduction reaction. Oxidation is when one loses electrons making it more positive while reduction is gaining electrons which makes it more negative. Iron here is being oxidized and will have the half reaction:

Fe2+(aq) ---> Fe3+(aq) + e+

 S2O2−6 is being reduced in the process and will have a half reaction of:

S2O2-6 + 4H+ + 2e- ----> 2H2SO3

Adding the two half reactions would yield to the balanced chemical equation. We do as follows:


2 (Fe2+ ---> Fe3+ + e+)
S2O2-6 + 4H+ + 2e- ----> 2H2SO3
----------------------------------------------------------------
2Fe2+ + S2O2-6 + 4H+  ----> 2Fe3+ + 2H2SO3  ( balanced oxidation - reduction reaction )

At 25 °c only 0.0420 mol of the generic salt ab2 is soluble in 1.00 l of water. what is the ksp of the salt at 25 °c?

Answers

The Ksp, or solubility product constant, of a generic salt AB₂ at 25 °C with a solubility of 0.0420 mol/L is 2.96 × 10⁻⁴.

The student has asked to find out the Ksp of a generic salt AB₂ at 25 °C, when its solubility is given.

The solubility product constant (Ksp) is the equilibrium constant for the dissolution of a solid substance into an aqueous solution. Considering the stoichiometry of the generic salt AB₂, when it dissolves in water, it dissociates into one A²⁺ ion and two B⁻ ions.

The solubility equilibrium reaction is:
AB₂(s) → A²⁺(aq) + 2B⁻(aq)

Since the solubility is 0.0420 mol/L for AB₂, the concentration of A²⁺ will be 0.0420 M and the concentration of B⁻ will be 2 × (0.0420) M = 0.0840 M in the solution.

Using the expression for Ksp:

Ksp = [A²⁺][B⁻]² = (0.0420)×(0.0840)²

We calculate Ksp:

Ksp = (0.0420)×(0.007056) = 2.96 × 10⁻⁴

Thus the Ksp for AB₂ at 25 °C is 2.96 × 10⁻⁴.

How many moles of libr are contained in 347 g of water in a 0.175 m libr solution?

Answers

Molarity = number of moles of solute/Kg of solvent

Molarity is given in the problem as 0.175 m
Mass of solvent = 347 gm = 0.347 Kg

Therefore,
0.175 = number of moles of LiBr / 0.347
number of moles of LiBr = 0.175 x 0.347 = 0.060725 moles

Answer:

Molaridad = número de lunares de soluto/Kg de disolvente

La molaridad se da en el problema como 0,175 m

Masa de disolvente = 347 gm = 0,347 Kg

por lo tanto

0.175 = número de lunares de LiBr / 0.347

número de lunares de LiBr = 0,175 x 0,347 = 0,060725 lunares

Explanation:

Rank the homologous series for a set of alkanes by their boiling point? The boiling points for a set of compounds in a homologous series can be qualitatively predicted using intermolecular force strengths. Using their condensed structural formulas, rank the homologous series for a set of alkanes by their boiling point.
Rank these alkanes from highest to lowest boiling points
1....; The correct answer is heptane 3,3-dimethylpentane hexane butane. Thanks though, your tip helped!

Answers

The boiling point of a compound depends on the intermolecular forces binding them. For ionic and covalent compounds, they have higher boiling points compared to compounds joined by London forces. For alkanes, they would have the same intermolecular forces. It would then matter on the length of the carbon chain. The longer the length is, the higher is its boiling point. So, from the given choices, the highest boiling point would either be heptane or 3,3-dimethylpentane. Both have 7 carbon in its chain, but 3,3-dimethylpentane is branched so it has a lower surface area so it can easily be detached. That's why heptane is placed higher over 3,3-dimethylpentane . This is followed by hexane (6 carbons) and lastly the butane (4 carbons).

Alkanes from highest to lowest boiling points:

1. heptane2. 3.3 dimethyl pentane3. hexane4. butaneFurther explanation

Alkanes are saturated hydrocarbons with all carbon bonds being single bonds

General formula:

[tex]\large{\boxed {\bold {C_nH_{2n + 2}}}[/tex]

There are several rules for naming alkanes from IUPAC:

the name of the branch followed by the name of the main chain the main chain is the longest chain that has the most branches branches are given the name alkyl with the symbol -R, and begin with a number, with the position of the branch getting the smallest number more than one branch is prefixed in, tri, tetra, penta, etc. and in alphabetical order with the smallest number.

In determining the alkane boiling point, if in the same homologous series, then just look for alkanes with the largest relative molecular mass that will have a large boiling point too. So in an alkane in the form of a straight-chain, the more carbon atoms, the longer the main chain, the bigger the boiling point.

But if the relative molecular mass is the same, the alkanes have fewer branches will have a greater boiling point.

The more branches, the lower the boiling point, even though the number of carbon atoms is the same (as in isomers)

In isomers that have the same molecular formula and relative molecular mass, alkanes that have the fewest branches will have the largest boiling point.

So that the general determination of the alkane boiling point is (based on its priority)

1. relative molecular mass

the greater the higher the boiling point

2. main chain branch

the fewer branches the higher the boiling point

The branching on the main chain in the alkane structure causes the attraction between the molecules to be lower so that to release this attractive force only requires low energy, ie at low temperatures

The relative molecular mass of each alkane in the above problem is:

1. heptane: 1002. 3.3 dimethyl pentane: 1003. hexane: 864. Butane: 58

The relative molecular mass values ​​above indicate that there are similarities in the relative molecular mass values ​​of heptane and 3.3 dimethyl pentane. But because the unbranched chain has a higher boiling point so heptane has a greater boiling point than 3.3 dimethyl pentane

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the name of this hydrocarbon

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type of organic compound contains the following functional group

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Keywords: alkanes, main chains, branches, boiling points, relative molecular mass

When copper sulfate reacts with sodium hydroxide solution, a precipitate of copper hydroxide and a solution sulfate are formed

Answers

In the equation above, Sodium Hydroxide is Na₂SO₄.

If you ionize this species, it results in Na⁺ + SO₄²⁻

∴ sulphate species is SO₄²⁻ (OPTION D)

Use the periodic table to select the element from the drop-down menu that has the correct relative electronegativity.
Mg >
P >
C <
Br <

Answers

Answers


Mg > Ca

P > As

C <N

Br < Cl


Final answer:

Using the periodic table, one can predict that the order of increasing electronegativity for Mg, P, C, and Br is Mg < Br < C < P. Mg is a metal, while P, C, and Br are nonmetals.

Explanation:

The question involves using the periodic table to determine the relative electronegativity of elements. Electronegativity increases from the lower left to the upper right of the periodic table. Hence, we can predict the relative electronegativity for the elements given:

Mg (Magnesium) has a lower electronegativity compared to most other elements since it's in the second column and third period.P (Phosphorus) generally has a higher electronegativity than Mg as it is to the right and above Mg.C (Carbon) is to the left and below P in the periodic table, which means P is more electronegative than C.Br (Bromine) is below and to the right of C and has a lower electronegativity than C since it is lower in the periodic table, despite being to the right.

Therefore, the order from lowest to highest electronegativity is Mg < Br < C < P.

Regarding classification:

Mg is a metal located to the left of the stair-step line on the periodic table.P is a nonmetal found to the right of the stair-step line.C is also a nonmetal positioned to the right and far from the stair-step line.Br is a nonmetal as well, located near the stair-step line but clearly on the nonmetal side.

What force of attraction holds the electron in the hydrogen atom?

Answers

Final answer:

The electromagnetic force or Coulomb force is the primary force of attraction that holds the electron in the hydrogen atom. The relatively massive proton at the atom's center, and the less massive electron orbiting around it, interact due to their opposite charges, creating an electromagnetic attraction. Additionally, the orbiting electron generates a magnetic field, which contributes to the atom's interaction with external magnetic fields.

Explanation:

The force of attraction that holds the electron in a hydrogen atom is the electromagnetic force, also known as the Coulomb force. This force arises due to the interaction between the positively charged proton and the negatively charged electron. It is this attraction that keeps the electron in orbit around the nucleus of the atom, similar to the gravitational pull of the Earth on the Moon.

In Bohr's model of the hydrogen atom, the electron moves in a perfectly circular orbit around the proton due to this attraction. Although this is a simplified model, it illustrates the primary force keeping the electron bound to the atom. The fact that the proton is around 1800 times more massive than the electron ensures that the proton moves very little in response to the force applied by the electron.

In addition, the atom possesses a magnetic field due to the movement of the electron in its orbit. This magnetic field also plays a decisive role in the interactions of the hydrogen atom with external magnetic fields.

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Will the vapors of acetic acid go to the floor or ceiling of a room

Answers

The vapor of acetic acid will go to the floor of the room.

This is because the density of acetic acid vapor is equal to 2.07 is higher (almost twice) than the density of air which is equal to only 1

What is ionization energy?

Answers

The ionization energy is qualitatively defined as the amount of energy required to remove the most loosely bound electron, the valence electron, it is a very important substance. 

The ionization energy is the amount of energy needed to remove a valence electron. Valence electrons are the outermost electrons.

Acids generally have an excess of ______ ions in solution, while bases usually have an excess of ______ ions in solution.

Answers

Acids generally have an excess of hydroxonium ions (H₃O⁺) in solution, while bases usually have an excess of hydroxide ions (OH⁻) in solution.

Which of these molecules has a lewis structure with a central atom having no nonbonding electron pairs?

Answers

Methane is one CH4 with all sides of carbon being bonded with hydrogen atoms

An aqueous solution contains 0.050 m of methylamine, with kb = 4.4 x 10-4. what is the percent ionization and the ph of the solution?

Answers

Final answer:

To calculate the hydroxide ion concentration and the percent ionization of a 0.0325-M solution of ammonia, use the Kb expression and an ice table. The hydroxide ion concentration is 7.6 x 10-4 M and the percent ionization is 2.34%.

Explanation:

To calculate the hydroxide ion concentration and the percent ionization of a 0.0325-M solution of ammonia, we can use the formula for Kb. Kb is the equilibrium constant for the reaction of NH3 with water to form NH4+ and OH-. The equation is: NH3 + H2O ⇌ NH4+ + OH-. The Kb value for ammonia is given as 1.76 x 10-5.

First, we need to calculate the hydroxide ion concentration. We can use the Kb expression to set up an ice table and solve for the OH- concentration. Let x be the concentration of OH-. Since the initial concentration of NH3 is 0.0325 M, the initial concentration of OH- is 0 M.Using the Kb expression, we can set up the equation: Kb = (x)(x)/(0.0325 - x). Solving for x gives us x = 7.6 x 10-4 M. Therefore, the hydroxide ion concentration is 7.6 x 10-4 M.To calculate the percent ionization, we can use the formula: % ionization = (OH- concentration / initial ammonia concentration) x 100. Plugging in the values, we get % ionization = (7.6 x 10-4 / 0.0325) x 100 = 2.34%.

How much oxygen gas can be produced through the decomposition of potassium chlorate (KClO3) if 194.7 g of potassium chlorate is heated and fully decomposes? The equation for this reaction must be balanced first. KClO3 (s) -> KCl (s) + O2 (g) A. 194.70 grams
B. 76.26 grams
C. 2.47 grams
D. 2.38 grams

Answers

Final answer:

When 194.7g of potassium chlorate is fully decomposed, it produces 76.26g of oxygen gas.

Explanation:

The decomposition of potassium chlorate (KClO3) when heated produces potassium chloride (KCl) and oxygen (O2). But first, we need to balance the chemical equation. A balanced equation of this chemical reaction is 2KClO3 -> 2KCl + 3O2 which means 2 moles of potassium chlorate produce 3 moles of oxygen.

The molar mass of KClO3 is 39.1 (K) + 35.5 (Cl) + (16.0 x 3)(O) = 122.6 g/mol. Given 194.7g of KClO3, the moles of KClO3 = 194.7g / 122.6 g/mol = 1.59 moles.

From the balanced equation, we know that 2 moles of KClO3 produces 3 moles of O2. Therefore, 1.59 moles of KClO3 will produce (1.59/2)*3 = 2.38 moles of O2. Finally, by multiplying the moles of O2 by its molar mass (32 g/mol), we get the mass of oxygen that gets produced = 2.38 * 32 = 76.26 g.

So, when fully decomposed, 194.7g of potassium chlorate will produce 76.26g of oxygen gas.

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Which of the types of compounds listed below is/are considered to be functional groups, or families, of organic compounds? salts (example: table salt, sodium chloride) alcohols (example: ethyl alcohol, the alcohol found in beer and wine) carboxylic acids (example: formic acid, found in the venom of red ants) bases (example: ammonia)?

Answers

Organic compounds are characterized by the presence of carbon and hydrogen in their chemical structure.
There are many families of organic compounds such as alkanes, alkenes, alkynes, alcohols, acids, esters, ethers ... etc. Each family is characterized by the presence of a functional group that gives the molecule its specific chemical properties.
Salts like the table salt or sodium chloride are not considered to be organic molecule because they don't have carbon and hydrogen.
Alcohols as organic molecules. Alcohols are a big family of organic compounds that are characterized by the presence of the functional group OH.
Carboxylic acids are organic molecules with functional group COOH.
Bases like ammonia are not considered as organic compounds.
Final answer:

Among salts, alcohols, carboxylic acids and bases, only alcohols and carboxylic acids qualify as functional groups or families of organic compounds, because of their relevant functional groups. Salts and bases are excluded in this context.

Explanation:

From the list you provided - salts, alcohols, carboxylic acids and bases, the types that are classified as functional groups or families of organic compounds are alcohols and carboxylic acids. Salts and bases are important in various chemical processes but do not fall into the category of organic compounds' functional groups. A functional group is essentially an atom or a group of atoms that determine the physical and chemical properties of a molecule. For instance, ethyl alcohol belongs to the alcohol family because of the presence of the hydroxyl (-OH) functional group, while formic acid is in the carboxylic acid family thanks to its carboxyl (-COOH) group.

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Consider three 10-g samples of water: one as ice, one as liquid, and one as vapor. how do the volumes of these three samples compare with one another?

Answers

Given a 10 g sample of water in the form of ice, liquid, gas, we can observe how these phases behave. The volume for each of these samples would greatly differ given they have the same masses. For the solid, it will have a definite structure and would have smallest volume of the three phases since it is the most condensed structure of water. For liquid, it would have a volume that is larger than that of a solid but smaller than a gas. It is the intermediate phase between a gas and a solid. For the gas, it would be the one to occupy the largest volume since the molecules can freely travel and move around.
Final answer:

Ice has the largest volume, followed by liquid water, and then water vapor.

Explanation:

Water is one of the few substances on Earth that exists naturally in all three states: solid (ice), liquid (water), and gas (water vapor). The density of each state of water varies, with the vapor state being the least dense and the liquid state being the most dense. The solid state, which is ice, is less dense than the liquid state. So, in terms of volume, the ice sample will have the largest volume, followed by the liquid water sample, and then the water vapor sample, which will have the smallest volume.

Shari was in the kitchen when she heard a crash. She went into her bedroom and found her window broken and a baseball lying on the ground. Shari said "this baseball broke my window.” This statement is an

inference because she is blaming someone else for the broken window.
inference because she drew a conclusion based on evidence.
observation because she heard the crash before she came into the room.
observation because she can see the evidence

Answers

Inference because she drew a conclusion based on evidence.

What is the molecular mass of cholesterol if .00105mol wieghs .406g?

Answers

Based on the information given in the question, the cholesterol has:
     a mass of 0.406 g
                 &
       moles of 0.00105 mol

Now, Molecular Mass = Mass  ÷  Moles
                                   
                                     = 0.406g  ÷  0.00105mol

                                     = 386.6667 g/mol

                                      ≈ 386.67 g/mol


During an effusion experiment, oxygen gas passed through a tiny hole 2.5 times faster than the same number of moles of another gas under the same conditions. What is the molar mass of the unknown gas? (Note: the molar mass of oxygen gas is 32.0 g/mol.)

Answers

Use Law of Graham.

rate A / rate B = √ (molar mass B / molar mass A)

rate A / rate B = 2.5

molar mass A = 32.0 g/mol

=> (molar mass B / molar mass A) = (rate A / rate B)^2

molar mass B = molar mass A * (rate A / rate B)^2

molar mass B = 32.0 g/mol * (2.5)^2 = 200. g/mol

Answer: 200 g/mol

Answer:

2.0 x 10^2g

Explanation:

If you reacted 88.9 g of ammonia with excess oxygen, what mass of nitric oxide would you expect to make? You will need to balance the equation first. NH3(g) + O2(g) -> NO(g) + H2O(g)

Answers

1) Balanced chemical equation

4NH3(g) + 5O2(g) ---> 4NO(g) + 6H2O(g)

2) State the molar ratios

4 mol NH3 : 5 mol O2 : 4 mol NO : 6 mol H2O

3) Convert 88.9 g of ammonia to moles, using the molar mass

molar mass of NH3 = 14 g/mol + 3 * 1 g/mol = 17 g/mol

number of moles = mass in grams / molar mass = 88.9 g / 17 g/mol = 5.23 mol NH3

4) Make the proportion

4 mol NO / 4 mol NH3 = x / 5.23 mol NH3=> x = 5.23 mol NO

5) Convert 5.23 mol NO to grams

molar mass NO = 14 g/mol + 16g/mol = 30 g/mol

mass = number of moles * molar mass = 5.23 mol * 30 g/mol = 156.9 g ≈ 157 g

Answer: 157 grams

Final answer:

The mass of nitric oxide expected to be produced from reacting 88.9 g of ammonia with excess oxygen is 156.7 g after balancing the chemical equation and performing stoichiometry calculations.

Explanation:

Calculating Mass of Nitric Oxide Produced from Ammonia:

To find the mass of nitric oxide that can be produced from reacting 88.9 g of ammonia with excess oxygen, first we need to balance the chemical equation. The balanced equation is:

4NH3(g) + 5O2(g) → 4NO(g) + 6H2O(g)

Next, we use the molar mass of ammonia (NH3) which is 17.03 g/mol to convert 88.9 g of NH3 to moles:

88.9 g NH3 ÷ 17.03 g/mol = 5.22 moles of NH3

Since the balanced equation shows that 4 moles of NH3 produce 4 moles of NO, we can calculate the moles of NO produced from 5.22 moles of NH3:

(5.22 moles NH3) × (4 moles NO / 4 moles NH3) = 5.22 moles NO

Finally, using the molar mass of NO (30.01 g/mol), we find the mass of NO produced:

(5.22 moles NO) × (30.01 g/mol) = 156.7 g NO

Therefore, we expect to make 156.7 g of nitric oxide from the reaction of 88.9 g of ammonia with excess oxygen.

Assume you had a silver sphere with a mass of 1.50kg. calculate the diameter of the sphere (in cm). the density of silver is 10.5 g/cm^3. the formula for the volume of a sphere is... v = 4/3 3.14 r^3

Answers

First, we calculate the volume of the sphere through the following rule:
density = mass / volume
volume = mass / density = 1.5 / 10500 = 1.43 x 10^-4 m^3

Then, we use the rule of the volume to calculate the radius:
 v = 4/3 3.14 r^3
1.43 x 10^-4 =  4/3 3.14 r^3
r^3 = 3.4 x 10^-5
r = 0.0324 m

The last step is to get the diameter as follows:
diameter = 2 x radius = 2 x 0.0324 = 0.0648 m = 6.48 cm

What is present in the glucose molecule that is missing in the carbon dioxide molecule?

Answers

hydrogen .carbon dioxide is CO2 and glucose is C6H12O6

What type of bond is easily disrupted in aqueous solutions?

Answers

Ionic bonds are easily disrupted in aqueous solutions, as they can ionize readily and as a result be surrounded by the solvent, water, where the partial positive and negative charges would be surrounding the appropriate charge of the ions.

Calculate the amount of heat required to vaporize 84.8 g of water at its boiling point.

Answers

You need to use the specifc latent heat of vaporization of water which you can find in internet.

I found 2,264.76 KJ / kg = 2,264.76 J/g

Now use total heat = specific latent heat * mass

=> 84.8 g * 2,264.76 J/ g = 192,051.65 J.

Answer: 192,051.65 J

Answer: Amount of heat required to vaporize 84.8 g of water is 191.7kJ.

Explanation: We are given 84.8 grams of water, to convert it into moles, we use the formula:

[tex]Moles=\frac{\text{Given mass}}{\text{Molar mass}}[/tex]

Molar mass of water = 18 g/mol

[tex]Moles=\frac{84.8g}{18g/mol}=4.71moles[/tex]

As we know that [tex]\Delta H_{vap}[/tex] for 1 mole of water at 100° C is 40.7 kJ/mol

So, to calculate the amount of heat required, we use the formula:

[tex]q=m\Delta H_{vap}[/tex]

Putting the values in above equation, we get

[tex]q=4.71mol\times 40.7kJ/mol[/tex]

q = 191.7kJ

which of the following is the most reasonable explanation for a drop in temperature of gas?

A) a decrease in the volume of the container
B) a decrease in the average kinetic energy of the gas particles
C)an increase in the average potential energy of the gas particles
D) an increase in gas pressure

Answers

B) a decrease in the average kinetic energy of the gas particles 

Answer: The correct answer is option B.

Explanation:

Average kinetic energy of the gas molecule is given by relation:

[tex]E_K=\frac{3}{2}\frac{R}{N_A}\times T[/tex]

[tex]N_A[/tex] = Avogadro Number

T = Temperature of the gas in Kelvins.

R = Universal gas constant

[tex]E_K\propto T[/tex]

With increase in temperature the kinetic energy of the gas molecule increases and vice-versa.

So, according to the question the explanation for a drop in temperature of the gas is decrease in average kinetic energy of the gas molecules.

Hence, the correct answer is option B.

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