How do you do mole conversions

Answers

Answer 1
Converting from mass (grams) to moles: Divide your initial mass by the molar mass of the compound as determined by the periodic table.Converting from moles to mass (grams): Multiply your initial mole value by the molar mass of the compound as determined by the periodic table.Converting from volume (liters) to moles: Divide your initial volume by the molar volume constant, 22.4 L.Converting from moles to volume (liters): Multiply your mole value by the molar volume constant, 22.4L.Converting from particles (atoms, molecules, or formula units) to moles: Divide your particle value by Avogadro’s number, 6.02×1023. Remember to use parentheses on your calculator!Converting from moles to particles (atoms, molecules, or formula units): Multiply your mole value by Avogadro’s number, 6.02×1023.Mole-to-mole conversions: Use the coefficients from your balanced equation to determine your conversion factor. Be sure your units cancel out so you end up with the correct mole value.

Related Questions

A container at stp contains 3.46 moles of neon gas. What is the volume of the neon gas?

Answers

3.46 moles x 22.4 L/1 mol neon gas = 77.5 L neon gas

Which statement about the orinoco river is true.

A. IT FLOWS THROUGH ECUADOR

B. IT IS SECOND LONGEST RIVER IN SOUTH AMERICA

C. IT FLOWS THROUGH VENEZUELA

D. IT EMPTIES INTO THE PACIFIC OCEAN

Answers

Hello,

I think the answer is B) It is second longest river in south america 

Hope this helps!!

~Girlygir101~

A group of engineers run a trial test on a space probe built for measuring the surface temperature of the sun. After the trial, the engineers realize that the probe melted and failed to collect the needed data. What should the engineers do next?

Answers

From the scenario given in the question, it can be seen that the first probe that the engineers designed melted because its ability to resist high temperature is quite low. So, the next thing the engineers should do is to re-design the probe and this time around they should use materials that will be able to resist the great heat of the sun. 

Explanation:

Probe melted because the material used in the making of the probe was not that much resistant to the high temperature of the sun. So, now they have to design a probe with material which should have very high resistance to a high temperature so that the probe does not get melt again.

what are the characteristics of a plasma

Answers

A plasma is a hot ionized gas consisting of approximately equal numbers of positively charged ions and negatively charged electrons. The characteristics  of plasmas are significantly different from those of ordinary neutral gases so that plasmas are considered a distinct "fourth state of matter

Answer:

After the well-known solids, liquids, and gases, plasmas are considered as the fourth state of matter. They are found rarely on Earth, however, they are found in enormous quantity all through the universe. As they comprise free-flowing charged particles, plasmas exhibit many specific features.  

In the majority of the plasmas, the electrons and protons take place in equal numbers, forming it electrically neutral. As they flow liberally, they are influenced by magnetic and electric fields in the manner not witnessed in the other forms of matter. These fields can affect plasmas over higher distances, warping, pinching, and modeling them, like the twisting flares observed on the Sun's surface.  

The amount of heat needed to raise 25 g of a substance by 15°C is 293 J. What is the specific heat of the substance? Use the equation C = q/mΔT.

a.) 0.13 J/g-°C

b.) 0.20 J/g-°C

c.) 0.78 J/g-°C

d.) 0.46 J/g-°C

Answers

It is so simple and direct substitution in the formula of :
C= Q/ m ΔT
when C is specific heat constant
and Q is heat energy of joul 
and m is the mass
and ΔT is the change in temperature
and when we have Q = 293 J & m = 25 g & ΔT = 15 °C so by substitution:
∴C = 293/(25*15)
      = 0.78 J/g-°C 
∴ 0.78 J/g-°C is the correct answer

Answer:

0.78 J/g-°C is the correct answer

Explanation:

Write a balanced equation for the combustion reaction that occurs between propane and oxygen. and limiting reactant

Answers

Final answer:

The balanced chemical equation for the combustion of propane is C3H8(g) + 5O2(g) → 3CO2(g) + 4H2O(l). To find the limiting reactant, convert the mass of the reactants to moles, then compare the mole amounts to the ratio in the balanced equation.

Explanation:

Combustion of Propane

The balanced chemical equation for the combustion of propane is:
C3H8(g) + 5O2(g) → 3CO2(g) + 4H2O(l)
To determine the limiting reactant, compare the mole ratio of the reactants to the amounts you have. For propane and oxygen, the mole ratio is 1:5. In the given problem, 30.0 g of propane (C3H8) reacts with 75.0 g of oxygen (O2). First, convert the mass of each reactant to moles using their molar masses (propane: 44.10 g/mol, oxygen: 32.00 g/mol). Then compare the mole amounts given the ratio required by the balanced equation. The reactant that provides the smaller number of moles required by the ratio is the limiting reactant.

How is density of a substance related to its mass and volume?

Answers

Density is mass per unit of volume. We find the mass of a given volumeof the substance under inspection and compute its density from that. Density is one of the basic physical characteristics of a substance.

Which event would likely cause an agrarian society to begin developing irrigation techniques that conserve water?

A. A shortage of fossil fuel resources
B. The emergence of a new crop disease
C. A period of drought
D. An increase in air pollution

Answers

Answer: C. A period of drought

Explanation:    

A drought is a natural hazard which occurs when a region receives below average precipitation, the region experiences a shortage of water due to the sources of water like lakes, ponds and river get dry. The region is affected by hot and dry climatic conditions, soil becomes compact and looses it's fertility.

C. A period of drought will cause the agrarian society to begin developing the irrigation techniques required to conserve water. As, the agriculture is necessary practice to meet the food requirement of large human population the drought conditions may pose difficulty in irrigating the agricultural field.

Answer:

A period of drought

Explanation:

got it right on a.p.e.x

All chemical reactions convert one substance into another. select one:
a. true.
b. false.

Answers

b. false

All reactions have an equilibrium, at which the rate of the reaction rates on each side of the equation are equal to each other. Sometimes that can be one-way, but it’s more often a two-way street. Where you’ll have an amount of products and reactants.

No atoms are destroyed or made into new ones. When reactants come into touch with one another, the bonds between their atoms are broken, and the atoms then reorganize and establish new bonds to create the products. This statement is false.

What is chemical reaction ?

In a chemical reaction, one or more substances also known as reactants are changed into one or more additional substances also known as products. Chemical elements or chemical compounds make up substances.

A chemical change, often known as a chemical reaction, is the process by which one or more substances are converted chemically into another.

A drug combining with another substance may be necessary in this situation. It could also entail a material disintegrating into other substances.

Thus, option B is correct.

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. When the following equation is balanced with the lowest whole number coefficients possible, what is the coefficient in front of Ca3(PO4)2? Ca(OH)2 + H3PO4 yields H2O + Ca3(PO4)2 1 2 3 6

Answers

2H3PO4 + 3Ca(OH)2 ===>>>  6 H20 + Ca3(PO4)2

Answer
1 <<<<<=====

Answer: Option (a) is the correct answer.

Explanation:

An equation can only be balanced when number of reactants equal the number of products.

The given equation is as follows.

   [tex]Ca(OH)_{2} + H_{3}PO_{4} \rightarrow Ca_{3}(PO_{4})_{2} + H_{2}O[/tex]

The number of reactant atoms are as follows.

Ca = 1O = 6H = 5P = 1

The number of product atoms are as follows.

Ca = 3O = 9H = 2P = 2

To balance the equation, multiply [tex]Ca(OH)_{2}[/tex] by 3, and [tex]H_{3}PO_{4}[/tex] by 2 on the reactant side. Multiply [tex]H_{2}O[/tex] by 6 on the product side. Therefore, the equation will be as follows.

[tex]3Ca(OH)_{2} + 2H_{3}PO_{4} \rightarrow Ca_{3}(PO_{4})_{2} + 6H_{2}O[/tex]

Thus, we can conclude that the coefficient in front of [tex]Ca_{3}(PO_{4})_{2}[/tex] is 1.

If a solution of hf (ka = 6.8 10-4) has a ph of 3.67, calculate the total concentration of hydrofluoric acid.

Answers

Final answer:

The concentration of hydrofluoric acid in the solution, calculated using the given pH and the acid dissociation constant Ka, is about 0.069 M.

Explanation:

The problem is asking us to find the concentration of hydrofluoric acid in a solution where pH and Ka are given. We can use the following formula that relates pH, Ka, and the concentration of the acid [Ha]:
pH = -log([H+]), and since for weak acids [H+] ~= sqrt(Ka × [Ha]), we can substitute and solve for [Ha].
Thus, [Ha] = ((10^-pH)²) / Ka = ((10⁻³)²) / 6.8×10⁻⁴ = 0.069 M. So, the concentration of hydrofluoric acid in the solution is approximately 0.069 M.

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Final answer:

To find the total concentration of the hydrofluoric acid, we use the dissociation constant and the pH to determine the hydronium ion concentration. We then assume ionic product equals hydronium ion concentration. This allows us to calculate the initial concentration of the hydrofluoric acid as approximately 3.16 M.

Explanation:

The question deals with hydrofluoric acid (HF) whose dissociation constant, Ka is given to be 6.8 x 10^-4. The pH of the solution is given to be 3.67. First, we need to find the concentration of hydronium ions: [H3O+] from the given pH using the relationship pH = -log[H3O+], which gives us [H3O+] = 10^-3.67 = 2.15 x 10^-4 M.

Next, we use the formula for the dissociation constant Ka of an acid, which is [H3O+][F-]/[HF]. Here [H3O+] = 2.15 x 10^-4 and [F-] = x, where x is the concentration of the anion produced. [HF] is the initial concentration of HF which we are trying to find. By assuming that x is much smaller than [HF] and hence can be neglected in the denominator, we set [H3O+] = [F-] = x = 2.15 x 10^-4. Rearranging the equation, we find that [HF] = Ka/x = (6.8 x 10^-4) / (2.15 x 10^-4) = 3.16 M.

Thus, the total concentration of hydrofluoric acid in the solution is approximately 3.16 M.

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What structural feature of a leaf enables it to obtain co2 from the air?

Answers

I believe the structural feature is stomata. The stomata in the leaves facilitates the process of gaseous exchange in plants. During the day plants utilize carbon iv oxide to aid in the process of photosynthesis while during the night plants use oxygen for repsiration and releasing carbon dioxide in the atmosphere through the stomata of a leave.

Find the theoretical yield of silicon monocarbide if 50.0 grams of silicon dioxide reacts with carbon. then, calculate the actual amount of silicon monocarbide produced in the lab if the percent yield was 87.2%. (work backwards to find actual yield.)

Answers

1) Answer is: yield of silicon monocarbide is 33,41 g.
Chemical reaction: SiO₂  + 3C  → SiC  + 2CO.
m(SiO₂) = 50,0 g.
n(SiO₂) = m(SiO₂) ÷ M(SiO₂).
n(SiO₂) = 50 g ÷ 60 g/mol.
n(SiO₂) = 0,833 mol; limiting reagent.
Missing question: m(C) = 79,1 g.
n(C) = 79,1 g ÷ 12 g/mol = 6,59 mol.
From chemical reaction: n(SiO₂) : n(SiC) = 1 : 1.
n(SiC) = 0,833 mol.
m(SiC) = 0,833 mol · 40,11 g/mol = 33,41 g.

2) Answer is: actual yield is 29,13 g.
Chemical reaction: SiO₂  + 3C  → SiC  + 2CO.
Percent yield = 87,2% ÷ 100% = 0,872.
Percent yield = actual yield / theoretical yield.
m(SiC) = 33,41 g ·0,872.
m(SiC) = 29,13 g.
Theoretical yield is the maximum amount of product that can be produced from limiting reactant and actual yield is a product that is obtained by experimentation.


Final answer:

The theoretical yield of SiC from 50.0 grams of SiO2 is 33.36 grams, and the actual yield is 29.07 grams, based on an 87.2% percent yield.

Explanation:

The theoretical yield of silicon monocarbide (SiC) can be calculated from the stoichiometry of the reaction between silicon dioxide (SiO2) and carbon (C). Given that 50.0 grams of SiO2 are reacting, we first convert this mass to moles using the molar mass of SiO2 (60.08 g/mol). The balanced chemical equation for the reaction is:

SiO2(s) + 3C(s) → SiC(s) + 2CO(g)

Next, we determine the moles of SiC that can be produced from the moles of SiO2, and convert those moles to grams to find the theoretical yield of SiC. To calculate the actual yield, we use the percent yield (87.2%) and apply it to the theoretical yield.

The steps are:

Convert 50.0 grams of SiO2 to moles: n(SiO2) = 50.0 g / 60.08 g/mol.

Use the stoichiometry of the reaction to determine moles of SiC.

Convert moles of SiC to grams, which is the theoretical yield.

Multiply the theoretical yield by the percent yield (87.2%) to determine the actual yield of SiC.

The theoretical yield: n(SiO2) = 50.0 / 60.08 = 0.832 moles of SiO2, which theoretically yields 0.832 moles of SiC since the molar ratio between SiO2 and SiC is 1:1. Now, using the molar mass of SiC (40.10 g/mol), the theoretical yield in grams: 0.832 moles × 40.10 g/mol = 33.36 grams of SiC. The actual yield of SiC is then calculated as: 33.36 g × 87.2% = 29.07 grams.

The rate of a chemical reaction in a cell is the measure of how

Answers

can be measured by the rate at which a reactionn is used up or rate whuch is a product
is formed. hope it helps

Compare two electrons with quantum number sets (4, 2, 1, +½) and (4, 1, 1, +½). Be specific about each in terms of location and properties, based on their four quantum numbers.

Answers

1) The set of quantum numbers (4, 2, 1, +1/2) represent this:

a) first quantum number, 4: is the the main quantum number, it represents the main energy level, if it were the last electron of the atom, that means that the electron belonged to an element in the row number 4 of the periodic table, that is one element between the atomic numbers 19 and 36.

b:second quantum number, 2; is the sub-level of energy, it indicates the kinf (shepe) of orbital, the number 2 means that the orbital is type d.

c. third quantum number, 1: it represents the orientation of the orbital in the space.

d. fourth quantum number, +1/2: it is the spin quantum number, given that two electrons in an atom cannot have the same set of four quantum numbers  and two electrons can share the same orbital, when one electron has spin +1/2 the other electron in the same orbital has opposite spin (- 1/2).

2) Set of quantum numbers (4, 1, 1, +1/2).

This electron is in the same main energy level than the previous one (4), but it is in a p orbital (second quantum number = 1), instead of a d orbital, and the orientation is px (third quantum number = 1). The spin is +1/2 the same as the other electron.
Final answer:

The quantum numbers (4, 2, 1, +½) and (4, 1, 1, +½) represent two different electrons in an atom.

The first quantum number, n, represents the principal energy level, which is 4 for both electrons.

The second quantum number, l, refers to the type of subshell, where l = 2 corresponds to the d subshell and l = 1 corresponds to the p subshell.

The third quantum number, m₁, specifies the specific orbital within the subshell. For the electron (4, 2, 1, +½), m₁ = 1, indicating a specific orbital within the d subshell. For the electron (4, 1, 1, +½), m₁ = 1, indicating a specific orbital within the p subshell.

The fourth quantum number, m², represents the spin of the electron. In both cases, it is +½, indicating a spin up orientation for both electrons.

Explanation:

The quantum numbers (4, 2, 1, +½) and (4, 1, 1, +½) represent two different electrons in an atom. The first quantum number, n, represents the principal energy level, which is 4 for both electrons. The second quantum number, l, refers to the type of subshell, where l = 2 corresponds to the d subshell and l = 1 corresponds to the p subshell.

The third quantum number, m₁, specifies the specific orbital within the subshell. For the electron (4, 2, 1, +½), m₁ = 1, indicating a specific orbital within the d subshell. For the electron (4, 1, 1, +½), m₁ = 1, indicating a specific orbital within the p subshell.

The fourth quantum number, m², represents the spin of the electron. In both cases, it is +½, indicating a spin up orientation for both electrons.

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Of the three types of oxygen​ flowmeters, which one can only be used​ upright?

Answers

Given the choices;
a) Bourdon gauge flowmeter
b) Hudson gauge flow meter
c) Constant flow selector 
d) pressure compensated flowmeter.
The one that can only be used upright is the pressure-compensated flowmeter. Compensated flowmeters work with a variable orifice and fixed pressure. They read back pressure, and take into account resistance changes down stream from the needle valve. If pressure exceeds 50psig downstream, flow ceases.

which diagram best illustrates the ion-molecule attractions that occur when the ions of NaCl(s) are added to water

Answers

Diagram is on the picture below.
Answer is: 1).
Sodium chloride is ionic compound and in the water dissociate in sodium cation (positive charge) and chloride anion (negative charge). Water is polar compound, oxagan has negative charge and hydrogen charge. Positive interact witn negative charge and negative with positive charge.

The ion-molecular attraction between NaCl and water has been Na attracted with the oxygen of water, while Cl has been attracted with the hydrogen of water.

The ion has been the charged molecules that has been formed with the loss or gain of the electrons, while the molecules has been the molecules with the bonded anions and cations.

Ion-molecule attractions between NaCl and water

The water has been the polar molecule, with the development of partial positive charge over hydrogen atoms, and partial negative charge over the oxygen atom.

The like charges repel each other, while unlike charges attract each other.

The addition of NaCl to water results in the formation of positive Na ions, and negative Cl ions.

The interaction is demonstrated in the image attached.

Thus, the molecular attraction between NaCl and water has been Na has been attracted with the oxygen of water while Cl has been attracted with the hydrogen of water.

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Calculate the energy to heat the cube of silver, with a volume of 20.0 cm3 , from 15 âc to 32 âc. (assume that density of silver is 10.5 g/cm3, specific heat for silver is 0.235 j/gâc.)

Answers

Energy = mass × specific heat capacity × change in temperature...

We ain't given mass in the question but volume and density as well...

Then we can use the relationship density = mass/volume
Mass = density × volume
Mass = 10.5g/cm³ × 20cm³
Mass = 210g

Energy = 210 × 0.235 × (32-15)

Energy = 210×0.235×17

Energy = 838.95J

Or 0.84Kj.....
Final answer:

The energy required to heat the silver cube from 15°C to 32°C can be calculated via the formula for heat transfer. The mass of the silver cube is calculated to be 210g using the given volume and density.

Explanation:

The energy required to heat a substance is calculated using the formula q = mcΔT, where 'q' is the heat energy, 'm' is the mass, 'c' is the specific heat capacity and 'ΔT' is the change in temperature.

The volume of the silver cube is given as 20.0 cm3. The density of silver is given as 10.5 g/cm3. Therefore, you can calculate the mass of the silver cube by multiplying the volume with the density, that is m = volume x density = 20.0 cm3 x 10.5 g/cm3 = 210 g.

The specific heat capacity for silver, c, is given to be 0.235 J/g°C. The change in temperature, ΔT, is final temperature - initial temperature = 32°C - 15°C = 17°C.

Substituting the calculated and given values into the formula, we get q = (210 g)(0.235 J/g°C)(17°C) = 826.95 joules. Therefore, the energy required to heat the cube of silver from 15°C to 32°C is about 828 Joules.

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A piece of metal weighing 5.10 g at a temperature of 48.6 c was placed in a calorimeter in 20.00 ml of water at 22.1 degrees c the final equilibrium temperature was found to be 29.2 what is teh specific heat of the metal

Answers

Heat gained is equal to the heat lost;
Heat lost by metal  = 5.10 ×y ×19.4, where y is the specific heat capacity of the metal.
                              = 98.94 y
Heat gained by water = 20 g× 4.18 j/g× 7.1
                                  = 593.56 Joules
Therefore; 98.94 y = 593.56
                            y = 593.56/98.94
                               = 5.99919 j/g
                               ≈ 6.0 j/g
Therefore, the specific heat capacity of the metal is 6.0 J/g°C

At the final equilibrium temperature, the specific heat capacity of the metal is 5.999 J/g°C.

Given the following data:

Mass of metal = 5.10 gramsFinal temperature of metal = 48.6°CInitial temperature of water = 22.1°CFinal temperature of water = 29.2°CMass of water = 20.00 ml = 20 gramsSpecific heat capacity of water = 4.18 J/g°C

To find the specific heat capacity of the metal:

Mathematically, quantity of heat is given by the formula;

[tex]Q = mc\theta[/tex]

Where:

Q represents the quantity of heat.m represents the mass of an object.c represents the specific heat capacity.∅ represents the change in temperature.

The quantity of heat lost by the water = The quantity of heat gained by the metal.

[tex]Q_{lost} = Q_{gained}\\\\mc\theta = mc\theta\\\\20(4.18)(29.2 - 22.1) = 5.10c(48.6 - 29.2)\\\\83.6(7.1) = 5.10c(19.4)\\\\593.56 = 98.94c\\\\c = \frac{593.56}{98.94}[/tex]

Specific heat capacity of metal, c = 5.999 J/g°C

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How much water must be added to 36.0 g of srcl2 to produce a solution that is 35.0 wt% srcl2? how much water must be added to 36.0 of to produce a solution that is 35.0 wt% ? 48.6 g 66.9 g 103 g 97.2 g?

Answers

To solve this problem we will use the following equation:

w = (m of solute) / (m of solution)

w - percentage 

It is necessary to mention here that mass of solution is a sum of the mass of solute and mass of water.

w = mass CaCl2/(mass of water + mass of CaCl2)

mass of water = x 

0.35 = 36 / (x + 36)

0.35 × (x + 36) = 36

0.35x + 12.6 = 36

0.35x = 23.4

x = 66.86 g of water is necessary




Final answer:

To produce a solution that is 35.0 wt% SrCl2 with 36.0 grams of SrCl2, one would need to add 66.9 grams of water. This is because the total weight of the solution is the weight of SrCl2 plus the weight of the water needed.

Explanation:

In order to determine how much water must be added to 36.0 g of SrCl2 to produce a solution that is 35.0 wt% SrCl2, we must understand that the 35% by weight represents that 35 g of SrCl2 is in 100 g of the solution. Thus, to find the total weight of the water and the SrCl2, we should set up the equation 36g (weight of SrCl2) / X g (total weight of solution) = 35%, which would give that X = 102.9 g. The total solution weight is the weight of the SrCl2 plus the weight of the water needed, so to find the weight of the water we subtract the weight of SrCl2 (36 g) from the total weight of solution (102.9 g), which gives us 66.9 g as the amount of water to be added to the SrCl2.

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Compound X has the molecular formula C3H6, and Compound Y has the molecular formula C6H12. How are the two compounds related? A.They are made of the same elements, but are different compounds B.They are identical compounds expressed in different ways. C. They are different compounds, but made from the same molecule.

Answers

A. Same elements, different compounds
They are made of the same element, but are different compounds 

if all of the SCN- is complexed with Fe3+ to form FeNCS2+ what is the molar concentration of FeNCS2+

Answers

Molarity = number of moles X (1000/volume)

number of moles of SCN⁻ = 0 .001 X 3 / 1000 = 3 X 10⁻⁶ moles    in the 25 ml of solution

2) SCN⁻ + Fe³⁺ ===> FeNCS²⁺

1 mole SCN⁻ produces 1 mole of FeNCS²⁺

Therefore moles of FeNCS²⁺ in 25 ml = 3 X 10⁻⁶

Molar Concentration of FeNCS²⁺ = (3 X10⁻⁶ )X 1000 / 25 = 1.2 X 10⁻⁴ Moles / liter

The molar concentration of Fe(SCN)²+ is 3.52 × 10⁻² M, assuming all SCN⁻ is complexed with Fe³+. Thus, the concentration of Fe(SCN)²+ is equal to 3.52 × 10⁻² M.

The molar concentration of Fe(SCN)²+, assume that all of the SCN⁻ is complexed with Fe³+ to form Fe(SCN)²+. The concentration of Fe(SCN)²+ after 10 s is 3.52 × 10⁻² M under conditions of excess Fe³+.

If all SCN⁻ is complexed with Fe³+, then the initial molar concentration of SCN⁻ is entirely converted to Fe(SCN)²+. Since the formation of Fe(SCN)²+ is stoichiometric, the molar concentration of SCN⁻ is equal to the molar concentration of Fe(SCN)²+ after the reaction.

Therefore, the molar concentration of Fe(SCN)²+ is 3.52 × 10⁻² M. The reaction is stoichiometric, meaning the initial concentration of SCN⁻ is converted entirely to Fe(SCN)²+.

2CH4 + 4O2 → CO2 + 4H2O Which statement is true regarding the chemical equation? A) The equation is balanced. B) The 4 in front of the oxygen on the product side needs to be a 6 in order to be balanced. C) The 2 in front of methane, CH4, needs to be changed to a 3 in order to be balanced. D) The carbon dioxide on the product side needs a 2 in front of it in order for it to be balanced.

Answers

The answer is D). Put a 2 in front of the CO2 on the products side. 

Answer: The correct answer is Option D.

Explanation:

A balanced equation follows Law of conservation of mass. This law states that mass can neither be created nor be destroyed but it can only be transformed from one form to another. In a chemical reaction, mass is always conserved.

This also states that the total number of individual atoms on the reactants side must be equal to the total number of individual atoms on the product side.

For the given chemical reaction:

[tex]2CH_4+4O_2\rightarrow CO_2+4H_2O[/tex]

On the reactant side:

Number of Carbon atoms = 2

Number of Hydrogen atoms = 8

Number of Oxygen atoms = 8

On the product side:

Number of Carbon atoms = 1

Number of Hydrogen atoms = 8

Number of Oxygen atoms = 4

In order to balance the number of atoms, 2 must be added infront of [tex]CO_2[/tex] molecule, in order to balance the equation.

Hence, the correct answer is Option D.

What is the osmotic pressure of a 0.065 molar aqueous NaCl at 298 Kelvin?

Answers

According to osmotic pressure formula:
π = iCRT
when π is the osmotic pressure
i is van't Hoff factor= 2
R universal gas constant 0.0821 
T temperature in Kelvin = 298 K
C is molar concentration of solution =0.065 M
So by substitution, we will get the osmotic pressure:
π = 2* 0.065 * 0.0821 * 298 = 3.18 atm

Answer:

3.179 atm

Explanation:

Osmotic pressure is expressed as:

π = iMRT , Where

π = osmotic pressure

i = van't Hoff factor  

M = molar concentration

R = universal gas constant (0.08206 L·atm/mol·K )

T = absolute temperature in K

In this case, i = 2, M = 0.065, R = 0.08206 and T = 298. Substitute into the formula:

π = 2 x 0.065 x 0.08206 x 298

   = 3.179 atm

The osmotic pressure is 3.179 atm.

Which of the following solutes will lower the freezing point of water the most?

the molecular compound sucrose (C12H22O11)
the ionic compound magnesium sulfate (MgSO4)
the ionic compound lithium chloride (LiCl)
the ionic compound calcium fluoride (CaF2)

Answers

Freezing point depression is directly proportional to molality. So the compound to have the greatest effect will be the one that disassociates into the most ions = CaF2

Answer: the ionic compound calcium fluoride [tex](CaF_2)[/tex]

Explanation:

[tex]\Delta T_f=i\times k_f\times m[/tex]

[tex]T_f[/tex] = change in freezing point

i = Van'T Hoff factor

[tex]k_f[/tex] = freezing point constant

m = molality

1. For [tex]C_{12}H_{22}O_{11}[/tex] , i= 1 as it is a non electrolyte and does not dissociate.

2. For [tex]MgSO_{4}[/tex] , i= 2 as it is a electrolyte and dissociate to give 2 ions.

[tex]MgSO_4\rightarrow Mg^{2+}+SO_4^{2-}[/tex]

3. For [tex]LiCl[/tex], i= 2 as it is a electrolyte and dissociate to give 2 ions.

[tex]LiCl\rightarrow Li^{+}+Cl^{-}[/tex]

4. For [tex]CaF_{2}[/tex], i= 3 as it is a electrolyte and dissociate to give 3 ions.

[tex]CaF_2\rightarrow Ca^{2+}+2F^{-}[/tex]

Thus as vant hoff factor is highest factor for [tex]CaF_{2}[/tex] and the freezing point will be lowest.

As a solid, fe adopts a body-centered cubic unit cell. how many unit cells are present per cubic centimeter of fe?

Answers

Before start calculating, we have to know density and molar mass of iron: 

d(Fe)=7.874 g/cm3

M(Fe)=55.9 g/mole

From iron density, we can see that there is 7.874 g of iron in 1 cm3, hence we can calculate the number of moles in 1 cm3 of iron:

n(Fe) = m(Fe) / M(Fe) 

n(Fe) = 7.874 / 55.9 = 0.14 moles 

Then we can determine the number of particles:

N(Fe) = n(Fe) x NA 

N(Fe) = 0.14 x 6,02 x 10^23

N(Fe) = 8.45 x 10^22 atoms of Fe 

If we know that body-centered cubic system has 2 lattice points per unit cell, we can calculate the number of cells in 1 cubic centimeter of Fe:

N(cell) = N(Fe) / 2 = (8.45 x 10^22) / 2 = 4.225 x 10^22 cells in 1 cm3

Answer:

4.245 × 10²¹ cubic centimetre of Fe

Explanation:

First step is to find the number of atoms that is present in Fe(Iron)

The atomic mass of Fe(iron) is  55.845

We  have to convert  the atomic weight into grams

1 atomic mass = 1.66 x 10⁻²⁴grams

55.845(atomic mass of Fe) =

55.845 x 1.66 x 10 ⁻²⁴ grams = 9.27 x 10²² grams.

Therefore, the number of atoms in a cubic centimetre of Fe (Iron) =

Density of Fe(solid) ÷ number of grams of Fe

Density of Fe (solid) is known as = 7.874g/cm³

The number of atoms in a cubic centimetre of Fe (Iron =

7.874g/cm³ ÷9.27 x 10²²grams

= 8.494 × 10²¹atoms.

In the question we are told Fe adopted a body centered cubic unit cell

Hence , in Body centered cubic unit cell, we have:

We have one atom at the 8 corners of a cube

We also have one body atom the cube's center

8 corners × 1/8 per corner atom = 8 × 1/8 = 1 atom

(8 corners × 1/8 per corner atom) + (1× 1) = 2 atoms

Therefore, the total number of featoms present per unit cell = 2 atoms.

The number of unit cells are present per cubic centimeter of Fe =

Number of Fe atoms per cubic centimeter ÷ Number of Fe per unit cell

= 8.494 × 10²¹ atoms ÷ 2 atoms.

= 4.247 × 10²¹ cubic centimetre of Fe

Hence the number of unit cells that are present per cubic centimeter of Fe is

4.247 × 10²¹ cubic centimetre of Fe.

Through a process known as electrolysis, water can be split into hydrogen and oxygen. What type of reaction is this? Give an explanation for your choice.

Answers

Electrolysis of water is the decomposition reaction, because from one molecule (water) two molecules (hydrogen and oxygen) are produced. Water is separeted into two molecules:
Reaction of reduction at cathode: 2H⁺(aq) + 2e⁻ → H₂(g).
Reaction of oxidation at anode: 2H₂O(l) → O₂(g) + 4H⁺(aq) + 4e⁻.

You need to make an aqueous solution of 0.202 M calcium bromide for an experiment in lab, using a 125 mL volumetric flask. How much solid calcium bromide should you add?

Answers

You need to add 4.043 grams of anhydrous calcium bromide (CaBr2) to make a 0.202 M aqueous solution in a 125 mL volumetric flask.

To calculate the mass of CaBr2 needed, use the formula molarity  imes volume (in liters)  imes molar mass. The molarity is given as 0.202 M, and the volume needs to be converted to liters (0.125 L). The molar mass of CaBr2 is approximately 199.9 g/mol. Multiplying these values gives us the mass in grams:

0.202 mol/L  imes 0.125 L  imes 199.9 g/mol = 5.0475 g

However, since mass must be measured accurately in the laboratory, this final result must be weighed correctly using a balance and all the necessary safety precautions must be observed when handling calcium bromide.

How many carbon atoms are there in 0.0418 g of carbon dioxide?

Answers

Find the number of mols of CO2
1 mol of CO2 has a mass of
1 C + 2Os = 12 + 2*16 grams = 44 grams
x mol =0.0418 CO2

1/x = 44/0.0418
44x = 0.0418
x = 0.0418 / 44 
x =  0.00095 mol

1 mol of CO2 has 6.02 * 10^23 Carbon atoms in it. Note that is the same number of molecules of CO2 present.
0.00095 mols = x

1/0.00095 = 6.02*10^23) / x
x = 6.02*10^23 * 0.00095
x = 5.719 * 10^20  atoms of carbon in 0.0418 grams of CO2

What volume of hydrogen gas can be produced by reacting 4.20 g of sodium in excess water at 50.0 Celsius and 106 kPa? The reaction is 2Na + 2H20 --> 2NaOH + H2.

Answers

From the equation, you can conclude that 2 Natrium atoms will form 1 H2 molecule. Then, the number of hydrogen molecules formed by 4.2g of sodium would be:4.2g /(23g/mol) * 1/2= 0.0913 mol. 

Using the ideal gas formula, the volume of the gas would be:
V= nRT/P
V= (0.0913 mol * 8.314 L-kPa/mol-K *323K )/ 106 kPa
V= 2.3131 L
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