A sample in the laboratory is found to contain 3.36 grams of hydrogen, 20.00 grams of carbon, and 26.64 grams of oxygen. The molecular mass is 180.156 g/mol. Determine both the empirical formula and the molecular formula.

Answers

Answer 1

Answer:

Empirical formula is CH₂O.

Molecular formula = C₆H₁₂O₆

Explanation:

Given data:

Mass of hydrogen = 3.36 g

Mass of carbon = 20.00 g

Mass of oxygen = 26.64 g

Molar mass of compound = 180.156 g/mol

Empirical formula = ?

Molecular formula = ?

Solution:

Empirical formula:

It is the simplest formula gives the ratio of atoms of different elements in small whole number

Number of gram atoms of H = 3.36 / 1.01 = 3.3

Number of gram atoms of O = 26.64 / 16 = 1.7

Number of gram atoms of C = 20 / 12 = 1.7

Atomic ratio:

            C                      :        H            :         O

           1.7/1.7                :     3.3/1.7       :       1.7/1.7

              1                     :           2          :        1

C : H : O = 1 : 2 : 1

Empirical formula is CH₂O.

Molecular formula:

Molecular formula = n (empirical formula)

n = molar mass of compound / empirical formula mass

Empirical formula mass = CH₂O = 12×1 + 2× + 16

Empirical formula mass = 30

n = 180.156 / 30

n = 6

Molecular formula = n (empirical formula)

Molecular formula = 6 (CH₂O)

Molecular formula = C₆H₁₂O₆


Related Questions

PLEASE ANSWERRRRRR
Travels faster through air than metal.

electromagnetic wave, mechanical wave, or both.

Answers

Electromagnetic wave travels faster through air than metal.

Option A

Explanation:

There are different kinds of wave energy. The most significant are electromagnetic and mechanical waves. The mechanical waves propagate through the medium by transfer of energy by vibrating of particles in medium.

So, the more number of particles present in the medium, the more fast the mechanical wave can propagate. So the mechanical waves travel faster in metals consisting of more number of free charge carriers. But electromagnetic waves does not need any of the medium to propagate. So it can travel faster in air than in metals.
















Item 4
How do conditions change as the depth of the ocean water increases?


Temperature increases and pressure decreases.


Temperature increases and pressure increases.


Temperature decreases and pressure increases.


Temperature decreases and pressure decreases.







Answers

Answer:

c

Explanation:

Answer:

option 2

Explanation:

temperature decreases as you are further away from the sun and less thermak energy is reaching you. the pressure increases as more water is above you.

(pls give brainliest T.T)

What volume of 0.05 mol/L HCl is required to react with 5.00g of manganese dioxide according to this equation?
4HCl(aq) + MnO2(s) → 2H2O(l) + MnCl2(aq) + Cl2(g)

Answers

217 ml of 0.05 M HCl will be required to react with 5 gm of MnO2 according to the equation given.

Explanation:

The balanced chemical equation is given as:

4HCl(aq) + MnO2(s) → 2H2O(l) + MnCl2(aq) + Cl2(g)

This shows that 4 moles of HCl reacts with 1 mole of MnO2

the mass of Manganese oxide is given as 5 grams

molar mass of MnO2 = 86.93 grams/mole

number of moles of MnO2 is given by

number of moles = [tex]\frac{mass}{atomic mass of one mole}[/tex]

number of moles= [tex]\frac{5}{86.93}[/tex]

                            = 0.0575 moles of MnO2

From the equation:

4 moles of HCl reacts with 1 mole of MnO2

x moles of HCl reacts with [tex]\frac{0.0575}{x}[/tex] moles of MnO2

[tex]\frac{1}{4}[/tex] = [tex]\frac{0.0575}{x}[/tex]

= 0.23 moles of HCl will react

atomic mass of HCl = 36.46 Grams/mole

mass = 0.23 x 36.46

         = 8.3858 grams.of HCl

molarity of HCl = [tex]\frac{number of moles}{volume in liters}[/tex]

volume is 1 litre

so molarity is 0.23 M

Using the formula

M1V1 = M2V2

0.05 x 1 = 0.23 X x

x = 0.217 litre

so 217 ml of 0.05 M HCl will be required to react with 5 gm of MnO2.

how can you tell if your friends are fake or not

Answers

Answer:

you ask  them a couple of questions like what would u do in this problem and see their answer

Explanation:

Honestly I'm going through a lot of fake friends right now and I don't have the guts to tell them off cause I feel bad. But a way to see if there fake is if they usually don't want to hang out with you or always change the plans, or just act like your friends when they want something such as buying them stuff, giving them money, or just wanting something. Another way to test is if they do everything they can to give you as little as possible. If they do stuff like this just stop talking to them or try to get away from what they want or ditch them and tell them their fake.

A solution contains an unknown mass of dissolved barium ions. When sodium sulfate is added to the solution, a white precipitate is filtered and dried and found to have a mass of 258 mg. What mass of barium was in the original solution assume that all of the barium was precipitated out of the solution you the reaction.

Answers

Answer:

The mass of barium in the original solution was 152mg.

Explanation:

The white precipiate that is formed when sodium sulfate, Na₂SO₄, reacts with barium ions in solution, Ba²⁺, is barium sulfate, BaSO₄.

The molar mass of BaSO₄ is 233.38 g/mol. Thus, the number of moles of BaSO₄ is:

#moles = mass in grams / molar mass#moles = 258mg × (1g/1,000mg) × (1mol/233.38g) = 0.00110549mol

Since 1 mole of BaSO₄ contains 1 mole of Ba, there are 0.00110549 mol of Ba²⁺ ions.

Use the atomic mass of Ba to calculate the mass in grams in the original solution:

mass = number of moles × atomic massmass = 0.00110549mol × 137.327g/mol = 0.1518g.mass = 151.8mg = 152mg

Then, with 3 significant figures, there were 152mg of barium in the original solution.

A fountain pen, which has a total volume of 2.4 cm is half full with ink at ground level where the pressure is
780.0 mm Hg. It is put into the pocket of a pilot who flies to an altitude where the pressure is 520.0 mm Hg.
How much ink leaks out of the pen?

Answers

Final answer:

The amount of ink leaking out of the pen when the pressure decreases from 780 mm Hg to 520 mm Hg is 0.6 cm3, calculated using Boyle's Law.

Explanation:

The question involves principles of physics, particularly the behavior of gases under changes in pressure, represented by Boyle's Law, which states that the volume of a gas is inversely proportional to its pressure. This means that when the pressure decreases, the volume of a gas (or ink in this case) increases. The fountain pen was filled at a pressure of 780.0 mm Hg, and the new pressure at the pilot's altitude is 520.0 mm Hg. We can use Boyle's Law to calculate the new volume of ink.

Here's how:

First, start with Boyle's Law equation: P1V1 = P2V2, where P1 is the initial pressure, V1 is the initial volume, P2 is the final pressure, and V2 is the final volume.Next, input your known values: (780 mm Hg)(1.2 cm3) = (520 mm Hg)(V2)Solve for V2, which comes out to be about 1.8 cm3.

Since the pen can only hold 2.4 cm3, the excess volume of ink that is 1.8 cm3 - 2.4 cm3 = -0.6 cm3 will leak out. Note that the negative sign just implies leakage or reduction in volume.

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Pure water can be consumed in a chemical reaction, resulting in the formation of a new
product. Refer to paragraph four. What type of change is this?

A. A physical change
B. A chemical change
C. A mixture change
D. A compound change

Answers

Answer: A chemical reaction is a process that leads to the chemical transformation of one set of chemical substances to another.[1] Classically, chemical reactions encompass changes that only involve the positions of electrons in the forming and breaking of chemical bonds between atoms, with no change to the nuclei (no change to the elements present), and can often be described by a chemical equation. Nuclear chemistry is a sub-discipline of chemistry that involves the chemical reactions of unstable and radioactive elements where both electronic and nuclear changes can occur.

The substance (or substances) initially involved in a chemical reaction are called reactants or reagents. Chemical reactions are usually characterized by a chemical change, and they yield one or more products, which usually have properties different from the reactants. Reactions often consist of a sequence of individual sub-steps, the so-called elementary reactions, and the information on the precise course of action is part of the reaction mechanism. Chemical reactions are described with chemical equations, which symbolically present the starting materials, end products, and sometimes intermediate products and reaction conditions.

Chemical reactions happen at a characteristic reaction rate at a given temperature and chemical concentration. Typically, reaction rates increase with increasing temperature because there is more thermal energy available to reach the activation energy necessary for breaking bonds between atoms.

Reactions may proceed in the forward or reverse direction until they go to completion or reach equilibrium. Reactions that proceed in the forward direction to approach equilibrium are often described as spontaneous, requiring no input of free energy to go forward. Non-spontaneous reactions require input of free energy to go forward (examples include charging a battery by applying an external electrical power source, or photosynthesis driven by absorption of electromagnetic radiation in the form of sunlight).

Different chemical reactions are used in combinations during chemical synthesis in order to obtain a desired product. In biochemistry, a consecutive series of chemical reactions (where the product of one reaction is the reactant of the next reaction) form metabolic pathways. These reactions are often catalyzed by protein enzymes. Enzymes increase the rates of biochemical reactions, so that metabolic syntheses and decompositions impossible under ordinary conditions can occur at the temperatures and concentrations present within a cell.

The general concept of a chemical reaction has been extended to reactions between entities smaller than atoms, including nuclear reactions, radioactive decays, and reactions between elementary particles, as described by quantum field theory.

Final answer:

When pure water is consumed in a chemical reaction, it undergoes a chemical change and forms new substances.

Explanation:

The type of change that occurs when pure water is consumed in a chemical reaction, resulting in the formation of a new product, is B. A chemical change.

In a chemical change, the substances involved undergo a chemical reaction and form new substances with different properties. In this case, when water is consumed, it is chemically broken down and transformed into other compounds and molecules that are used by our bodies.

An example of a chemical change involving water is the process of digestion. When we consume food, it goes through various chemical reactions in our body, breaking down into smaller molecules that our cells can utilize.

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explain why alchemy is not as reliable as modern day science

Answers

Answer:

Explanation:

Alchemy is the forerunner of modern chemistry practiced during the medieval times. Chemists of those times were known and called alchemists.

These chemists had a very shallow knowledge of chemistry but were able to produce a wide range of chemicals.

Alchemy predates the scientific method. Modern science is investigative and relies on the precepts of detailed and methodical process. Modern day chemistry is a vertiginous study with more depth. It seeks to provide details into reasons why certain chemical matter exists as they are. Or how combinations in reactions takes place. Alchemy does not follow the scientific method in its investigation

A 475mL sample of gas was collected at a temperature of -21.5 and a pressure of 756mmHg. Calculate the volume of a gas(in liters) if the conditions were altered to STP

Answers

The volume of gas under STP is 0.512 liters.

Explanation:

At STP (Standaed Temperature and Pressure)

T =  0°C

P = 1 atm = 760 mmHg

Given

P1 = 756 mmHg

T1 = -21.5°C = -21.5 + 273 = 251.5 K

V1 = 475 mL = 0.475 L

P2 = 760 mmHg

T1 = 0°C = 0 + 273 = 273 K

We know that

[tex]\frac{P1 \times V1}{T1} = \frac{P2 \times V2 }{T2}\\\\\frac{756 \times 0.475}{251.5} = \frac{760 \times V2}{273}\\[/tex]

[tex]V2 = \frac{273 \times 756 \times 0.475}{251.5 \times 760} \\V2 = \frac{98034.3}{191140}[/tex]

V2 = 0.512 L

3. Use your knowledge of collision theory to explain the results of your experiments in this laboratory.​ PLEASE HELP ME.

Answers

Answer: I don’t have much of a clue as to what you did; I wasn’t there . In gas theories however, the heated gas into a balloon will expand, and gases when under pressure can liquify. It is easy to see which molecules were popped around the most! Read that chapter and work all of the problems.

Explanation:

How much heat must your body transfer to 500.0g of water to heat it from 25.0°C to body temperature, 37.0°C?

Answers

Answer : The heat your body transfer must be, 25.1 kJ

Explanation :

Formula used :

[tex]Q=m\times c\times \Delta T[/tex]

or,

[tex]Q=m\times c\times (T_2-T_1)[/tex]

where,

Q = heat = ?

m = mass of water = 500.0 g

c = specific heat of water = [tex]4.18J/g^oC[/tex]

[tex]T_1[/tex] = initial temperature  = [tex]25.0^oC[/tex]

[tex]T_2[/tex] = final temperature  = [tex]37.0^oC[/tex]

Now put all the given value in the above formula, we get:

[tex]Q=500.0g\times 4.18J/g^oC\times (37.0-25.0)K[/tex]

[tex]Q=25080J=25.1kJ[/tex]

Therefore, the heat your body transfer must be, 25.1 kJ

What is the relationship between molecules and atoms?
Molecules are combinations of two or more atoms.
Molecules are the parts that make up atoms.
Molecules are the gaseous form of atoms.
Molecules are atoms that have a positive charge.

Answers

Molecules are combinations of two or more atoms.

The relationship between molecules and atoms is molecules are combination of two or more atoms (1st option)

How to determine the relation between atoms and molecules?

To obtain the relationship between atoms and molecules, we must know the definition of atom and molecule. This is given below:

Atoms are smallest particles of an element that can partake in a chemical reaction.

Molecules are combination of two or more atoms that can exist free in natural state

From the above definition, we can see that molecules contains atoms.

Thus, we can conclude that from the above definition that the correct answer to the question is molecules contains two or more atoms (1st option)

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Determine the temperature (in K) of 1.5 moles of gas contained in a 5.5 L vessel at a pressure of 192.4 kPa.

Answers

Answer:

84.96K

Explanation:

The following were obtained from the question:

n = 1.5 mole

V = 5.5L

P = 192.4 kPa = 192400Pa

Recall

101325Pa = 1atm

192400Pa = 192400/101325 = 1.9atm

R = 0.082atm.L/K /mol

T=?

We can obtain the temperature by applying the following:

PV = nRT

T = PV / nR

T = (1.9 x 5.5)/(1.5 x 0.082)

T = 84.96K

Which scientific tool is most useful when trying to convert a known amount of grams of water to moles of water?

Answers

Answer:

The periodic table

Explanation:

The periodic table can show the atomic number and atomic mass of any atoms easily. To convert grams of water to moles of water, you need to know the atoms that made up water molecules then find out their molecular mass. Water is made of two hydrogens and one oxygen atoms. Then you can find the atomic mass of hydrogens is 1 while oxygen is 16. The molecular mass of water will be 2*1 + 16= 18g/mol.

Final answer:

Use the molecular weight of water as a conversion factor to convert grams to moles. Then, use the number of moles and the mass of solvent to determine the molality of the solution.

Explanation:

The most useful scientific tool when trying to convert a known amount of grams of water to moles of water is the molecular weight of water, which is used as a conversion factor. The process involves converting from grams to moles using the molecular weight of water (18.01528 g/mol).

Step 1. Convert from grams to moles of water using the molecular weight of water in the conversion factor. Step 2. Determine the molality of the solution from the number of moles of the solvent and the mass of solvent, in kilograms.

In general, a mole of any substance has a mass in grams numerically equal to its molecular mass. So the molecular weight is a very convenient conversion factor for such calculations.

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I need some help please

Answers

look on google calculator

Select one metal which will displace Sn from
a compound and form metallic tin (Sn).
Cu, Cr, Hg, Ag​

Answers

Answer:

Cr

Explanation:

Cr will displace Sn from compound because Cr is higher than Sn in the electrochemical series of metals

Answer:

Cr

Explanation:

The rate constant of the first-order reaction A→3B is 0.291 s−1. The concentration of A at t=5 seconds is 0.081 mol/L. What was the initial concentration of A?

Answers

Final answer:

To find the initial concentration of A in a first-order reaction, we can use the integrated rate law.

Explanation:

In a first-order reaction, the rate of the reaction is directly proportional to the concentration of the reactant. The rate constant for the given first-order reaction is 0.291 s-1. To find the initial concentration of A, we can use the integrated rate law for first-order reactions:

[A]t = [A]0 * e-kt

Where [A]t is the concentration of A at time t, [A]0 is the initial concentration of A, k is the rate constant, and e is the base of natural logarithms. Putting in the given values, we get:

0.081 mol/L = [A]0 * e-(0.291 s-1)(5 s)

Solving for [A]0, we find that the initial concentration of A is approximately 0.232 mol/L.

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Sugar water is a:
O Homogeneous mixture
Heterogeneous mixture

Answers

Answer:

It is a homogeneous mixture

How many grams of CO2 or an 800 mL at 94.5 K PA at -10°C?

Answers

Answer:

1.52g

Explanation:

First, let us calculate the number of mole of CO2 present. This is illustrated below:

V = 800mL

Recall: 1000mL = 1L

800mL = 800/1000 = 0.8L

P = 94.5 KPa = 94500Pa

Recall: 101325Pa = 1atm

94500Pa = 94500/101325 = 0.93atm

T = -10°C = -10 + 273 = 263K

R = 0.082atm.L/Kmol

n =?

PV = nRT

n = PV/RT

n = (0.8x0.93)/(0.082x263)

n = 0.0345mol

Now, we can obtain the mass of CO2 as follows:

Molar Mass of CO2 = 12 + (2x16) = 12 + 32 = 44g/mol

Number of mole of CO2 = 0.0345mol

Mass of CO2 = number of mole x molar Mass

Mass of CO2 = 0.0345 x 44 = 1.52g

Which of these changes most likely results in an increase in the volume of a gas?
ma

Answers

Answer:

ok so you take the volume then divide it by the pressure, and subtract the area to find the rough estimate. but your probably looking for an exact answer so you take that and then do that when you get that thatll be that.

Explanation:

Decreasing the pressure on the gas will  most likely result in an increase in the volume of a gas.

What is pressure?

Pressure is defined as the force applied on an object perpendicular to it's surface per unit area over which it is distributed.Gauge pressure is a pressure which is related with the ambient pressure.

There are various units by which pressure is expressed most of which are derived units which are obtained from unit of force divided by unit of area . The SI unit of pressure is pascal .

It is a scalar quantity which is related to the vector area element with a normal force acting on it.It is distributed over solid boundaries and across arbitary sections of fluid normal to the boundaries at every point.

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If different atoms can come together to form all living and nonliving things, why is there a limit to different combinations we encounter around the universe?

Answers

Answer: gas dissolved in liquid

Explanation:

The different atoms lead to the formation of living and nonliving things then  

Such as a brick is used to create a house that is nonliving but the formation of the brick needs many raw materials.  The gas dissolved in liquids is one of the combinations that we have hence various atoms can come into the same universe.

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4.00 g of sodium and 2.00 g of oxygen react according to the following balanced equation 4 Na + O2 → 2 Na2O Calculate the mass of Na2O that can be produced by this reaction

Answers

The mass of Na₂O produced from the reaction of 4.00 g of sodium with 2.00 g of oxygen is 5.39 g, using stoichiometry and molar mass conversions.

Reaction Stoichiometry and Mass Calculations

To calculate the mass of Na₂O produced from 4.00 g of sodium (Na) and 2.00 g of oxygen (O₂), first, we need to convert the mass of the reactants to moles using their molar masses. The molar mass of sodium is approximately 23 g/mol, and for oxygen (O₂), it is about 32 g/mol. As a result, we have:

4.00 g Na times (1 mol Na / 23 g Na) = 0.174 mol Na

2.00 g O₂ times (1 mol O₂ / 32 g O₂) = 0.0625 mol O₂

From the balanced equation, 4 moles of Na react with 1 mole of O₂ to produce 2 moles of Na₂O. This indicates that sodium is the limiting reagent since fewer moles of it are available relative to the stoichiometric requirements. Thus, we can calculate the amount of Na2O produced:

0.174 mol Na times (1 mol Na₂O / 2 mol Na) = 0.087 mol Na₂O

The last step is to convert moles of Na2O to grams using its molar mass (Na₂O has a molar mass of approximately 62 g/mol):

0.087 mol Na₂O times (62 g Na₂O / 1 mol Na₂O) = 5.39 g Na₂O

Therefore, 5.39 g of Na₂O can be produced by the reaction of 4.00 g of sodium with 2.00 g of oxygen.

Question 2
For each of the following diagrams, calculate the net force on the object including the direction, and state if the forces are balanced or unbalanced
5 N
8N
Net Force
Balanced or Unbalanced:





Answers

The net force on the cube in Diagram A is 3 N to the right. The net force on the cube in Diagram B is 47 N downwards.

Diagram A

This diagram shows a cube with two forces acting on it: a 5 N force to the left and an 8 N force to the right. To calculate the net force, we need to subtract the smaller force from the larger force.

Net force = 8 N - 5 N = 3 N to the right

Diagram B

This diagram shows a cube with two forces acting on it: a 128 N force upwards and a 175 N force downwards. To calculate the net force, we need to subtract the smaller force from the larger force.

Net force = 175 N - 128 N = 47 N downwards

The net force on an object is the sum of all the forces acting on it. If the net force is zero, then the object is in equilibrium. If the net force is not zero, then the object will accelerate in the direction of the net force.

To calculate the net force on an object, we need to add up all the forces acting on it, taking into account their magnitudes and directions. We can use the following formula:

Net force = F1 + F2 + F3 + ...

Where F1, F2, F3, etc. are the magnitudes of the forces acting on the object.

In the case of Diagram A, we have two forces acting on the cube: a 5 N force to the left and an 8 N force to the right. To calculate the net force, we need to subtract the smaller force from the larger force:

Net force = 8 N - 5 N = 3 N to the right

This means that the cube will accelerate to the right.

In the case of Diagram B, we have two forces acting on the cube: a 128 N force upwards and a 175 N force downwards. To calculate the net force, we need to subtract the smaller force from the larger force:

Net force = 175 N - 128 N = 47 N downwards

This means that the cube will accelerate downwards.

If 1.13 x 104 J of heat is added to a water sample and the temperature rises from 88.0 ºC to its boiling point, what mass of water is in the sample?
A. 225 g
B. .255 g
C. 2.55 g
D. 25 g

Answers

Answer:

c

Explanation:

heatmass*density*temp. difference=

In the sample, the mass of water is "225 g".

Given:

Heat energy,

[tex]Q = 1.13\times 10^4 \ J[/tex]

Specific heat,

[tex]c = 4.186 \ J/g.^{\circ} C[/tex]

The change in temperature,

[tex]\Delta T =boiling \ point - 88.0^{\circ} C[/tex]

              [tex]= 100-88[/tex]

              [tex]= 12 ^{\circ} C[/tex]

As we know,

→             [tex]Q = mc \Delta T[/tex]

→ [tex]1.13\times 10^4=m\times 4.186\times 12[/tex]        

→              [tex]m = \frac{1.13\times 10^4}{4.186\times 12}[/tex]

→                   [tex]= 224.956 \ g[/tex]

or,

→                   [tex]= 225 \ g[/tex]

Thus the answer above is appropriate.

     

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Please help me with this: Create 20 bullet points specifically about energy exchanges in Earth's systems. Also, it doesn't have to be in 20 bullet points as long as it is about energy exchanges in Earth's systems in full paragraph that is fine too.

Answers

The below is about the energy exchanges in earth systems.                                                                                                          

Explanation:

Energy exchanges in earth systems are of many types.  The earth systems are atmosphere, geosphere, stratosphere, hydrosphere, and biosphere. All these earth systems exchange energy with each other.The earth gains energy reflected from the sky. It converts that energy back to space. That energy is equally given to all the planets in the sky.Each planet will absorb that energy and radiate heat. This heat is absorbed by all the places on the earth. So this is the energy exchange in the earth systems.                                                                                

Energy exchanges in Earth's system revolves around Earth's main energy outputs which are visible and infrared radiation, reflected light and thermal infrared radiation. ultraviolet radiation and visible radiation,  gamma rays, X-rays and ultraviolet radiation.

Explanation:

Energy exchanges in Earth's system revolves around Earth's main energy outputs which are visible and infrared radiation, reflected light and thermal infrared radiation. ultraviolet radiation and visible radiation,  gamma rays, X-rays and ultraviolet radiation.The Sun, which makes the external processes that occur in the atmosphere, hydrosphere, and at Earth's surface, The heat flowing from Earth's interior give power to the internal processes that produce volcanoes, earthquakes, and mountains.The Sun also radiates huge amounts of energy. Only a small portion of that energy hits the Earth, but it is enough to light our days, heat our air and land and it creates weather systems over the oceans and seas.When the Sun's energy moves around the space, it reaches Earth's atmosphere and finally to the surface.This heat energy is transferred throughout the planet's systems in three ways which are by radiation,by conduction, and by convection.

Determine the molecular formula of decene, which has an empirical formula of CH2 and a molar mass of 140.27 g/mol.

Answers

Answer:

Molecular formula = C₁₀H₂₀

Explanation:

Given data:

Empirical formula = CH₂

Molar mass = 140.27 g/mol

Molecular formula = ?

Solution:

Molecular formula = n (empirical formula)

n = molar mass of compound / empirical formula mass

Now we will calculate the empirical formula mass.

CH₂ = 12 × 1 + 1× 2

CH₂ = 12 +2

CH₂ = 14  

n = 140.27 / 14

n = 1 0

Molecular formula = n (empirical formula)

Molecular formula = 10 (CH₂)

Molecular formula = C₁₀H₂₀

Question 17 of 25
4 Points
The law of conservation of mass states that in a chemical reaction, matter is
not created or destroyed.
O
A. True
O
B. False​

Answers

Answer:

Why would it be false? That would be a great magic act.

Explanation:

Nickel is extracted from nickel oxide by reduction with carbon.
Explain why carbon can be used to extract nickel from nickel oxide.

Answers

Answer:

Nickel is extracted from nickel oxide by reduction with carbon. Nickel is a metal which react with atmospheric oxygen which is very reactive in order to protect the inner surface of metal. Carbon extract oxygen which is attached to the nickel in the form of nickel oxide because carbon is more reactive so it made a chemical bonds with oxygen and nickel oxide is converted into a pure nickel.

Final answer:

Carbon is used to extract nickel from nickel oxide because carbon acts as a reducing agent. During the reduction reaction, carbon reacts with nickel oxide to form nickel and carbon dioxide. Carbon's greater affinity for oxygen allows it to remove oxygen from nickel oxide, leaving nickel.

Explanation:

Carbon can be used to extract nickel from nickel oxide because of its ability to act as a reducing agent. In this context, a reducing agent is a substance that donates electrons to another substance, in this case, nickel oxide. This reduction reaction involves carbon reacting with nickel oxide to form nickel and carbon dioxide. Carbon, having a greater affinity for oxygen than nickel, binds with the oxygen in the nickel oxide forming carbon dioxide and leaving the nickel behind. This process is commonly used in metal extraction from their oxides, especially those of less reactive metals like nickel.

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The table below shows the depths at which an index fossil and three other fossils were found.

Fossil Data
Fossil Depth (meters)
A 294
B 365
C 375
Index fossil 460

Which statement is correct?
Fossil B is older than the index fossil.
The index fossil is younger than Fossil C.
Fossil A is younger than the index fossil.
The index fossil is the same age as Fossil C.

Answers

Answer:

The Correct Answer is C

Fossil A is younger than the index fossil.

Explanation:

Fossil A is younger than the index fossil is correct statement. Hence option 3 is correct.

What are fossils?

Fossils are defined as an animal or plant relic, impression, or trace that has survived in the Earth's crust over time. A living object, such an animal or plant, dies and is quickly buried by debris, like mud, sand, or volcanic ash, which results in the creation of fossils.  Important evidence for evolution and the environmental adaptation of plants and animals can be found in fossils.

Index fossils are fossils that are common yet were only present for a brief time. By comparing a rock layer to other rock layers, index fossils enable scientists to determine the relative age of a rock layer. Organisms that are still alive today yet have undergone little alteration over millions of years are known as living fossils.

Thus, fossil A is younger than the index fossil is correct statement. Hence option 3 is correct.

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5. How many grams of cobalt are in 1.52 x 1024 atoms of cobalt?

Answers

149 g of cobalt are present in 1.52 x [tex]10^{24}[/tex] atoms of cobalt.

Explanation:

One mole of an atom is equal to the Avagadro number of the atom.

              [tex]1 \ mol \ of \ Co = 6.023\times10^{23} atoms\ of \ Co[/tex]

The number of atoms per mol is divided by the given atoms of Cobalt.

                =  [tex](1.52 \times 10^{24}) \times[/tex] [tex]\frac{1 \ mol\ Co}{6.023 \times10^{23}\ atoms\ Co}[/tex]

                = 2.52 mol of Co

To covert, the moles into grams multiply the mole value by its molar mass

The Molar mass of Cobalt is 58.93

                = 2.52 [tex]\times[/tex] 58.93

                = 149 g.      

Final answer:

Using Avogadro's number and the molar mass of cobalt, one can calculate that 1.52 x 10²24 atoms of cobalt equates to approximately 148.51 grams of cobalt.

Explanation:

To determine how many grams of cobalt are in 1.52 x 1024 atoms of cobalt, we need to use Avogadro's number and the molar mass of cobalt. Avogadro's number tells us that there are 6.022 x 1023 atoms in one mole of any substance. The molar mass of cobalt (Co) can be found on the periodic table, and it is about 58.93 grams per mole.

The calculation, similar to conversions seen in examples given, would be as follows:

Determine how many moles of cobalt the given number of atoms represents: (1.52 x 1024 atoms Co) / (6.022 x 1023 atoms/mole) = 2.52 moles CoConvert moles of cobalt to grams using the molar mass of cobalt: 2.52 moles Co x 58.93 g/mole = 148.51 grams Co

Therefore, there are 148.51 grams of cobalt in 1.52 x 1024 atoms of cobalt.

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