describe the chemical reaction based on the chemical equation below also whether the equation is balanced
NH3(g)+ O2(g) ___> NO(g)+ H2O(l)
Answer:
Its not balanced
4NH₃ + 7O₂ ⇒ 4NO + 6H₂O
When copper is heated with an excess of sulfur, copper(I) sulfide is formed. In a given experiment, 0.0970 moles of copper was heated with excess sulfur to yield 1.76 g copper(I) sulfide. What is the percent yield?
Answer:
Percent yield = 22.8 %
Explanation:
Step 1: Data given
Numbers of moles copper = 0.0970 moles
Mass of copper(I) sulfide = 1.76 grams
Step 2: The balanced equation
2Cu + S ⇒ Cu2S
Step 3: Calculate moles of Cu2S
For 2 moles Cu we need 1 mol S to produce 1 mol Cu2S
For 0.0970 moles Cu we'll hace 0.0970 / 2 = 0.0485 moles
Step 4: Calculate mass of Cu2S
Mass Cu2s = moles Cu2S * molar mass Cu2S
Mass Cu2S = 0.0485 moles * 159.16 g/mol
Mass Cu2S = 7.72 grams
Step 5: Calculate percent yield
Percent yield = (actual yield/ theoretical mass) * 100%
Percent yield = (1.76 grams / 7.72 grams)*100%
Percent yield = 22.8 %
The percentage yield of the experiment obtained by the reaction of 0.0970 mole of copper with excess sulfurs is 22.8%
We'll begin by calculating the number of mole of Cu₂S produced from the reaction. This can be obtained as follow:
2Cu + S —> Cu₂S
From the balanced equation above,
2 moles of Cu reacted to produce 1 mole of Cu₂S.
Therefore,
0.0970 mole of Cu will react to produce = [tex]\frac{0.0970}{2}[/tex] = 0.0485 mole of Cu₂S.
Next, we shall determine the theoretical yield by calculating the mass of 0.0485 mole of Cu₂S.
Molar mass of Cu₂S = (63.5×2) + 32 = 159 g/mol
Mole of Cu₂S = 0.0485 mole
Mass of Cu₂S =?Mass = mole × molar mass
Mass of Cu₂S = 0.0485 × 159
Mass of Cu₂S = 7.7115 gThus, the theoretical yield of Cu₂S is 7.7115 g
Finally, we shall determine the percentage yield of Cu₂S.
Actual yield = 1.76 g
Theoretical yield = 7.7115 g
Percentage yield =?[tex]Percentage yield = \frac{Actual}{Theoretical} * 100\\\\= \frac{1.76}{7.7115} * 100\\\\[/tex]
Percentage yield = 22.8%Therefore, the percentage yield of the experiment is 22.8%
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Which type of electromagnetic radiation has the longest wavelength?
A) ultraviolet
B) infrared
C) X-ray
D) visible
Answer:
B. Infrared.
Explanation:
Referring to the electromagnetic spectrum, ultraviolet rays can be measured with a frequency of 10‐⁸, infrared has a frequency of 10‐⁵, visible radiation has a frequency of 0.5 x 10‐⁶ meanwhile X-rays show a frequency of 10‐¹⁰.
Hence, the largest magnitude among the rest goes to infrared rays, which makes B the correct answer.
Answer:
i have no clue imma go with c
Explanation:
If sodium arsenite is Na3AsO3, the formula for calcium arsenite would be
Answer:
Ca₃(AsO₃)₂
Explanation:
Sodium arsenite, with the chemical formula Na₃AsO₃, is formed by the cation Na⁺ and the anion AsO₃³⁻. For the molecule to be neutral, 3 cations Na⁺ and 1 anion AsO₃³⁻ are required.
Calcium arsenite would be formed by the cation Ca²⁺ and the anion AsO₃³⁻. For the molecule to be neutral, we require 3 cations Ca²⁺ and 2 anions AsO₃³⁻. The resulting chemical formula is Ca₃(AsO₃)₂.
What is a double bond?
The heat capacity of air is much smaller than that of water, and relatively modest amounts of heat are needed to change its temperature. This is one of the reasons why desert region, although very hot during the day, are bitterly cold at night. The heat capacity of air at room temperature and pressure is appoximately 21 J/K*mol. How much energy is required to raise the temperature of a room of dimensions 5.5m x 6.5m x 3.0m by 10 degrees Celsius? If losses are neglected, how long will it take a heater rated at 1.5 kW to achieve that increase given that 1 W = 1 J/s?
Answer:
[tex]Q=9.2x10^5J[/tex]
[tex]t=614s=10.2min[/tex]
Explanation:
Hello,
In this case, we can compute the energy by using the following formula for air:
[tex]Q=nCp\Delta T[/tex]
Whereas the moles of air are computed via the ideal gas equation at room temperature inside the 5.5m x 6.5m x 3.0m-room:
[tex]n=\frac{PV}{RT}\\\\V=5.5m*6.5m*3.0m=107.25m^3*\frac{1000L}{1m^3}=107250L\\ \\n=\frac{1atm*107250L}{0.082\frac{atm*L}{mol*K}*298.15K}\\ \\n=4386.8mol[/tex]
Now, we are able to compute heat, by considering that the temperature raise is given in degree Celsius or Kelvins as well:
[tex]Q=4386.8mol*21\frac{K}{mol*K}*10K \\\\Q=9.2x10^5J[/tex]
Finally, we compute the time required for the heating by considering the heating rate and the required heat, shown below:
[tex]t=\frac{9.2x10^5J}{1.5\frac{kJ}{s}*\frac{1000J}{1kJ} } \\\\t=614s=10.2min[/tex]
Regards.
under the same conditions carbon (iv) oxide,propane and nitrogen (i) oxide diffuse at the same rate.Explain
Answer:
Rate of diffusion is same .
Explanation:
As we know that Rate of the diffusion is directly proportional to the [tex]\frac{1}{\sqrt{M} }[/tex] .They have same mass if there is same rate and similar condition therefore the mass of carbon (iv) oxide,propane and nitrogen (i) oxide will be similar.
The mass is directly proportional to the Rate of the diffusion.Therefore the rate of diffusion is similar in all carbon (iv) oxide,propane and nitrogen (i) oxide .In the process of making soap, I poured some of the cooked mixture through some muslin fabric, in order to separate the solid particles from liquid. What am I doing to this mixture?
A) Serrating it
B) Decanting it
C) Mixing it
D) Filtering it
Answer:
filtering
Explanation:
you're pouring the mixture through muslin cloth to keep the particles and bigger peaces out of the soap.
10 pts) A student titrates a 20.00 mL sample of an aqueous borax solution with 1.03 M H2SO4. If 2.07 mL of acid are needed to reach the equivalence point, then what is the molarity of the borax solution
Answer: The molarity of the borax solution is 0.107 M
Explanation:
The neutralization reaction is:
[tex]Na_2B_4O_7.10H_2O+H_2SO_4(aq)\rightarrow Na_2SO_4+4H_3BO_3+5H_2O[/tex]
According to neutralization law:
[tex]n_1M_1V_1=n_2M_2V_2[/tex]
where,
[tex]n_1[/tex] = basicity of [tex]H_2SO_4[/tex] = 2
[tex]n_2[/tex] = acidity of borax = 2
[tex]M_1[/tex] = concentration of [tex]H_2SO_4[/tex] = 1.03 M
[tex]M_2[/tex] = concentration of borax =?
[tex]V_1[/tex] = volume of [tex]H_2SO_4[/tex] = 2.07ml
[tex]V_2[/tex] = volume of borax = 20.0 ml
Now put all the given values in the above law, we get the molarity of borax:
[tex](2\times 1.03\times 2.07)=(2\times M_2\times 20.0)[/tex]
By solving the terms, we get :
[tex]M_2=0.107M[/tex]
Thus the molarity of the borax solution is 0.107 M
Most modern medications are given in doses of milligrams. Thyroid medications, however, are typically given in doses of micrograms. How many milligrams are in a dose labeled 125 µg? View Available Hint(s) Most modern medications are given in doses of milligrams. Thyroid medications, however, are typically given in doses of micrograms. How many milligrams are in a dose labeled 125 µg? 1.25 x 105 mg 0.125 mg 1.25 x 10?4 mg 1.25 x 102 mg
Answer:
0.125 mg
Explanation:
The correct answer would be 0.125 mg
According to the conversion factor, one milligram of a sample is equivalent to one thousand micrograms of the same sample.
milligram = [tex]10^{-3}[/tex]
microgram = [tex]10^{-6}[/tex]
Hence,
1 milligram = 1000 micrograms or 1 microgram = [tex]10^{-3}[/tex] milligram
Therefore, 125 micrograms will be:
125/1000 = 0.125 milligram
Consider the reaction CH4(g) 2O2(g)CO2(g) 2H2O(g) Using standard thermodynamic data at 298K, calculate the entropy change for the surroundings when 1.62 moles of CH4(g) react at standard conditions.
Answer:
the entropy change for the surroundings when 1.62 moles of CH4(g) react at standard conditions is −8.343 J/K
Explanation:
The balanced chemical equation of the reaction in the question given is:
[tex]CH_{4(g)} + 2O_{2(g)} \to CO_{2(g)} + 2 H_2O _{(g)}[/tex]
Using standard thermodynamic data at 298K.
The entropy of each compound above are listed as follows in a respective order.
Entropy of (CH4(g)) = 186.264 J/mol.K
Entropy of (O2(g)) = 205.138 J/mol.K
Entropy of (CO2(g)) = 213.74 J/mol.K
Entropy of (H2O(g)) = 188.825 J/mol.K
The change in Entropy (S) of the reaction is therefore calculated as follows:
[tex]=1*S(CO2(g)) + 2*S(H2O(g)) - 1*S( CH4(g)) - 2*S(O2(g))[/tex]
[tex]=1*(213.74) + 2*(188.825) - 1*(186.264) - 2*(205.138)[/tex]
= -5.15 J/mol.K
Given that :
the number of moles = 1.62 of CH4(g) react at standard conditions.
Then;
The change in entropy of the rxn [tex]= 1.62 \ mol * -5.15 \ J/mol.K[/tex]
= −8.343 J/K
Consider the following reaction where Kp = 2.01 at 500 K: PCl3(g) + Cl2(g) PCl5(g) If the three gases are mixed in a rigid container at 500 K so that the partial pressure of each gas is initially one atm, what will happen? Indicate True (T) or False (F) for each of the following: T 1. A reaction will occur in which PCl5(g) is consumed. T 2. Kp will decrease. F 3. A reaction will occur in which PCl3 is produced. F 4. Q is greater than K. F 5. The reaction is at equilibrium. No further reaction will occur.
Explanation:
Kp remains constant (if T=const.).
If Q<Kp, more reactants are consumed (the direct reaction is in progress). If Q>Kp the reverse reaction is in progress (the products are consumed).
1. A reaction will occur in which PCl5 (g) is consumed
A. If Kp > Qp then 1,2,3 and 5 are F. 4 is T
B. Kc > Qc then 1,3 are T. 2,4,5 are F.
C. Qp > Kp then 1.3.4 are T. 2,5 are F.
After passing through pyruvate dehydrogenase and the citric acid cycle, one mole of pyruvate will result in the formation of ________ moles of carbon dioxide and ________ mole(s) of ATP (or GTP).A) 2; 2B) 2; 1C) 3; 2D) 3; 1
Answer:
C
Explanation:
An 8.5 mL sample of gasoline has a mass of .75 g. What is the density of the gasoline?
Answer:
density = 8.824g/mL
Explanation:
given
mass = 75g
volume = 8.5mL
density = mass/volume
density = 75g/8.5mL
density = 8.824g/mL
Answer:0.088g/ml
Explanation:
Density=mass/volume
d=0.75g/8.5ml
d=0.088g/ml
glucose 6‑phosphate+H2O⟶glucose+Pi glucose 6‑phosphate+H2O⟶glucose+Pi K′eq1=270 K′eq1=270 ATP+glucose⟶ADP+glucose 6‑phosphate ATP+glucose⟶ADP+glucose 6‑phosphate K′eq2=890 K′eq2=890 Using this information for equilibrium constants determined at 25∘C,25∘C, calculate the standard free energy of hydrolysis of ATP. standard free energy:
Answer:
-30.7 kj/mol
Explanation:
The standard free energy for the given reaction that is the hydrolysis of ATP is calculated using the formula: ∆Go ’= -RTln K’eq
where,
R = -8.315 J / mo
T = 298 K
For reaction,
1. K′eq1=270,
∆Go ’= -RTln K’eq
= - 8.315 x 298 x ln 270
= - 8.315 x 298 x 5.59
= - 13,851.293 J / mo
= - 13.85 kj/mol
2. K′eq2=890
∆Go ’= -RTln K’eq
= - 8.315 x 298 x ln 890
= - 8.315 x 298 x 6.79
= - 16.82 kj/mol
therefore, total standard free energy
= - 13.85 + (-16.82)
= -30.7 kj/mol
Thus, -30.7 kj/mol is the correct answer.
4. Which of the following statements explains the cause of lanthanide contraction?
A. All lanthanides and actinides are radioactive
B. Protons exhibit a stronger pull on outer f orbitals
C. The d orbitals in lanthanides have unpair electrons
D. The d orbitals in actinides have paired electrons
Answer:
B. PROTONS EXHIBIT STRONGER PULL ON OUTER f ORBITALS
Explanation:
Lanthanide contraction is the greater than normal decrease in the ionic radius of the lanthanide series from atomic number 57 to atomic number 71. This decrease is rather not expected of the ionic radii of these elements and they result in the greater decrease in the subsequent series of the lanthanides from the atomic number 72. The cause of which is as a result of the poor shielding effects of the nuclear charge around the electrons of the f orbitals. So therefore, protons are strongly pulled out of the 4f orbital and as a result of the poor shielding effect which causes the electrons of the 6s orbitals to be drawn more closer to the nucleus and hence resulting in a smaller atomic radii. It is worthy to note that the shielding effects of the inner electrons decreasing from s orbital to the f orbital; that is s > p > d > f. So from the decrease in the shielding effects from s to the f orbitals, lanthanide contraction results from the inability of the orbitals far away from s like the 4f orbiatls to shield the outermost shells of the lanthanide elements. So the cause of lanthanide contraction is the action of the protons which strongly pull the electrons of the f orbitals because of the poor shielding effects due to the distance of this orbital from the nucleus.
Answer:
B) Protons exhibit a stronger pull on outer f orbitals than on d orbitals.
Explanation:
Suppose a piston automatically adjusts to maintain a gas at a constant pressure of 13.00 atm . For the initial conditions, consider 0.05 mol of helium at a temperature of 220.00 K . This gas occupies a volume of 0.07 L under those conditions. What volume will the gas occupy if the number of moles is increased to 0.08 mol (n2) from the initial conditions
Answer:
The final volume of the gas is 0.112 L
Explanation:
Step 1: Data given
Pressure is constant at 13.00 atm
The initial number of moles = 0.05 moles
The temperature = 220.00 K
Initial volume = 0.07 L
The number of moles is increased to 0.08 moles
Step 2: Calculate the new volume
V1/ n1 = V2/n2
⇒with V1 = the initial volume of the gas = 0.07 L
⇒with n1 = the initial number of moles of gas = 0.05 moles
⇒with V2 = the final volume = TO BE DETERMINED
⇒with n2 = the final number of moles of gas = 0.08 moles
0.07 L / 0.05 moles = V2 / 0.08 moles
V2 = 0.07 L * 0.08 / 0.05 moles
V2 = 0.112 L
The final volume of the gas is 0.112 L
Calculate the number of grams in sodium in 8.4g of Na2C6H6O7 (sodium hydrogen citrate) express your answer using two significant figures
please help!
Answer:
2.0 g Na
Explanation:
Stoichiometry.
8.4g sodium hydrogen citrate x (1 mol sodium hydrogen citrate / 192 g sodium hydrogen citrate) x (2 mol Na/1 mol sodium hydrogen citrate) x (23g Na/1 mol Na)
^write it out it makes more sense that way
Arrange these species into isoelectronic groups. It does not matter which group goes in which box, so long as the correct species are grouped. Isoelectronic group A Isoelectronic group B Isoelectronic group C Answer Bank
The species to be arranged are;
Sr2+, N3-, Li+, Ne, Br-, B3+, Al3+, He, Y3+
Answer:
Group A (10 electron species)
Al^3+, Ne, N^3-
Group B (36 electron species)
Sr^2+, Y^3+, Br^-
Group C ( 2 electron species)
He, Li^+, B^3+
Explanation:
Atoms and ions that have the same electron configuration are said to be isoelectronic. The species may not belong to the same group in the periodic table but are connected by the fact that they all have the same number of electrons. Cations and anions may belong to the same group of isoelectronic species provided that they all have the same number of electrons and the same electronic configuration.
Hence, in each group of isoelectronic species, one electronic configuration can be written for all the species and it will accurately represent the number of electrons for all species in the group since they have the same number of electrons.
For instance, all group C members have the electronic configuration, 1s2. This means that they all possess only two electrons.
AgNO3 is added to a solution containing Cl- and CrO42- in order to separate the ions. If the Cl- and CrO42- concentrations are 0.020 and 0.010 M, respectively, what are the minimum Ag+ concentrations required to precipitate out the anions?
Answer: The minimum [tex][Ag^{+}][/tex] concentrations required to precipitate out the anions is [tex]9 \times 10^{-9}[/tex] M.
Explanation:
We know that,
[tex]K_{sp}[/tex] for AgCl is [tex]1.8 \times 10^{-10}[/tex]
and, [tex]K_{sp}[/tex] for [tex]Ag_{2}CrO_{4}[/tex] is [tex]9 \times 10^{-12}[/tex]
Now, we will calculate the concentration of at which these ions precipitate out are as follows.
For AgCl :
[tex][Ag^{+}] = \frac{K_{sp}}{[Cl^{-}]}[/tex]
= [tex]\frac{1.8 \times 10^{-10}}{0.02}[/tex]
= [tex]9 \times 10^{-9}[/tex] M
For [tex]Ag_{2}CrO_{4}[/tex] :
[tex][Ag^{+}]^{2} = \frac{K_{sp}}{CrO^{2-}_{4}}[/tex]
= [tex]\frac{9 \times 10^{-12}}{0.01}[/tex]
= [tex]9 \times 10^{-10}[/tex]
[tex][Ag^{+}] = \sqrt{(9 \times 10^{-9})}[/tex]
= [tex]3 \times 10^{-5}[/tex] M
This shows that concentration of ions in AgCl is less than the concentration of AgCl will precipitate first.
How many milliliters of a 1.5 m h2so4 are needed to neutralize 35ml sample of a 1.5 m solution?
1) 17.5ml
2) 35ml
3) 52.5ml
4) 3.0ml
Answer:
1) 17.5 mL
Explanation:
Hello,
In this case, the reaction between sulfuric acid and potassium hydroxide is:
[tex]H_2SO_4+2KOH\rightarrow K_2SO_4+2H_2O[/tex]
In such a way, we notice a 1:2 molar ratio between the acid and the base, therefore, at the equivalence point we have:
[tex]2*n_{acid}=n_{base}[/tex]
And in terms of concentrations and volumes:
[tex]2*M_{acid}V_{acid}=M_{base}V_{base}[/tex]
Thus, we solve for the volume of acid:
[tex]V_{acid}=\frac{M_{base}V_{base}}{2*M_{acid}} =\frac{35mL*1.5M}{2*1.5M} \\\\V_{acid}=17.5mL[/tex]
Best regards.
help asappppppppp please
Answer:
c
Explanation:
it goes in lowest energy orbital
how to write the lewis dot structure for H2CCl2
Answer:
H
° * . .
H ° * C * · Cl :
* · . .
: Cl :
. .
Explanation:
Carbon has 4 valent electrons
*
*C*
*
Hydrogen has 1 electron
H°
Cl has 7 electrons on the last level.
. .
: Cl·
. .
H
° * . .
H ° * C * · Cl :
* · . .
: Cl :
. .
The Lewis dot structure for [tex]H_2CCl_2[/tex] is explained in the explanation part below.
A Lewis structure is a symbolic depiction of a molecule or ion that depicts the arrangement of atoms and valence electrons.
It is also known as a Lewis dot structure or electron dot structure. Gilbert N. Lewis, an American chemist, invented it.
The total number of valence electrons in the molecule must be determined before writing the Lewis dot structure for H2CCl2 (dichloroethylene).
H has one valence electron, while C has four.
Cl has seven valence electrons.
Thus, the Lewis dot structure for the given compound is attached below as image.
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True/False: ________ To study the effect of sunlight on different plants, I expose the plants to the same amount of sunlight. The independent variable is the sunlight.
Answer: True
Explanation:
The independent variable is the one which can be changed or manipulated in an experiment. The independent variable exerts its influence on the dependent variable. The dependent variable is the result of the experiment.
The amount of sunlight, can be regulated or changed in an experiment, thus it is an independent variable. The effect of sunlight on different plants is the dependent variable.
Activity: A Ferris wheel with a diameter of 60.0 m is moving at a speed of 2.09 m/s. What is the centripetal
acceleration?
Answer:
Centripetal acceleration of the wheel is [tex]0.145\ m/s^2[/tex].
Explanation:
We have,
Diameter of a Ferris wheel is 60 m
Radius of the wheel is 30 m
Speed of the wheel is 2.09 m/s
It is required to find the centripetal acceleration of the wheel. The formula of centripetal acceleration is given by :
[tex]a=\dfrac{v^2}{r}\\\\a=\dfrac{(2.09)^2}{30}\\\\a=0.145\ m/s^2[/tex]
So, the centripetal acceleration of the wheel is [tex]0.145\ m/s^2[/tex].
Cathodic protection of iron involves using another more reactivemetal as a sacrificial anode. Classify each of thefollowing metals by whether they would or would not act as asacrificial anode to iron.
a. Sn
b. Cu
c. Zn
d. Au
e. Pb
f. Ag
g. Mg
An old iron beam was coated with an unknown metal. There is a crackon the coating and it is observed that the iron is rusting at thefracture. The beam is in a structure that experiences high stress,resulting in frequent fractures to the coating.
What was the old metal coating likely made of and what metal youwould use to repair the fractures to avoid further corrosion?
Choices: tin, aluminum, gold
1. The old coating was made of __________________.
2. __________________would be a good choice for repairing thefracture.
Answer:
1.) zinc and aluminum
2.)
a.) The old coating was made of tin.
b.) Aluminum would be a good choice for repairing the fracture.
What does a complete ionic equation look like?
A. All substances are written as ionic compounds bonded together.
B. All substances are labeled with the oxidation states of the atoms.
C. All ionic substances are written as separate ions in solution.
D. All ionic substances are written with the state symbol (eo) after it.
Answer:
All ionic substances are written as separate ions in solution
All ionic substances are written as separate ions in solution in a complete ionic equation. Therefore, option (C) is correct.
What is the ionic equation?A complete ionic equation can be described as a particular chemical equation where charged atoms such as ions are expressed in a given solution. The complete ionic equations always contain all ions that are formed or act during a particular chemical reaction.
The net ionic equation can be described as an equation that provides information about ions that exists in an aqueous medium. Salts get dissolved in polar solvents such as water which are present as cations and anions in their dissolved state.
The ionic equation shows the chemical species that undergo a chemical change. The ions which are present on both sides of the equation are considered to be spectator ions. Therefore, in order to obtain the net ionic equation we can eliminate them.
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Chlorine gas reacts with fluorine gas to form chlorine trifluoride. Cl2(g)+3F2(g)→2ClF3(g) A 2.05 L reaction vessel, initially at 298 K, contains chlorine gas at a partial pressure of 337 mmHg and fluorine gas at a partial pressure of 730 mmHg .
Answer:
2.4 grams of ClF3
Explanation:
First let us determine the moles of Cl2 and F2,
Cl2 = ( ( 337 )( 2.05 L ) / ( 0.082 )( 298 K ) ) * ( 1 atm / 780 ),
Cl2 = ( 690 / 24.436 ) * ( 1 / 780 ),
Cl2 = ( About ) 0.036 moles of Cl2
_________________________________________________
F2 = ( ( 729 )( 2 L ) / ( 0.082 )( 298 K ) ) * ( 1 atm / 780 ),
F2 = ( 1458 / 24.436 ) * ( 1 / 780 )
F2 = ( About ) 0.078 moles of F2
Now let us identify the limiting reactant, considering the ratio between ClF3 and Cl2 / F2. In this case F2 is the limiting reactant, as it forms a smaller molar ratio;
The theoretic yield is thus performed with the limiting reactant F2,
0.078 * ( 2 / 3 ) * ( 92.45 / 2 ) = ( About ) 2.4 grams of ClF3
After running a TLC you visualized the TLC plate and observed the distance travelled by the organic compound is 10.0cm and calculated the retention factor (Rf) of that organic compound is 0.83. What is the distance travelled by the eluent?
a. 8.3 cm
b. 9.1cm
c. 10 cm
d. 120 cm
e. None of the above
Al + Fe3O4 → Al2O3 + Fe. 13. How many grams of iron are produced by the reaction of 225.0 grams of Al and 225.0 grams of Fe3O4? 14. How many grams of Al2O3 are also produced in the reaction of (23)?
Answer:
[tex]m_{Fe} =162.8gFe\\\\m_{Al_2O_3}=132.11gmolAl_2O_3[/tex]
Explanation:
Hello,
In this case, by the following balanced reaction:
[tex]8Al + 3Fe_3O_4 \rightarrow 4Al_2O_3 +9 Fe[/tex]
The first step is to identify the limiting reactant, for which we compute the available moles of aluminium in 225.0 g by using its atomic mass:
[tex]n_{Al}^{available}=225.0gAl*\frac{1molAl}{27gAl} =8.33molAl[/tex]
Next. we compute the consumed moles of aluminium by 225.0 g of iron (II,III) oxide by using its molar mass and the 8:3 molar ratio between them:
[tex]n_{Al}^{consumed}=225.0gFe_3O_4*\frac{1molFe_3O_4}{231.53gFe_3O_4} *\frac{8molAl}{3molFe_3O_4} =2.59molAl[/tex]
In such a way, since more Al is available, we conclude it is in excess and iron (II,III) oxide is the limiting reactant, therefore, we can compute the produced grams of both iron and aluminium oxide as shown below:
[tex]m_{Fe}=2.59molAl*\frac{9molFe}{8molAl} *\frac{55.845gFe}{1molFe} =162.8gFe\\\\m_{Al_2O_3}=2.59molAl*\frac{4molAl_2O_3}{8molAl} *\frac{101.96gmolAl_2O_3}{1molAl_2O_3} =132.11gmolAl_2O_3[/tex]
Best regards.