Approximately 12.27 grams mass of AgCl will be produced from 5g of NaCl and 103g of AgNO₃.
Given information,
Mass of NaCl = 5g
Mass of AgNO₃ = 103g
The number of moles of NaCl and AgNO₃:
Molar mass of NaCl = 22.99 + 35.45 = 58.44 g/mol
Number of moles of NaCl = 5.00/ 58.44 = 0.0856 mol
Molar mass of AgNO₃ = 107.87 + 14.01 ) + 3 × 16.00 = 169.87 g/mol
Number of moles of AgNO₃ = 103 / 169.87 = 0.606 mol
The stoichiometry of the balanced chemical equation between NaCl and AgNO₃: AgNO₃ + NaCl → AgCl + NaNO₃
1 mole of AgNO₃ reacts with one mole of NaCl to produce one mole of AgCl.
For NaCl: Moles of AgCl produced from NaCl = 0.0856 mol
For AgNO₃: Moles of AgCl produced from AgNO₃ = 0.606 mol
Since NaCl produces fewer moles of AgCl, it is the limiting reactant.
Molar mass of AgCl = 107.87 + 35.45 = 143.32 g/mol
Mass of AgCl produced from NaCl = 0.0856 × 143.32 ≈ 12.27 g
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I need help please:(
Diatomic: Composed of two atoms. Polar: A bond with a negative end and a positive end. Nonpolar: A bond in which neither atom takes more than its share of electrons. Metallic: A type of bond that allows valence electrons to move freely among ions. Electronegativity: Determines what type of bond will form.
The ability of an atom or functional group to draw electrons to itself is known as electronegativity in chemistry.
Diatomic molecules consist only of two atoms, whether they are from the same or distinct chemical elements.
Since charges fluctuate, a momentary dipole moment occurs in a so-called nonpolar molecule at any given time if the charge arrangement is spherically symmetric when averaged across time.
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Calculate the mass percent by
volume of 281.1 g of glucose
(C6H12O6, MM = 180.2 g/mol) in
325 mL of solution.
Answer:
Given:
Mass of glucose (m) = 281.1 g
Molar mass of glucose (MM) = 180.2 g/mol
Volume of solution (V) = 325 mL
First, let's convert the volume of the solution from milliliters (mL) to liters (L):
V = 325 mL = 325/1000 L = 0.325 L
Next, we can calculate the mass of glucose in the solution using its molar mass and the given mass:
moles of glucose (n) = m / MM
n = 281.1 g / 180.2 g/mol
Now, we need to calculate the mass percent by volume:
mass percent by volume = (mass of glucose / mass of solution) x 100
mass of solution = mass of glucose
mass percent by volume = (mass of glucose / mass of solution) x 100
= (n x MM / V) x 100
Substituting the values:
mass percent by volume = ((281.1 g / 180.2 g/mol) x 180.2 g/mol) / 0.325 L) x 100
Calculating this expression will give us the mass percent by volume of glucose in the solution.
(a) Magellan's ships set sail with basic foods that provided a balanced diet.
What is meant by a balanced diet?
(b) Suggest why Magellan took some live animals with him on the voyage.
(c) Most of the sailors on the Victoria developed a deficiency disease called scurvy.
(I) What is meant by a deficiency disease?
(lI) Describe one symptom of scurvy.
(IlI) What is the cause of scurvy?
(iv) Suggest why Elcaro did not develop this deficiency disease.
The balanced diet refers to consuming a variety of foods in appropriate proportions to provide all the necessary nutrients, vitamins, and minerals required for optimal health and well-being.
(a) It involves incorporating different food groups, such as fruits, vegetables, grains, protein sources, and dairy products, to ensure the body receives a proper balance of essential nutrients.
(b) Magellan took live animals on the voyage for various reasons. Firstly, the animals provided a source of fresh food, such as meat, milk, and eggs, which could supplement their diet during the long journey. Secondly, the animals could be used for breeding, ensuring a sustainable supply of food in case of shortages. Additionally, live animals were also valuable for trade and barter with indigenous communities encountered during the voyage.
(c) (I) A deficiency disease refers to a health condition that occurs due to a lack or inadequate intake of specific nutrients, vitamins, or minerals essential for normal bodily functions.
(lI) One symptom of scurvy is the development of swollen, bleeding gums. Other symptoms may include fatigue, weakness, joint pain, shortness of breath, and impaired wound healing.
(IlI) Scurvy is caused by a severe deficiency of vitamin C (ascorbic acid). Vitamin C is necessary for the production of collagen, a protein that helps maintain the health of blood vessels, gums, and other connective tissues in the body.
(iv) Elcaro did not develop scurvy because it is likely that they had access to fresh fruits and vegetables during the voyage. Fresh fruits and vegetables are excellent sources of vitamin C, and their consumption would have prevented the deficiency. The absence of scurvy among the crew of Elcaro suggests that they had a sufficient intake of vitamin C through their diet, avoiding the vitamin C deficiency responsible for scurvy.
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Cr3+3e=Cr is that a reduction or oxidation
The chromium ions with a +3 oxidation state are reduced to chromium atoms with an oxidation state of 0.The reduction of Cr^3+ to Cr in this chemical equation is an example of a reduction reaction.
The chemical equation Cr^3+ + 3e^- = Cr represents the reduction of chromium ions (Cr^3+) to elemental chromium (Cr). In this reaction, the chromium ions gain three electrons to form neutral chromium atoms. Reduction reactions involve the gain of electrons and a decrease in the oxidation state of an element.
During the reduction process, the chromium ions are undergoing a change in their electronic configuration, gaining three electrons to achieve a stable configuration. This reduction reaction typically occurs in the presence of a reducing agent that donates electrons, allowing the chromium ions to be reduced. By gaining three electrons, the chromium ions are reduced to their elemental form, which has a neutral charge and an oxidation state of 0.
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A student weighs out a 2.17 g sample of KOH, transfers it to a 300. mL volumetric flask, adds enough water to dissolve it and then adds water to the 300. mL tick mark.
What is the molarity of potassium hydroxide in the resulting solution?
The molarity of potassium hydroxide in the resulting solution is 0.129 M.
How to calculate molarity?Molarity of a substance refers to the concentration of a substance in solution, expressed as the number of moles of solute per litre of solution.
According to this question, a student weighs out a 2.17g sample of KOH, transfers it to a 300. mL volumetric flask, adds enough water to dissolve it and then adds water to the 300. mL tick mark.
No of moles of KOH = 2.17g ÷ 56.11g/mol = 0.039 moles
Molarity = 0.039 moles ÷ 0.3L = 0.129 M
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Calculate how many moles of FeSO4 • 7H2O were added to the Erlenmeyer flask in trial 2
CHEM FINAL TOMORROW, NEED IMMEDIATE HELP!!! There are a few topics I don't understand, if someone could give a short explanation of how to do these kinds of problems, it would help so much. I'll be posting a few more of these on my page, so feel free to check those out if you would like. Thanks!
The mass of [tex]O_2[/tex] needed to produce 8.65 x [tex]10^{23[/tex] atoms of silver is 22.96 grams.
Stoichiometric calculationIn the given balanced equation, it is stated that 2 moles of [tex]Ag_2O[/tex] produce 4 moles of Ag and 1 mole of [tex]O_2[/tex].
First, let's calculate the number of moles of Ag:
8.65 x [tex]10^{23[/tex] atoms of Ag / (6.022 x [tex]10^{23[/tex] atoms/mol) = 1.435 moles of Ag
Since 2 moles of [tex]Ag_2O[/tex] produce 1 mole of [tex]O_2[/tex], the number of moles of [tex]O_2[/tex] needed is half of the moles of [tex]Ag_2O[/tex].
Number of moles of [tex]O_2[/tex]= 1.435 moles of [tex]Ag_2O[/tex] / 2 = 0.7175 moles
Now, we'll use the molar mass of [tex]O_2[/tex] to find the mass:
Molar mass = 32.00 g/mol
Mass of [tex]O_2[/tex] = number of moles × molar mass
= 0.7175 moles × 32.00 g/mol = 22.96 g
Therefore, the mass of [tex]O_2[/tex] needed to produce 8.65 x [tex]10^{23[/tex] atoms of silver is 22.96 grams.
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What is the molarity of ions in a
0.411 M solution of Ca(OH)2
assuming the compound
dissociates completely?
The molarity of the calcium ion (Ca²⁺) in the solution is 0.411 M and the molarity of the hydroxide ions (OH⁻) in the solution is 0.822 M.
The molarity of ions in a solution can be determined by considering the dissociation of the compound into its constituent ions. In the case of Ca(OH)₂, it dissociates into one calcium ion (Ca²⁺) and two hydroxide ions (OH⁻) per formula unit.
Since the solution is 0.411 M Ca(OH)₂, the molarity of the calcium ion (Ca²⁺) would also be 0.411 M because there is one calcium ion for every formula unit of Ca(OH)₂. The molarity of the hydroxide ions (OH⁻) would be twice that of the Ca²⁺ ion because there are two hydroxide ions per formula unit of Ca(OH)₂.
The molarity of the hydroxide ions = 2 × 0.411 M = 0.822 M.
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The chemical equation below is unbalanced. CaS + AlC → A + CaC Balance this equation.
The balanced chemical equation is CaS + AlC → A + CaC
To balance the chemical equation CaS + AlC → A + CaC, we need to ensure that the same number of atoms of each element is present on both sides of the equation. Here's the step-by-step process to balance the equation:
Begin by counting the number of atoms of each element on both sides of the equation.
Left side (reactants):
Calcium (Ca): 1
Sulfur (S): 1
Aluminum (Al): 1
Carbon (C): 1
Right side (products):
A: 1
Calcium (Ca): 1
Carbon (C): 1
Sulfur (S): 0
Start by balancing the elements that appear in the fewest compounds. In this case, we can balance sulfur (S) first. Since there is only one sulfur atom on the left side and none on the right side, we need to add a coefficient of 1 in front of A on the right side to balance the sulfur.
CaS + AlC → 1A + CaC
Next, balance calcium (Ca) by adding a coefficient of 1 in front of CaS on the left side.
1CaS + AlC → 1A + CaC
Now, balance aluminum (Al) by adding a coefficient of 1 in front of AlC on the left side.
1CaS + 1AlC → 1A + CaC
Finally, balance carbon (C) by adding a coefficient of 1 in front of CaC on the right side.
1CaS + 1AlC → 1A + 1CaC
The balanced chemical equation is:
CaS + AlC → A + CaC
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What is the limiting reactant and theoretical yield if 60 g Al react with 80 g of Cl2 and produce aluminum chloride?
Taking into account definition of theoretical yield, Cl₂ is the limiting reagent and the theoretical yield is 100.31 grams of AlCl₃ if 60 g Al react with 80 g of Cl₂ and produce aluminum chloride
Reaction stoichiometryIn first place, the balanced reaction is:
2 Al + 3 Cl₂ → 2 AlCl₃
By reaction stoichiometry (that is, the relationship between the amount of reagents and products in a chemical reaction), the following amounts of moles of each compound participate in the reaction:
Al: 2 molesCl₂: 3 molesAlCl₃: 2 molesThe molar mass of the compounds is:
Al: 27 g/moleCl₂: 70.9 g/moleAlCl₃: 133.35 g/moleThen, by reaction stoichiometry, the following mass quantities of each compound participate in the reaction:
Al: 2 moles×27 g/mole= 54 gramsCl₂: 3 moles ×70.9 g/mole= 212.7 gramsAlCl₃: 2 moles ×133.35 g/mole= 266.7 gramsLimiting reagentThe limiting reagent is one that is consumed first in its entirety, determining the amount of product in the reaction.
To determine the limiting reagent, it is possible to use a rule of three as follows: if by stoichiometry 54 grams of Al reacts with 212.7 grams of Cl₂, 60 grams of Al reacts with how much mass of Cl₂?
mass of Cl₂= (60 grams of Al× 212.7 grams of Cl₂)÷54 grams of Al
mass of Cl₂= 236.33 grams
But 236.33 grams of Cl₂ are not available, 80 grams are available. Since you have less mass than you need to react with 60 grams of Al, Cl₂ will be the limiting reagent.
Theoretical yieldThe theoretical yield is the amount of product acquired through the complete conversion of all reagents in the final product, that is, it is the maximum amount of product that could be formed from the given amounts of reagents.
Considering the limiting reagent, the following rule of three can be applied: if by reaction stoichiometry 212.7 grams of Cl₂ form 266.7 grams of AlCl₃, 80 grams of Cl₂ form how much mass of AlCl₃?
mass of AlCl₃= (80 grams of Cl₂×266.7 grams of AlCl₃)÷212.7 grams of Cl₂
mass of AlCl₃= 100.31 grams
Finally, the theoretical yield is 100.31 grams of AlCl₃.
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If you know the answer tell me please
Metamorphic rocks can be harder, less porous, and have crystals that can be lined, describing some of the ways in which metamorphic rocks differ from sedimentary rocks.
There are two different types of rocks: sedimentary rocks and metamorphic rocks. Igneous or sedimentary pre-existing rocks undergo changes under extreme heat and pressure to form metamorphic rocks. This process results in the recrystallization of minerals, leading to the formation of a new rock with distinct physical and chemical characteristics.
Therefore, the correct option is B.
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The volume of 6.00M HCL needed to make 0.32L of 3.0M HCL is
Answer:
Explanation: the answer is in the picture
Answer:
[tex]\huge\boxed{\sf V_1=0.16 \ L}[/tex]
Explanation:
Given Data:Initial Molarity =[tex]M_1[/tex] = 6.00 M
Final Volume = [tex]V_2[/tex] = 0.32 L
Final Molarity = [tex]M_2[/tex] = 3.0 M
Required:Initial Volume = [tex]V_1[/tex] = ?
Formula:[tex]M_1V_1=M_2V_2[/tex]
Solution:Put the given data in the above formula,
Finding initial volume.
[tex]6 \times V_1=0.32 \times 3\\\\6 \times V_1 = 0.96\\\\Divide \ both \ sides \ by \ 6\\\\V_1=0.96/6\\\\V_1=0.16 \ L\\\\\rule[225]{225}{2}[/tex]
How many grams of BaSO4 can be produced from 200.0 g of Ba(NO3)2 and 100.0 g of Na2SO4? Which is limiting reactant? How much excess reactant remains?
The limiting reactant will be the one that produces fewer moles of BaSO4. The excess reactant will be the one that has moles left over after the reaction.
To determine the grams of BaSO4 produced and the limiting reactant, we need to compare the stoichiometry of the balanced chemical equation for the reaction between Ba(NO3)2 and Na2SO4, which is:
Ba(NO3)2 + Na2SO4 → BaSO4 + 2NaNO3
First, calculate the number of moles for each reactant:
Moles of Ba(NO3)2 = 200.0 g / molar mass of Ba(NO3)2
Moles of Na2SO4 = 100.0 g / molar mass of Na2SO4
Then, calculate the moles of BaSO4 formed by comparing the stoichiometric coefficients:
Moles of BaSO4 formed = Moles of Ba(NO3)2 (according to the stoichiometry ratio)
Next, calculate the grams of BaSO4 formed:
Grams of BaSO4 formed = Moles of BaSO4 formed × molar mass of BaSO4
To identify the limiting reactant, compare the moles of BaSO4 formed from each reactant. The reactant that produces fewer moles of BaSO4 is the limiting reactant.
To determine the excess reactant remaining, calculate the moles of excess reactant and then convert it to grams.
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A solution is made by mixing 569 mL of water and 238 mL ethanol. What is the concentration of ethanol in units of volume/volume percent?
The concentration of ethanol in units of volume/volume percent is 29.49%.
Volume/volume concentrationTo calculate the concentration of ethanol in units of volume/volume percent, we need to determine the volume of ethanol relative to the total volume of the solution.
Total volume of the solution = volume of water + volume of ethanol
Total volume = 569 mL + 238 mL
Total volume = 807 mL
To express the concentration as volume/volume percent, we can calculate the ratio of the volume of ethanol to the total volume of the solution and multiply by 100 to obtain a percentage.
Concentration of ethanol = (volume of ethanol / total volume of solution) x 100
Concentration of ethanol = (238 mL / 807 mL) x 100
Concentration of ethanol = 0.2949 x 100
Concentration of ethanol = 29.49%
Therefore, the concentration of ethanol in the solution is approximately 29.49%.
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100 POINTS AND BRAINLIST!
Question
Why does the sun appear so much larger and brighter than the other stars that are seen from Earth?
Responses
The sun is much larger than other stars. [A]
The sun appears only during the daytime. [B]
The sun is closer to Earth than other stars. [C]
The sun burns more brightly than other stars. [D]
Answer:
C. The sun is closer to Earth than other stars.
Explanation:
Why is this?The sun appears larger and brighter than other stars because it is much closer to Earth. The sun is the closest star to Earth, at a distance of about 93 million miles. Other stars are much farther away, so they appear smaller and less bright in the sky.
What mass (g) of CaCl2 are needed to make 1L of a 3M CaCl2 solution?
87.5g
100.52g
332.94g
9g
The mass of CaCl₂ required to make a 1L solution of 3M CaCl₂ is equal to 332.94 g, hence option C is correct.
To find the mass of CaCl₂ required to make a 3M solution, it considers the molar mass of CaCl2 and the desired concentration.
The molar mass of CaCl₂ can be observed as follows:
Molar mass (CaCl₂) = (molar mass of Ca) + 2 × (molar mass of Cl)
= (40.08 g/mol) + 2 × (35.45 g/mol)
= 40.08 g/mol + 2 × 35.45 g/mol
= 40.08 g/mol + 70.90 g/mol
= 110.98 g/mol
Now, by using the formula for molarity to find the mass of CaCl₂ required:
Molarity (M) = (moles of solute) / (volume of solution in liters)
Arrange the formula to solve for moles of solute:
(moles of solute) = (Molarity) × (volume of solution in liters)
It is required to make a 1L solution of 3M CaCl₂:
(moles of CaCl2) = (3 mol/L) × (1 L)
= 3 mol
Finally, find the mass of CaCl₂ using the moles and molar mass:
(mass of CaCl2) = (moles of CaCl₂ × (molar mass of CaCl₂)
= 3 mol × 110.98 g/mol
= 332.94 g
Thus, the mass of CaCl2 required to make a 1L solution of 3M CaCl₂ is 332.94 g.
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CHEM FINAL TOMORROW!!!! If anyone could give a short explanation on how this works, it would help so much!
Le Chatelier's Principle tells us what happens to the equilibrium of a chemical system (reaction) when certain stresses are inflicted onto it.
TemperatureWhen the temperature of a system is increased, the system moves away from the heat. For instance, for a forward exothermic reaction, it would move to the reactants side, favouring the endothermic reaction. For a forward endothermic reaction, it would however favour the forward reaction with an increase in heat.
The opposite occurs when heat is removed.
ConcentrationWhen the concentration of a reactant is increased, the equilibrium shifts to the right and favours the formation of products. The opposite occurs when the concentration of a product is increased, it shifts to the left.
Pressure/VolumePressure and volume are inversely proportional, meaning an increase in pressure leads to a decrease in volume (and vice versa). When pressure is increased/volume is decreased, the system shifts in the direction of least moles/molecules. Count the sum of the coefficients on the reactants and products side to determine which side this is.
Again, the opposite occurs when pressure is decreased or volume is increased; the system shifts to the side with more moles.
Other Things to NoteRemember, only gases and aqueous solutions affect the equilibrium. Pure substances, such as solids and liquids, are not. For instance, if the concentration of a solid substance is increased, it will not have an affect on the equilibrium.The addition of a catalyst will have no effect on the equilibrium.Temperature is the only thing that affects the equilibrium constant.AnswersTaking into account all the pieces of information mentioned above, here is what our answers should be to the given question:
A. Increasing [SO2]: shifts right
B. Removing O2: shifts left
C. Increasing temperature: shifts left
D. Decreasing pressure: shifts left
E. Add a catalyst: no effect
Aluminum chloride is decomposed to form pure aluminum and chlorine gas assuming that 10.0 g of was used for this reaction how many grams of chlorine and aluminum will be formed? Assume that a student did this reaction and got only 1.2 grams of aluminum what was this students percent yield?
1. The mass of chlorine formed can be obtain as follow:
2AlCl₃ -> 2Al + 3Cl₂
Molar mass of AlCl₃ = 133.5 g/molMass of AlCl₃ from the balanced equation = 2 × 133.5 = 267 g Molar mass of Cl₂ = 71 g/molMass of Cl₂ from the balanced equation = 3 × 71 = 213 gFrom the balanced equation above,
267 g of AlCl₃ decomposed to produce 213 g of Cl₂
Therefore,
10 g of AlCl₃ will decompose to produce = (10 × 213) / 267 = 7.98 g of Cl₂
Thus, the mass of chlorine formed is 7.98 g
2. The mass of aluminium formed can be obtain as follow:
2AlCl₃ -> 2Al + 3Cl₂
Molar mass of AlCl₃ = 133.5 g/molMass of AlCl₃ from the balanced equation = 2 × 133.5 = 267 g Molar mass of Al = 27 g/molMass of Al from the balanced equation = 2 × 27 = 54 gFrom the balanced equation above,
267 g of AlCl₃ decomposed to produce 54 g of Al
Therefore,
10 g of AlCl₃ will decompose to produce = (10 × 54) / 267 = 2.02 g of Al
Thus, the mass of aluminum formed is 2.02 g
How do i determine the percentage yield?The percentage yield of aluminum formed can be obtain as follow:
Actual yield of aluminum = 1.2 gTheoretical yield of aluminum = 2.02 gPercentage yield of aluminum =?Percentage yield = (Actual /Theoretical) × 100
Percentage yield of aluminum = (1.2 / 2.02) × 100
Percentage yield of aluminum = 59.4%
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based on table g what is the mass of kcl that must be dissolved in 200 grams of H2O at 10 c to make a saturated solution
Based on Table G, the mass of KCl that must be dissolved in 200 grams of H₂O at 10 °C to make a saturated solution is 60 g.
What is the mass of KCl that must be dissolved?Based on Table G, the solubility of KCl at 10°C is given as 30 g/100 g water.
To calculate the mass of KCl that can be dissolved in 200 grams of water at 10°C, we can set up a proportion:
(30 g KCl / 100 g water) = (x g KCl / 200 g water)
Cross-multiplying and solving for x, we get:
x g KCl = (30 g KCl / 100 g water) * (200 g water)
x g KCl = 60 g KCl
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What volume of 3.0 M KOH contains 2.1 g?
Answer: about 12.5 mL is the estimated volume of a solution containing 2.1 g of KOH with a concentration of 3.0 M.
Consider the reaction between sodium metal and chlorine gas to form sodium chloride (table salt): 2Na(s) + Cl2(g) → 2NaCl(s)
a) If 3.6 moles of chlorine react with sufficient sodium, how many grams of sodium chloride will be form?
b) If 12.5 g of sodium react with sufficient chlorine, how many grams of sodium chloride will be form?
Considering the reaction, 63.39 grammes of sodium chloride are produced when 12.5 grammes of sodium and enough chlorine react.
The number of grams of sodium chloride generated when 3.6 moles of chlorine react:
From the balanced equation: 2Na(s) + [tex]Cl_2[/tex](g) → 2NaCl(s)
The stoichiometry between chlorine as well as NaCl is 1:2. This means that for every 1 mole of chlorine, we will obtain 2 moles of NaCl.
Given that 3.6 moles of Cl₂, here calculate the moles of NaCl formed:
Moles of NaCl = (3.6 moles [tex]Cl_2[/tex]) × (2 moles NaCl / 1 mole [tex]Cl_2[/tex])
= 7.2 moles NaCl
Converting the moles of NaCl to grams:
Molar mass of NaCl = 22.99 g/mol + 35.45 g/mol = 58.44 g/mol
Mass of NaCl formed = (7.2 moles NaCl) × (58.44 g/mol) = 420.768 g
Therefore, 420.768 grammes of sodium chloride are produced when 3.6 moles of chlorine and enough sodium react.
The number of grams of sodium chloride generated when 12.5 grams of sodium react, we again use the stoichiometry of the balanced chemical equation.
From the balanced equation: 2Na(s) + Cl₂(g) → 2NaCl(s)
The stoichiometry between Na along with NaCl is also 1:2.
First, let's calculate the moles of sodium using its molar mass:
Molar mass of Na = 22.99 g/mol
Moles of Na = mass of Na / molar mass of Na = 12.5 g / 22.99 g/mol ≈ 0.543 moles
Now calculate the moles of NaCl formed:
Moles of NaCl = (0.543 moles Na) × (2 moles NaCl / 1 mole Na) = 1.086 moles NaCl
Multiply by the molar mass of NaCl:
Molar mass of NaCl = 22.99 g/mol + 35.45 g/mol = 58.44 g/mol
Mass of NaCl formed = (1.086 moles NaCl) × (58.44 g/mol) ≈ 63.39 g
Therefore, when 12.5 grams of sodium react with chlorine, 63.39 grams of sodium chloride will be generated.
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16. Who was the first modern chemist
calculate the pH of the solution obtained if 40cm^3 of 0.2M HCl was added to 30cm^3 of 0.1M NaOH
To calculate the pH of the solution obtained by mixing HCl and NaOH, we need to consider the neutralization reaction between the two compounds. The reaction between HCl (hydrochloric acid) and NaOH (sodium hydroxide) produces water (H₂O) and forms a salt (NaCl).
Given:
Volume of HCl solution (V₁) = 40 cm³
Concentration of HCl solution (C₁) = 0.2 M
Volume of NaOH solution (V₂) = 30 cm³
Concentration of NaOH solution (C₂) = 0.1 M
1. Determine the moles of HCl and NaOH used:
Moles of HCl = Concentration (C₁) × Volume (V₁)
Moles of HCl = 0.2 M × 0.04 L (converting cm³ to L)
Moles of HCl = 0.008 mol
Moles of NaOH = Concentration (C₂) × Volume (V₂)
Moles of NaOH = 0.1 M × 0.03 L (converting cm³ to L)
Moles of NaOH = 0.003 mol
2. Determine the limiting reagent:
The stoichiometry of the reaction between HCl and NaOH is 1:1, meaning that they react in a 1:1 ratio. Whichever reactant is present in a smaller amount will be the limiting reagent.
In this case, NaOH is present in a smaller amount (0.003 mol), which means it will be fully consumed during the reaction.
3. Determine the excess reagent and its remaining moles:
Since NaOH is the limiting reagent, we need to find the remaining moles of HCl.
Moles of HCl remaining = Moles of HCl initially - Moles of NaOH reacted
Moles of HCl remaining = 0.008 mol - 0.003 mol
Moles of HCl remaining = 0.005 mol
4. Calculate the concentration of HCl in the resulting solution:
Volume of resulting solution = Volume of HCl solution + Volume of NaOH solution
Volume of resulting solution = 0.04 L + 0.03 L
Volume of resulting solution = 0.07 L
Concentration of HCl in the resulting solution = Moles of HCl remaining / Volume of resulting solution
Concentration of HCl in the resulting solution = 0.005 mol / 0.07 L
Concentration of HCl in the resulting solution ≈ 0.071 M
5. Calculate the pH of the resulting solution:
pH = -log[H⁺]
pH = -log(0.071)
Using logarithm properties, we can determine the pH value:
pH ≈ -log(0.071)
pH ≈ -(-1.147)
pH ≈ 1.147
Therefore, the pH of the solution obtained by mixing 40 cm³ of 0.2 M HCl and 30 cm³ of 0.1 M NaOH is approximately 1.147.
The ages of rocks that contain fossils can be determined using the isotope 87Rb. This isotope of rubidium undergoes beta decay with a half‑life of 4.75×1010y. Ancient samples contain a ratio of 87Sr to Rb87 of 0.0205. Given that 87Sr is a stable product of the beta decay of 87Rb, and assuming there was originally no 87Sr present in the rocks, calculate the age of the rock sample. Assume that the decay rate is constant over the relatively short lifetime of the rock compared to the half-life of 87Rb.
The calculate the age of the rock sample values, the age of the rock sample can be determined.
we can use the concept of radioactive decay and the ratio of 87Sr to 87Rb. Since 87Sr is a stable product of the beta decay of 87Rb, the increase in the ratio of 87Sr to 87Rb over time reflects the decay of 87Rb.
The ratio of 87Sr to 87Rb in ancient samples is given as 0.0205. This means that for every 0.0205 moles of 87Rb, there is one mole of 87Sr.
Since the half-life of 87Rb is 4.75×10^10 years, after each half-life, half of the 87Rb would have decayed into 87Sr. Therefore, the ratio of 87Sr to 87Rb increases by a factor of 2.
To determine the age of the rock sample, we can calculate the number of half-lives that have occurred based on the change in the ratio. The ratio of 0.0205 corresponds to 1 half-life, 0.041 corresponds to 2 half-lives, 0.082 corresponds to 3 half-lives, and so on.
By taking the logarithm of the ratio change and dividing it by the logarithm of 2 (since the ratio doubles with each half-life), we can find the number of half-lives.
Using this information, the age of the rock sample can be calculated as follows:
Age (in years) = number of half-lives × half-life of 87Rb
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Need help with this two part question
The ideal gas law and stoichiometry must be used to calculate the volume of carbon dioxide gas produced by the breakdown of 4.09 g of calcium carbonate at STP (Standard Temperature and Pressure).
Use the molar mass of calcium carbonate (CaCO3) to determine how many moles it contains. CaCO3 has a molar mass of 100.09 g/mol.
CaCO3 mass divided by its molar mass equals the number of moles of CaCO3: 4.09 g/100.09 g/mol.
The number of moles of carbon dioxide (CO2) generated may be calculated using the stoichiometric ratio from the balancing equation. By using the equation:
A unit of CaCO3 and CO2 is produced.
CO2 moles equal the same number of moles of CaCO3.
Use the ideal gas law to translate the volume of carbon dioxide into moles.
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at what temperature in °C does 0.750 mol of an ideal gas occupy a volume of 35.9 L at a pressure of 1.13 atm
At a pressure of 1.13 atm and a volume of 35.9 L, 0.750 mol of an ideal gas will occupy a temperature of approximately 387.66°C.
Given information,
Pressure (P) = 1.13 atm
Volume (V) = 35.9 L
Number of moles (n) = 0.750 mol
The ideal gas law equation: PV = nRT
Where:
P = pressure (in atm)
V = volume (in liters)
n = number of moles
R = ideal gas constant (0.0821 L·atm/(mol·K))
T = temperature (in Kelvin)
Now,
T = PV / (nR)
T = (1.13 * 35.9 ) / (0.750 * 0.0821)
T = (40.607 atm·L) / (0.061575 mol·L/(K·atm))
T ≈ 660.81 K
T(°C) = T(K) - 273.15
T(°C) ≈ 660.81 - 273.15
T(°C) ≈ 387.66°C
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need help asap!!
u don’t gotta answer all questions btw
To calculate the molarity of the solution, we need to know the number of moles of BaI2 and the volume of the solution in liters.
First, let's calculate the number of moles of BaI2. We can use the formula:
Number of moles = Mass (in grams) / Molar mass
The molar mass of BaI2 can be calculated as follows:
Ba: atomic mass = 137.33 g/mol
I: atomic mass = 126.90 g/mol
2 x I = 2 x 126.90 g/mol = 253.80 g/mol
Total molar mass of BaI2 = 137.33 g/mol + 253.80 g/mol = 391.13 g/mol
Number of moles of BaI2 = 413 g / 391.13 g/mol ≈ 1.056 moles
Next, we need to convert the volume of the solution from milliliters to liters:
Volume of solution = 750 ml / 1000 = 0.75 L
Finally, we can calculate the molarity using the formula:
Molarity = Number of moles / Volume of solution
Molarity = 1.056 moles / 0.75 L ≈ 1.408 M
Therefore, the molarity of the BaI2 solution is approximately 1.408 M.
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What is the percent composition of Oxygen in H₂SO4
48.044%
57.14%
22.145%
65.25%
Answer:
65.25%
Explanation:
To determine the percent composition of oxygen in H₂SO₄, we need to calculate the mass of oxygen relative to the total molar mass of H₂SO₄ and express it as a percentage.
Step 1: Calculate the molar mass of H₂SO₄.
H₂SO₄ consists of two hydrogen atoms (H), one sulfur atom (S), and four oxygen atoms (O). The atomic masses of these elements are:
H = 1.01 g/mol
S = 32.07 g/mol
O = 16.00 g/mol
Molar mass of H₂SO₄ = (2 × H) + S + (4 × O)
= (2 × 1.01) + 32.07 + (4 × 16.00)
= 98.09 g/mol
Step 2: Calculate the mass of oxygen in H₂SO₄.
Since there are four oxygen atoms in one molecule of H₂SO₄, the mass of oxygen is:
Mass of oxygen = 4 × (molar mass of O)
= 4 × 16.00
= 64.00 g
Step 3: Calculate the percent composition of oxygen.
Percent composition of oxygen = (mass of oxygen / total molar mass of H₂SO₄) × 100
= (64.00 / 98.09) × 100
≈ 65.25%
Therefore, the percent composition of oxygen in H₂SO₄ is approximately 65.25%.
Hope this helps!
How many molecules of. C6H1206 are needed to produce 18 molecules of co2
A.3
B.9
C.12
D.18
Answer: A : 3
Explanation: 18 CO2 / 6 CO2 = 3 C6H12O6
Answer:
A = 3.
Explanation:
Here is how:
To determine the number of molecules of C6H12O6 (glucose) needed to produce 18 molecules of CO2, we need to consider the balanced chemical equation for the complete combustion of glucose:
C6H12O6 + 6O2 -> 6CO2 + 6H2O
From the balanced equation, we can see that 1 molecule of glucose (C6H12O6) produces 6 molecules of CO2. Therefore, we can set up a proportion to find the number of glucose molecules needed:
1 molecule of glucose produces 6 molecules of CO2
x molecules of glucose produce 18 molecules of CO2
Using the proportion:
1/6 = x/18
To solve for x, we can cross-multiply:
6x = 18
Dividing both sides by 6:
x = 3
Therefore, 3 molecules of C6H12O6 are needed to produce 18 molecules of CO2.
help with this question pls
The addition of a catalyst to this reaction would cause a change in "I" indicated energy differences.
If a catalyst is added to a reaction, it typically affects the activation energy (Ea) of the reaction. The activation energy is the energy barrier that needs to be overcome for the reaction to proceed.
In the context of the energy diagram for the reaction X + Y -> Z, the addition of a catalyst would primarily affect the energy difference related to the activation energy. Let's consider the options:
It is generally expected that the addition of a catalyst would primarily affect the activation energy (Ea) of the reaction, which is typically associated with the energy difference labeled as "I" on energy diagrams.
Therefore, the answer is: I only: The addition of a catalyst would cause a change in the energy difference labeled as "I" on the energy diagram.
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