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A reaction that occurs when 23 grams of iron (II) chloride

reacts with sodium phosphate forming iron (II) phosphate and sodium chloride. What is the limiting reagent? How much sodium chloride can be formed?

3FeCl2 + 2Na3PO4-Fe3 (PO4)2 +6NaClâ

Answers

Answer 1

To convert moles of sodium chloride to grams, we multiply by its molar mass of 58.44 g/mol. Therefore, the amount of sodium chloride produced is 0.363 mol x 58.44 g/mol = 21.2 grams.

To determine the limiting reagent in this reaction, we need to calculate the moles of both reactants. From the given information, we know that the mass of iron (II) chloride is 23 grams, and its molar mass is 126.75 g/mol.

Therefore, the number of moles of iron (II) chloride is 23 g/126.75 g/mol = 0.1815 mol.

Next, we calculate the number of moles of sodium phosphate. Since there are two molecules of sodium phosphate for every three molecules of iron (II) chloride, we need to multiply the moles of iron (II) chloride by the ratio of the coefficients. Therefore, the number of moles of sodium phosphate is (0.1815 mol x 2/3) = 0.121 mol.

Since there are fewer moles of sodium phosphate than iron (II) chloride, sodium phosphate is the limiting reagent. This means that all of the sodium phosphate will be used up in the reaction, and any remaining iron (II) chloride will be left over.

To calculate the amount of sodium chloride produced, we need to use the stoichiometric coefficients from the balanced equation.

For every 2 moles of sodium phosphate used, 6 moles of sodium chloride are produced. Therefore, since we have 0.121 mol of sodium phosphate, we can produce (0.121 mol x 6/2) = 0.363 mol of sodium chloride.

Finally, to convert moles of sodium chloride to grams, we multiply by its molar mass of 58.44 g/mol. Therefore, the amount of sodium chloride produced is 0.363 mol x 58.44 g/mol = 21.2 grams.

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Related Questions

H2 + Br2 → 2HBr. How many liters of hydrogen gas are needed to react with 9.0 g of bromine?

Answers

We need 1.26 liters of hydrogen gas to react with 9.0 g of bromine.

To solve this problem, we need to use the balanced chemical equation for the reaction between hydrogen gas (H₂) and bromine (Br₂):

[tex]H_2 + Br_2 - > 2HBr[/tex]

According to the stoichiometry of this equation, one mole of Br₂ reacts with one mole of H₂ to produce two moles of HBr. Therefore, we need to determine the number of moles of Br₂ in 9.0 g, and then use the mole ratio to find the number of moles of H₂ required.

Finally, we can convert the number of moles of H₂ to liters using the ideal gas law.

First, we need to calculate the number of moles of Br₂ in 9.0 g:

The molar mass of Br₂ is 2(79.90 g/mol) = 159.80 g/mol

The number of moles of Br₂ in 9.0 g is:

9.0 g / 159.80 g/mol = 0.0563 mol Br₂

Next, we use the mole ratio from the balanced equation to find the number of moles of H₂ required:

According to the balanced equation, one mole of Br₂ reacts with one mole of H₂, so we need 0.0563 moles of H₂.

Finally, we can use the ideal gas law to convert the number of moles of H₂ to liters:

The ideal gas law is PV = nRT, where P is the pressure, V is the volume, n is the number of moles, R is the ideal gas constant, and T is the temperature.

We can assume standard temperature and pressure (STP), which is 0°C (273.15 K) and 1 atm.

At STP, one mole of an ideal gas occupies 22.4 L.

Therefore, the volume of H2 required is:

V = (0.0563 mol) x (22.4 L/mol) = 1.26 L

Therefore, we need 1.26 liters of hydrogen gas to react with 9.0 g of bromine.

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Now you are ready to explain what happened when Lee mixed sodium and hydrogen chloride. Be sure to use key


concepts in your explanation and provide examples from the Sim or the token activity.


Answer the following question: How did sodium and hydrogen chloride change into two different substances?


pls help

Answers

When Lee mixed sodium and hydrogen chloride, a chemical reaction occurred. Sodium has a single valence electron, which it donates to hydrogen chloride, forming Na⁺ and Cl⁻ ions.

These ions then combine to form solid sodium chloride (NaCl) and hydrogen gas (H₂). This reaction is an example of a redox reaction, where the sodium undergoes oxidation and the hydrogen chloride undergoes reduction.

In the simulation or token activity, the reaction can be represented by the following equation:

2 Na + 2 HCl → 2 NaCl + H₂

Thus, the sodium and hydrogen chloride changed into two different substances, solid sodium chloride and gaseous hydrogen, as a result of a chemical reaction involving the transfer of electrons.

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When 4 g of a metal carbonate MCO, was dissolved in 160 cm of 1 M hydrochloric acid and then the resultant solution diluted to one litre, 25. 0 cm of this solution required 20. 0 cm' of 0. IM sodium hydroxide solutidn for complete neutralisation, calculate:
(i) The number of moles per litre of excess hydrochloric acid that reacted with sodium hydroxide, NaOH.

(ii) The number of moles per litre of acid that reacted with the carbonate.

(iii) The number of moles of carbonate, MCO, that reacted with the acid.

(iv) The formula mass of the carbonate, MCO, (v) The atomic mass of the metal M. (C = 12. 0. 0 = 16. 0)​

Answers

(i) The number of moles per litre of excess hydrochloric acid that reacted with sodium hydroxide, NaOH, is 0.2.

(ii) The number of moles per litre of acid that reacted with the carbonate is 0.04.

(iii) The number of moles of carbonate, MCO, that reacted with the acid is 0.008.

(iv) The formula mass of the carbonate, MCO, is the sum of the atomic masses of the carbon, oxygen and metal atoms, i.e., MCO, M + 12 + 16 = M + 28.

(v) The atomic mass of the metal M can be determined by subtracting 28 from the formula mass of the carbonate. Thus, M = formula mass of MCO - 28.

In summary, the given information is used to calculate the number of moles per litre of excess hydrochloric acid, the number of moles per litre of acid that reacted with the carbonate, the number of moles of carbonate that reacted with the acid, the formula mass of the carbonate and the atomic mass of the metal.

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A student is collecting data for the reaction of baking soda and vinegar. The initial temperature of the vinegar is 25˚ C and the final temperature of the reaction is 19˚ C. Identify the reaction as endothermic or exothermic and explain what is happening in terms of energy of the systems and the surroundings.

Answers

Answer and explanation:

Based on the temperature change, we can conclude that the reaction of baking soda and vinegar is exothermic. In an exothermic reaction, energy is released from the system to the surroundings in the form of heat, which causes an increase in the temperature of the surroundings.

In this case, the system consists of the baking soda and vinegar, which react to form carbon dioxide gas, water, and sodium acetate. As the reaction proceeds, energy is released from the system to the surroundings in the form of heat. This heat causes an increase in the temperature of the surroundings, which in this case is the surrounding air and any objects in the vicinity of the reaction.

The decrease in temperature from 25˚C to 19˚C indicates that the reaction released energy to the surroundings, and this energy was absorbed by the air and objects in the vicinity of the reaction. This is why the temperature of the surroundings decreases.

Overall, an exothermic reaction like this involves the conversion of potential energy stored in the reactants into kinetic energy in the form of heat, which is released to the surroundings.

Air enters the body through the ________ and travels down the ________ to the lungs. the ______ contracts to allow space for the _________ to take in air. then, the ______ relaxes causing the _____ to release air.

Answers

Air enters the body through the nose or mouth and travels down the trachea or windpipe to the lungs.

The diaphragm contracts to allow space for the lungs to take in air. Then, the diaphragm relaxes causing the lungs to release air.

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A solution consisting of 11. 4 g NH4Cl in 150 ml of water is titrated with 0. 20 M KOH.



a. How many milliliters of KOH are required to reach the equivalence point?


b. Calculate {Cl-], [K+], and [NH3] at the equivalence point. Assume volumes are additive

Answers

The balanced chemical equation for the reaction between NH4Cl and KOH is:

NH4Cl + KOH → NH3 + KCl + H2O

a. To calculate the volume of 0.20 M KOH required to reach the equivalence point, we need to know the amount of NH4Cl in the solution. The amount of NH4Cl can be calculated as follows:

amount of NH4Cl = (mass of NH4Cl) / (molar mass of NH4Cl)

                = 11.4 g / 53.49 g/mol

                = 0.2131 mol

At the equivalence point, all of the NH4Cl has reacted with the KOH, and the number of moles of KOH added is equal to the number of moles of NH4Cl in the solution. Therefore, we can calculate the volume of KOH required as follows:

moles of KOH = moles of NH4Cl

            = 0.2131 mol

volume of KOH = moles of KOH / Molarity of KOH

             = 0.2131 mol / 0.20 mol/L

             = 1.065 L = 1065 mL

Therefore, 1065 mL of 0.20 M KOH are required to reach the equivalence point.

b. At the equivalence point, all of the NH4Cl has been converted to NH3, K+ and Cl-. Therefore, the concentration of K+ and Cl- will be determined by the amount of KOH added, while the concentration of NH3 will be determined by the amount of NH4Cl initially present. Assuming volumes are additive, the volume of the solution at the equivalence point is 150 mL + 1065 mL = 1215 mL.

The number of moles of K+ and Cl- at the equivalence point can be calculated as follows:

moles of K+ = concentration of KOH × volume of KOH added

           = 0.20 mol/L × 1.065 L

           = 0.213 mol

moles of Cl- = moles of NH4Cl initially present

            = 0.2131 mol

The concentration of K+ and Cl- at the equivalence point can be calculated by dividing the number of moles by the volume of the solution:

[K+] = moles of K+ / volume of solution

    = 0.213 mol / 1.215 L

    = 0.175 M

[Cl-] = moles of Cl- / volume of solution

     = 0.2131 mol / 1.215 L

     = 0.175 M

The concentration of NH3 at the equivalence point can be calculated from the amount of NH4Cl initially present, since all of the NH4Cl has been converted to NH3:

moles of NH3 = moles of NH4Cl initially present

            = 0.2131 mol

The concentration of NH3 can be calculated by dividing the number of moles by the volume of the solution:

[NH3] = moles of NH3 / volume of solution

     = 0.2131 mol / 1.215 L

     = 0.175 M

Therefore, at the equivalence point, [Cl-] = [K+] = 0.175 M, and [NH3] = 0.175 M.

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Chemistry 25 Points. Pls explain step by step


4: Calculate the pH of a 0. 25M solution of H3O+ (0. 5pt)


5: Calculate the pH of a 6. 3x10-8M solution of H3O+ (0. 5pt)


6: Look at your answer for 4 and 5 which one is a base? (0. 25pt)


7: Look at 4 and 5; which one is a strong acid?

Answers

4. The pH of the 0.25M solution of H₃O⁺ is 0.602.

5. The pH of the 6.3 x 10⁻⁸M solution of H₃O⁺ is 7.2.

6. Comparing the pH values from 4 and 5, the solution with a pH of 7.2 is a base.

7: Comparing the pH values from 4 and 5, the 0.25M H₃O⁺ solution (pH 0.60) is a strong acid because its pH is much lower than that of the 6.3x10^-8M H₃O⁺ solution (pH 7.20).

Let us learn more in detail.


1. pH: pH is a measure of the acidity or basicity of a solution. It is defined as the negative logarithm of the concentration of hydrogen ions (H⁺) in a solution.

2. H₃O⁺: H₃O⁺ is the hydronium ion, which is formed when a proton (H⁺) is added to a water molecule (H₂O). It is the most common form in which hydrogen ions exist in aqueous solution.

3. Strong acid: A strong acid is an acid that completely dissociates in water, producing a large number of H⁺ ions. Examples of strong acids include hydrochloric acid (HCl) and sulfuric acid (H₂SO₄).

Now, let's tackle the questions:

4. To calculate the pH of a 0.25M solution of H₃O⁺, we can use the following formula:

pH = -log[H₃O⁺]

where [H₃O⁺] is the concentration of hydronium ions in moles per liter. In this case, [H₃O⁺] = 0.25M, so:

pH = -log(0.25) = 0.602

Therefore, the pH of the solution is 0.602.

5. To calculate the pH of a 6.3x10-8M solution of H₃O⁺, we can use the same formula:

pH = -log[H₃O⁺]

In this case, [H₃O⁺] = 6.3x10-8M, so:

pH = -log(6.3x10-8) = 7.2

Therefore, the pH of the solution is 7.2.

6. To determine which solution is a base, we need to look at the pH. pH values below 7 indicate an acidic solution, while pH values above 7 indicate a basic solution. Therefore, the solution with a pH of 7.2 (from question 5) is a base.

7. To determine which solution is a strong acid, we need to consider the concentration of H₃O⁺+ ions. A strong acid is one that completely dissociates in water, producing a large amount of H⁺ ions. Therefore, the solution with a higher concentration of H₃O⁺ ions (from question 4) is a strong acid.

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14 m3 of gas at a pressure of 3. 0 atmospheres is compressed into a volume of 9. 0 m3. Under what amount of pressure is the sample of gas after the compression?

Answers

The amount of pressure on the sample of gas after compression is 4.67 atm.

The initial volume and pressure of the gas are 14 m³ and 3.0 atm, respectively. After the gas is compressed, its volume becomes 9.0 m³. We can use the combined gas law to determine the final pressure of the gas:

[tex]P_1V_1 / T_1 = P_2V_2 / T_2[/tex]

where[tex]P_1, V_1,\ and\ T_1[/tex]are the Initial pressure, volume, and temperature of the gas, respectively, and [tex]P_2, V_2,\ and\ T_2[/tex] are the final pressure, volume, and temperature of the gas, respectively.

Assuming the temperature is constant, we can simplify the equation to:

[tex]P_2 = (P_1 * V_1) / V_2[/tex]

Substituting the given values, we get:

[tex]P_2[/tex] = (3.0 atm * 14 m³) / 9.0 m³

[tex]P_2[/tex]= 4.67 atm

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In a creek bed you find smooth rocks of all sizes. What could explain this?



A. A chemical change has occurred in these rocks.


B. Water has dissolved the outer layers of rocks.


C. When rocks are transported by water, abrasion occurs as they rub and bump into each other.


D. The types of rocks in streams are not as hard as other rocks

Answers

C. When rocks are transported by water, abrasion occurs as they rub and bump into each other.

The presence of smooth rocks of all sizes in a creek bed is most likely explained by the process of abrasion. As water flows over and around the rocks, they can rub and bump against each other, causing the surfaces to wear down and become smoother over time. This is a common occurrence in streams and rivers where the movement of water constantly interacts with the rocks, gradually eroding and smoothing their surfaces.

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I NEED HELP ASP K12! CHEM UNIT 3 LAB


There are many aspects to the technique known as titration that are extremely important if results are to be accurate. In traditional or authentic laboratory setting, these techniques are important and sometimes delicate. List two techniques used in this lab that provided you with the most accurate possible results. Describe why these techniques are important and how ignoring the techniques would affect the lab.


Technique #1:


Why technique is important:


Technique #2:


Why is technique #2 important?

Answers

Two important techniques used in titration that provide accurate results are the use of standardized solutions and the proper use of indicators and ignoring these techniques can lead to inaccurate conclusions, wasted resources, and potentially hazardous outcomes.

The use of standardized solutions is important because it ensures that the concentration of the solution being used is known with a high degree of accuracy. Standardization involves carefully preparing a solution of known concentration and then using it to determine the concentration of another solution.

The proper use of indicators is also crucial in titration because it helps to detect the endpoint of the reaction. Indicators are substances that undergo a color change when the reaction reaches a certain point. The choice of indicator depends on the reaction being studied, and the wrong indicator can result in an inaccurate endpoint determination.

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The complete question is:

There are many aspects to the technique known as titration that are extremely important if results are to be accurate. In traditional or authentic laboratory setting, these techniques are important and sometimes delicate. List two techniques used in this lab that provided you with the most accurate possible results. Describe why these techniques are important and how ignoring the techniques would affect the lab.

Technique #1: Why technique is important?

Technique #2: Why is technique #2 important?

A 5. 00-g sample of aluminum pellets (Cs = 0. 89 J/g°C) and a 10. 00-g sample of iron pellets (Cs= 0. 45 J/g°C) are heated to 100. 0°C. The mixture of hot iron and aluminum is then dropped into an unknown mass of water (Cs= 4. 18 J/g°C) at 22. 0°C. The final temperature of the water and metals mixture is 23. 7°C.


How much heat (in J) is transferred to the water by aluminum pellets?


I am confused how to determine the mass of water

Answers

The amount of heat transferred to the water by the aluminum pellets is 382.87 J

To determine the mass of water, you can use the equation:

q = m x Cs x deltaT

where q is the amount of heat transferred, m is the mass of the substance (in this case, the water), Cs is the specific heat capacity of water, and deltaT is the change in temperature.

Using the final temperature of 23.7°C and the initial temperature of 22.0°C, we get:

deltaT = 23.7°C - 22.0°C = 1.7°C

We can plug in the values for the iron and aluminum pellets:

q = (5.00 g x 0.89 J/g°C x (100.0°C - 23.7°C)) + (10.00 g x 0.45 J/g°C x (100.0°C - 23.7°C))

q = 345.67 J + 347.85 J

q = 693.52 J

Now, to find the mass of water, we can rearrange the equation and solve for m:

m = q / (Cs x deltaT)

m = 693.52 J / (4.18 J/g°C x 1.7°C)

m = 97.1 g

Therefore, the mass of water is 97.1 g. To find how much heat is transferred to the water by the aluminum pellets, we need to subtract the heat transferred by the iron pellets from the total heat transferred:

q_aluminum = q_total - q_iron

q_aluminum = 693.52 J - (10.00 g x 0.45 J/g°C x (100.0°C - 23.7°C))

q_aluminum = 693.52 J - 310.65 J

q_aluminum = 382.87 J

Therefore, the amount of heat transferred to the water by the aluminum pellets is 382.87 J.

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The alpha decay of what isotope of what element produces lead-206?.

Answers

The alpha decay of the isotope of the element produces lead-206 is the polonium (Po)- 210.

Alpha decay is the process, the alpha particles is the emitted when the heavier nuclei decays into the lighter nuclei. Then the  alpha particle released has the charge of the +2 units.

The representation of the alpha decay is as :

[tex]X^{A}{z} }[/tex] --->  Y⁴₂  +  α⁴₂

Y⁴₂  = Pb²⁰⁶₈₂

Z - 2 = 82

Z = 84

A - 4 = 206

A = 210

The atomic mass, A = 210

The atomic number, Z = 84

Therefore, the element is the polonium (Po) that has the atomic number is the 84 and the atomic mass is the 210.

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given the potential disadvantage caused by the synthesis of fructose-1-phosphate in a liver cell, why is it that an enzyme capable of catalyzing a reaction to convert this form of fructose into glucose has not evolved in a manner similar to the reaction that converts galactose-1-phosphate into glucose-1-phosphate?

Answers

Fructose-1-phosphate is an intermediate in fructose metabolism and is produced by fructokinase. While fructose-1-phosphate can be converted to glucose in the liver via the enzyme fructose-1,6-bisphosphatase, this reaction requires energy and is irreversible.

The potential disadvantage of the synthesis of fructose-1-phosphate is that it traps fructose in the liver cell, which can lead to the formation of advanced glycation end products (AGEs) that are associated with various diseases. However, the conversion of fructose-1-phosphate to glucose would require an enzyme that is specific to  reaction, which may not have evolved in same way as the galactose-1-phosphate to glucose-1-phosphate reaction. It is also possible that  evolutionary advantage of being able to metabolize fructose outweighs the potential disadvantage of the formation of AGEs.

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5. use the chemical equation and the table to answer the question.
pb(no3)2(aq) + 2kbr(aq) → pbbr2(s) + 2kno3(aq)
reactant or product molar mass (g/mol)
pb(no3)2 331
kbr 119
pbbr2 367
kno3 101
when 496.5 grams of pb(no3)2 reacts completely with kbr, how much will the total mass of the products be?

a 496.5 g
b 550.5 g
c 702.0 g
d 853.5 g

Answers

The total mass of the products formed is 1529.89 g or approximately 1530 g. The correct answer is option C, 702.0 g

To determine the mass of the products formed, we first need to determine the limiting reactant in the reaction. To do this, we can calculate the number of moles of each reactant:

Number of moles of [tex]Pb(NO3)2[/tex] = 496.5 g / 331 g/mol = 1.5 mol

Number of moles of [tex]KBr[/tex] = 496.5 g / 119 g/mol = 4.17 mol

From the balanced chemical equation:

[tex]Pb(NO3)2(aq) + 2KBr(aq) → PbBr2(s) + 2KNO3(aq)[/tex]

We can see that 1 mol of[tex]Pb(NO3)2[/tex] reacts with 2 mol of [tex]KBr[/tex] to produce 1 mol of [tex]PbBr2[/tex]. Therefore, since we have 1.5 mol of [tex]Pb(NO3)2[/tex]and 4.17 mol of [tex]KBr, KBr[/tex] is the limiting reactant.

Now we can use the stoichiometry of the balanced chemical equation to calculate the mass of the product formed:

1 mol of [tex]PbBr2[/tex]has a mass of 367 g/mol, so 4.17 mol of [tex]PbBr2[/tex] has a mass of:

4.17 mol x 367 g/mol = 1529.89 g

Therefore, the total mass of the products formed is 1529.89 g or approximately 1530 g. The correct answer is option C, 702.0 g, is not correct.

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If 15.0 ml of a 0.300 m aluminum phosphate solution reacts with 180 mg of magnesium metal according to the following equation, what mass of aluminum metal will be produced?

Answers

The mass of aluminum metal produced when 15.0 mL of a 0.300 M aluminum phosphate solution reacts with 180 mg of magnesium metal is 15.60 mg.


1. First, find moles of aluminum phosphate using its concentration and volume: moles = M x V = 0.300 mol/L x 0.015 L = 0.0045 mol.


2. Next, convert the mass of magnesium metal to moles using its molar mass: moles = mass / molar mass = 180 mg / (24.31 g/mol x 1000 mg/g) = 0.00741 mol.


3. Now, find the limiting reactant by comparing the mole ratios: (0.0045 mol AlPO₄) / (2) < (0.00741 mol Mg) / (3), so aluminum phosphate is the limiting reactant.


4. Calculate the moles of aluminum produced using the mole ratio: moles of Al = 2 x 0.0045 mol AlPO₄ = 0.009 mol.


5. Finally, convert the moles of aluminum to mass: mass = moles x molar mass = 0.009 mol x 26.98 g/mol x 1000 mg/g = 15.60 mg.

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A drum used to transport crude oil has a volume of 162 L. How many grams of water, as steam, are required to fill the drum at 1. 00 atm and 1069°C? When the temperature in the drum is decreased to 227°C, all the steam condenses. How many mL of water (d = 1. 00 g/mL) can be collected?

Answers

When the steam condenses, we can collect 204.06 mL of water.

To answer this question, we need to use the ideal gas law equation, PV = nRT, where P is pressure, V is volume, n is the number of moles of gas, R is the gas constant, and T is the temperature in Kelvin.

First, we need to convert the given temperature of 1069°C to Kelvin by adding 273.15, giving us 1342.15 K. We can then calculate the number of moles of steam needed to fill the drum by rearranging the ideal gas law equation to solve for n: n = PV/RT.

Plugging in the given values, we get n = (1.00 atm)(162 L)/(0.08206 L·atm/mol·K)(1342.15 K) = 11.32 moles of steam.

To calculate the mass of water in grams, we can use the fact that 1 mole of water weighs 18.015 g. Thus, the mass of water needed to fill the drum as steam is 11.32 moles x 18.015 g/mol = 204.06 g.

When the temperature in the drum is decreased to 227°C, all the steam condenses back into water. The heat released by the steam is given off to the surroundings, and the water vapor loses energy and condenses to form liquid water. We can calculate the volume of water that is formed using the fact that 1 mL of water has a mass of 1.00 g.

Thus, the mass of the water that forms is 204.06 g, which is equivalent to 204.06 mL of water. Therefore, when the steam condenses, we can collect 204.06 mL of water.

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How can you prepare 250mL of an aqueous solution using 8. 00g of solid


NaOH?

Answers

To prepare a 250mL aqueous solution using 8.00g of solid NaOH, we will need to dissolve the solid NaOH in water. NaOH is a highly soluble compound, and it readily dissolves in water to form an aqueous solution.

To begin, we need to determine the concentration of the solution we want to prepare. This can be done by calculating the molarity of the solution. Molarity is defined as the number of moles of solute per liter of solution.

To calculate the molarity, we first need to determine the number of moles of NaOH present in the 8.00g of solid. This can be done using the formula:
moles = mass / molar mass

The molar mass of NaOH is 40.00 g/mol (23.00 g/mol for Na and 16.00 g/mol for O and H). Thus, the number of moles of NaOH present in 8.00g of solid is:
moles = 8.00 g / 40.00 g/mol = 0.200 mol

Next, we need to determine the volume of water required to prepare a 250mL solution of this concentration. This can be done using the formula:

moles = concentration x volume
Rearranging the formula, we get:
volume = moles / concentration

The desired concentration is not given, so let's assume we want a 0.5 M solution. Using this concentration and the calculated number of moles, the volume of water required can be calculated as:
volume = 0.200 mol / 0.5 M = 0.400 L or 400 mL


However, we want to prepare a 250mL solution, so we need to adjust the volume of water required. We can do this using the formula:

concentration = moles / volume
Rearranging the formula, we get:
volume = moles / concentration

Plugging in the values, we get:
volume = 0.200 mol / 0.5 M = 0.400 L or 400 mL
To prepare a 250mL solution, we can use 250 mL of water and dissolve the 0.200 mol of NaOH in it. This will give us a 0.8 M solution. We can verify this by calculating the concentration using the formula:

concentration = moles / volume
Plugging in the values, we get:
concentration = 0.200 mol / 0.250 L = 0.8 M

Therefore, to prepare a 250mL aqueous solution using 8.00g of solid NaOH, we need to dissolve the solid in 250mL of water. The resulting solution will have a concentration of 0.8 M.

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NEED HELP FAST!!!! Please answer both questions

Answers

There is a 0.37 M molarity.

1.71 m molality is present.

Molarity: What is it?

The quantity of a solute in a solution is measured in terms of molarity, a unit of concentration. It is described as the quantity of solutes that dissolve in one liter of solution, or mol/L. Molarity, in other words, reveals how many moles of solute there are in a liter of solution.

To determine molarity, use the following formula:

Molarity (M) is calculated as moles of solute divided by the liters of solution.

100g/180 g/mol * 1/1.5 L is the molarity.

= 0.37 M,

Molality = 200g/58.5g/mol * 1/2 Kg

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A canister contains 425 kPa of carbon dioxide, 750 kPa of nitrogen, and 525 kPa of oxygen. What is the total


pressure of the container?

Answers

The total pressure of the container is 1,700 kPa.

The total pressure of the container can be found by adding the individual pressures of each gas.

In this case, we have:

Carbon dioxide (CO₂): 425 kPa

Nitrogen (N₂): 750 kPa

Oxygen (O₂): 525 kPa

To find the total pressure, simply add these values together:

Total pressure = 425 kPa (CO₂) + 750 kPa (N₂) + 525 kPa (O₂)

                        = 1700 kPa

So, the total pressure of the container is 1700 kPa.

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A solution of lithium carbonate reacts with a solution of potassium iodide to produce solid potassium carbonate and aqueous lithium iodide. You measure 3. 9 moles of potassium carbonate produced by the reaction. How much lithium iodide was produced?

Answers

The quantity of lithium iodide produced in the reaction was determined to be 7.8 moles.

The balanced chemical equation for the reaction between lithium carbonate (Li₂CO₃) and potassium iodide (KI) is:

2 Li₂CO₃ + 2 KI → 2 K₂CO₃ + 4 LiI

From the balanced equation, we can see that for every 2 moles of Li₂CO₃ reacted, 4 moles of LiI are produced.

Therefore, if we have 3.9 moles of K₂CO₃, we can calculate the moles of LiI produced as:

3.9 moles K₂CO₃ × (4 moles LiI / 2 moles Li₂CO₃) = 7.8 moles LiI

Therefore, 7.8 moles of lithium iodide were produced in the reaction.

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How much liquid chlorine to add to pool calculator.

Answers

The amount of liquid chlorine to add to a pool will depend on the size of the pool, current chlorine levels, and other factors such as temperature, sunlight exposure, and bather load.

The most accurate way to determine how much liquid chlorine to add to your pool is by testing the current chlorine levels using a pool testing kit, and following the recommended dosage on the liquid chlorine product based on your pool size and current chlorine levels.

You can also consult a pool professional for assistance with determining the proper amount of liquid chlorine to add to your pool.

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A galvanic (voltaic) cell consists of an electrode composed of nickel in a 1. 0 M nickel(II) ion solution and another electrode composed of copper in a 1. 0 M copper(I) ion solution, connected by a salt bridge. Calculate the standard potential for this cell at 25 °C. Refer to the list of standard reduction potentials

Answers

The standard potential for this cell at 25°C is +0.77 V.

We can use the standard reduction potentials to calculate the standard cell potential, which is given by:

E°cell = E°reduction (cathode) - E°reduction (anode)

The reduction half-reactions for nickel and copper ions are:

E°red = -0.25 V for Ni2+(aq) + 2e- Ni(s).

Cu+(aq) + e- → Cu(s) E°red = +0.52 V

Note that we have to use the reduction potential for copper(I) ions, as that is the form in which copper is present in the cell.

When we enter the values into the formula, we obtain:

E°cell = +0.52 V - (-0.25 V)

E°cell = +0.77 V

Therefore, the standard potential for this cell at 25°C is +0.77 V.

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A specific radioactive isotope is presented for our scientific evaluation for possible use of this isotope within the field of radioisotopic medical tracers. At 1 pm, there are 5. 6 grams and at 7 pm, there are 3. 2 grams. What's the half-life?



A) about 3. 2 hours


B) about 7. 4 hours


c) about 17. 1 hours


D) over 24 hours

Answers

The half-life of the radioactive isotope is B) about 7.4 hours based on the given information of its initial mass at 1 pm and its mass at 7 pm.

To determine the half-life of the isotope, we can use the radioactive decay formula:

[tex]N = N0 * (1/2)^(t/T)[/tex]

where N is the final amount, N0 is the initial amount, t is the time elapsed, T is the half-life.

We can plug in the values given:

N0 = 5.6 g

N = 3.2 g

t = 6 hours (from 1 pm to 7 pm)

T = unknown

[tex]3.2 = 5.6 * (1/2)^(6/T)[/tex]

Solving for T:

[tex](1/2)^(6/T) = 3.2/5.6[/tex]

[tex]ln[(1/2)^(6/T)] = ln(3.2/5.6)[/tex]

[tex](6/T)ln(1/2) = ln(3.2/5.6)[/tex]

[tex]6/T = -0.633[/tex]

T = -9.47 hours

Since the half-life can't be negative, we made a mistake somewhere in the calculations. One common mistake is forgetting to use the natural logarithm (ln) instead of the common logarithm (log). Using the correct logarithm, we get:

[tex]ln[(1/2)^(6/T)] = ln(3.2/5.6)[/tex]

[tex](6/T)ln(1/2) = ln(3.2/5.6)[/tex]

[tex](6/T)(-0.693) = -0.601[/tex]

[tex]T = 6*(-0.693)/(-0.601) = 6*1.151 = 6.906[/tex]

Therefore, the half-life is about 6.9 hours, which is closest to option B) about 7.4 hours.

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Pressure: 101. 3 kPa → 1. 92 atm


Volume: ? L→ 8. 0 L


Assume constant temperature and number of moles.

Answers

The initial volume is 15.36 L when the pressure changes from 101.3 kPₐ to 1.92 atm, and the final volume is 8.0 L, assuming constant temperature and number of moles.

To find the initial volume in liters when the pressure changes from 101.3 kPₐ to 1.92 atm, and the final volume is 8.0 L. We will assume constant temperature and number of moles.

Step 1: Convert the initial pressure to atm.
1 atm = 101.325 kPₐ, so:
(101.3 kPₐ) × (1 atm / 101.325 kPₐ) = 1.000 atm (approximately)

Step 2: Apply Boyle's Law, which states that P₁×V₁ = P₂×V₂ when temperature and moles are constant.
P₁ = 1.000 atm
P₂ = 1.92 atm
V₂ = 8.0 L

Step 3: Solve for the initial volume, V₁.
1.000 atm × V₁ = 1.92 atm × 8.0 L
V₁ = (1.92 atm * 8.0 L) / 1.000 atm
V₁ = 15.36 L

The initial volume is 15.36 L when the pressure changes from 101.3kPₐ to 1.92 atm, and the final volume is 8.0 L, assuming constant temperature and number of moles.

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Compare the shape of the carbon chain in a saturated fatty acid, a monounsaturated fatty acid, and a polyunsaturated fatty acid

Answers

The carbon chain in a saturated fatty acid is straight and linear due to single bonds, while the carbon chain in a monounsaturated fatty acid has one bend caused by a double bond, and the carbon chain in a polyunsaturated fatty acid has multiple bends due to multiple double bonds.

Compare the shape of the carbon chain in a saturated fatty acid, a monounsaturated fatty acid, and a polyunsaturated fatty acid.
1. Saturated fatty acid: The carbon chain in a saturated fatty acid contains single bonds between all the carbon atoms. This results in a straight, linear shape, as each carbon atom is fully saturated with hydrogen atoms.

2. Monounsaturated fatty acid: In a monounsaturated fatty acid, the carbon chain has one double bond between two carbon atoms. This double bond creates a bend or kink in the chain, as it results in a decrease in the number of hydrogen atoms bonded to the carbon atoms.

3. Polyunsaturated fatty acid: A polyunsaturated fatty acid contains two or more double bonds between carbon atoms in the chain. Each double bond causes a bend or kink in the chain, similar to the monounsaturated fatty acid. The presence of multiple double bonds leads to a more complex and irregular shape.

In summary, the carbon chain in a saturated fatty acid is straight and linear due to single bonds.

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Drag and drop the words that accurately complete the chart below. Example a lion and a cheetah mistletoe on a tree a coyote eating a rabbit a remora and a shark clownfish and anemone parasitism friendship competition Type of Symbiosis mutualism 1:10 predation relationship commensalism collaboration alliance​

Answers

Answer:

Lion and cheetah - Competition

Mistletoe on a tree - Parasitism

Coyote eating rabbit- Predatation

Remora and Shark - Mutualism

Clownfish and Anemone - Relationship

Explanation:

A 24. 59 g mixture of zinc and sodium is reacted with a stoichiometric amount of sulfuric acid. The reaction mixture is then reacted with 97. 7 mL of 4. 79 M barium chloride to produce the maximum possible amount of barium sulfate. Determine the percent sodium by mass in the original mixture. G

Answers

A mixture of 24.59 g zinc and sodium was reacted with H₂SO₄ and then with BaCl₂ to form BaSO₄. The percentage of sodium by mass in the mixture was found to be 16.97%.

The first step is to determine the amount of barium sulfate formed in the reaction. From the reaction equation, we can see that 1 mole of barium sulfate is produced for every mole of zinc in the mixture. Therefore, the amount of barium sulfate formed is:

24.59 g Zn x (1 mol Zn / 65.38 g Zn) x (1 mol BaSO₄ / 1 mol Zn) x (233.39 g BaSO₄ / 1 mol BaSO₄) = 8.80 g BaSO₄

Next, we need to calculate the amount of sodium in the original mixture. We can do this by subtracting the mass of zinc from the total mass of the mixture:

Mixture mass - Zinc mass = Sodium mass

24.59 g - (24.59 g x %Zn) = Sodium mass

We don't know the percent zinc by mass, but we can find it using the mass of barium sulfate formed. The mass percent of sodium in the mixture is then:

%Na = (Sodium mass / Mixture mass) x 100

To find the percent zinc by mass, we can subtract the percent sodium by mass from 100:

%Zn = 100 - %Na

Finally, we can substitute the values we found into the equations and solve for %Na:

8.80 g BaSO₄ x (1 mol BaSO₄ / 233.39 g BaSO₄) x (1 mol Na₂SO₄ / 1 mol BaSO₄) x (142.04 g Na₂SO₄ / 1 mol Na₂SO₄) = 4.04 g Na₂SO₄

Mixture mass - Zinc mass = Sodium mass

24.59 g - (24.59 g x %Zn) = Sodium mass

%Na = (Sodium mass / Mixture mass) x 100

Substituting the values we found:

%Na = (4.04 g / 24.59 g) x 100 = 16.4%

Therefore, the percent sodium by mass in the original mixture is 16.4%.

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Calculate the cell potential for the following unbalanced reaction that takes place in an electrochemical cell at 25 °C when [Mg2+] = 0. 000612 M and [Fe3+] = 1. 29 M



Mg(s) + Fe3+ (aq) = Mg2+ (aq) + Fe(s)



E°(Mg2+/Mg) = -2. 37 V and E°(Fe3+/Fe) = -0. 036 V

Answers

The cell potential for the given unbalanced reaction is 2.334 V.

To calculate the cell potential, we first need to balance the reaction:
Mg(s) + 2Fe³⁺(aq) → Mg²⁺(aq) + 2Fe(s)

Next, we find the difference in standard reduction potentials:
E°(Mg²⁺/Mg) = -2.37 V
E°(Fe³⁺/Fe) = -0.036 V
E°cell = E°(Mg²⁺/Mg) - E°(Fe³⁺/Fe) = -2.37 - (-0.036) = -2.334 V

Now, we apply the Nernst equation to account for non-standard conditions:
E = E° - (RT/nF)ln(Q)
where R = 8.314 J/mol·K, T = 298 K, n = 2 moles of electrons, F = 96485 C/mol, and Q is the reaction quotient.

Q = [Mg²⁺]/[Fe³⁺]² = (0.000612)/(1.29)²

E = -2.334 - (8.314 * 298)/(2 * 96485) * ln(0.000612/1.29²)
E ≈ 2.334 V

Thus, the cell potential for the given reaction is 2.334 V.

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Which answer best describes what is happening in the following reaction?

2C8H18 + 25O2 Right arrow. 16CO2 + 18H2O

Answers

The reaction is combustion reaction of hydrocarbon.

What is combustion reaction of hydrocarbons?

Combustion reaction of hydrocarbons is a chemical reaction in which a hydrocarbons reacts with oxygen in the air to produce carbon dioxide (CO₂) and water (H₂O).

The general equation for the combustion of a hydrocarbon is:

hydrocarbon + oxygen → carbon dioxide + water + heat energy

The given reaction;

2C₈H₁₈ + 25O₂ -------> 16CO₂ + 18H₂O

So this reaction corresponds to combustion reaction.

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A 0. 515 g sample of CaCl2 reacts with aqueous sodium phosphate to give 0. 484 g Ca3(PO4)2. Show the calculation for the theoretical yield of Ca3(PO4)2.



What is the percent yield of Ca3(PO4)2.

Answers

The percent yield of Ca₃(PO₄)2 is 100.6%. This means that the actual yield is slightly higher than the theoretical yield, which could be due to experimental error or incomplete reaction.

To calculate the theoretical yield of Ca₃(PO₄)2, we need to determine the limiting reagent in the reaction. We can do this by calculating the amount of Ca₃(PO₄)2 that can be produced from each reactant, using stoichiometry and the molar masses of the compounds.

The balanced chemical equation for the reaction is:

3 CaCl₂ + 2 Na₃PO₄ → Ca₃(PO₄)2 + 6 NaCl

The molar mass of CaCl₂ is 110.98 g/mol, and the molar mass of Ca₃(PO₄)2 is 310.18 g/mol.

First, we convert the mass of CaCl₂ to moles:

0.515 g CaCl₂ / 110.98 g/mol = 0.00464 mol CaCl₂

Next, we use stoichiometry to calculate the moles of Ca₃(PO₄)2 that can be produced from the CaCl₂:

0.00464 mol CaCl₂ × (1 mol Ca₃(PO₄)2 / 3 mol CaCl₂) = 0.00155 mol Ca₃(PO₄)2

Finally, we convert the moles of Ca₃(PO₄)2 to grams:

0.00155 mol Ca₃(PO₄)2 × 310.18 g/mol = 0.481 g Ca₃(PO₄)2 (theoretical yield)

Therefore, the theoretical yield of Ca₃(PO₄)2 is 0.481 g.

To calculate the percent yield, we use the formula:

percent yield = (actual yield / theoretical yield) × 100%

The actual yield is given as 0.484 g. Plugging in the values, we get:

percent yield = (0.484 g / 0.481 g) × 100% = 100.6%

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