How many liters of water are required to dissolve 1.00 g of barium sulfate?

Answers

Answer 1
Final answer:

To dissolve 1.00 g of barium sulfate, we would need 1 L of water.

Explanation:

In order to calculate the amount of water needed to dissolve 1.00 g of barium sulfate, we need to use the molar mass of barium sulfate and the concept of molarity.

The molar mass of barium sulfate (BaSO4) is 233.43 g/mol. We can use this to convert the mass of barium sulfate to moles.

Once we know the number of moles of barium sulfate, we can use the molar ratio between barium sulfate and water to calculate the volume of water needed. The balanced equation for the dissolution of barium sulfate in water is:

BaSO4 (s) + H2O (l) → Ba2+ (aq) + SO42- (aq)

Based on this equation, 1 mole of barium sulfate dissolves to give 1 mole of water. Therefore, to dissolve 1.00 g of barium sulfate, we would need 1 L of water.

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Related Questions

Propane (C3 H8 (g), Hf = –103.8 kJ/mol) reacts with oxygen to produce carbon dioxide (CO2 , Hf = –393.5 kJ/mol ) and water (H2 O, Hf = –241.82 kJ/mol) according to the equation below. What is the enthalpy of combustion (per mole) of C3 H8 (g)? Use . –2,044.0 kJ/mol –531.5 kJ/mol 531.5 kJ/mol 2,044.0 kJ/mol

Answers

Given:

Enthalpy of formation data

Hf(C3H8) = -103.8 KJ/Mol

Hf(CO2) = -393.5 kJ/mol

Hf (H2O) = -241.82 kJ/mol

To determine:

Enthalpy of combustion of C3H8

Explanation:

The combustion reaction is:

C3H8 + 5O2 → 3CO2 + 4H2O

ΔHcombustion = ∑nHf(products) - ∑nHf(reactants)

ΔHc = [3(Hf CO2) + 4(Hf H2O)] - [Hf(C3H8) + 5Hf(O2)]

       = [3(-393.5) + 4(-241.82)] -[-103.8 + 5(0)] = -2044 kJ/mol

Ans: (a) -2044 kJ/mol


Answer:

A) –2,044.0

Explanation

Its right on edge

The specific heat of aluminum is 0.215 ???????????? ????????????−℉ . what is the specific heat of aluminum in ???????????? ????????????−°???? , ???? ????????−℃ , and ???? ????????−????

Answers

Q = mass x sph x temp change 
temp change = Q/(mass x sph) 
Temp change =57/(22 x .903) 
Temp Change = 2.97 ∘C 
Temp change 3.0 ∘C

How many c atoms are in 2 mol of sucrose?

Answers

Final answer:

There are 24 carbon atoms in 2 moles of sucrose, as the molecular formula C12H22O11 for sucrose indicates there are 12 carbon atoms per molecule.

Explanation:

The student has asked how many carbon atoms are in 2 mol of sucrose. Sucrose has the molecular formula C12H22O11, which means there are 12 carbon atoms in a single molecule of sucrose. To find the total number of carbon atoms in 2 moles of sucrose, we multiply the number of moles by the number of carbon atoms per molecule of sucrose:

2 mol sucrose × 12 C atoms/mol sucrose = 24 C atoms.

Thus, there are 24 carbon atoms in 2 moles of sucrose.

How many grams of li3n can be formed from 1.75 moles of li? assume an excess of nitrogen. 6 li(s) + n2(g) â 2 li3n(s) how many grams of li3n can be formed from 1.75 moles of li? assume an excess of nitrogen. 6 li(s) + n2(g) â 2 li3n(s) 18.3 g li3n 61.0 g li3n 58.3 g li3n 20.3 g li3n 15.1 g li3n?

Answers

20.3 g First, determine how many moles of Li3N you can produce from 1.75 moles of Li. Since each molecule of Li3N requires 3 atoms of Li, that means that from 1.75 moles of Li, you can only produce 1.75 / 3 = 0.5833 moles of Li3N. Now compute the molar mass of Li3N Atomic weight of Lithium = 6.941 Atomic weight of Nitrogen = 14.0067 Molar mass of Li3N = 3 * 6.941 + 14.0067 = 34.8297 g/mol Now multiply the molar mass by the number of moles 34.8297 * 0.5833 = 20.316 g Of the available 5 choices, only 20.3 g is correct.

A gas made up of atoms escapes through a pinhole 0.155 times as fast as h2 gas. write the chemical formula of the gas.

Answers

Final answer:

Using Graham's law and the given effusion rate, we can calculate the unknown gas's molar mass, which suggests the gas could be CH4 (methane).

Explanation:

The question pertains to the concept of gas effusion and Graham's law, which relates the rates of effusion of gases to their molar masses. Given that a gas escapes through a pinhole 0.155 times as fast as hydrogen gas (H2), and using the fact that hydrogen gas effuses four times as rapidly as oxygen gas (O2), one can use Graham's law to determine the molar mass of the unknown gas. Graham's law states that the rate of effusion of a gas (rate A) is inversely proportional to the square root of its molar mass (molar mass A).

Graham's law formula: rate of effusion of gas A / rate of effusion of gas B = sqrt(molar mass of gas B / molar mass of gas A).

By knowing the rate of effusion of hydrogen and the fact that the unknown gas effuses at 0.155 times the rate of hydrogen, we can use the formula to calculate the molar mass of the unknown gas. Let's assume the molar mass of hydrogen (H2) is 2 g/mol. By substituting the values into the formula, we can solve for the molar mass of the unknown gas.

Calculation: 1^(2) / 0.155^(2) = 2 g/mol / x g/mol, where x is the molar mass of the unknown gas.

Solving for x gives us the estimated molar mass.

The final step is to look for a gas with a molar mass that closely matches our calculation. The gas could well be CH4 (methane), which has a molar mass of approximately 16 g/mol.

An understanding of periodic trends is important because the trends 1. can be used to convert non-useful elements to useful ones. 2. allow compounds to be broken into their elements. 3. relate to properties of elements and how they may react. 4. allow prediction of electron configurations and bond orders.

Answers

3. relate to properties of elements and how they may react. Periodic trends are specific patterns that are present in the periodic table that include size, electronic properties, melting point, electronegativity and metallic character. The trends exist due to the similar atomic structure of the elements within each group family.

In what way would readings from a digital thermometer be preferable to those from a liquid-based thermometer?

Answers

Reading a digital thermometer is more preferable because you can just easily read the measurement from a screen, a number will just show in a screen as compared to a liquid based thermometer where you still have to read the measurement by counting the markers in the thermometer.

Digital thermometer readings are easier to use when performing calculations.



Compare green and red light from the visible spectrum. which has: the longer wavelength? the greater frequency? the greater energy?

Answers

The spectrum goes as follows:
red, orange, yellow, green, blue, indigo and violet
Red has the lowest frequency.
Since frequency is inversely proportional to the wavelength, therefore, red has the longest wavelength.

Now, consider, the equation:
E = (hc) / lambda
Since the energy is inversely proportional to the wavelength, therefore, red will have the lowest energy.

Based on this, for the mentioned question:
1- Red has longer wavelength
2- Green has greater frequency
3- Green has greater energy
Red light will have the longer wavelength (in fact, has the longest wavelength in the visible spectrum). As frequency is the inverse of wavelength, this means that green will have the greater frequency. In addition, since frequency and energy have a direct relationship, green light will also have the greater amount of energy.

Calculate the enthalpy change for the reaction:
2 H2O2(l) → 2 H2O(l) + O2(g)
using enthalpies of formation:
ΔH∘f(H2O2)=−187.8 kJ/mol
ΔH∘f(H2O)=−295.8 kJ/mol

Answers

Answer:

-196.0 kJ

Explanation:

Is apple pie an element a compound a solution or a heterogeneous mixture?

Answers

Apple pie is an heterogeneous mixture.

Hope this helps

There is a golden rule of solubility, polar solute dissolve in polar solvent and non polar solute dissolve in non polar solvent. Therefore,  apple pie is a heterogeneous mixture.

What is solution?

Solutions are a homogeneous mixture of two or more substances. A solution is a homogeneous mixture of solvent and solute molecules. Solvent is a substance that is in large amount in solution. solute is the substance which is in small amount in a solution. There are two types of mixture that is homogeneous and heterogeneous. Solution is a homogeneous solution.

Example: If we take sugar solution then the amount of sugar is small that is solute whereas water is in large quantity which is solvent. It is not necessary that water will be always solvent or liquid will be solvent, solid and gas can be the solvent too.  Apple pie is a heterogeneous mixture.

Therefore,  apple pie is a heterogeneous mixture.

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A compound is found to contain 38.65 % carbon, 16.25 % hydrogen, and 45.09 % nitrogen by mass. what is the empirical formula for this compound?

Answers

Final answer:

By assuming a 100g sample based on percentage by mass, we find the number of moles for each element (Carbon, Hydrogen, Nitrogen) and then express these amounts in the smallest possible ratio. The empirical formula of the compound is thus C5H7N.

Explanation:

Given the percentages by mass, we can assume a 100 gram sample of the compound. Therefore, we have 38.65 grams of Carbon (C), 16.25 grams of Hydrogen (H), and 45.09 grams of Nitrogen (N). We can convert these masses to moles by dividing by the atomic masses of C, H and N, which are approximately 12.01 g/mol, 1.01 g/mol and 14.01 g/mol respectively. This yields approximately 3.22 moles of Carbon, 16.09 moles of Hydrogen and 3.22 moles of Nitrogen.

In order to determine the empirical formula, we need to express these mole amounts in the lowest possible ratio. It can be seen that all of them can be divided by the smallest amount, which is 3.22. This would equal to 1 for Carbon and Nitrogen and 5 for Hydrogen. Therefore, the empirical formula of this compound is C1H5N1 or simply C5H7N.

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What is the electronic geometry of sbr4? enter the electronic geometry of the molecule?

Answers

The valence electron configuration of sulfur S = 3s²3p⁴

Valence electron configuration of Br = 4s²4p⁵

In SBr4, the central Sulfur (S) atom forms 4 covalent bonds with the 4 bromine (Br) atoms. In addition it has 1 lone pair of electrons.

Since the electron geometry not only considers the bond pairs but the lone pairs as well, in the case of SBr4 this would be trigonal bipyramidal.

(Molecular geometry would only consider the 4 covalent bonds which would lend it a distorted tetrahedral structure)

The electronic geometry of SBr4, which stands for sulfur tetrabromide, is trigonal bipyramidal.

In determining the electronic geometry of a molecule, we consider the arrangement of all the electron domains around the central atom. In the case of SBr4, sulfur (S) is the central atom, and it is bonded to four bromine (Br) atoms.

To determine the electronic geometry, we use the valence shell electron pair repulsion (VSEPR) theory. According to VSEPR, the electron domains, which include both bonding and non-bonding electron pairs, repel each other and tend to position themselves as far apart as possible to minimize repulsion.

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Calculate how many Calories would be found in a breakfast consisting of the following: two eggs two pieces of toast buttered with one tablespoon of butter one 9 oz glass of orange juice

Answers

The breakfast consists of two eggs, two pieces of toast with one tablespoon of butter, and a 9 oz glass of orange juice, totaling 510 Calories.

Each item contributes a different amount of Calories, summed together for the final total.

To determine the total Calories in the breakfast, we need to sum the Calories from each component.

Two eggs: One large egg has approximately 70 Calories, so two eggs contribute 140 Calories.Two pieces of toast: One slice of white bread has about 80 Calories, so two slices provide 160 Calories.Butter: One tablespoon of butter adds around 100 Calories.Glass of orange juice: A 9 oz glass (about 270 ml) has approximately 110 Calories.

Adding these up: 140 + 160 + 100 + 110 = 510 Calories.

Summary

The breakfast consisting of two eggs, two pieces of toast with one tablespoon of butter, and a 9 oz glass of orange juice contains a total of 510 Calories.

Correct question is: Calculate how many Calories would be found in a breakfast consisting of the following:

two eggs two pieces of toast buttered with one tablespoon of butter one 9 oz glass of orange juice

What are the five elements named after countries?

Answers

Americium - America
Gallium - Gallia (Latin name for France)
Germanium - Germany
Polonium - Poland
Scandium - Scandanovia 
The answer is:
Americium- America
Francium- France
Germanium- Germany 
Polonium- Poland
Ruthenium- Russia 

Within each group of four atoms or ions presented below, select the species that are isoelectronic with each other: Zn, Fe3+, Mn2+, Ar, Ge2+, Cl-, B-, C

Answers

Final answer:

Among the species listed, Zn and Ge2+ are isoelectronic with each other, each containing 30 electrons. Ar and Cl- are also isoelectronic, with 18 electrons each.

Explanation:

The species that are isoelectronic with each other among the given atoms and ions (Zn, Fe3+, Mn2+, Ar, Ge2+, Cl-, B-, C) are those that have the same number of electrons and thus the same electron configuration. To identify which are isoelectronic, we look at their electron configurations after the ions have lost or gained the necessary electrons.

Zn: [Ar]3d104s2 (30 electrons total)Fe3+: [Ar]3d5 (23 electrons total)Mn2+: [Ar]3d5 (23 electrons total)Ar: [Ne]3s23p6 (18 electrons total)Ge2+: [Ar]3d104s24p2 (30 electrons total)Cl-: [Ne]3s23p6 (18 electrons total)B-: [He]2s22p2 (5 electrons total)C: [He]2s22p2 (6 electrons total)

Considering the above configurations, Zn (30 electrons) and Ge2+ (30 electrons) are isoelectronic with each other, as well as Ar (18 electrons) and Cl- (18 electrons), since they have the same number of electrons. The other atoms and ions listed do not have a species with which they are isoelectronic in this group.

which liquid materials have strong odor and weak odor?

Answers

Odor refers to the fragrance caused by one or more volatilized chemical compounds. It can be strong or weak. 
Strong odor have: Sodium Hypochlorite, Muriatic Acid, Sulphuric Acid, Ammunlom Sulfide.  Butyl ,Butyric Acid, Pyridine 

Weak Odors have Spray Glue, Dry Erase Markers, Paint cleaners. Water.

How many moles of methane are produced when 36.6 moles of carbon dioxide gas react with excess hydrogen gas?

Answers

Answer:

[tex]36.6molCH_4[/tex]

Explanation:

Hello,

The carried out chemical reaction is:

[tex]CO_2+4H_2-->CH_4+2H_2O[/tex]

With the given moles of carbon dioxide, one computes the required moles of methane by applying the following stoichiometric relationship based on the undergoing chemical reaction.

[tex]36.6molesCO_2*\frac{1molCH_4}{1molCO_2}=36.6molCH_4[/tex]

Best regards

Final answer:

In a theoretical or indirect conversion process not detailed in the examples, where carbon dioxide reacts with hydrogen to produce methane, 36.6 moles of carbon dioxide would produce 36.6 moles of methane, assuming a simple 1:1 stoichiometry for CO₂ to CH₄.

Explanation:

The question pertains to the reaction of carbon dioxide gas with hydrogen gas to produce methane. According to the information provided, one mole of methane molecules reacts with two moles of oxygen molecules to yield one mole of carbon dioxide molecules and two moles of water molecules. However, the direct reaction converting carbon dioxide to methane in the presence of hydrogen is not directly provided in the examples.

Given the stoichiometry mentioned, a direct conversion from carbon dioxide to methane isn't specified. Instead, the given reactions suggest the combustion of methane or its reaction with water, leading to the formation of carbon dioxide rather than its conversion back to methane.

Given this, it's assumed that the question implies a theoretical reverse process or a different reaction pathway (such as a methanation process that is not detailed in the examples given), which could convert carbon dioxide back to methane using hydrogen.

Typically, in a methanation reaction, carbon dioxide (CO₂) reacts with hydrogen (H₂) to produce methane (CH₄) and water. If we assume a simple stoichiometry of 1:1 for CO₂ to CH₄ in a direct or catalyzed process, then 36.6 moles of carbon dioxide would theoretically produce 36.6 moles of methane under conditions allowing for complete conversion.

At which of the following temperatures is the chance of molecules aligning just right for a chemical change the highest?
50 °F
40 °F
30 °F
20 °F

Answers

50 degrees F, because this is the highest temperature, and thus the molecules will be the most active. With more activity they will have more collisions, with more collisions they have higher chances of combining for a chemical change.

50 °F would give a possible chance of the molecules aligning just right for a chemical change because the higher the temperature, the more excited, or active the molecules will become. When there is more activity, there is more collision, which results in heat from the friction, and they will have a higher chance for chemical change because of the frequent run-ins of these molecules.

Hope this helps! If it's right or wrong, please let me know :)


What type of bonding occurs in a sample of pure chromium, cr? in other words, how is one chromium atom held to another chromium atom?

Answers

Chromium is a metal in nature. So when one chromium is bonded to another chromium, there is a weak intermolecular forces which helds them together which we call as “metallic bonding”.

Metallic bonding is the intermolecular force of attraction which exist between valence electrons and the metal atoms. It is considered as the sharing of various detached electrons between many positive ions, whereby the electrons serve as a "glue" which gives the substance a definite structure.

a. calculate the mass percent of NaHCO3 based on the manufacturer's list of ingredients: 325mg aspirin, 1000 mg citric acid, 1916 mg NaHc03 .


Answers

The mass percent of NaHCO3 can be calculated by dividing the mass of NaHCO3 by the total mass of the compound and then multiplying the quotient by 100 to get the percentage.

mass % of NaHCO3 = (mass of NaHCO3 / total mass) * 100

Now, we have:
mass of NaHCO3 = 1916 mg
total mass = 325 + 1000 + 1916 = 3241 mg

Substitute with these numbers in the equation to get the mass percentage as follows:
mass  % = (1916/3241) * 100 = 59.11755631%

The mass percent of NaHCO₃ in the mixture is approximately 59.11%.

To calculate the mass percent of NaHCO₃ in the mixture, we use the formula:

Mass percent of NaHCO₃ = [tex]\frac{Mass of NaHCO_3}{Total mass of the mixture} \times 100[/tex]

Given the masses of the ingredients:

- Aspirin: 325 mg

- Citric acid: 1000 mg

- NaHCO₃: 1916 mg

First, we convert these masses to grams to make the calculation easier, since the standard unit for mass in chemistry is grams:

325 mg = 0.325 g

1000 mg = 1.000 g

1916 mg = 1.916 g

Now, we calculate the total mass of the mixture:

Total mass = 0.325 g + 1.000 g + 1.916 g

Total mass = 3.241 g

Next, we calculate the mass percent of NaHCO₃:

Mass percent of NaHCO₃ = [tex]\left( \frac{1.916 \text{ g}}{3.241 \text{ g}} \right) \times 100[/tex]

Now, we perform the division and multiply by 100 to find the mass percent:

Mass percent of NaHCO₃ = [tex]\left( \frac{1.916}{3.241} \right) \times 100[/tex]

Mass percent of NaHCO₃ = 0.5911 x 100

Mass percent of NaHCO₃ = 59.11%

Which of the substances are largely ionic nonpolar covalent polar covalent?

Answers

An example of a substance with a covalent bond can be found with Ozone or O3 which is the bonding of three oxygen atoms. An example of an ionic bond can be found with table salt or Sodium Chloride which is more commonly known as NaCl. Ionic bonds have a charge.

The general reaction of carboxylic acid derivatives is __________.

Answers

Final answer:

The general reaction of carboxylic acid derivatives is nucleophilic acyl substitution, in which a nucleophile reacts with the electrophilic carbonyl carbon leading to a substitution of the group attached to it.

Explanation:

The general reaction of carboxylic acid derivatives is nucleophilic acyl substitution. In this reaction, the carbonyl carbon of carboxylic acid derivatives is typically electrophilic. Nucleophiles can react with it, leading to the substitution of the group attached to the carbonyl carbon. Let's consider an ester as a simple example of carboxylic acid derivatives. A reaction involving an alcohol, for instance, methanol, will result in the substitution of the original alcohol group with a methanol group.

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The general reaction of carboxylic acid derivatives is nucleophilic acyl substitution .

This reaction involves the replacement of the leaving group on the carboxylic acid derivative with a nucleophile. The leaving group is typically a halogen, an alkoxy group, or an amino group. The nucleophile can be any species with a lone pair of electrons, such as an alcohol, an amine, or a water molecule.

The mechanism of nucleophilic acyl substitution is as follows:

1. The nucleophile attacks the carbonyl carbon of the carboxylic acid derivative.

2. The leaving group departs, forming a tetrahedral intermediate.

3. The intermediate collapses, forming the new acyl product and the leaving group.

The rate of nucleophilic acyl substitution depends on a number of factors, including the nature of the nucleophile, the nature of the leaving group, and the presence of any catalysts.

In general, more reactive nucleophiles and leaving groups will lead to faster reactions.

Here are some examples of nucleophilic acyl substitution reactions:

Esterification: The reaction of a carboxylic acid and an alcohol to form an ester.

Amide formation:  The reaction of a carboxylic acid and an amine to form an amide.

Hydrolysis:  The reaction of a carboxylic acid derivative with water to form a carboxylic acid and the corresponding leaving group.

Nucleophilic acyl substitution reactions are very important in organic chemistry. They are used to synthesize a wide variety of products, including pharmaceuticals, pesticides, and food additives.

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Give the charge and full ground-state electron configuration of the monatomic ion most likely to be formed by the element. rb
a. rb+: 1s22s22p63s23p64s23d104p65s2
b. rb+: 1s22s22p63s23p64s23d104p65s1
c. rb+: 1s22s22p63s23p64s23d104p5
d. rb+: 1s22s22p63s23p64s23d104p6
e. none of these

Answers

Actually Rb or Rubidium in zero state has the following electron configuration:

1s22s22p63s23p63d104s24p65s1

 

However we can see that the ion has a 1 positive charge, which means that it lacks 1 electron, therefore the answer from the choices is:

d. rb+: 1s22s22p63s23p64s23d104p6
Final answer:

Rb forms a +1 ion by losing one electron, leaving it with an electron configuration of 1s22s22p63s23p64s23d104p6. The correct answer is option B.

Explanation:

The given options describe potential +1 ion states of the element rubidium (Rb). When Rb forms a +1 ion, it does so by losing one electron. In its ground state, Rb has the electron configuration 1s22s22p63s23p64s23d104p65s1. When it forms a +1 ion, it becomes Rb+, losing the one electron in the 5s shell. Therefore, the correct electron configuration for Rb+ is 1s22s22p63s23p64s23d104p6, which matches option B from your list.

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Write the balanced equation for the neutralization reaction between h2so4 with naoh

Answers

since it is a neutralizing reaction then the product will be H2O and salt so
H2SO4+NaOH-->NaSO4+H2O
so balancing
H2SO4+2NaOH--->Na2SO4+2H2O
H2SO4 or hydrogen sulfate is an acid and NaOH or sodium hydroxide is a base or an alkali. The reaction between an acid and a base or alkali produces a salt and water. The reaction between these substances is shown below:
H2SO4 (aq) + 2NaOH (aq)------>2H20 (L) + Na2SO4 (aq). The salt produced in this reaction is sodium sulfate. 

How many milliseconds are there in 3.5 seconds

Answers

There are 3,500 milliseconds in 3.5 seconds. Hope this helps!
There are 3500 milliseconds.

What dissolved species are present in a solution of NaClO4?

Answers

Assuming that the solution is simply an aqueous solution so that it is purely made of NaClO4 (the solute) and water (the solvent), then I believe the dissolved species would only be the ions of NaClO4, these are:

 

Na+

ClO4 -

What is the white solid that forms when methyl salicylate is added to sodium hydroxide?

Answers

The white solid that forms when methyl salicylate is added to sodium hydroxide is known as sodium salicylate. It is formed through a hydrolysis reaction when methyl salicylate reacts with an excess of sodium hydroxide when under high temperatures and pressure.
Final answer:

When methyl salicylate is added to sodium hydroxide, sodium salicylate is produced. This white solid result is due to an acid-base reaction involving the neutralization of methyl salicylate (an ester) by the base, sodium hydroxide.

Explanation:

The white solid that forms when methyl salicylate is added to sodium hydroxide is sodium salicylate. This reaction is an example of an acid-base reaction, specifically the neutralization of an ester with a base. Methyl salicylate is an ester of salicylic acid and methanol. In this reaction, the sodium hydroxide acts as a base to deprotonate the methyl salicylate, forming sodium salicylate and methanol. The sodium salicylate is observed as a white solid following the reaction.

When methyl salicylate is added to sodium hydroxide, a white solid called methyl salicylate sodium salt is formed.

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Co(s) is placed into a solution containing Au+(aq). A redox reaction occurs, the products of which are Co3+(aq) and Au(s), what is the balanced redox equation?

Answers

The reaction described above is a single-replacement reaction as Co was able to replace Au in the solution. The redox reaction involves a process in which one agent is reduced while the other one is oxidized. The ionic equation can be expressed as,

           Co(s) + Au⁺(aq) --> Co³⁺(aq) + Au(s)

If we are to balance the equation such that equal number of electrons will be in both sides of the equation, this will become.

       Co(s) + 3Au⁺(aq) --> Co³⁺ + 3Au(s)

How many grams of copper (II) chloride dihydrate would be requires to react completely with 1.20 g of aluminum

Answers

11.37g of copper (II) chloride dihydrate would be required to react completely with 1.20 g of aluminum.

What is the balanced molecular equation?

A balanced molecular equation consists of an equal number of atoms of each element on the both reactant and product sides.

The reaction between copper (II) chloride dihydrate and aluminum has a balanced molecular equation as:

3CuCl₂.2H₂O  + 2Al  →  2AlCl₃ + 3Cu + 6H₂O

From the above equation, we can say that the 3 moles of copper (II) chloride dihydrate reacts with 2 moles of Al.

Given, the mass of aluminum = 1.20g

The number of moles of aluminum = Mass/molar mass

Number of moles of Al = 1.20/26.98 =  0.0455 mol

If  2 moles of aluminum react with copper (II) chloride dihydrate  = 3 mol

0.0445 mol of Al will react with copper (II) chloride dihydrate

= (3/2) × 0.0445 = 0.0667 mol

The molecular mass of the copper (II) chloride dihydrate  = 170.48g/mol

The mass of 0.667 mol of copper (II) chloride dihydrate will be:

= 0.0667 × 170.48

= 11.37 g

Therefore, the 1.20 grams of aluminum will react with 11.37 grams of copper (II) chloride dihydrate completely.

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The ostwald process is used commercially to produce nitric acid, which is, in turn, used in many modern chemical processes. in the first step of the ostwald process, ammonia is reacted with oxygen gas to produce nitric oxide and water. what is the maximum mass of h2o that can be produced by combining 51.3 g of each reactant?

Answers

4 NH3 + 5 O2 ----> 4 NO + 6 H2O 4 moles of ammonia (4 * 17.03 g/mol) will react with 5 moles of oxygen (5 * 32.00 g/mol) to give 6 moles of water (6 * 18.02 g/mol). This means that 68.12 grams of ammonia will react with 160.0 grams of oxygen to yield 108.12 grams of water. If only 75.6 grams of oxygen are available then: 75.6 g / 160.0 g/mol = 0.47 mol of oxygen is used.
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