at 25 c what is the osmotic pressure of a homogeneous solution consisting of 18.0 g urea

The scientist needs to use 1.23 L of the 0.930 m solution for the experiment.

moles = concentration x volume

0.930 mol/L = 0.930 M

moles = concentration x volume

1 mol = 0.930 M x volume

volume = 1 mol / 0.930 M

volume = 1.075 L

So 1 L of the 0.930 m solution contains 1.075 mol of potassium chlorite.

To find the volume of the 0.930 m solution that contains 1.32 mol of potassium chlorite, we can use the following proportion:

1.075 mol / 1 L = 1.32 mol / x

where x is the volume of the solution we need to use.

Solving for x, we get:

x = 1.32 mol / (1.075 mol / 1 L) = 1.23 L

A solution is a homogeneous mixture of two or more substances. The substance that is present in the largest quantity is called the solvent, while the substance that is present in smaller quantities is called the solute. Solutions can exist in all three states of matter, namely solid, liquid, and gas.

The properties of a solution depend on the concentration of the solute in the solvent. The concentration of a solution can be expressed in several ways, such as molarity, molality, mole fraction, and weight percent. Solutions play a crucial role in many chemical reactions, as they allow the reactants to come into close contact with each other, increasing the likelihood of a reaction taking place. Solutions are also used in many industries, such as pharmaceuticals, food and beverage, and chemical manufacturing.

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The osmotic pressure of the solution is 0.893 atm.

To calculate the osmotic pressure of the solution, we can use the equation:

π = MRT

Where:

π = osmotic pressure (in atm)

M = molarity of the solution (in mol/L)

R = ideal gas constant = 0.08206 L·atm/(mol·K)

T = temperature (in K)

First, we need to calculate the molarity of the solution:

Number of moles of Ca(NO3)2 = 1.64 g / (164.1 g/mol) = 0.01 mol

Volume of solution = 275 mL = 0.275 L

Molarity of solution = 0.01 mol / 0.275 L = 0.036 M

Now we can calculate the osmotic pressure:

π = (0.036 mol/L) x (0.08206 L·atm/(mol·K)) x (298.15 K) = 0.893 atm

Therefore, the osmotic pressure of the solution is 0.893 atm.

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The osmotic pressure of an ideal solution of 1.64 g Ca(NO3)2 in 275 mL of water at 25 °C is 0.89 atm.

First, we need to find the molarity of the solution. Given the formula weight of Ca(NO3)2 is approximately 164.087 g/mol, the number of moles of Ca(NO3)2 in 1.64 g is 1.64 g/164.087 g/mol = 0.01 mol. As it is dissolved in a solution with a volume of 275 mL (or 0.275 L), the molarity (M) is the number of moles/volume in L, or 0.01 mol/0.275 L = 0.03636 mol/L. We use the osmotic pressure formula, Π = MRT, where R is the ideal gas constant 0.0821 L·atm/mol·K and T is the temperature in Kelvin. The temperature in Kelvin is 25 °C + 273.15 = 298.15 K. Therefore, the osmotic pressure (Π) is 0.03636 mol/L × 0.0821 L·atm/mol·K × 298.15 K = 0.89 atm.

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The answer is (b) O2(g) is limiting, 1 mole of N2(g) is in excess.

To determine the limiting reactant, we need to calculate the amount of product that each reactant would produce if it reacted completely, and the reactant that produces the least amount of product is the limiting reactant.

From the balanced equation, 1 mole of N2 reacts with 2 moles of O2 to produce 2 moles of NO2.

If we use up all 3 moles of N2, we will need 6 moles of O2 to react with it completely, producing 2 × 3 = 6 moles of NO2.

If we use up all 9 moles of O2, we will need 4.5 moles of N2 to react with it completely, producing 2 × 4.5 = 9 moles of NO2.

Since we have more O2 than we need to react with N2, O2 is in excess, and N2 is the limiting reactant.

To determine the amount of excess O2 remaining after the reaction is complete, we can calculate how much O2 was used up in the reaction:

3 moles of N2 require 6 moles of O2 to react completely, so 9 moles of O2 were used up. This means we started with 9 moles of O2 and used up all of it, so there is 0 moles of excess O2 remaining.

Therefore, the answer is (b) O2(g) is limiting, 1 mole of N2(g) is in excess.

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Answer:

a. An element contains only one type of particle

Explanation:

The formal charges on each of the nitrogen atoms in the N3- ion shown are:

- Middle nitrogen atom: 0

- End nitrogen atoms: -1 (x²)

To calculate the formal charges on each of the nitrogen atoms in the N3- ion shown, we need to first determine the valence electrons of nitrogen. Nitrogen has five valence electrons, so in the N3- ion, there are a total of 15 valence electrons (5 valence electrons per nitrogen atom).

To calculate the formal charge, we need to subtract the number of non-bonded electrons (lone pairs) and half of the bonded electrons from the valence electrons of each nitrogen atom.

For the middle nitrogen atom, it has four non-bonded electrons and two bonded electrons, giving it a formal charge of 0.

For the two end nitrogen atoms, they each have two non-bonded electrons and four bonded electrons, giving them a formal charge of -1.

Overall, the N3- ion has a charge of -3, which is the sum of the formal charges on each nitrogen atom.

In summary, the formal charges on each of the nitrogen atoms in the N3- ion shown are:

- Middle nitrogen atom: 0

- End nitrogen atoms: -1 (x²)

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The pressure gradient force between Hayward and Stockton is 0.125 mb km⁻².

To calculate the pressure gradient force, we need to determine the pressure difference per unit distance between Hayward and Stockton, given that the atmospheric pressure in Hayward is 1030 mb, the atmospheric pressure in Stockton is 1040 mb, and the cities are 80 km apart.

First, we find the pressure difference between the two locations:

Pressure difference = Atmospheric pressure in Stockton - Atmospheric pressure in Hayward

Pressure difference = 1040 mb - 1030 mb

Pressure difference = 10 mb

Next, we calculate the pressure gradient force per unit distance:

Pressure gradient force = Pressure difference / Distance

Pressure gradient force = 10 mb / 80 km

Pressure gradient force = 0.125 mb km⁻²

Therefore, the pressure gradient force between Hayward and Stockton is 0.125 mb km⁻².

This value represents the change in pressure over each kilometer between the two cities and helps determine the strength and direction of air movement in the region.

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The main answer to your question is that during nitrogen fixation, the chemical transformation that occurs is the reduction of N2 (nitrogen gas) to NH3 (ammonia).

This is accomplished through the use of nitrogenase enzymes by certain bacteria and archaea. The explanation for this process involves the breaking of the triple bond between the two nitrogen atoms in N2, which requires a large input of energy.

Once the bond is broken, the nitrogen atoms can be combined with hydrogen atoms to form NH3. This process is essential for the creation of biologically available nitrogen that can be used by plants and other organisms.

In summary, nitrogen fixation involves the reduction of N2 to NH3 through the use of nitrogenase enzymes, and is a crucial step in the global nitrogen cycle.

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Only light waves can be observed on Earth from an explosion in space. This is because space is a vacuum, which means there is no medium for sound waves to travel through, hence option A) is the correct answer.

Only light waves can be observed on Earth from an explosion in space. This is because space is a vacuum, which means there is no medium for sound waves to travel through. Sound waves require a medium such as air or water to travel, and since space is essentially empty, there is no medium for sound waves to propagate through. On the other hand, light waves do not require a medium to travel through and can travel through the vacuum of space. Therefore, any explosion in space would release electromagnetic radiation, which includes various wavelengths of light. These light waves could be observed on Earth if they are within the range of the electromagnetic spectrum that can be detected by our telescopes and instruments. In summary, sound waves cannot be observed from an explosion in space, but light waves can be observed on Earth if they are within the detectable range of the electromagnetic spectrum. Therefore option A) is correct.

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When the mole fraction of glucose in (c6h12o6) and 162 g of water is calculated, the solution is 0.10.

First, we need to calculate the total number of moles of the glucose and water.

Moles of glucose = Mass of glucose / Molar mass of glucose

Molar mass of glucose (C6H12O6) = 6*(12.01) + 12*(1.01) + 6*(16.00) = 180.16 g/mol

Moles of glucose = 180 g / 180.16 g/mol = 1 mol

Moles of water = Mass of water / Molar mass of water

Molar mass of water (H2O) = 2*(1.01) + 16.00 = 18.02 g/mol

Moles of water = 162 g / 18.02 g/mol = 9 mol

The total number of moles in the solution is the sum of the moles of glucose and water:

Total moles = 1 mol + 9 mol = 10 mol

The mole fraction of glucose can then be calculated as the ratio of the moles of glucose to the total number of moles:

Mole fraction of glucose = Moles of glucose / Total moles

Mole fraction of glucose = 1 mol / 10 mol = 0.10

The mole fraction of glucose in the given solution, containing 180 g of glucose (C6H12O6) and 162 g of water, is 0.10.

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The IUPAC names for each of the compounds mentioned:

1. CH₃CH₂C(CH₃)₂CH(CH₂CH₃)CH₃: The IUPAC name for this compound is 4-ethyl-2,2-dimethylhexane.

2. CH₃C(CH₃)CH₂CH₂OCH₃: The IUPAC name for this compound is 1-methoxy-3-methylbutane.

3. CH(NH₂)CH₃: The IUPAC name for this compound is methylamine.

4. CH₃OCH₂CH₂CH₃: The IUPAC name for this compound is 1-methoxypropane.

5. CH(CH₃)₂COOH: The IUPAC name for this compound is 2,2-dimethylpropanoic acid.

Explanation;

To give systematic IUPAC names, we need to follow the rules of IUPAC nomenclature.

1. For the first compound, we start by identifying the longest carbon chain.

2. Then find the substituents attached. Name all the substituents initially.

3. Find the functional group and name the compound per the functional group at the end.

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When petroleum is distilled to separate the components by boiling point, the component with the highest boiling point is called residuum.

When petroleum is distilled to separate its components by boiling point, a process called fractional distillation is used.

In this process, the crude oil is heated, and different hydrocarbon components are separated based on their boiling points.

The component with the highest boiling point is called the residuum, also known as residual fuel oil or heavy fuel oil.

Residuum is the heaviest and most viscous component obtained from the fractional distillation of petroleum. It is commonly used in industrial applications, such as marine engines and power plants, due to its high energy content and low cost.

Keep in mind that the residuum may require further processing or blending with lighter fuels to meet specific requirements for its intended use.

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The free energy change for the reaction at 298 K is +81.8 kJ/mol.

We can calculate the free energy change for this reaction using the following equation:

ΔG = ΔH - TΔS

Where ΔH is the enthalpy change, ΔS is the entropy change, T is the temperature in Kelvin, and ΔG is the free energy change.

For the reaction NaHCO₃(s) ⇌ NaOH(s) + CO₂(g), the enthalpy change and entropy change can be determined from the balanced chemical equation:

NaHCO₃(s) → NaOH(s) + CO₂(g)

ΔH = ΔH(products) - ΔH(reactants) = [ΔHf°(NaOH) + ΔHf°(CO₂)] - ΔHf°(NaHCO₃)

ΔH = [( -425.9 kJ/mol + (-393.5 kJ/mol))] - (-950.7 kJ/mol) = +131.3 kJ/mol

ΔS = ΔS(products) - ΔS(reactants) = [ΔSf°(NaOH) + ΔSf°(CO₂)] - ΔSf°(NaHCO₃)

ΔS = [(+51.5 J/(mol·K) + 213.7 J/(mol·K))] - (+100.4 J/(mol·K)) = +165.8 J/(mol·K)

Substituting these values into the equation for ΔG gives:

ΔG = ΔH - TΔS = +131.3 kJ/mol - (298 K)(0.1658 kJ/(mol·K))

ΔG = +131.3 kJ/mol - 49.5 kJ/mol = +81.8 kJ/mol

Therefore, the free energy change for the reaction at 298 K is +81.8 kJ/mol.

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The following chemical compounds are;

V₂O₅ Vanadium (V) oxide,

SF₆ Sulfur hexafluoride

HClO₂ Chlorous acid

(NH₄)₂SO₄·6H₂O Ammonium sulfate hexahydrate

Chlorous acid is a weak and unstable acid. This acid exists mainly  in aqueous solutions. They are used in disinfectants, and bleaching products. They are good sanitizers and helps to reduce bacteria.

Apart from being in products we commonly use in our house, Chlorous acid is also used in the paper and textile industries for bleaching purposes.

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A polymerization acrylic resin is formed through a chemical reaction known as polymerization, which occurs when a liquid monomer, as methyl methacrylate, is mixed powder of small polymer beads, polymethyl methacrylate.

A polymerization acrylic resin is formed when a liquid monomer is mixed with a powder of small polymer beads. This process creates a strong and durable material commonly used in various applications, such as dental prosthetics and acrylic nails. The polymerization reaction occurs when the monomer and polymer beads chemically bond, resulting in a solid acrylic resin with enhanced properties.

This mixture, when activated by a catalyst or initiator, undergoes a chain reaction that links the individual monomer molecules together to form a large, three-dimensional network of polymers, resulting in a solid and durable material. This polymerized acrylic resin can be used in various applications, including dentistry, orthopedics, and as a coating or adhesive.

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The Complete question is

A polymerization acrylic resin is formed when a liquid monomer is mixed with a powder of small polymer beads. What is the polymerise acrylic resin is mixed with powder?

The correct statement regarding the delta of the option presented in Exhibit 3 is: "Delta is -0.4024 for the first step and is different for the second step." Option B is Correct.

This indicates that the delta value changes over time and is not constant for both steps. Hess' law states that when the primary reaction is conducted at the same temperature, all intermediate reactions that can be divided into the main reaction have standard enthalpies that add up to the same value.

The enthalpy change for a reaction is independent of the number of possible ways a product might be created if the starting and finishing conditions are the same. A reaction's negative enthalpy change denotes an exothermic process, whereas a reaction's positive enthalpy change denotes an endothermic activity.

Because the energy required for each stage of the process is the same, a reaction that occurs in just one step will have the same enthalpy as a reaction that occurs in several phases. The enthalpy of a reaction does not rely on the reaction route, according to Hess's law.

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Which of the following is true regarding the delta of the option presented in exhibit 3?

A. delta is -0.7357 for the first step and it changes over time.

B. delta is -0.4024 for the first step and is different for the second step

C. delta may be 1.00 in the second step delta will be the same for both steps

The number of moles of calcium chloride 6-hydrate produced is 7.20 moles. Please note that this calculation assumes excess calcium carbonate and water, meaning that all the hydrochloric acid is consumed in the reaction.

The balanced chemical equation for the reaction between calcium carbonate (CaCO3) and hydrochloric acid (HCl) to produce calcium chloride 6-hydrate (CaCl2H12O6) and carbon dioxide (CO2) is:

CaCO3 (s) + 2HCl (aq) + 5H2O (l) → CaCl2H12O6 (s) + CO2 (g)

According to the equation, 1 mole of CaCO3 reacts with 2 moles of HCl to produce 1 mole of CaCl2H12O6. Given that 7.20 moles of HCl are added, we can conclude that 7.20 moles of CaCl2H12O6 will be produced. Therefore, the number of moles of calcium chloride 6-hydrate produced is 7.20 moles. Please note that this calculation assumes excess calcium carbonate and water, meaning that all the hydrochloric acid is consumed in the reaction.

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To determine the vapor pressure of acetone at 25 °C using the given information, we can utilize the Clausius-Clapeyron equation: the vapor pressure of acetone at 25 °C is approximately 1.0114 atm.

ln(P₂/P₁) = (ΔHvap/R) × (1/T₁ - 1/T₂)

First, we need to convert the heat of vaporization from kilojoules to joules:

ΔHvap = 31.3 kJ/mol = 31.3 × 1000 J/mol

Now, we can plug in the values into the equation and solve for P₂:

ln(P₂/1 atm) = (31.3 × 1000 J/mol / (8.314 J/(mol*K))) * (1/329 K - 1/298 K)

ln(P₂/1 atm) = 3.755 × (0.0030 K^-1)

Taking the exponential of both sides to eliminate the natural logarithm:

P₂/1 atm = e^(3.755 * 0.0030 K^-1)

Finally, solving for P₂:

P₂ = 1 atm * e^(3.755 * 0.0030 K^-1)

Calculating P₂:

P₂ ≈ 1 atm * e^(0.0113 K^-1)

P₂ ≈ 1 atm * 1.0114

Therefore, the vapor pressure of acetone at 25 °C is approximately 1.0114 atm.

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The ability of H2O2 to act as an oxidizing or reducing agent is determined by the strength of the O-O bond in the molecule, which can be affected by the presence of oxidizing or reducing agents, as well as the pH of the solution. The ability of H2O2 to act as both an oxidizing and a reducing agent is also affected by the pH of the solution in which it is present.

Hydrogen peroxide (H2O2) is a molecule that can act as both an oxidizing and a reducing agent under different conditions. The best theoretical explanation for this phenomenon lies in the nature of the oxygen-oxygen (O-O) bond in H2O2.

In its pure form, the O-O bond in H2O2 is a weak bond that can be easily broken by the addition of energy. When H2O2 is exposed to an oxidizing agent, such as a metal oxide or a halogen, the O-O bond is broken and H2O2 releases oxygen gas (O2) and water (H2O). In this process, H2O2 acts as a reducing agent by donating electrons to the oxidizing agent, which in turn reduces its own oxidation state.

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The hybridization of the following molecules are:

[tex]COCl_{2} = sp^{2}[/tex], [tex]CCl_{4} = sp^{3}, PBr_{5} = sp^{3}d[/tex]

In [tex]COCl_{2}[/tex]  Since carbon has the lowest electronegative charge of the three elements, we will position it in the center to improve stability and electron density distribution. The atoms of oxygen and chlorine will occupy the sites of nearby atoms.

The central C atom in the molecule [tex]CCl_{4}[/tex] contains four valence electrons and forms four sigma bonds with the Cl atoms; as a result, the stearic number of C is four, and this suggests that the hybridization of the molecule is [tex]sp^{3}[/tex], with tetrahedral geometry and shape.

Because one electron enters the s orbital, three occupy the p orbital, and the final electron enters the d orbitals of the core atom, the hybridization of [tex]PBr_{5}[/tex] is [tex]sp^{3}d[/tex].

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The complete question is:

what is the hybridization of the central atom of each of the following molecules? drag the appropriate items to their respective bins.

CoCl2, CCl4, PBr5

Gravity is the attractive force between all objects. The correct answer is A.

Gravity is the fundamental force of attraction that exists between all objects with mass. It is responsible for the formation and behavior of planets, stars, galaxies, and the entire universe. The force of gravity depends on the masses of the objects and the distance between them, and it acts in all directions. Gravity is what keeps us grounded on Earth, and it is also responsible for the motion of objects in space. The laws of gravity were first described by Sir Isaac Newton in the 17th century and later refined by Albert Einstein's theory of general relativity in the 20th century. The correct answer is option A.

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The main answer to your question is that the change of mass resulting from the release of heat when 1 mol SO2 is formed from the elements is 0 grams.

According to the law of conservation of mass, the total mass of the reactants in a chemical reaction must equal the total mass of the products.

In this reaction, 1 mol of sulfur (S) reacts with 1 mol of oxygen gas (O2) to form 1 mol of sulfur dioxide (SO2).

Since the number of moles and types of atoms are conserved, there is no change in mass as the reaction progresses.

Summary: The change of mass in the formation of 1 mol SO2 from its elements is 0 grams due to the conservation of mass in chemical reactions.

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Lattice energy is a measure of the strength of the electrostatic attraction between ions in an ionic compound. The higher the lattice energy, the stronger the ionic bond is between the ions.The lattice energy is dependent on several factors, including the charge of the ions, the size of the ions, and the distance between the ions.

(a) In the case of KCl and MgO, both are ionic compounds with one metal ion (K and Mg) and one non-metal ion (Cl and O). Both K+ and Mg2+ have the same charge, but the size of the Mg2+ ion is smaller than the K+ ion. Similarly, both Cl- and O2- have the same charge, but the size of the O2- ion is smaller than the Cl- ion.
Smaller ions have a stronger electrostatic attraction between them than larger ions, as the distance between them is smaller. Therefore, MgO should have a higher lattice energy than KCl.

(b) In the case of LiF and LiBr, both are ionic compounds with one metal ion (Li) and one non-metal ion (F and Br). Both Li+ and F- have a smaller size than Li+ and Br-. However, since both Li+ and F- have the same charge as Li+ and Br-, the distance between the ions will be the deciding factor in determining the lattice energy.
Since Br- is a larger ion than F-, the distance between Li+ and Br- will be greater than the distance between Li+ and F-. Therefore, LiF should have a higher lattice energy than LiBr.

(c) In the case of Mg3N2 and NaCl, both are ionic compounds with one metal ion (Mg and Na) and one non-metal ion (N and Cl). Mg2+ and Na+ have the same charge, but the size of the Mg2+ ion is smaller than the Na+ ion. Similarly, both N3- and Cl- have the same charge, but the size of the N3- ion is larger than the Cl- ion.

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The molecular density of a gas can be calculated using the formula:

n = P/[(1.3807 × 10^-23) × T]

where n is the molecular density in molecules/m^3, P is the pressure in Pascals, T is the temperature in Kelvin, and 1.3807 × 10^-23 is the Boltzmann constant.

However, in this case, we are given the mean free path (λ) and the diameter (d) of the gas molecules. We can use these values to calculate the molecular density using the formula:

n = (1/4) × (1/πd^2) × (1/λ)

where π is the mathematical constant pi.

Substituting the given values, we get:

n = (1/4) × (1/π(3.71 × 10^-10)^2) × (1/8.06 × 10^-8)

n = 2.74 × 10^19 molecules/m^3

Therefore, the molecular density of the gas is 2.74 × 10^19 molecules/m^3.

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Among the options given, sulfuric acid is the diprotic acid because it has two acidic hydrogen atoms.

H2SO4 + H2O → HSO4- + H3O+

HSO4- + H2O → SO42- + H3O+

Out of the options provided, sulfuric acid (H2SO4) is a diprotic acid.

A diprotic acid is an acid that can donate two protons (H+ ions) per molecule during the process of dissociation.

Sulfuric acid (H2SO4), when dissolved in water, can lose two protons in a stepwise manner, making it a diprotic acid:

1. H2SO4 → H+ + HSO4- (first ionization)

2. HSO4- → H+ + SO4^2- (second ionization)

The other options, nitric acid (HNO3) and chloric acid (HClO3) are monoprotic acids, meaning they can donate only one proton per molecule.

Barium hydroxide (Ba(OH)2) is not acid; instead, it is a strong base that can accept two protons.

Therefore, the correct answer to the question is sulfuric acid.

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Sulfuric acid is a diprotic acid because it can donate two protons per molecule during a reaction. It does this via a two-step ionization process. The other options listed do not have this characteristic.

Among the options provided, sulfuric acid (H₂SO₄) is a diprotic acid. This means it can donate two protons or hydrogen ions per molecule during a reaction. Diprotic acids ionize in two steps. In the first step, H₂SO₄ (sulfuric acid) donates a proton to form hydronium ion (H₃O⁺) and hydrogen sulfate ion (HSO₄⁻). In the second step, HSO₄⁻ can further ionize to form another hydronium ion and a sulfate ion (SO₄²⁻).

Examples of these reactions are: first stage: H₂SO₄ + H₂O → H₃O⁺ + HSO₄⁻; second stage: HSO₄⁻ + H₂O → H₃O⁺ + SO₄²⁻. Nitric acid, chloric acid and barium hydroxide aren't diprotic acids.

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The number of mole of oxygen gas, O₂ needed to produced 30 grams of Fe₂O₃ is 0.282 mole

First, we shall obtain the mole of 30 grams of Fe₂O₃. This is shown below:

Mole = mass / molar mass

Mole of Fe₂O₃ = 30 / 159.69

Mole of Fe₂O₃ = 0.188 mole

Finally, we shall obtain the number of mole of O₂ needed. This is shown below:

4Fe + 3O₂ -> 2Fe₂O₃

From the balanced equation above,

2 moles of Fe₂O₃ were obtained from 3 moles of O₂.

Therefore,

0.188 mole of Fe₂O₃ will be obtain from = (0.188 × 3) / 2 = 0.282 mole of O₂

Thus, we can conclude that number of mole O₂ needed is 0.282 mole

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Complete question:

How many moles of O₂ are needed to produce 30 g of Fe₂O₃?

The Molarity of the H₂SO4 solution is 0.025 M.

The balanced chemical equation for the reaction between sodium hydroxide (NaOH) and sulfuric acid (H₂SO4) is:

2 NaOH + H₂SO4 → 2 H₂O + Na₂SO4

From the equation, we can see that 2 moles of NaOH react with 1 mole of H₂SO4 to produce 2 moles of water and 1 mole of Na₂SO4.

To find the molarity of the H₂SO4, we can use the formula:

Molarity = moles of solute / volume of solution in liters

First, we need to determine the number of moles of NaOH used in the reaction.

moles of NaOH = M x V = 0.15 M x 0.01 L = 0.0015 moles

Since 2 moles of NaOH react with 1 mole of H₂SO4, the number of moles of H₂SO4 used in the reaction is:

moles of H₂SO4 = 0.0015 moles / 2 = 0.00075 moles

The volume of the H₂SO4 solution is 30.0 mL or 0.03 L. Using the molarity formula, we can calculate the molarity of H₂SO4:

Molarity = moles of solute / volume of solution in liters = 0.00075 moles / 0.03 L = 0.025 M

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Option D depicts the initial atoms when sodium and oxygen form an ionic compound. It shows two atoms of sodium, each having one valence electron, and one atom of oxygen, having six valence electrons.

The formation of an ionic compound between sodium and oxygen involves the transfer of electrons from sodium to oxygen, resulting in the formation of oppositely charged ions. In the initial state, sodium (Na) has one valence electron while oxygen (O) has six valence electrons. Sodium will lose one electron to become a positively charged ion (Na+), and oxygen will gain two electrons to become a negatively charged ion (O2-). Option D depicts the initial atoms when sodium and oxygen form an ionic compound. It shows two atoms of sodium, each having one valence electron, and one atom of oxygen, having six valence electrons. This arrangement represents the transfer of electrons from sodium to oxygen, resulting in the formation of Na+ and O2- ions. Options A, B, and C do not depict the correct arrangement of atoms in the initial state before the formation of the ionic compound between sodium and oxygen.

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Approximately 311 mL of water at 84.9 °C should be mixed with 222 mL of water at 27.7 °C to achieve a final temperature of 42.9 °C.

To solve this problem, we can use the concept of heat transfer: heat gained by the colder water will equal heat lost by the hotter water. We can write this as:
m₁*c*([tex]T_{f}[/tex] - T₁) = [tex]m_{2}[/tex] *c*([tex]T_{2}[/tex]  - [tex]T_{f}[/tex] )

Here, [tex]m_{1}[/tex]  and [tex]m_{2}[/tex]  are the masses of the two water samples, c is the specific heat capacity of water, [tex]T_{1}[/tex]  and [tex]T_{2}[/tex]  are the initial temperatures of the water samples, and [tex]T_{f}[/tex]  is the final temperature.

Given that the density of water remains constant, we can assume that 1 mL of water weighs 1 gram. Therefore, m₁ = V₁ (volume of the first water sample) and m₂ = 222 grams (volume of the second water sample). The specific heat capacity of water, c, is 4.18 J/(g·°C).

We have
V₁*4.18*(42.9 - 27.7) = 222*4.18*(84.9 - 42.9)

Solving for V1:
V₁ = (222*(84.9 - 42.9))/(42.9 - 27.7)
V₁ ≈ 311.169

Therefore, approximately 311 mL of water at 84.9 °C should be mixed with 222 mL of water at 27.7 °C to achieve a final temperature of 42.9 °C.

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