How many grams of dry NH4Cl need to be added to 1.50 L of a 0.500 M solution of ammonia, NH3,to prepare a buffer solution that has a pH of 8.79? Kb for ammonia is 1.8*10^-5.

The mechanism can be represented by the following equation:

C6H5CN + 2OH- + H2O → C6H5COO- + NH3 + H2O

The mechanism of the basic hydrolysis of benzonitrile to benzoate ion involves a nucleophilic attack by hydroxide ion on the nitrile carbon, followed by proton transfer and elimination of the leaving group (cyanide ion).

The overall reaction can be written as:

C6H5CN + OH- → C6H5COO- + NH3

The mechanism can be broken down into three steps:

Step 1: Nucleophilic attack by hydroxide ion on the nitrile carbon

C6H5CN + OH- → C6H5C(OH)N-

Step 2: Proton transfer from the nitrile nitrogen to a water molecule

C6H5C(OH)N- + H2O → C6H5C(OH)NH + OH-

Step 3: Elimination of the leaving group (cyanide ion)

C6H5C(OH)NH + OH- → C6H5COO- + NH3

Overall, the mechanism can be represented by the following equation:

C6H5CN + 2OH- + H2O → C6H5COO- + NH3 + H2O

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The molar solubility, s of Ba3(PO4)2 in terms of Ksp is:D. s=(Ksp/108)^(1/5)

Determining the molar solubility, s, of Ba3(PO4)2 in terms of Ksp.

Here's a step-by-step explanation:

1. Write the balanced dissolution equation:

Ba3(PO4)2 (s) ⇌ 3Ba²⁺ (aq) + 2PO₄³⁻ (aq)

2. Set up the Ksp expression:

Ksp = [Ba²⁺]³[PO₄³⁻]²

3. Define molar solubility:

s = [Ba3(PO4)2] in mol/L

4. Express concentrations in terms of s:

[Ba²⁺] = 3s and [PO₄³⁻] = 2s

5. Substitute concentrations into the Ksp expression:

Ksp = (3s)³(2s)²

6. Solve for s in terms of Ksp:
Ksp = 108s⁵
s = (Ksp/108)^(1/5)

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The Lewis model is a method to predict the formation of a chemical bond between atoms. It involves determining the number of valence electrons in each atom and then pairing them up to form a bond.

Sr has 2 valence electrons, while S has 6 valence electrons. To form a compound, Sr must lose its two valence electrons, while S must gain two electrons. The resulting compound will have the same number of positive and negative charges, which will cancel out. Therefore, the chemical formula for the compound formed between Sr and S is SrS.

Mg has 2 valence electrons, while Cl has 7 valence electrons. To form a compound, Mg must lose its two valence electrons, while Cl must gain one electron. However, Cl cannot gain two electrons to form a stable compound. Therefore, Mg must lose both of its valence electrons to form a compound with Cl. The resulting compound will have one positive charge (from Mg) and one negative charge (from Cl), which will cancel out. Therefore, the chemical formula for the compound formed between Mg and Cl is MgCl2.

Na has 1 valence electron, while I has 7 valence electrons. To form a compound, Na must lose its valence electron, while I must gain one electron. The resulting compound will have one positive charge (from Na) and one negative charge (from I), which will cancel out. Therefore, the chemical formula for the compound formed between Na and I is NaI.

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The formula of this oxide is ReO2.

In this case, we have eight rhenium atoms at the corners of the unit cell and 12 oxygen atoms on the edges. The inorganic compound with the chemical formula ReO2 is rhenium(IV) oxide, often known as rhenium dioxide. This crystalline substance, which ranges in color from gray to black, is a catalyst in the lab. It utilizes a rutile structure.

Since each corner atom is shared by eight adjacent unit cells and each edge atom is shared by four adjacent unit cells, we have:

Rhenium atoms: 8 * (1/8) = 1
Oxygen atoms: 12 * (1/4) = 3

Thus, the formula of this rhenium oxide crystallizes as Re2O3. So the correct answer is a) Re2O3.

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K2CrO4 solution would be yellow in color. Yes, a color change will be observed when sulfuric acid (H2SO4) is added to the solution. Yes, a color change will be observed when sodium hydroxide (NaOH) is added to the solution.

a. A K2CrO4 solution would be yellow in color because it contains the CrO4^2- ion.
b. Yes, a color change will be observed when sulfuric acid (H2SO4) is added to the solution. The addition of H2SO4 increases the concentration of H^+ ions, causing the reaction to shift to the right, towards the formation of Cr2O7^2- ions, which are orange. The color change occurs as the equilibrium shifts, producing more of the orange Cr2O7^2- ions.
c. Yes, a color change will be observed when sodium hydroxide (NaOH) is added to the solution. NaOH is a strong base, which reacts with the H^+ ions to form water (H2O), thus decreasing the concentration of H^+ ions. This causes the reaction to shift to the left, favoring the formation of yellow CrO4^2- ions. The color change occurs as the equilibrium shifts, producing more of the yellow CrO4^2- ions.

a. A K2CrO4 solution would be yellow.
b. Yes, a color change will be observed. The addition of sulfuric acid will shift the equilibrium to the left, favoring the formation of more yellow CrO4^2- ions. This is because the H+ ions in sulfuric acid will react with the Cr2O7^2- ions, decreasing their concentration and therefore pushing the equilibrium towards the left.
c. Yes, a color change will be observed. The addition of sodium hydroxide will shift the equilibrium to the right, favoring the formation of more orange Cr2O7^2- ions. This is because the OH- ions in sodium hydroxide will react with the H+ ions in the equation, decreasing their concentration and therefore pushing the equilibrium towards the right.

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K2CrO4 solution would be yellow in color. Yes, a color change will be observed when sulfuric acid (H2SO4) is added to the solution. Yes, a color change will be observed when sodium hydroxide (NaOH) is added to the solution.

a. A K2CrO4 solution would be yellow in color because it contains the CrO4^2- ion.
b. Yes, a color change will be observed when sulfuric acid (H2SO4) is added to the solution. The addition of H2SO4 increases the concentration of H^+ ions, causing the reaction to shift to the right, towards the formation of Cr2O7^2- ions, which are orange. The color change occurs as the equilibrium shifts, producing more of the orange Cr2O7^2- ions.
c. Yes, a color change will be observed when sodium hydroxide (NaOH) is added to the solution. NaOH is a strong base, which reacts with the H^+ ions to form water (H2O), thus decreasing the concentration of H^+ ions. This causes the reaction to shift to the left, favoring the formation of yellow CrO4^2- ions. The color change occurs as the equilibrium shifts, producing more of the yellow CrO4^2- ions.

a. A K2CrO4 solution would be yellow.
b. Yes, a color change will be observed. The addition of sulfuric acid will shift the equilibrium to the left, favoring the formation of more yellow CrO4^2- ions. This is because the H+ ions in sulfuric acid will react with the Cr2O7^2- ions, decreasing their concentration and therefore pushing the equilibrium towards the left.
c. Yes, a color change will be observed. The addition of sodium hydroxide will shift the equilibrium to the right, favoring the formation of more orange Cr2O7^2- ions. This is because the OH- ions in sodium hydroxide will react with the H+ ions in the equation, decreasing their concentration and therefore pushing the equilibrium towards the right.

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The answer is 6.73 x 10²² C atoms. This is because the mass of the sample is 3.21 g, and the molar mass of C3H8 is 60.06 g/mol.

It is defined as the number of particles in one mole of a substance and is equal to 6.022 x 10²³. Avogadro's number is used to calculate the number of moles in a given mass of a substance or the mass of a given number of moles.

The number of C atoms present in a sample of C3H8 with mass 3.21 g can be calculated using Avogadro's number.

Avogadro's number is 6.022 x 10²³, which is the number of particles (atoms, molecules, ions, etc.) that are in one mole of a substance. Therefore, the calculation for the number of C atoms in the sample is:

(3.21 g C3H8/60.06 g/mol C3H8) x (6.022 x 10²³ particles/mol) x (3 mol C/1 mol C3H8) = 6.73 x 10²² C atoms

The answer to the question is 6.73 x 10²² C atoms. This is because the mass of the sample is 3.21 g, and the molar mass of C3H8 is 60.06 g/mol.

Therefore, when the molar mass is divided by the mass of the sample, the number of moles of C3H8 in the sample is calculated. This number is then multiplied by Avogadro's number to give the total number of particles (in this case, atoms) in the sample, and then multiplied by the number of C atoms in one mole of C3H8, which is 3.

This calculation gives the total number of C atoms present in the sample.

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The citric acid cycle which is replenished is oxaloacetate.

The citric acid cycle intermediate that is replenished by these anaplerotic reactions is oxaloacetate.

Here's a step-by-step explanation:
1. Carboxylation of pyruvate: Pyruvate is converted into oxaloacetate through the addition of a carboxyl group, with the help of the enzyme pyruvate carboxylase.
2. Transamination of aspartate: Aspartate donates its amino group to alpha-ketoglutarate, forming glutamate and oxaloacetate.
3. Transamination of glutamate: Glutamate donates its amino group to oxaloacetate, forming aspartate and alpha-ketoglutarate.

In all three reactions, oxaloacetate is replenished, maintaining a sufficient concentration of this key intermediate for the citric acid cycle to continue.

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The bulky group hinders one face of the molecule, forcing the second bromine to add from the opposite face, resulting in anti-addition of the bromine atoms.

It is due steric hindrance, which at a given atom in a molecule is the crowding caused by the  presence of the neighbouring ligands, which may slow down or prevent reactions at the atom.

Bromine molecule is liquid at room temperature, with atomic number 35. Addition of Bromine to alkenes is stereospecifically trans. Stereochemistry is the branch of chemistry that studies different spatial arrangements of atoms in molecules.

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The starting materials to form imine A are tert-butylamine and benzaldehyde.

Imines are compounds that contain a carbon-nitrogen double bond and are formed by the reaction of a primary amine with a carbonyl compound, typically an aldehyde or a ketone.

To deduce the starting materials for the synthesis of imines A and B, we need to analyze the given reaction scheme and trace the reaction steps backward.

In the reaction scheme, imine A is formed by the reaction of a primary amine with an aldehyde.

The amine used is tert-butylamine, while the aldehyde used is benzaldehyde. Therefore,

On the other hand, imine B is formed by the reaction of a primary amine with a ketone.

The amine used is aniline, while the ketone used is cyclohexanone. Therefore, the starting materials to form imine B are aniline and cyclohexanone.

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Climate change profound effect disrupted the global level of biological organization by disrupting the match between plants and animals and their local environment.

Plants and animals are responding to changes in concentrations of carbon dioxide, local temperatures, and biological precipitation patterns.

For example, some species are shifting their ranges to new regions that are more hospitable to their survival. Others are adapting to their new environment by altering their physical characteristics or behavior. In some cases, species are facing extinction due to the inability to adapt.

Climate change is also contributing to the spread of invasive species, which can outcompete native species for resources, altering local habitats and biodiversity. Climate change will continue to have profound impacts on the global level of biological organization as long as the changing climate persists.

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The balanced equation in acidic solution with the lowest possible integers and the coefficient of H+ is: 8

8H⁺ + MnO₄⁻ + 5H₂S → Mn²⁺ + 5HSO₄⁻ + 4H₂O

To balance the equation, we start by balancing the elements that appear only once on each side of the equation, such as Mn and S. In this case, we have one Mn on each side and five S atoms on the right side, so we put a coefficient of 5 in front of H₂S on the left side.

MnO₄⁻ + 5H₂S → Mn²⁺ + 5HSO₄⁻

Next, we balance the oxygens by adding H₂O to the right side. This gives us 8 oxygen atoms on the right side, so we add 8 H⁺ to the left side.

MnO₄⁻ + 5H₂S + 8H⁺ → Mn²⁺ + 5HSO₄⁻ + 4H₂O

Finally, we balance the charges by adding electrons to the left side. We count the total charge on the left side (4- for MnO₄⁻ and 10+ for H₂S and H⁺) and the total charge on the right side (2+ for Mn²⁺ and 10- for HSO₄⁻). To balance the charges, we need to add 8 electrons to the left side.

8H⁺ + MnO₄⁻ + 5H₂S + 8e⁻ → Mn²⁺ + 5HSO₄⁻ + 4H₂O

Finally, we multiply each species by the smallest integer that makes all the coefficients integers, which in this case is 8, to get the balanced equation with the lowest possible integers.

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Na₂SO₄ is commonly used as a salt bridge because it is highly soluble and provides high mobility of ions, allowing for the efficient flow of ions to maintain charge balance in the half-cells.

a. The reaction that takes place at the anode is:

Cr(s) → Cr³⁺(aq) + 3e⁻

b. The reaction that takes place at the cathode is:

Cu²⁺(aq) + 2e⁻ → Cu(s)

c. The balanced net ionic equation for the spontaneous reaction:

2Cr(s) + 3Cu²⁺(aq) → 2Cr³⁺(aq) + 3Cu(s)

d. The cell diagram can be represented as:

Cr(s) | Cr³⁺(aq) || Cu²⁺(aq) | Cu(s)

e. To calculate the standard cell potential, E₀, the standard reduction potentials can be used for the half-cell reactions and apply the equation:

E₀(cell) = E₀(cathode) - E₀(anode)

The standard reduction potential for the Cu²⁺/Cu half-cell is +0.34 V, and the standard reduction potential for the Cr³⁺/Cr half-cell is -0.74 V.

E₀(cell) = +0.34 V - (-0.74 V)

E₀(cell) = +1.08 V

Therefore, the standard cell potential, E₀, for the reaction in this cell is +1.08 V.

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when both L and C are doubled, the new angular frequency of oscillation is half of the original angular frequency.

In a pure LC circuit, the angular frequency of oscillation (ω) is given by the formula:
ω =\frac{1}{\sqrt{(LC)}}
Where L is the inductance and C is the capacitance.
Now, you've mentioned that both L and C are doubled. So, the new values of L and C will be:
L_new = 2L
C_new = 2C
Let's find the new angular frequency of oscillation (ω_new) using the same formula:
ω_new =\frac{ 1}{\sqrt(L_new * C_new)}
Substitute the new values of L and C:
ω_new = \frac{1}{\sqrt((2L) * (2C))}
Factor out the constant 2 from the square root:
ω_new = \frac{1}{\sqrt(4 * LC)}
Since √4 = 2, we can rewrite the equation as:
ω_new =\frac{ 1}{(2 * \sqrt(LC))}
Recall that the original angular frequency (ω) is given by:
ω =\frac{ 1}{\sqrt(LC)}
Comparing both equations, we find:
ω_new = ω/2

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when both L and C are doubled, the new angular frequency of oscillation is half of the original angular frequency.

In a pure LC circuit, the angular frequency of oscillation (ω) is given by the formula:
ω =\frac{1}{\sqrt{(LC)}}
Where L is the inductance and C is the capacitance.
Now, you've mentioned that both L and C are doubled. So, the new values of L and C will be:
L_new = 2L
C_new = 2C
Let's find the new angular frequency of oscillation (ω_new) using the same formula:
ω_new =\frac{ 1}{\sqrt(L_new * C_new)}
Substitute the new values of L and C:
ω_new = \frac{1}{\sqrt((2L) * (2C))}
Factor out the constant 2 from the square root:
ω_new = \frac{1}{\sqrt(4 * LC)}
Since √4 = 2, we can rewrite the equation as:
ω_new =\frac{ 1}{(2 * \sqrt(LC))}
Recall that the original angular frequency (ω) is given by:
ω =\frac{ 1}{\sqrt(LC)}
Comparing both equations, we find:
ω_new = ω/2

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In regards to the examination of the properties of polystyrene, it is possible that dipping a styrofoam cup into solvents like toluene, distilled water, alcohol, or acetone could cause the cup to be reshaped due to the solvents dissolving or weakening the polystyrene material. However, it is important to note that these solvents can also be hazardous and should be handled with caution.

Labu Anomate University does not appear to be a real university or institution, so I cannot provide information on it. However, I can provide information on Freund's PR (Polarization Resistance) method.

Freund's PR method is a technique used to measure the corrosion rate of metal surfaces in various environments, including aqueous solutions and non aqueous liquids such as organic solvents like toluene, distilled water, alcohol, and acetone. The method involves measuring the polarization resistance of the metal surface, which is proportional to the corrosion rate. This technique is commonly used in industrial applications to determine the effectiveness of corrosion inhibitors and coatings.

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The species with the electron configuration [ar]3d4 is Chromium (Cr).

Chromium is a transition metal with atomic number 24 and is located in period 4 and group 6 of the periodic table. The electronic configuration of chromium is 1s2 2s2 2p6 3s2 3p6 4s1 3d5, but it is known to be more stable in its half-filled 3d orbital configuration, which is [ar]3d4. This configuration gives it unique properties such as hardness, resistance to corrosion and high melting and boiling points.

Chromium is widely used in various industries due to its unique properties, for example, it is used in the manufacturing of stainless steel, which is used in kitchen utensils, cutlery, and medical equipment. Chromium is also used in electroplating, tanning of leather, and in the production of pigments, dyes, and glass. Therefore, the knowledge of the electronic configuration of Chromium is important in understanding its properties and its various applications in industry. The species with the electron configuration [ar]3d4 is Chromium (Cr).

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A proton (H+) is transported from the acid to the base in the first step of an acid-base reaction.

Step 2: NH4+ and Br- are the byproducts of the acid-base interaction between HBr and NH3.

Step 3:

HBr + NH3 → NH4+ + Br-

Curved arrow mechanism:

A new bond between the nitrogen and hydrogen atoms is created when the lone pair of electrons on the nitrogen atom of NH3 attack the hydrogen atom of HBr. The link between H and Br also breaks at this point, with the electrons flowing in the direction of the Br atom. NH4+ and Br- ions are produced as a consequence.

[tex]H Br H Br\ / + NH3 → H-NH_3+ |C=N C=N/ \ |H Br H Br[/tex]

Step 4: Because NH3 is a stronger base than HBr is an acid, the direction of equilibrium favours the creation of NH4+ and Br- ions.

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The 1,4-addition reaction between 1,3-hexadiene and Br2/CCl4 produces 1,4-dibromo-2-hexene where Br atoms add to the carbon atoms at positions 1 and 4 of the diene while the double bonds at positions 2 and 3 remain unaltered.

The reaction of 1,3-hexadiene with Br2/CCl4 undergoes 1,4-addition, also known as conjugate addition, where the electrophilic Br2 adds to the conjugate diene system. The resulting product is 1,4-dibromo-2-hexene.

The addition of Br2 to the conjugated diene takes place in such a way that the electrophilic bromine atoms add to the carbon atoms at positions 1 and 4 of the diene, which are conjugated with each other. The double bonds at positions 2 and 3 remain unchanged.

The structure of the 1,4-addition product, 1,4-dibromo-2-hexene, is:

Br Br

| |

H2C=CH-CH=CH-CH2-CH3

| |

Br H

where the Br atoms are attached to carbons 1 and 4 of the diene, and the double bonds at positions 2 and 3 remain intact.

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These are all the possible orbitals for the principal quantum number n=4. For n=4, there are several possible orbitals. I have tabulated them below along with their respective quantum numbers (n, l, and ml):

For n=4, the possible orbitals (by name) are 4s, 4p, 4d, and 4f.

The three quantum numbers that define each orbital are:

1. Principle quantum number (n): This defines the energy level of the orbital and can have a value from 1 to infinity. For n=4, the value of n is fixed.

2. Angular momentum quantum number (l): This defines the shape of the orbital and can have integer values from 0 to n-1. For 4s, l=0; for 4p, l=1; for 4d, l=2; and for 4f, l=3.

3. Magnetic quantum number (m): This defines the orientation of the orbital in space and can have integer values from -l to +l. For 4s, m=0; for 4p, m can have values -1, 0, or 1; for 4d, m can have values -2, -1, 0, 1, or 2; and for 4f, m can have values -3, -2, -1, 0, 1, 2, or 3.

Therefore, for n=4, the possible orbitals (by name) and their corresponding quantum numbers are:

- 4s: n=4, l=0, m=0
- 4p: n=4, l=1, m=-1, 0, or 1
- 4d: n=4, l=2, m=-2, -1, 0, 1, or 2
- 4f: n=4, l=3, m=-3, -2, -1, 0, 1, 2, or 3.

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The concentration of CO (g) at equilibrium is approximately 0.064 M.

We can use the equilibrium expression for the reaction:
Kc = [Ni (CO)4] / ([Ni][CO]^4)

We are given that [Ni (CO)4] = 0.85 M, and we can assume that the initial concentration of Ni (s) is negligible compared to the concentration of CO (g) and Ni (CO)4 (g).

Therefore, we can use the following approximation: [Ni] ≈ 0.

Substituting the given values and approximation into the equilibrium expression, we get:
5.0 x 104 M-3 = 0.85 M / (0 x [CO]^4)
Solving for [CO], we get:
[CO] = (0.85 M / 5.0 x 104 M-3)1/4
[CO] ≈ 0.086 M

Therefore, the concentration of CO (g) at equilibrium is approximately 0.086 M.

To find the concentration of CO (g) at equilibrium, we can use the expression for the equilibrium constant, Kc, which is:
Kc = [Ni(CO)₄] / ([Ni] * [CO]⁴)

Given that [Ni(CO)₄] = 0.85 M and Kc = 5.0 x 10⁴ M⁻³, we can solve for the concentration of CO:
5.0 x 10⁴ M⁻³ = 0.85 M / ([Ni] * [CO]⁴)

Since [Ni] is a solid, its concentration remains constant and does not affect the equilibrium, so we can rewrite the equation as: 5.0 x 10⁴ M⁻³ = 0.85 M / [CO]⁴

Now, solve for [CO]:
[CO]⁴ = 0.85 M / (5.0 x 10⁴ M⁻³)
[CO]⁴ ≈ 1.7 x 10⁻⁵ M

To find [CO], take the fourth root of the result:
[CO] = (1.7 x 10⁻⁵ M)^(1/4)
[CO] ≈ 0.064 M

Thus, the concentration of CO (g) at equilibrium is approximately 0.064 M.

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In this case, the system gained 77.5 kJ of heat and did 63.5 kJ of work on the surroundings, resulting in a net increase in internal energy of 14 kJ.

To calculate the internal energy change (ΔU) of a system and determine if the process is endothermic or exothermic, we can use the first law of thermodynamics equation: ΔU = Q - W, where ΔU is the change in internal energy, Q is the heat absorbed or released by the system, and W is the work done by or on the system.

In this case, the system absorbs 77.5 kJ of heat (Q) and does 63.5 kJ of work (W) on the surroundings. So we can plug these values into the equation:

ΔU = Q - W
ΔU = 77.5 kJ - 63.5 kJ
ΔU = 14 kJ

The change in internal energy (ΔU) is positive, meaning that the internal energy of the system has increased. Since the system absorbed heat (positive Q) and the overall internal energy increased, the process is endothermic. In an endothermic process, the system gains energy from the surroundings, typically in the form of heat.

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Answer:

higher

Explanation:

as CH3CH2OH has an O-H bond, it has significantly more IMF caused by the hydrogen bond between CH3CH2OH molecules. This means its harder to pull apart CH3CH2OH molecules as they are very attracted to one another, thereby increasing the boiling point.

360g is the mass of Argon present in a sample occupying 76.3L at 31C and 240 kPa of pressure.

A body's mass is an inherent quality. Prior to the discoveries of the atom or particle physics, it was widely considered to be tied to the amount of matter within a physical body.

It was discovered that, despite having the same quantity of matter in theory, different atoms and elementary particles have varied masses. There are various conceptions of mass in contemporary physics that are theoretically different but physically equivalent.

P×V = n×R×T  

240 ×76.3= n×0.821×310

n=10 moles

mass = 10×36=360g

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The balanced reduction half-reaction under basic conditions is: 3 Cr(OH)3 + 9 e⁻→ 3 Cr

The given skeletal oxidation-reduction reaction is:

Cr + N2H4 + Cr(OH)3 → Cr(OH)3 + NH3

To balance the reduction half-reaction, we need to determine the oxidation state of Cr on both sides of the equation.

On the reactant side, Cr has an oxidation state of 0. On the product side, Cr has an oxidation state of +3. Therefore, Cr is undergoing reduction, which means that the reduction half-reaction involves the gain of electrons.

We can represent the reduction half-reaction as follows:

Cr(OH)3 + 3 e⁻ → Cr

To balance the electrons on both sides, we need to multiply the reduction half-reaction by 3:

3 Cr(OH)3 + 9 e⁻ → 3 Cr

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The correct order of increasing atomic radius for the given elements is: Pb, Rn, Ba. So, the answer is D) Pb < Rn < Ba.

The correct answer is D) Pb < Rn < Ba. This is because as you move across a period on the periodic table, the atomic radius decreases due to increasing nuclear charge. As you move down a group, the atomic radius increases due to the addition of new energy levels. Pb (lead) is in the same period as Rn (radon), but has a lower atomic number and therefore a larger atomic radius. Rn is a noble gas and has a smaller atomic radius than Pb. Ba (barium) is in a lower period than Pb and Rn and therefore has the largest atomic radius of the three.

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Fe becomes Fe+2 + 2e or Fe+3 + 3e, K becomes K+1 + 1e, and Be becomes Be+2 + 2e. As a result of their incomplete d-orbitals in their valence shells, which may accept various quantities of electrons, transition metals frequently have more than one oxidation state.

One of the two earliest transition metal period elements with a single oxidation state is scandium. The oxidation states of the other elements range from two to at least four.

If an atom's oxidation number rises, it is said to be oxidised; if it falls, it is said to be reduced. The reducing agent is the atom that is being oxidised.

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The level by capacitance measurements can be determined using both point and continuous methods.

In capacitance measurements, the level of a substance is determined by measuring the change in capacitance caused by the substance. The point method involves using a single probe to detect a specific level, whereas the continuous method uses multiple probes or a continuous probe to measure various levels within a tank or container.

In the point method, a signal is generated when the substance reaches the probe, indicating that the desired level has been reached.

In the continuous method, the capacitance measurements are continuously recorded, providing real-time information about the substance's level. Both methods are useful depending on the application and the desired accuracy of the measurements.

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To determine the temperature at which the energy estimated from the equipartition theorem is within 2 percent of the energy given by (€)=hcũ(eBhci – 1).

we need to use the equipartition theorem, which states that the average energy per degree of freedom in a system is kT/2, where k is the Boltzmann constant and T is the temperature.

We can equate this to the energy given by (€)=hcũ(eBhci – 1) and solve for T. However, since the energy is given as a percentage, we need to use a slightly different approach. Let's assume that the energy estimated from the equipartition theorem is E1 and the energy given by (€)=hcũ(eBhci – 1) is E2. We want to find the temperature at which |E1-E2|/E2 is within 2 percent.

Using the equipartition theorem, we can express E1 as kT/2 per degree of freedom. The energy given by (€)=hcũ(eBhci – 1) depends on the frequency of the oscillator and the strength of the magnetic field, but we can assume that it has a finite value. Therefore, we can write the condition as: |kT/2 - (€)| / (€) ≤ 0.02, Solving for T, we get: T = (2/ k) * |(€)| / ln[2(€)/(€+k(€))], where ln is the natural logarithm.

Substituting (€)=hcũ(eBhci – 1), we get: T = (2/ k) * |hcũ(eBhci – 1)| / ln[2hcũ(eBhci – 1)/(hcũ(eBhci – 1)+k(hcũ(eBhci – 1)))]
This gives us the temperature at which the energy estimated from the equipartition theorem is within 2 percent of the energy given by (€)=hcũ(eBhci – 1).

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Answer:

H2S

Explanation:

Sulfur hexafluoride is a chemical compound with the formula SF6. It is an inorganic, colorless, odorless, non-flammable, and non-toxic gas. It is commonly used in electrical equipment, such as high-voltage circuit breakers, transformers, and switches, as a dielectric medium and arc-quenching agent.

Because of its high density and stability, it is also used as a tracer gas for ventilation studies in buildings and other enclosed spaces. In terms of its molecular structure, sulfur hexafluoride consists of one sulfur atom and six fluorine atoms arranged in a octahedral shape.

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Redox reaction, copper metal is oxidized, and its surface turns black as it forms Cu(NO₃)₂ in solution. Silver ions in the silver nitrate solution are reduced to form silver metal crystals, which can be observed as a fuzzy growth on the copper. The chemical equation for the redox reaction of copper and silver nitrate is: Cu + 2AgNO3 → Cu(NO3)2 + 2Ag

In this equation, copper is oxidized (loses electrons) to form copper(II) nitrate, while silver ions from silver nitrate are reduced (gain electrons) to form solid silver.

The element that is oxidized is copper.

The element that is reduced is silver.

The spectator ion in this reaction is nitrate (NO3-).

The oxidizing agent is silver nitrate, as it causes copper to lose electrons and become oxidized.

The reducing agent is copper, as it causes silver ions to gain electrons and become reduced.

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