Use the handout #38 on Series of Atomic Hydrogen Emission Spectrum if necessary An electron is moving from the principal quantum number n = 6 ton = 2. The energy created by that move is classified as an __
The energy value of that transition is -4.84 x 10-19 J, __
The corresponding wavelenth is __
That is a __ color light This falls in the __ Series

Answers

Answer 1

The energy created by an electron moving from principal quantum number n = 6 to n = 2 is classified as an emission.

The energy value of that transition is -4.84 x 10⁻¹⁹ J, and the corresponding wavelength is approximately 434 nm. That is a blue color light, and this falls in the Balmer Series.


When an electron transitions from a higher energy level (n = 6) to a lower energy level (n = 2), it emits energy in the form of a photon. This process is called emission. To find the energy of the emitted photon, we can use the formula:

E = h * c / λ

where E is the energy, h is Planck's constant (6.63 x 10⁻³⁴ Js), c is the speed of light (3 x 10⁸ m/s), and λ is the wavelength of the light emitted. We are given the energy (-4.84 x 10⁻¹⁹ J), so we can solve for λ:

λ = h * c / E ≈ 434 nm

Since the wavelength is approximately 434 nm, it corresponds to blue color light. The Balmer Series includes all transitions where the electron falls to n = 2, so this transition is part of the Balmer Series.

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Related Questions

Draw the structures for each of the alcohols and USE ARIO to rank them in order of these relative acidities. Explain how you used ARIO. 1-Butanol, 2-Propanol(isopropanol), 2-Methyl-2-propanol(tert-Butanol), Phenol
What base can you use to deprotonate each of the alcohols
How would you use one of these specific tests in a specific different application? such as lucas tesr, ferric chloride, chromic acid,iodoform.

Answers

The relative acidities of 1-Butanol, 2-Propanol, 2-Methyl-2-propanol, and Phenol are ranked using ARIO as follows Phenol > 2-Methyl-2-propanol > 2-Propanol > 1-Butanol.

A strong base like sodium hydride (NaH) can deprotonate these alcohols.

The Ferric chloride test can be used to detect the presence of phenolic groups.


1. Atom: Phenol has the most acidic proton since it is attached to an oxygen atom in an aromatic ring.


2. Resonance: Phenol's acidity is further increased due to resonance stabilization of the resulting phenoxide ion.


3. Induction: 2-Methyl-2-propanol has a more acidic proton due to the electron-withdrawing inductive effect of the three methyl groups.


4. Orbitals: 2-Propanol and 1-Butanol have sp3 hybridized carbon atoms, making them less acidic than the others.

Ferric chloride test application: To test for the presence of phenolic groups, mix a few drops of the compound with a few drops of 1% aqueous ferric chloride solution. A positive test will show a color change, usually to purple or blue.

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consider the following reaction and its δ∘ at 25.00 °c. fe2 (aq) zn(s)⟶fe(s) zn2 (aq)δ∘=−60.73 kj/mol calculate the standard cell potential, ∘cell, for the reaction.

Answers

The standard cell potential for the reaction is 0.315 V.

To calculate the standard cell potential (E°cell) for the given reaction, we can use the following equation:

E°cell = -ΔG° / (n * F)

Where:
- ΔG° is the standard Gibbs free energy change (-60.73 kJ/mol)
- n is the number of moles of electrons transferred in the reaction
- F is the Faraday constant (96,485 C/mol)

First, we need to determine the number of moles of electrons transferred (n) in the reaction. To do this, we look at the balanced half-reactions:

Fe²⁺(aq) + 2e⁻ → Fe(s)  [Reduction]
Zn(s) → Zn²⁺(aq) + 2e⁻   [Oxidation]

In both half-reactions, there are 2 moles of electrons transferred. So, n = 2.

Now, we can plug the values into the equation:

E°cell = -(-60.73 kJ/mol) / (2 * 96,485 C/mol)
E°cell = 60.73 kJ/mol / (2 * 96,485 C/mol)

Note that we need to convert kJ to J:

E°cell = 60,730 J/mol / (2 * 96,485 C/mol)

Now, solve for E°cell:

E°cell = 0.315 V

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a solution is prepared by dissolving 0.15 g of sodium oxide in water to give 119.5 ml of solution. express the ph to two decimal places.

Answers

To calculate the pH of the solution, we first need to determine the concentration of hydroxide ions ([tex]OH^{-}[/tex]) in the solution, since sodium oxide is a strong base that dissociates completely in water to give [tex]Na^{+}[/tex] and [tex]OH^{-}[/tex] ions.

We can start by calculating the number of moles of sodium oxide dissolved in the solution:

0.15 g [tex]Na_{2} O[/tex] / (61.98 g/mol [tex]Na_{2} O[/tex]) = 0.00242 mol [tex]Na_{2} O[/tex]

Since sodium oxide dissociates completely in water to give two moles of sodium ions and one mole of hydroxide ions per mole of [tex]Na_{2} O[/tex], we know that the number of moles of [tex]OH^{-}[/tex] in the solution is:

0.00242 mol [tex]Na_{2} O[/tex] x (1 mol [tex]OH^{-}[/tex]/1 mol [tex]Na_{2} O[/tex]) = 0.00242 mol [tex]OH^{-}[/tex]

Next, we can calculate the concentration of hydroxide ions in the solution, which is given by:

[[tex]OH^{-}[/tex]] = moles of [tex]OH^{-}[/tex] / volume of solution in liters

[[tex]OH^{-}[/tex]] = 0.00242 mol / (119.5 mL x 1 L/1000 mL) = 0.0203 M

Finally, we can calculate the pH of the solution using the equation:

pH = 14 - log [[tex]OH^{-}[/tex]]

pH = 14 - log (0.0203) = 11.69

Therefore, the pH of the solution prepared by dissolving 0.15 g of sodium oxide in water is 11.69 to two decimal places.

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H2SO4 is a stronger acid than H2SO3 because:
a. It has more oxygens to stengthen the H-O bond
b. it had more oxygens to weaken the H-O bond
c. The extra oxygen donates electrons to the H-O bond
d. The extra oxygen makes the H-S bind shorter

Answers

The reason why [tex]H_{2} SO_{4}[/tex] is a stronger acid than [tex]H_{2} SO_{3}[/tex] is due to the presence of more oxygen atoms in its structure. This is because oxygen has a higher electronegativity than sulfur, meaning that it attracts electrons more strongly. The correct option is c.

As a result, the oxygen atoms in [tex]H_{2} SO_{4}[/tex] can more effectively pull electrons away from the hydrogen atom that is bonded to them, weakening the H-O bond and making it more likely to dissociate and release H+ ions.

Furthermore, the extra oxygen atom in [tex]H_{2} SO_{4}[/tex] can also donate electrons to the H-O bond, further destabilizing it and making it easier to break. This donation of electrons is due to the lone pairs of electrons present on the oxygen atom, which can interact with the positively charged hydrogen ion and facilitate its release.

On the other hand, [tex]H_{2} SO_{3}[/tex] has fewer oxygen atoms in its structure and hence a weaker ability to attract and donate electrons. As a result, the H-O bond in [tex]H_{2} SO_{3}[/tex] is stronger and less likely to dissociate, making it a weaker acid than [tex]H_{2} SO_{4}[/tex].

Additionally, the extra oxygen atom in [tex]H_{2} SO_{4}[/tex] does not affect the length of the H-S bond, as this bond is not directly affected by the presence of oxygen. Therefore, options b and d are incorrect.

In summary, the stronger acid strength of [tex]H_{2} SO_{4}[/tex] compared to [tex]H_{2} SO_{3}[/tex] is due to the extra oxygen atoms in its structure, which enhance the electronegativity and electron-donating ability of the molecule, leading to a weaker H-O bond and easier dissociation of H+ ions.

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What is the Al3+:Ag+concentration ratio in the cell Al(s) | Al3+(aq) || Ag+(aq) | Ag(s) if the measured cell potential is 2.34 V?

A) 0.0094:1
B) 0.21:1
C) 4.7:1
D) 110:1

Answers

The[tex]Al_{3} ^{+}[/tex]:[tex]Ag^{+}[/tex] concentration ratio in the cell (Ag)is 1.08:1, which is closest to option B) 0.21:1.

The given cell can be addressed by the reasonable condition:

[tex]3Ag+ + Al(s)[/tex]→ [tex]3Ag(s) + Al3+[/tex]

The standard cell potential for this response can be determined utilizing the standard decrease possibilities of the half-responses:

[tex]Ag+(aq) + e-[/tex]→ [tex]Ag(s) E° = +0.80 V[/tex]

[tex]Al3+(aq) + 3e-[/tex]→ [tex]Al(s) E° = - 1.66 V[/tex]

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

E°cell = +0.80 V-(-1.66 V) = +2.46 V

The deliberate cell potential is 2.34 V, which is not exactly the standard cell potential. This demonstrates that the response isn't continuing to the end and the harmony steady (K) is under 1. We can utilize the Nernst condition to compute the fixation proportion of [tex]Al3+[/tex] to [tex]Ag+[/tex]:

Ecell = E°cell - (RT/nF)lnQ where:

R = gas steady (8.314 J/K/mol)

T = temperature (298 K)

n = number of electrons moved (3 for this situation)

F = Faraday's steady (96,485 C/mol)

Q = response remainder (centralization of items over reactants)

At balance, the response remainder (Q) is equivalent to the harmony consistent (K), so:

Ecell = E°cell - (RT/nF)lnK

Revising, we get:

lnK = (nF/RT)(E°cell - Ecell)

lnK = (3 x 96,485 C/mol/(8.314 J/K/mol x 298 K))(2.46 V-2.34 V) = 0.155

K = [tex]e^0.155[/tex] = 1.42

The balance consistent articulation is:

K = [tex][Al3+]/[Ag+]^3[/tex]

We can revise this condition to tackle for the proportion[tex][Al3+]:[Ag+]:[/tex]

[tex][Al3+]:[Ag+] = K^(1/3) = 1.08[/tex]

Hence, the [tex]Al3+:Ag+[/tex] focus proportion in the cell is 1.08:1, which is nearest to choice B) 0.21:1.

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Which element has the highest (most negative) electron affinity?
Kr
S
Na
Ca
Cu

Answers

Among the elements listed, krypton has the highest electron affinity, with a value of -48.4 kJ/mol. Krypton is a noble gas located in group 18 of the periodic table, which means that it has a full valence electron shell and is generally inert chemically.

Its high electron affinity can be attributed to its small atomic size and large effective nuclear charge, which leads to a strong attraction between the nucleus and incoming electrons.

As a result, krypton readily accepts an additional electron to form the Kr^- ion, which is isoelectronic with the neighboring element, rubidium.

In contrast, the other elements listed (sulfur, sodium, calcium, and copper) all have positive electron affinities, indicating that they do not readily accept an additional electron.

This is because these elements have already filled or partially filled valence electron shells, making it energetically unfavorable to add another electron and disrupt the existing electron configuration.

Additionally, copper is a transition metal and tends to have lower electron affinities than main-group elements due to its partially filled d orbitals, which can shield the nuclear charge and reduce the attraction between the nucleus and incoming electrons. Kr is the correct answer.

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There are two reactions in glycolysis which involve the isomerization of an aldose to a ketose or vice-versa. What enzymes catalyze those two reactions?

Answers

The two reactions are: Conversion of aldose to ketose and Conversion of  ketose to aldose and phosphohexose isomerase and triose phosphate isomerase are enzymes catalyze those two reactions

Conversion of glucose-6-phosphate (an aldose) to fructose-6-phosphate (a ketose) by the enzyme glucose-6-phosphate isomerase (also known as phosphohexose isomerase).

Conversion of dihydroxyacetone phosphate (a ketose) to glyceraldehyde-3-phosphate (an aldose) by the enzyme triose phosphate isomerase.

These isomerization reactions are important in glycolysis because they allow the intermediates of the pathway to be interconverted and used in subsequent reactions, leading to the production of ATP and other metabolic intermediates.

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Which compound would most likely experience only London dispersion forces between its molecules? a) CCl4 b) NO2 c) SF4 d) NF3 e) H2CO

Answers

The compound that would most likely experience only London dispersion forces between its molecules is CCl₄.

So, the correct answer is A.

This is because CCl₄ is a nonpolar molecule with symmetrical geometry, which means that it has no permanent dipole moment. Since London dispersion forces are the weakest type of intermolecular forces and occur between all molecules, CCl₄would only experience these forces between its molecules.

The other compounds listed (NO₂, SF₄, NF₃, and H₂CO) all have polar bonds or asymmetrical geometries, which means that they would also experience dipole-dipole or hydrogen bonding forces in addition to London dispersion forces.

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Acetic acid (CH3CO2H), formic acid (HCO2H), hydrofluoric acid (HF), ammonia (NH3), and methylamine (CH3NH2) are commonly classified as
A) weak electrolytes
B) strong electrolytes
C) nonelectrolytes
D) acids

Answers

Acetic acid (CH₃CO₂H), formic acid (HCO₂H), hydrofluoric acid (HF), ammonia (NH₃), and methylamine (CH₃NH₂) are commonly classified as A) weak electrolytes.

These substances are considered weak electrolytes because they only partially ionize in water, resulting in a low concentration of ions in the solution. Unlike strong electrolytes, which fully dissociate into ions when dissolved, weak electrolytes maintain a balance between their molecular form and their ionized form.

Acetic acid, formic acid, and hydrofluoric acid are weak acids that partially donate protons (H⁺) in aqueous solutions. Ammonia and methylamine are weak bases, which partially accept protons to form ammonium (NH₄⁺) and methylammonium (CH₃NH₃⁺) ions, respectively. The ionization equilibrium of weak electrolytes leads to a mixture of ions and un-ionized molecules in the solution, with the majority remaining un-ionized.

While these substances are also acids or bases, the question asks for their classification as electrolytes, so option A) weak electrolytes is the appropriate answer.

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C8H18(l)+252O2(g)→8CO2(g)+9H2O(g)
Part A
Calculate ΔHrxn for the combustion of octane (C8H18), a component of gasoline, by using average bond energies.
Express your answer using three significant figures.
ΔHrxn = -5030 kJ/mol
Part B
Calculate ΔHrxn for the combustion of octane by using enthalpies of formation from Appendix IIB in the textbook. The standart enthalpy of formation of C8H18 is -250 kJ/mol.
Express your answer using three significant figures.
ΔHrxn = kJ/mol
Part C
What is the percent difference between the two results?
Express your answer using two significant figures.
%
Part D
Which result would you expect to be more accurate?
-the value calculated from the heats of formation
-the value calculated from the average bond energies

Answers

ΔHrxn for the combustion of octane using average bond energies is -5030 kJ/mol.

What is Combustion?

Combustion is a chemical reaction between a fuel and an oxidizing agent that produces energy in the form of heat and light. It is an exothermic reaction, which means that it releases energy, usually in the form of heat, as a product. During combustion, the fuel reacts with oxygen in the air, producing carbon dioxide, water vapor, and other products, depending on the fuel and conditions of the reaction.

To calculate ΔHrxn using average bond energies, we need to break all the bonds in the reactants and form all the bonds in the products and then find the difference:

Reactants: C8H18(l) + 25O2(g)

Bonds broken:

8 C-C bonds (8 x 347 kJ/mol) = 2776 kJ/mol

18 C-H bonds (18 x 413 kJ/mol) = 7434 kJ/mol

25 O=O bonds (25 x 498 kJ/mol) = 12,450 kJ/mol

Products: 8CO2(g) + 9H2O(g)

Bonds formed:

16 C=O bonds (16 x 799 kJ/mol) = 12,784 kJ/mol

18 O-H bonds (18 x 463 kJ/mol) = 8334 kJ/mol

ΔHrxn = (sum of bonds broken) - (sum of bonds formed)

ΔHrxn = [2776 + 7434 + 12450] - [12784 + 8334]

ΔHrxn = -5030 kJ/mol

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Given the nitration reaction for this modulared2 247 g of methyl benzoate and 2.2 ml of concentrated nitric acid, what was the limiting reagent? A. Water B. Methyl benzoate C, Nitric acid D. Methyl 3-nitrobenzoate

Answers

The limiting reagent is Nitric acid (Option C)

How to determine the limiting reagent?

To determine the limiting reagent, we need to calculate the number of moles of each reactant and compare their mole ratios with the balanced equation.

The balanced equation for the nitration of methyl benzoate is:

C₆H₅COOCH₃ + HNO₃ → C₆H₄(NO₂)COOCH₃ + H₂O

The molar mass of methyl benzoate (C₆H₅COOCH₃) is:

Methyl benzoate = 151.16 g/mol

Number of moles of methyl benzoate used:

n = m/M = 247 g / 151.16 g/mol = 1.635 mol

The density of concentrated nitric acid is 1.42 g/mL, and its molar mass is 63.01 g/mol. Therefore, 2.2 mL of concentrated nitric acid is equal to:

m = V x ρ = 2.2 mL x 1.42 g/mL = 3.124 g

Number of moles of nitric acid used:

n = m/M = 3.124 g / 63.01 g/mol = 0.0495 mol

Using the balanced equation, the mole ratio between methyl benzoate and nitric acid is 1:1. Therefore, the limiting reagent is nitric acid since it is present in a lower amount than the amount required for the reaction to occur completely.

Answer: C. Nitric acid is the limiting reagent.

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burning 1.17 g of a fuel causes the water in a calorimeter to increase by 11.9 ∘ c . if the calorimeter has a heat capacity of 3.09 kj/ ∘ c , what is the energy density of the fuel (in kj/g)

Answers

Burning 1.17 g of a fuel causes the water in a calorimeter to increase by 11.9°c. The energy density of the fuel is  4.2848 kJ/g.

To solve this problem, we need to use the formula:
Energy released by the fuel = Heat absorbed by the water + Heat absorbed by the calorimeter
We know that 1.17 g of fuel releases enough energy to raise the temperature of water in the calorimeter by 11.9° c . We also know that the calorimeter has a heat capacity of 3.09 kj/ °c . Therefore, the heat absorbed by the water can be calculated as:
Heat absorbed by the water = mass of water x specific heat capacity of water x change in temperature
We assume that the mass of water in the calorimeter is 100 g (this is a typical value for calorimeter experiments), and the specific heat capacity of water is 4.18 J/g/ °c (this is a constant value). Therefore:
Heat absorbed by the water = 100 g x 4.18 J/g/ ° c x 11.9 ° c = 4978.6 J
Next, we need to calculate the heat absorbed by the calorimeter. This is given by:
Heat absorbed by the calorimeter = heat capacity of the calorimeter x change in temperature
                                                         = 3.09 kj/ ° c x 11.9 °c = 36.671 J
Now, we can use the formula above to calculate the energy released by the fuel:
Energy released by the fuel = Heat absorbed by the water + Heat absorbed by the calorimeter
                                               = 4978.6 J + 36.671 J = 5015.271 J
Finally, we can calculate the energy density of the fuel:
Energy density of the fuel = Energy released by the fuel / mass of fuel
                                             = 5015.271 J / 1.17 g = 4284.8 J/g
Therefore, the energy density of the fuel is 4284.8 J/g or 4.2848 kJ/g.

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explain why hc--ch is more acidic than ch3ch3, even though the c-h bond in hc-ch has a higher bond dissociation energy than the ch bond in ch3ch3

Answers

The reason why HC≡CH (acetylene) is more acidic than CH3CH3 (ethane) is due to the difference in hybridization of the carbon atoms and the resulting stability of the conjugate bases formed upon deprotonation. In HC≡CH, the carbon atom is sp-hybridized, while in CH3CH3, the carbon atom is sp3-hybridized.

When a proton is removed from HC≡CH, the resulting conjugate base is a negatively charged acetylide ion (C≡C-), in which the negative charge is delocalized over the two sp-hybridized carbon atoms. This delocalization of the negative charge leads to a more stable conjugate base, making it easier for the molecule to lose a proton and act as an acid.

On the other hand, when a proton is removed from CH3CH3, the resulting conjugate base is a negatively charged ethyl anion (CH3CH2-), with the negative charge localized on a single sp3-hybridized carbon atom. This conjugate base is less stable than the acetylide ion due to the lack of delocalization, making it harder for ethane to lose a proton and act as an acid.

Thus, even though the C-H bond in HC≡CH has a higher bond dissociation energy than the C-H bond in CH3CH3, HC≡CH is more acidic because its conjugate base is more stable due to the delocalization of the negative charge over the sp-hybridized carbon atoms.

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Consider the following reaction, which is thought to occur in a single step.

OH ˉ +CH3Br → CH3OH+Brˉ

What is the rate law?

Answers

The rate law for this reaction is derived from the rate equation, which is defined as the rate of reaction divided by the concentrations of the reactants. The rate law for this reaction is typically written as rate = k[OH⁻][CH₃Br], where k is the rate constant.

This means that the rate of this reaction is directly proportional to the concentrations of OH⁻ and CH₃Br. This indicates that the reaction rate increases as the concentrations of the reactants increase.

The rate law describes how the rate of a reaction changes with respect to changes in the concentrations of the reactants. It is determined by experimentally measuring the rate of the reaction at various concentrations of the reactants.

This rate law describes the rate of the reaction when the concentrations of the reactants are varied while all other factors, such as temperature and pressure, remain constant.

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For the reaction: N2O4(g) rightarrow 2 NO2(g) the number of moles of N204(g) is What is the number of moles of moles of NO2(g) at t = 10 min?(Assume moles of NO2(g) = 0 at t = 0.) a) 0.280 b) 0.120 c) 0.110 d) 0.060

Answers

This is a chemical reaction in which N2O4(g) is converted into 2 moles of NO2(g).

For the reaction: N2O4(g) rightarrow 2 NO2(g) the number of moles of N204(g) is What is the number of moles of moles of NO2(g) at t = 10 min?

This is a chemical reaction in which N2O4(g) is converted into 2 moles of NO2(g). The reaction rate can be expressed using the rate equation:

rate = k[N2O4]

where k is the rate constant and [N2O4] is the concentration of N2O4 at any given time.

The problem does not provide any information about the concentration of N2O4 or the rate constant. Therefore, we cannot directly calculate the number of moles of N2O4 or NO2 at any given time.

However, assuming the reaction is first-order with respect to N2O4, we can use the half-life formula to determine the number of moles of N2O4 and NO2 at a specific time. The half-life of a first-order reaction is given by:

t1/2 = ln(2) / k

where ln is the natural logarithm. Solving for k, we get:

k = ln(2) / t1/2

where t1/2 is the half-life of the reaction.

Using the given information that the half-life of the reaction is 4 minutes, we can calculate the rate constant as:

k = ln(2) / 4 = 0.1733 min^-1

At t = 10 min, the fraction of N2O4 remaining is given by:

[N2O4] / [N2O4]0 = e^(-kt) = e^(-0.1733 * 10) = 0.227

where [N2O4]0 is the initial concentration of N2O4. Therefore, the number of moles of N2O4 at t = 10 min is:

moles of N2O4 = [N2O4] * volume of container / molar mass of N2O4

We don't have any information about the volume of the container, so we can't calculate the moles of N2O4.

However, since we know that 1 mole of N2O4 produces 2 moles of NO2, we can calculate the number of moles of NO2 produced at t = 10 min:

moles of NO2 = 2 * moles of N2O4 * 0.227

Substituting the value of moles of N2O4 from above, we get:

moles of NO2 = 0.227 * volume of container / molar mass of N2O4

Since we don't have any information about the volume of the container or the molar mass of N2O4, we can't calculate the moles of NO2.

Therefore, the answer to the question cannot be determined without additional information.

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Is the following equation properly balanced?
2HOI+H2O→IO3– +I– +4H+
Prove your answer by balancing the equation by the method of half-reactions

Answers

The given equation is not balanced. The properly balanced equation is:

HIO + H₂O + 2I- → IO₃⁻ + 4H+ + I₂

To balance the equation using the method of half-reactions, we first need to separate the reaction into two half-reactions: the oxidation half-reaction and the reduction half-reaction.

Oxidation half-reaction:

2I- → I₂

Reduction half-reaction:

HIO + H₂O → IO₃- + 4H⁺ + 3e⁻

We can balance the oxidation half-reaction by adding two electrons to the left side:

2I- + 2e⁻ → I₂

Next, we can balance the reduction half-reaction by multiplying the oxidation half-reaction by 3 and adding it to the reduction half-reaction:

3HIO + 3H₂O + 6I- → 3IO³⁻ + 12H+ + 9e⁻ + 3I₂

Now we can cancel out the electrons from both half-reactions:

3HIO + 3H₂O + 6I⁻ → 3IO₃⁻ + 12H+ + 3I₂

Finally, we can simplify the equation by dividing all coefficients by 3:

HIO + H₂O + 2I- → IO₃⁻ + 4H+ + I₂

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calculate the poh of a solution that results from mixing 33.8 ml of 0.18 m ammonia with 20.7 ml of 0.15 m ammonium chloride. the kb value for nh3 is 1.8 x 10-5.

Answers

The pOH of the solution that results from mixing 33.8 ml of 0.18 m ammonia with 20.7 ml of 0.15 m ammonium chloride is 1.28.

To calculate the pOH of the solution, we first need to find the concentration of hydroxide ions (OH-) in the solution.
First, let's calculate the moles of ammonia and ammonium chloride in the solution:
moles of NH3 = (0.18 M) x (33.8 mL/1000 mL) = 0.006084 mol
moles of NH4Cl = (0.15 M) x (20.7 mL/1000 mL) = 0.003105 mol

Next, let's determine which species will react to form hydroxide ions: NH3 + H2O <-> NH4+ + OH-
Since we have excess NH3, all of the NH4+ will react with the NH3 to form NH3 and water. This means that the moles of NH4+ will be equal to the moles of OH- produced:
moles of NH4+ = 0.003105 mol
moles of OH- = 0.003105 mol

Now we can calculate the concentration of OH- in the solution:
[OH-] = moles of OH- / total volume of solution
[OH-] = 0.003105 mol / (33.8 mL + 20.7 mL) = 0.0527 M

Finally, we can calculate the pOH of the solution:
pOH = -log[OH-]
pOH = -log(0.0527)
pOH = 1.28

Therefore, the pOH of the solution is 1.28.

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An infinitely long, straight, cylindrical wire of radius RR has a uniform current density →J=J^zJ→=Jz^ in cylindrical coordinates.
Cross-sectional view
Side view
What is the magnitude of the magnetic field at some point inside the wire at a distance ri B=B=
Assuming JJ is positive, what is the direction of the magnetic field at some point inside the wire?
positive zz‑direction
negative zz‑direction
positive rr‑direction
negative rr‑direction
positive ϕϕ‑direction
negative ϕϕ‑direction

Answers

The magnitude of the magnetic field inside the wire at a distance ri is B = (μ₀ * J * ri) / 2. Assuming JJ is positive, Assuming JJ is positive, the direction of the magnetic field at some point inside the wire would be positive ϕ-direction.

To find the magnitude of the magnetic field inside the wire, we will use Ampere's Law, which relates the magnetic field around a closed loop to the current enclosed by that loop. In this case, the loop will be a circle of radius ri inside the wire.

Ampere's Law: ∮ B → · d l → = μ₀I_enclosed

First, we need to find the enclosed current, I_enclosed. To do this, we can multiply the current density J by the cross-sectional area of the circle with radius ri.

I_enclosed = J * π * (ri)^2

Now, we can apply Ampere's Law. For a symmetrical situation like this, the magnetic field B is constant along the circular loop, so we can simplify the equation as follows:

B * 2 * π * ri = μ₀ * J * π * (ri)^2

Next, we will solve for B:

B = (μ₀ * J * π * (ri)^2) / (2 * π * ri)

B = (μ₀ * J * ri) / 2

To find the direction of the magnetic field at a point inside the wire, we can use the right-hand rule. Place your thumb in the direction of the current, which is the positive z-direction. Your curled fingers will point in the direction of the magnetic field, which is the positive ϕ-direction.

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using the chemical equation from the previous problem (question 4), identify the spectator ions:- Phosphide ion- Phosphite ion - Barium ion - Phosphate ion - Sulfate ion - Sulfite ion - Beryllium ion - Ammonium ion - Sulfide ionThe equation is 2(NH4)3PO4+3BaS=3(NH4)2S+Ba3(PO4)2

Answers

Ammonium ion (NH4+) and Phosphate ion (PO4^3-) are the spectators ions.

In the given chemical equation, 2(NH4)3PO4 + 3BaS → 3(NH4)2S + Ba3(PO4)2, the spectator ions are those that appear in both the reactants and products of the reaction, but do not undergo any chemical change. In this case, the ammonium ion (NH4+) and phosphate ion (PO43-) are spectator ions. They appear in both the reactant (NH4)3PO4 and product NH4)2S and Ba3(PO4)2 respectively.

However, the phosphide ion (P3-), phosphite ion (PO33-), sulfate ion (SO42-), sulfite ion (SO32-), and beryllium ion (Be2+) are the ions involved in the chemical reaction. These ions react with each other and result in the formation of new compounds.

It is essential to identify the spectator ions in a chemical equation to determine the actual reactants and products involved in the reaction. This information is crucial in determining the stoichiometry of the reaction and calculating the amount of product formed or reactant consumed, Thus, identifying the spectator ions helps in the accurate representation of the chemical reaction and its various aspects.

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What mass in grams of Na2S2O3 is needed to dissolve 4.7 g of AgBr in a solution volume of 1.0 L, given that Ksp for AgBr is 3.3 x 10^-13 and Kq for [Ag(S,O3)213- is 4.7 x 10^13?

Answers

To dissolve 4.7 g of AgBr, you need 22.2 g of Na₂S₂O₃.

To find the mass of Na₂S₂O₃ needed, follow these steps:

1. Calculate the moles of AgBr: 4.7 g / 187.77 g/mol (molar mass of AgBr) = 0.025 mol AgBr.
2. Use the Ksp value to determine the concentration of Ag⁺ ions: [Ag⁺] = √(Ksp) = √(3.3 x 10⁻¹³) = 1.82 x 10⁻⁷ M.
3. Calculate the moles of Ag⁺ ions: (1.82 x 10⁻⁷ M) x 1.0 L = 1.82 x 10⁻⁷ mol Ag⁺.
4. Use the stoichiometry of the reaction to find the moles of Na₂S₂O₃ needed: 1 mol Na₂S₂O₃ / 2 mol Ag⁺ = 0.5 mol Na₂S₂O₃/mol Ag⁺.
5. Calculate the moles of Na₂S₂O₃ required: 0.5 mol Na₂S₂O₃/mol Ag⁺ x 1.82 x 10⁻⁷ mol Ag⁺ = 9.1 x 10⁻⁸ mol Na₂S₂O₃.
6. Convert moles of Na₂S₂O₃ to grams: 9.1 x 10⁻⁸ mol Na₂S₂O₃ x 158.11 g/mol (molar mass of Na₂S₂O₃) = 22.2 g Na₂S₂O₃.

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For the following molecules classify them as aromatic, antiaromatic, or nonaromatic. H. CH Н N 1 II = nonaromatic; II = aromatic O l = nonaromatic; Il = antiaromatic o l = antiaromatic; Il = nonaromatic O I = aromatic; Il = antiaromatic O I = aromatic; 1l = nonaromatic

Answers

H₂ is nonaromatic. CH₂ is nonaromatic. NH is aromatic. O₂ is antiaromatic.

Aromatic, nonaromatic, and antiaromatic are terms used to describe the stability of cyclic organic compounds based on their electronic structure. H₂ is nonaromatic because it is not a cyclic compound. CH₂ is nonaromatic because it is not a cyclic compound. NH is aromatic because it is cyclic, planar, and possesses a delocalized pi electron system with 4n+2 π electrons, where n is an integer. O₂ is antiaromatic because it is cyclic, planar, and possesses a delocalized pi electron system with 4 π electrons, which is 4n π electrons, where n is an integer.

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--The complete question is, Can you classify the following molecules as aromatic, antiaromatic, or nonaromatic: H₂, CH₂, NH, O₂?--

how to calculate the cell potential for the galvanic cell described as C(s)| H2(g) | H+(aq) || OH-(aq) | O2(g) | Pt(s)

Answers

The cell potential for the given galvanic cell is +0.401 V.

The cell potential for the given galvanic cell. Here's a step-by-step explanation:

1. Identify the half-reactions: In the given galvanic cell, the half-reactions are:
  - Anode (oxidation): H2(g) → 2H+(aq) + 2e-
  - Cathode (reduction): O2(g) + 2H2O(l) + 4e- → 4OH-(aq)

2. Determine the standard reduction potentials (E°): You can find the standard reduction potentials for the half-reactions in a standard reduction potential table. For the given reactions, we have:
  - E°(H2/H+) = 0 V (as it is the reference value)
  - E°(O2/OH-) = +0.401 V

3. Calculate the cell potential (Ecell): To calculate the cell potential, use the equation Ecell = E°cathode - E°anode. In this case, it would be:

  Ecell = E°(O2/OH-) - E°(H2/H+) = +0.401 V - 0 V = +0.401 V

Therefore, the cell potential for the given galvanic cell is +0.401 V.

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if 25.0 ml of 0.17 m nh3 (kb = 1.8 x 10-5) is used to titrate 0.027 l of 0.53 m hci, the ph is

Answers

The pH at the equivalence point of the titration between 25.0 mL of 0.17 M NH3 and 0.027 L of 0.53 M HCl is approximately 0.276.

How to determine the pH?

To determine the pH at the equivalence point of the titration between 25.0 mL of 0.17 M NH3 (a weak base with Kb = 1.8 x 10^-5) and 0.027 L (27.0 mL) of 0.53 M HCl (a strong acid), we can use the concept of neutralization and the equilibrium expression for the reaction between NH3 and HCl.

The balanced chemical equation for the reaction is:

NH3 + HCl → NH4+ + Cl-

At the equivalence point of the titration, the moles of NH3 will react completely with the moles of HCl, resulting in the formation of moles of NH4+ and Cl- in equal amounts.

Given that the volume of NH3 is 25.0 mL (or 0.025 L) and the concentration of NH3 is 0.17 M, we can calculate the number of moles of NH3:

moles of NH3 = volume of NH3 (L) x concentration of NH3 (M)

moles of NH3 = 0.025 L x 0.17 M = 0.00425 moles

Since the ratio of NH3 to HCl is 1:1 in the balanced chemical equation, the moles of HCl required to react with the moles of NH3 is also 0.00425 moles.

Given that the volume of HCl is 0.027 L (or 27.0 mL) and the concentration of HCl is 0.53 M, we can calculate the number of moles of HCl:

moles of HCl = volume of HCl (L) x concentration of HCl (M)

moles of HCl = 0.027 L x 0.53 M = 0.01431 moles

Since HCl is a strong acid, it will completely dissociate in water, resulting in the formation of an equal amount of moles of H+ ions.

At the equivalence point of the titration, the moles of NH4+ and Cl- ions formed from the reaction will be in equal amounts, and the resulting solution will be a salt of NH4Cl, which is a strong electrolyte and will completely dissociate in water, resulting in the formation of an equal amount of moles of NH4+ and Cl- ions.

The pH of a solution containing a strong electrolyte, such as NH4Cl, can be calculated using the following equation:

pH = -log [H+]

Since the moles of H+ ions formed from the complete dissociation of NH4Cl at the equivalence point is equal to the moles of HCl used in the titration, we can calculate the pH using the concentration of HCl:

pH = -log [H+]

pH = -log [HCl]

pH = -log (0.53)

pH = -(-0.276)

pH = 0.276

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What concentration of aqueous NH3 is necessary to just start precipitation of Mn(OH)2 from a 0.020 M solution MnSO4? Kb for NH3 is 1.8 × 10−5 and Ksp for Mn(OH)2 is 4.6 × 10−14.
a. 1.4 × 10^−5 M
b. 3.7 × 10^−7 M
c. 1.6 × 10^−6 M
d. 1.3 × 10^−7 M
e. 8.4 × 10^−2 M

Answers

The concentration of aqueous NH3 required to just start precipitation of Mn(OH)2 from a 0.020 M solution of MnSO4 is 8.4 × 10^−2 M

To determine the concentration of aqueous NH3 necessary to just start precipitation of Mn(OH)2 from a 0.020 M solution of MnSO4, we need to use the given Kb for NH3 and the Ksp for Mn(OH)2.

First, find the concentration of OH- ions needed to start the precipitation using the Ksp expression for Mn(OH)2:

Ksp = [Mn2+][OH-]^2
4.6 × 10^−14 = (0.020)[OH-]^2

Solve for [OH-]:
[OH-] = √(4.6 × 10^−14 / 0.020) ≈ 4.8 × 10^−7 M

Now, use the Kb expression for NH3 to find the required concentration of NH3:

Kb = [NH4+][OH-] / [NH3]
1.8 × 10^−5 = [NH4+][4.8 × 10^−7] / [NH3]

Assume that [NH4+] and [OH-] are equal since they come from the same source (NH3). Therefore:

1.8 × 10^−5 = [4.8 × 10^−7]^2 / [NH3]

Solve for [NH3]:


[NH3] ≈ 8.4 × 10^−2 M

Your answer: e. 8.4 × 10^−2 M

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A particular reaction has an equilibrium constant of Kp = 0.50. A reaction mixture is prepared in which all the reactants and products are in their standard states. In which direction will the reaction proceed?

Answers

The equilibrium constant Kp is defined as the ratio of the product of the partial pressures of the products raised to their stoichiometric coefficients, to the product of the partial pressures  .

the reactants raised to their stoichiometric coefficients. For a given reaction, if Kp is less than 1, then the reactants are favored at equilibrium, while if Kp is greater than 1, then the products their stoichiometric coefficients, to the product of the partial pressures  . are favored at equilibrium. In this case, the equilibrium constant Kp is 0.50, which is less than 1. Therefore, the reactants are favored at equilibrium, and the reaction will proceed in the forward direction to produce more products until the equilibrium is reached.

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what happens to the percent yield of alum if too much sulfuric acid was added?

Answers

If too much sulfuric acid is added during the formation of alum, the percent yield may decrease. Sulfuric acid can react with the aluminum compound and create a by product, decrease the amount of alum produced.

According to the definition of percent yield, it is the percentage of actual yield to potential yield.

Simply dividing the theoretical yield by the actual yield and multiplying the result by 100 to obtain the result in percentage form allowed us to calculate the product's percent yield. Additionally, excess sulfuric acid can cause the reaction to become too acidic, which can also decrease the yield.  This is because an excess of sulfuric acid can lead to side reactions, producing unwanted by products, and consuming some of the desired reactants. As a result, less alum is formed, leading to a lower percent yield. Therefore, it is important to add the correct amount of sulfuric acid to the reaction mixture in order to achieve the highest possible percent yield of alum.

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Determine whether each substance will sink or float in corn syrup, which has a density of 1.36 g/cm3. Write “sink” or “float” in the blanks.

Gasoline

Water

Honey

Titanium

Answers

Gasoline; float,  Water; float, Honey; neither sink nor float (suspended) and Titanium; sink.

To determine whether each substance will sink or float in corn syrup, we need to compare the density of each substance with the density of corn syrup, which is 1.36 g/cm³. If the density of a substance is greater than the density of corn syrup, it will sink. If the density of a substance is less than the density of corn syrup, it will float.

Gasoline has a density of about 0.68 g/cm³, which is less than the density of corn syrup. Therefore, gasoline will float in corn syrup.

Water has a density of 1 g/cm³, which is less than the density of corn syrup. Therefore, water will float in the corn syrup.

Honey has a density of about 1.36 g/cm³, which is equal to the density of corn syrup. Therefore, honey will neither sink nor float in corn syrup. It will stay suspended in middle.

Titanium has a density of about 4.51 g/cm³, which is greater than the density of corn syrup. Therefore, titanium will sink in corn syrup.

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Calculate the minimum (least negative) cathode potential (versus SHE) needed to begin electroplating nickel from 0.250 M Ni2+ onto a piece of iron. Assume that the overpotential for the reduction of Ni2+ on an iron electrode is negligible (The reduction potential of Ni2+ vs. SHE is –0.257 V).

Answers

We first need to take into account the reduction potential of Ni2+ vs. SHE, which is -0.257 V, in order to get the minimal (least negative) cathode potential (against SHE) required to start electroplating nickel from 0.250 M Ni2+ onto a piece of iron.

The Ni2+ ions will start to be decreased at the cathode at this voltage. As a result, in order to start electroplating nickel from 0.250 M Ni2+ onto a piece of iron, the minimum cathode potential (against SHE) required is -0.257 V.

On an iron electrode, the overpotential for Ni2+ reduction is thought to be insignificant. This indicates that to start electroplating nickel from 0.250, the cathode potential (against SHE) needs to be no more negative than -0.257 V.

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We first need to take into account the reduction potential of Ni2+ vs. SHE, which is -0.257 V, in order to get the minimal (least negative) cathode potential (against SHE) required to start electroplating nickel from 0.250 M Ni2+ onto a piece of iron.

The Ni2+ ions will start to be decreased at the cathode at this voltage. As a result, in order to start electroplating nickel from 0.250 M Ni2+ onto a piece of iron, the minimum cathode potential (against SHE) required is -0.257 V.

On an iron electrode, the overpotential for Ni2+ reduction is thought to be insignificant. This indicates that to start electroplating nickel from 0.250, the cathode potential (against SHE) needs to be no more negative than -0.257 V.

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The exact position of the equilibrium between ketones/aldehydes and their hydrates depends on the structure of the carbonyl compound. Although the equilibrium favors the carbonyl compound in most cases, cyclopropanone forms a stable hydrate. Explain this phenomena based on the structures of cyclopropanone and its hydrate. Use diagrams if it helps.

Answers

Cyclopropanone forms a stable hydrate due to the ring strain in its cyclic structure, which destabilizes the carbonyl compound and shifts the equilibrium towards the hydrate form.

Cyclopropanone is a cyclic ketone with a three-membered ring, which results in significant ring strain. The angle strain and steric strain associated with the ring make cyclopropanone less stable compared to other ketones.

The presence of the unstable three-membered ring in cyclopropanone makes it more susceptible to hydration, resulting in the formation of a stable hydrate.

The hydrate form of cyclopropanone has a hemiacetal structure, where the oxygen of the ketone group forms a hydrogen bond with the acidic α-hydrogen, stabilizing the hydrate form. This favorable stabilization of the hydrate form over the carbonyl form shifts the equilibrium towards the hydrate in the case of cyclopropanone.

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7. comment on the qod for the gas law lab: what effect does the limiting reactant mass have on the molar gas volume? hint: this question is asking about molar gas volume, not simply gas volume. (8pts)

Answers

If the limiting reactant mass is changed, the number of moles of gas produced will change, which will in turn affect the molar gas volume.

The QOD for the gas law lab is a good question because it prompts students to think about the concept of molar gas volume, which is a fundamental concept in chemistry.

Molar gas volume is the volume occupied by one mole of gas at a particular temperature and pressure. It is a useful concept because it allows us to compare the volume of different gases under the same conditions.

The question specifically asks about the effect of the limiting reactant mass on the molar gas volume. This means that students need to consider how the amount of reactant used in the experiment affects the number of moles of gas produced.

Since the molar gas volume is defined as the volume occupied by one mole of gas, the number of moles produced will directly affect the molar gas volume.

Therefore, if the limiting reactant mass is changed, the number of moles of gas produced will change, which will in turn affect the molar gas volume.

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