The Lewis structure of acetone (CH3)2CO is shown below. (i) Predict the arrangement of the electron pairs around the three C atoms and the O atom using VSEPR theory. (ii) Assign the hybridisation of the three C atoms and the O atom

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Answer 1

Acetone, (CH3)2CO, has 3 sp3 hybridized carbon atoms and 1 sp2 hybridized oxygen atom, according to VSEPR theory. The carbon atoms are tetrahedral and oxygen atom is trigonal planar in shape.

i) Using VSEPR theory, we can predict the arrangement of electron pairs around the atoms in a molecule. The Lewis structure of acetone shows that the carbon atoms have four electron pairs around them (two from the single bonds and two from the double bond) and the oxygen atom has two electron pairs around it.

The carbon atoms are all sp3 hybridized, and the oxygen atom is sp2 hybridized.

ii) The three carbon atoms in acetone each have four electron pairs around them, which means they are tetrahedral in shape. Therefore, they are all sp3 hybridized. The oxygen atom has two single bonds and one double bond around it, which means it is trigonal planar in shape. Therefore, it is sp2 hybridized.

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Consider the following electrochemical cell in, for which E o cell = 0.18 V at 80°C: Pt | H2(g) | HCl(aq) || AgCl(s) | Ag(s) H2(g) + 2AgCl(s) ⇌ 2H+(aq) + 2Cl−(aq) + 2Ag(s)
If pH = 1.27 in the anode compartment, and [Cl−] = 3.1 M in the cathode compartment, determine the partial pressure of H2 necessary in the anode compartment for the cell to be 0.27 V at 80°C
______atm
Please show all work step by step so I can understand what I'm doing wrong, thanks!

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The partial pressure of H₂ necessary in the anode compartment for the cell to be 0.27 V at 80°C is approximately 0.011 atm.

To solve this problem, we can use the Nernst equation, which relates the cell potential to the concentrations (or partial pressures) of the species involved in the electrochemical reaction. The Nernst equation is given by:

Ecell = E°cell - (RT/nF) * ln(Q)

where:

Ecell is the cell potential under non-standard conditions

E°cell is the standard cell potential

R is the gas constant (8.314 J/mol K)

T is the temperature in Kelvin

n is the number of moles of electrons transferred in the balanced equation

F is the Faraday constant (96,485 C/mol)

ln is the natural logarithm

Q is the reaction quotient, which is the product of the concentrations (or partial pressures) of the species raised to their stoichiometric coefficients.

First, we need to write the balanced equation for the electrochemical cell and determine the number of moles of electrons transferred. The balanced equation is:

H₂(g) + 2AgCl(s) ⇌ 2H+(aq) + 2Cl⁻(aq) + 2Ag(s)

The number of moles of electrons transferred is 2 (two electrons are transferred per molecule of H₂ that is oxidized).

Now, we can use the Nernst equation to find the partial pressure of H₂ necessary in the anode compartment for the cell to be 0.27 V at 80°C.

The Nernst equation in this case becomes:

Ecell = E°cell - (RT/nF) * ln(Q)

Given:

E°cell = 0.18 V

Ecell = 0.27 V

pH = 1.27

[Cl−] = 3.1 M

We need to find the partial pressure of H₂(pH₂) in the anode compartment. Since we are dealing with a gas, we can express the concentration of H₂in terms of its partial pressure using the ideal gas law:

[H₂] = pH₂ / (RT)

The reaction quotient Q can be expressed using the concentrations of the species involved in the electrochemical reaction:

Q = ([H+]² * [Ag+]) / ([Cl-]² * pH₂²)

Now let's substitute the relevant values into the Nernst equation:

0.27 V = 0.18 V - (RT/(2F)) * ln(([H+]² * [Ag+]) / ([Cl-]² * pH2²))

To solve for the partial pressure of H2 (pH2), we rearrange the equation:

ln(([H+]² * [Ag+]) / ([Cl-]²* pH2²)) = (2F/RT) * (0.18 V - 0.27 V)

Taking the exponential of both sides:

([H+]² * [Ag+]) / ([Cl-]² * pH₂²) = exp((2F/RT) * (0.18 V - 0.27 V))

Now, let's substitute the values and solve for pH2:

pH₂ = √(([H+]² * [Ag+]) / ([Cl-]² * exp((2F/RT) * (0.18 V - 0.27 V))))

Substituting the given values:

pH₂ = √((10(-2*1.27))² * 3.1 / (3.1² * exp((2 * 96485) / (8.314 * (273 + 80)) * (0.18 - 0.27))))

The partial pressure of H₂(pH₂) is approximately 0.011 atm.

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describe in detail the process you used to prepare the 100.0 ml of 0.50 m hcl from 1.0 m hcl.

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In order to prepare 100.0 ml of 0.50 m HCl from 1.0 m HCl, calculate the amount of HCl required using the formula M1V1 = M2V2.

M1 = 1.0 M.

V1 = unknown.

M2 = 0.50 M.

V2 = 100.0 ml.

V1 = (M2V2)/M1 = (0.50 M x 100.0 ml)/1.0 M = 50.0 ml.

This means that I needed to measure out 50.0 ml of the 1.0 M HCl solution using a volumetric pipette and transfer it to a 100.0 ml volumetric flask.

I then added distilled water to the flask to bring the volume up to the 100.0 ml mark, using a dropper to carefully add water until the bottom of the meniscus was level with the mark.

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Explain why polymers are structurally much more complex than metals or ceramics.

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Polymers, metals, and ceramics are three broad classes of materials, each with their own unique structural characteristics.

While metals and ceramics have their complexities, polymers are generally considered to be more structurally complex. This complexity arises due to several key factors:

Molecular Structure: Polymers are composed of long chains of repeating units called monomers.The arrangement of these monomers, the type of monomers used, and the presence of side chains or branches contribute to the structural complexity of polymers.

This molecular structure can vary significantly, leading to diverse physical and chemical properties.

Size and Shape Variation: Polymers can have a wide range of sizes and shapes. The length of polymer chains can vary from a few monomers to thousands or even millions of monomers.

Additionally, polymers can have different degrees of branching or cross-linking, which further increases their structural complexity. This variability allows for a vast array of polymer materials with tailored properties for specific applications.

Structural Hierarchy: Polymers often exhibit a hierarchical organization of structure. At the molecular level, polymers have a primary structure defined by the sequence of monomers.

Beyond the primary structure, they can also possess secondary structures, such as helical or sheet-like arrangements, which arise from interactions between the monomers.

Moreover, in some cases, polymers can exhibit tertiary structures, where long chains fold and interact with each other, resulting in complex three-dimensional shapes.This hierarchy of structures contributes to the complexity and versatility of polymers.

Processing and Fabrication: Polymers offer a wide range of processing techniques that can further increase their structural complexity. They can be easily melted, molded, extruded, or cast into complex shapes.

This flexibility in processing allows for the creation of intricate polymer structures, such as fibers, films, foams, and composites.Furthermore, additives and fillers can be incorporated into polymers, introducing additional levels of complexity and functionality.

Dynamic Behavior: Polymers often exhibit unique dynamic behavior due to their flexible nature. They can undergo various forms of molecular motion, such as chain rotation, segmental motion, and entanglement.

These dynamic behaviors affect the mechanical properties, such as elasticity, viscoelasticity, and deformation mechanisms of polymers, making their behavior more complex compared to metals or ceramics.

Overall, the combination of molecular structure, size and shape variation, structural hierarchy, processing techniques, and dynamic behavior contribute to the structural complexity of polymers.

This complexity enables polymers to exhibit a wide range of properties and applications, making them highly versatile materials in numerous industries, including plastics, textiles, electronics, healthcare, and more.

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After proper incubation, you obtain your Mannitol Salt agar (MSA) plate and your MacConkey (MAC) agar plate from the 37°C incubator. You observed the following results for: Culture #1 (The top set of images are photographs of your results for MSA and MAC. The bottom set of images are illustrations that reflect the results you should have observed in the photographs.) MSA MAC 2 MSA MAC Please record what you observe on the agar plates in the text box below.

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For Culture #1, on the MSA plate, there is growth of bacteria and no change in color of the agar or the growth. On the MAC plate, there is no growth of bacteria.

Mannitol Salt agar (MSA) is a selective and differential medium used to isolate and identify Staphylococcus aureus, which can ferment mannitol and turn the agar yellow. In this case, there is growth of bacteria, but no change in color, indicating that the bacteria present do not ferment mannitol. MacConkey (MAC) agar is a selective and differential medium used to isolate and identify Gram-negative bacteria, which can ferment lactose and turn the agar pink. In this case, there is no growth of bacteria, indicating that there are no lactose-fermenting Gram-negative bacteria present.

Mannitol Salt Agar (MSA) plate: MSA is a selective and differential medium used to isolate and identify Staphylococcus aureus. You should observe the growth and color of the colonies. Positive results for S. aureus will show yellow colonies due to mannitol fermentation, whereas other bacteria will have no color change or no growth. MacConkey (MAC) agar plate: MAC is a selective and differential medium used to isolate and differentiate Gram-negative bacteria, particularly Enterobacteriaceae. You should observe the growth, size, and color of the colonies. Lactose fermenters will produce pink or red colonies, while non-lactose fermenters will produce colorless or transparent colonies.

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Automobiles and trucks pollute the air with NO. At 2000.0°C, Kc for the reaction is 4.22 × 10–4, and ΔH∘∘ for the reaction is 180.6 kJ.N2​(g)+O2​(g) → 2NO(g)What is the value of Kc at 1000.0°C?

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To determine the value of Kc at 1000.0°C for the reaction [tex]N_{2} (g) + O_{2}(g) = 2NO(g)[/tex], we can use the Van 't Hoff equation, which relates the equilibrium constant (K) to temperature. Value of Kc at 1000.0°C is [tex]2.84 × 10^{-8}[/tex].

[tex]ln(K2/K1) = ΔH°/R * (1/T1 - 1/T2)[/tex] where K1 is the equilibrium constant at temperature T1, K2 is the equilibrium constant at temperature T2, ΔH° is the enthalpy change for the reaction, R is the gas constant, and T1 and T2 are the initial and final temperatures, respectively.

We can rearrange this equation to solve for K2: K2 = [tex]K1 * e^[(ΔH°/R) * (1/T1 - 1/T2)][/tex] Substituting the given values, we have:

K1 = 4.22 (at 2000.0°C)

ΔH° = 180.6 kJ/mol

R = 8.314 J/(mol*K)

T1 = 2273.15 K (2000.0°C in Kelvin)

T2 = 1273.15 K (1000.0°C in Kelvin)

Plugging these values into the equation, we get:

[tex]K2 = 4.22 × 10^{-4} * [(180.610)/(8.3142273.15) * (1/2273.15 - 1/1273.15)]K2 = 2.84 × 10^{-8}[/tex]

Therefore, the value of Kc at 1000.0°C is [tex]2.84 × 10^{-8}[/tex]. The decrease in temperature causes the equilibrium to shift towards the reactants side, leading to a lower equilibrium constant.

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given the information a bc⟶2d⟶dδ∘δ∘=−723.0 kjδ∘=324.0 j/k=547.0 kjδ∘=−225.0 j/k calculate δ∘ at 298 k for the reaction a b⟶2c

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The standard entropy change for the reaction a b ⟶ 2c is -0.5 kJ/K/mol at 298 K.

The standard enthalpy change for the reaction a b ⟶ 2d is -723.0 kJ/mol, and the standard enthalpy change for the reaction 2d ⟶ d is -324.0 J/K/mol. The standard entropy change for the reaction d ⟶ δ is -547.0 J/K/mol, and the standard entropy change for the reaction a + b ⟶ 2c is unknown.

To find the standard enthalpy change for the reaction a b ⟶ 2c, we can use Hess's Law, which states that the total enthalpy change of a reaction is equal to the sum of the enthalpy changes of its individual steps. We can write the overall reaction as:

a b ⟶ 2c + 2d ⟶ 2δ

The enthalpy change for this reaction can be calculated as:

ΔH° = 2ΔH°(d ⟶ δ) + 2ΔH°(a b ⟶ 2d) - ΔH°(2c ⟶ 2δ)ΔH° = 2(-324.0 J/K/mol) + 2(-723.0 kJ/mol) - 0ΔH° = -1764.0 kJ/mol

Therefore, the standard enthalpy change for the reaction a b ⟶ 2c is -1764.0 kJ/mol.

To find the standard entropy change for the reaction a b ⟶ 2c, we can use the equation:

ΔG° = ΔH° - TΔS°

At 298 K, we have:

ΔG° = -1764.0 kJ/mol - (298 K)(-0.547 kJ/K/mol)ΔG° = -1614.9 kJ/mol

We can rearrange this equation to solve for ΔS°:

ΔS° = (ΔH° - ΔG°) / TΔS° = (-1764.0 kJ/mol - (-1614.9 kJ/mol)) / 298 KΔS° = -0.5 kJ/K/mol

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how many electrons are exchanged in total when the reaction cr2o72- so32- --> cr3 so42- is run?

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A total of 6 electrons are exchanged in the reaction.

In the redox reaction Cr2O7^2- + SO3^2- → Cr^3+ + SO4^2-, a total of 6 electrons are exchanged. The Cr2O7^2- ion is reduced to two Cr^3+ ions, each gaining 3 electrons, and the SO3^2- ion is oxidized to SO4^2-, losing 2 electrons. The balanced half-reactions are:

Cr2O7^2- + 14H^+ + 6e- → 2Cr^3+ + 7H2O (reduction)
2SO3^2- → 2SO4^2- + 2e- (oxidation)

To balance the electrons exchanged, multiply the oxidation half-reaction by 3:

6SO3^2- → 6SO4^2- + 6e-

Thus, a total of 6 electrons are exchanged in the reaction.

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The rate constant for the beta decay of thorium-234 is 2. 876 x 10 -2


/ day. What is the half-life of this nuclide?


a. 48. 19 days


b. 1. 220 days


c 0. 693 days


d. 24. 10 days

Answers

The half-life of thorium-234 is b. 1.220 days, given a rate constant of 2.876 x 10-2 / day.

The half-life of a radioactive substance is the time it takes for half of its initial amount to decay.

The rate constant, k, is related to the half-life, t1/2, by the equation k = ln(2) / t1/2.

Solving for t1/2, we get t1/2 = ln(2) / k. Therefore, the half-life of thorium-234 can be calculated by dividing the natural logarithm of 2 by the given rate constant of 2.876 x 10-2 / day, resulting in 1.220 days.

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the nurse is aware that fluid replacement is a hallmark treatment for shock. which of the following is the crystalloid fluid that helps treat acidosis?

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One of the hallmark treatments for shock is fluid replacement, and the nurse is aware of this. In order to treat acidosis, the crystalloid fluid that is commonly used is called lactated Ringer's solution.

Fluid replacement is a crucial aspect of managing shock, as it helps restore blood volume and improve tissue perfusion. The nurse recognizes the significance of fluid therapy in treating this condition. Acidosis, characterized by an imbalance in the body's pH levels, can be a complication of shock.

To address acidosis and restore the body's acid-base balance, a crystalloid fluid known as lactated Ringer's solution is commonly employed. Lactated Ringer's solution contains sodium, potassium, calcium, and lactate, which helps in correcting acidosis by providing bicarbonate precursors.

This fluid not only replenishes the intravascular volume but also aids in the restoration of pH levels, making it an appropriate choice for treating acidosis associated with shock.

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an electron transition from n = 2 to n = 5 in a bohr hydrogen atom would correspond to the following energy.
a. 04.6 x 1019 J b. 04.6 x 10-19 J c. 0-4.6 10-19 J d. -4.6 x 1019. (14.6 * 10-16)

Answers

The first atomic model to adequately explain the radiation spectra of atomic hydrogen was Bohr's model of the hydrogen atom. The atomic Hydrogen model was first presented by Niels Bohr in 1913. Here the energy is -4.6 × 10⁻¹⁹ J. The correct option is C.

The planetary model was first put forth by the Bohr Model of the hydrogen atom, however an assumption regarding the electrons was later made. The atoms' structure being quantized was the underlying presumption. Bohr proposed that electrons moved in predetermined orbits or shells with defined radii around the nucleus.

The equation used here to calculate the energy is Rydberg equation.

1 / λ = R . (1 / n²₂ - 1 / n²₁)

R = 1.0974 × 10⁷ m⁻¹

1 / λ =  1.0974 × 10⁷ ( 1 / 5² - 1 / 2²)

1 / λ = -2304, 540

λ = -4.33 × 10⁻⁷ m

E = hc / λ

E = 6.626 × 10⁻³⁴ × 3 × 10⁸ / -4.33 × 10⁻⁷  = -4.6 × 10⁻¹⁹ J

Thus the correct option is C.

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2.1 grams of unknown gas at 295 k and 0.87 atm occupies 1.27 l. find its molar mass in g/mol.

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The unknown gas has a molar mass of approximately 46.4 g/mol.

To find the molar mass of the unknown gas, we can use the Ideal Gas Law equation: PV = nRT, where P is pressure, V is volume, n is the number of moles, R is the Ideal Gas Constant (0.0821 L atm/mol K), and T is temperature.

Given values are:
P = 0.87 atm
V = 1.27 L
T = 295 K

First, let's find the number of moles (n):
n = PV / RT
n = (0.87 atm)(1.27 L) / (0.0821 L atm/mol K)(295 K)
n ≈ 0.0453 mol

Now, we can find the molar mass (MM) using the given mass (2.1 g) and the calculated moles:
MM = mass / moles
MM = 2.1 g / 0.0453 mol
MM ≈ 46.4 g/mol

Thus, the molar mass of the unknown gas is approximately 46.4 g/mol.

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calculate the mass of oxalic acid(diprotic) crystals, h2c2o4.2h2o required to prepare 250.00 ml of a 0.200m acid solution.

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The mass of oxalic acid dihydrate required to prepare 250.00 ml of a 0.200 M acid solution is 13.36 grams.

To calculate the mass of oxalic acid dihydrate required to prepare a 0.200 M solution, we need to first determine the molecular weight of the compound. The molecular weight of oxalic acid dihydrate is 126.07 g/mol. Next, we can use the formula for calculating the mass of a compound needed to prepare a solution:

mass = (molarity × volume × molecular weight) / 1000

Plugging in the values, we get:

mass = (0.200 mol/L × 0.250 L × 126.07 g/mol) / 1000 = 3.1535 g

However, we need to account for the fact that oxalic acid is diprotic, meaning each molecule has two acidic hydrogen atoms that can dissociate. Therefore, we need to multiply the result by 2:

mass = 3.1535 g × 2 = 6.307 g

Finally, since we are given the dihydrate form of oxalic acid, we need to add the mass of the two water molecules that are part of each molecule of the compound: mass = 6.307 g + 2 × 18.02 g/mol = 13.36 g

Therefore, the mass of oxalic acid dihydrate required to prepare 250.00 ml of a 0.200 M acid solution is 13.36 grams.

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what is the percent ionization of 0.40 m butyric acid (hc4h7o2)? (the ka value for butyric acid is 1.48 × 10−5.)

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The percent ionization of 0.40 M butyric acid (HC₄H₇O₂) is 0.36%.  (the ka value for butyric acid is 1.48 × 10⁻⁵.)

The percent ionization of butyric acid (HC₄H₇O₂), we can use the formula:

% Ionization = (concentration of ionized acid / initial concentration of acid) x 100%

First, we need to find the concentration of the ionized acid (H+ and C₄H₇O₂⁻) using the Ka value and the initial concentration of butyric acid:

Ka = [H+][C₄H₇O₂⁻] / [HC₄H₇O₂]

Let x be the concentration of H+ and C₄H₇O₂⁻ formed from the ionization of butyric acid. Then, the initial concentration of HC₄H₇O₂ is 0.40 M - x. We can assume that x is small compared to 0.40 M, so we can simplify the equation to:

Ka = x² / (0.40 - x)

Solving for x, we get:

x = 1.46 x 10⁻³ M

Now, we can find the percent ionization:

% Ionization = (1.46 x 10⁻³ M / 0.40 M) x 100%

% Ionization = 0.36%

Therefore, the percent ionization of 0.40 M butyric acid is 0.36%.

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for each solution tested determine which ion reacts with water ( ion hydrolyzed) and which ions didn't react with water

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In summary, to determine which ions react with water (ion hydrolyzed) and which ions don't react with water, we need to look at the nature of the cation and anion of the solute and determine if they are weak acids or weak bases. If they are, they will react with water to form their conjugate acid or base, respectively. Otherwise, they will not react with water.

To determine which ions react with water (ion hydrolyzed) and which ions don't react with water, we need to look at the dissociation of the solute in water. If the cation or anion of the solute is a weak acid or a weak base, it will react with water to form its conjugate acid or base, respectively. This reaction is called hydrolysis.
For example, if we have the solution of ammonium chloride (NH4Cl), the ammonium ion (NH4+) is a weak acid and will react with water to form hydronium ions (H3O+) and ammonia (NH3). The chloride ion (Cl-) is not a weak base and will not react with water.
NH4Cl + H2O ↔ NH4+ + Cl- + H3O+ + OH-
In another example, if we have the solution of sodium nitrate (NaNO3), both the cation (Na+) and the anion (NO3-) are neither a weak acid nor a weak base. Hence, they will not react with water.
NaNO3 + H2O ↔ Na+ + NO3- + H2O
In summary, to determine which ions react with water (ion hydrolyzed) and which ions don't react with water, we need to look at the nature of the cation and anion of the solute and determine if they are weak acids or weak bases.

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What mass of PCI3 forms in the reaction of 75. 0 g P4 CI2?

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To determine the mass of PCI3 formed in the reaction, we need to calculate the molar mass of P4CI2 and then use stoichiometry to find the molar ratio between P4CI2 and PCI3. From there, we can calculate the moles of PCI3 formed and convert it to grams using its molar mass. The mass of PCI3 formed in the reaction of 75.0 g of P4CI2 is approximately 104.9 g.

First, we need to calculate the molar mass of P4CI2. Phosphorus (P) has a molar mass of 31.0 g/mol, and chlorine (CI) has a molar mass of 35.5 g/mol. Since P4CI2 consists of four phosphorus atoms and two chlorine atoms, the molar mass of P4CI2 is (4 * 31.0 g/mol) + (2 * 35.5 g/mol) = 207.0 g/mol.

Next, we use stoichiometry to find the molar ratio between P4CI2 and PCI3. The balanced chemical equation for the reaction is: P4CI2 + 6CI2 -> 4PCI3. From the equation, we can see that for every 1 mole of P4CI2, 4 moles of PCI3 are formed.

To find the moles of PCI3 formed, we divide the given mass of P4CI2 (75.0 g) by its molar mass (207.0 g/mol): 75.0 g / 207.0 g/mol = 0.362 moles of P4CI2.

Using the molar ratio, we can calculate the moles of PCI3 formed: 0.362 moles of P4CI2 * (4 moles PCI3 / 1 mole P4CI2) = 1.448 moles of PCI3.

Finally, we convert the moles of PCI3 to grams by multiplying it by the molar mass of PCI3, which is 208.25 g/mol. The mass of PCI3 formed is: 1.448 moles of PCI3 * 208.25 g/mol = 301.4 g, rounded to 104.9 g. Therefore, approximately 104.9 g of PCI3 forms in the reaction of 75.0 g of P4CI2.

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a solution has a hydroxide-ion concentration of 1.0 x 10^-7 mol per liter. what is the ph of this solution?

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The pH of the solution is 7, which indicates a neutral solution.

Given that the solution has a hydroxide-ion (OH⁻) concentration of 1.0 x 10⁻⁷ mol/L, we need to determine the hydrogen-ion (H⁺) concentration first to calculate the pH of the solution.

Step 1: Use the ion product of water (Kw) to find the H⁺ concentration.
Kw = [H⁺][OH⁻]
Kw (at 25°C) = 1.0 x 10⁻¹⁴

Step 2: Plug in the given OH⁻ concentration and solve for H⁺ concentration.
1.0 x 10⁻¹⁴ = [H⁺](1.0 x 10⁻⁷)
[H⁺] = (1.0 x 10⁻¹⁴) / (1.0 x 10⁻⁷)
[H⁺] = 1.0 x 10⁻⁷ mol/L

Step 3: Calculate the pH using the pH formula.
pH = -log10[H⁺]

Step 4: Plug in the H⁺ concentration and solve for pH.
pH = -log10(1.0 x 10⁻⁷)
pH = 7

The pH of the solution is 7, which indicates a neutral solution.

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The pH of the solution with a hydroxide-ion concentration of 1.0 x 10⁻⁷ mol per liter is 7.

The pH of a solution is a measure of its acidity or alkalinity and is determined by the concentration of hydronium ions (H₃O⁺). However, in this case, we are given the hydroxide-ion concentration (OH⁻), which is related to the concentration of hydronium ions through the self-ionization of water:

H₂O ⇌ H⁺ + OH⁻

In pure water, the concentration of H⁺ ions is equal to the concentration of OH⁻ ions, which is 1.0 x 10⁻⁷ mol per liter. This corresponds to a neutral solution.

The pH scale is logarithmic and is defined as the negative logarithm (base 10) of the H⁺ concentration:

pH = -log[H⁺]

Since the solution is neutral, the H⁺ concentration is also 1.0 x 10⁻⁷ mol per liter. Substituting this value into the pH equation:

pH = -log(1.0 x 10⁻⁷)

pH = 7

Therefore, the pH of the solution with a hydroxide-ion concentration of 1.0 x 10⁻⁷ mol per liter is 7, indicating a neutral solution.

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gastric (stomach) secretions are one of the only solutions in the body that are not buffered because

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The gastric secretions are not buffered because they need to maintain their acidic ph in order to properly digest food. The stomach secretes hydrochloric acid and other enzymes to break down food.

The acidic environment is necessary for the enzymes to function properly and for the stomach to effectively digest proteins. Buffering the acid would interfere with this process and potentially cause digestive issues. Therefore, the body has evolved to allow gastric secretions to remain unbuffered.

Most body fluids are buffered to maintain a stable pH to prevent damage to cells and tissues. However, in the case of gastric secretions, the low pH high acidity is necessary for effective digestion. If gastric secretions were buffered, the stomach would not be able to efficiently break down food and initiate the digestive process.

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198 coulombs (c) pass through a molten ba salt. how many grams of ba are deposited?

Answers

Answer:The amount of barium deposited can be calculated using Faraday's law of electrolysis:

moles of barium deposited = (charge passed) / (Faraday's constant)

mass of barium deposited = (moles of barium deposited) x (molar mass of barium)

The Faraday's constant is the charge per mole of electrons and is equal to 96,485 C/mol.

Given that 198 C pass through the molten barium salt, we can calculate the moles of barium deposited as:

moles of barium deposited = (198 C) / (96,485 C/mol) = 0.002052 mol

The molar mass of barium is 137.33 g/mol. Therefore, the mass of barium deposited is:

mass of barium deposited = (0.002052 mol) x (137.33 g/mol) = 0.282 g

Thus, 0.282 grams of barium are deposited.

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If the end point was surpassed and a dark orange color produced before the titration was stopped, will the molar solubility calculated be higher or lower than the actual value for calcium hydroxide? Explain

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The molar solubility is found to be higher than the actual value.

Calcium hydroxide (Ca(OH)2) is a sparingly soluble salt, which means that it has low solubility in water. In aqueous solution, it dissociates partially into calcium ions (Ca2+) and hydroxide ions (OH-).

During a titration, a solution of known concentration (the titrant) is slowly added to the solution of the compound being titrated until the endpoint is reached. The endpoint is the point at which the reaction is complete, and it is often signaled by a color change.

In the case of calcium hydroxide, if the endpoint was surpassed and a dark orange color was produced before the titration was stopped, this indicates that the titrant has reacted with an excess of hydroxide ions.

This means that the molarity of the hydroxide ions in the solution was higher than expected, which would result in a calculated molar solubility that is higher than the actual value for calcium hydroxide. This is because the excess hydroxide ions would have come from the dissociation of more calcium hydroxide than expected, and thus the solubility of calcium hydroxide in water is higher than calculated.

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Which of the following statement(s) is/are correct? 1) The energy change when 10 is (hypothetically) formed from 8 protons and 8 neutrons is known as the energy defect. ii) The splitting of a heavier nucleus into two nuclei with smaller mass numbers is known as nuclear fission. iii) The first example of nuclear fission involved bombarding 92 235 U with He nuclei.

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Statement (ii) and (iii) are correct, but statement (i) is incorrect. ii) The splitting of a heavier nucleus into two nuclei with smaller mass numbers is known as nuclear fission.  iii) The first example of nuclear fission involved bombarding 92 235 U with He nuclei. are.

Statement (i) is incorrect. The energy change when a nucleus is formed from its constituent nucleons is called the binding energy. It is the energy released when the nucleus is formed and is equivalent to the mass defect, which is the difference between the mass of the nucleus and the sum of the masses of its individual nucleons.

Statement (ii) is correct. Nuclear fission is the process of splitting a heavier nucleus into two nuclei with smaller mass numbers. This process releases a large amount of energy and is the basis for nuclear power generation and nuclear weapons.

Statement (iii) is also correct. In 1938, German scientists Otto Hahn and Fritz Strassmann bombarded uranium-235 with neutrons and observed the formation of barium and krypton. This was the first example of nuclear fission. However, it was Lise Meitner and her nephew Otto Frisch who recognized that the process involved the splitting of the nucleus and explained it using the concept of nuclear fission.

In summary, The correct term for the energy change when a nucleus is formed from its constituent nucleons is binding energy, not energy defect. Nuclear fission involves the splitting of a heavier nucleus into two nuclei with smaller mass numbers, and the first example of nuclear fission involved bombarding uranium-235 with neutrons, not helium nuclei.

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Statement (ii) and (iii) are correct, but statement (i) is incorrect. ii) The splitting of a heavier nucleus into two nuclei with smaller mass numbers is known as nuclear fission.  

Statement (i) is incorrect. The energy change when a nucleus is formed from its constituent nucleons is called the binding energy. It is the energy released when the nucleus is formed and is equivalent to the mass defect, which is the difference between the mass of the nucleus and the sum of the masses of its individual nucleons. Statement (ii) is correct. Nuclear fission is the process of splitting a heavier nucleus into two nuclei with smaller mass numbers. This process releases a large amount of energy and is the basis for nuclear power generation and nuclear weapons. Statement (iii) is also correct. In 1938, German scientists Otto Hahn and Fritz Strassmann bombarded uranium-235 with neutrons and observed the formation of barium and krypton. This was the first example of nuclear fission. However, it was Lise Meitner and her nephew Otto Frisch who recognized that the process involved the splitting of the nucleus and explained it using the concept of nuclear fission. In summary, The correct term for the energy change when a nucleus is formed from its constituent nucleons is binding energy, not energy defect. Nuclear fission involves the splitting of a heavier nucleus into two nuclei with smaller mass numbers, and the first example of nuclear fission involved bombarding uranium-235 with neutrons, not helium nuclei.

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the henry's law constant at 25.0 °c for he in water is 0.00037 m/atm. what is the solubility of he, in molarity units, in 1.0 l of water when the partial pressure of he is 1.3 atm?

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The solubility of He in 1.0 L of water when the partial pressure of He is 1.3 atm is 0.0000214 mol/L, which is equivalent to [tex]2.14 * 10^{-5[/tex] M.

Henry's law relates the concentration of a gas in a solution to its partial pressure above the solution at a constant temperature. The equation for Henry's law is given as:

C = kH × P

where C is the concentration of the gas in the solution (in units of mol/L), kH is the Henry's law constant (in units of mol/L·atm), and P is the partial pressure of the gas (in units of atm).

Using the given values, we can calculate the solubility of He in water as follows:

First, we need to convert the partial pressure of He from atm to units of mol/L·atm:

1.3 atm × (1.0 L / 22.4 L/mol) = 0.058 moles/L·atm

Now we can use the Henry's law equation to calculate the concentration of He in the solution:

C = kH × P = (0.00037 mol/L·atm) × (0.058 atm) = 0.0000214 mol/L or [tex]2.14 * 10^{-5[/tex]M.

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The solubility of He in 1.0 L of water when the partial pressure of He is 1.3 atm is 0.000481 molarity.

Henry's Law is a principle that states that the amount of gas dissolved in a liquid is directly proportional to the partial pressure of the gas above the liquid. The solubility of a gas in a liquid can be calculated using Henry's Law constant. In this case, the Henry's Law constant for He in water is 0.00037 m/atm at 25°C.
To find the solubility of He in water, we can use the formula:
Solubility = (Henry's Law constant) x (Partial pressure of He)
Substituting the given values, we get:
Solubility = (0.00037 m/atm) x (1.3 atm) = 0.000481 molarity
Therefore, the solubility of He in 1.0 L of water when the partial pressure of He is 1.3 atm is 0.000481 molarity. It is important to note that the solubility of gases in liquids is affected by factors such as temperature, pressure, and the nature of the gas and solvent involved.

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Using the data in Appendix C in the textbook and given the pressures listed, calculate KpKp and ΔGΔG for each of the following reactions at 298 KK.
Part A:
N2(g)+3H2(g)→2NH3(g)N2(g)+3H2(g)→2NH3(g)
Express your answer using two significant figures. If your answer is greater than 10^100 express it in terms of the base of the natural logarithm using two decimal places: for example, exp(200.00)
Answer: Kp=6.9x10^5
Part B:
N2(g)+3H2(g)→2NH3(g)N2(g)+3H2(g)→2NH3(g)
Pn2=4.2atm Ph2=7.0atm PNH3= 2.0atm
Express your answer using three significant figures.
ΔG=____________kJ
Part C:
2N2H4(g)+2NO2(g)→3N2(g)+4H2O(g)
Express your answer using two significant figures. If your answer is greater than 10^100, express it in terms of the base 10 logarithm using two decimal places: for example, 10 ^(200.00)
Kp=_____________
Part D:
2N2H4(g)+2NO2(g)→3N2(g)+4H2O(g)
PN2H4=PNO2=4.5x10^-2atm PN2= 1.9 atm Ph20= 0.7atm
Express your answer using three significant figures.
ΔG=_____________kJ
Part E:
N2H4(g)→N2(g)+2H2(g)
Express your answer using two significant figures. If your answer is greater than 10^100 express it in terms of the base of the natural logarithm using two decimal places: for example, exp(200.00).
Kp=______________
PArt F
N2H4(g)→N2(g)+2H2(g)
PN2H4=0.1atm PN2= 5.1atm PH2= 7.2atm
Express your answer using four significant figures.
ΔG=_____________________kJ

Answers

Part A: Kp = 6.9x10^5
Part B: ΔG = -33.7 kJ
Part C: Kp = 7.9x10^5
Part D: ΔG = 4.0 kJ
Part E: Kp = 4.8x10^(-3)
Part F: ΔG = 25.71 kJ
Part A:
For the reaction N2(g) + 3H2(g) → 2NH3(g), the calculated Kp value is Kp = 6.9 x 10^5.

Part B:
For the given partial pressures (Pn2 = 4.2 atm, Ph2 = 7.0 atm, PNH3 = 2.0 atm) in the reaction N2(g) + 3H2(g) → 2NH3(g), ΔG cannot be determined without the specific information from Appendix C in the textbook.

Part C:
For the reaction 2N2H4(g) + 2NO2(g) → 3N2(g) + 4H2O(g), Kp cannot be determined without the specific information from Appendix C in the textbook.

Part D:
For the given partial pressures (PN2H4 = PNO2 = 4.5 x 10^-2 atm, PN2 = 1.9 atm, Ph20 = 0.7 atm) in the reaction 2N2H4(g) + 2NO2(g) → 3N2(g) + 4H2O(g), ΔG cannot be determined without the specific information from Appendix C in the textbook.

Part E:
For the reaction N2H4(g) → N2(g) + 2H2(g), Kp cannot be determined without the specific information from Appendix C in the textbook.

Part F:
For the given partial pressures (PN2H4 = 0.1 atm, PN2 = 5.1 atm, PH2 = 7.2 atm) in the reaction N2H4(g) → N2(g) + 2H2(g), ΔG cannot be determined without the specific information from Appendix C in the textbook.

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bitter taste is elicited by ________. bitter taste is elicited by ________. metal ions acids alkaloids hydrogen ions

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The bitter taste is primarily elicited by alkaloids (option c). Alkaloids are a diverse group of naturally occurring organic compounds, mainly derived from plants, that contain nitrogen atoms.

Alkaloids are a class of compounds found in many plants that can also produce a bitter taste. These compounds are often associated with the medicinal properties of plants and are found in many herbal remedies and supplements.

They often have a bitter taste and are frequently found in foods and beverages such as coffee, tea, and certain vegetables. Some common examples of alkaloids include caffeine, nicotine, and quinine. Although metal ions, acids, and hydrogen ions can also contribute to taste perception, they are not the primary contributors to the bitter taste sensation.

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(a) Explain why ethylenediaminetetraacetic acid (EDTA) is the most widely used chelating agent in titrations. (2 marks) (b) The concentration of a solution of EDTA was determined by standardizing against a solution of Ca²+ prepared using a primary standard of CaCO3. A 0.3571 g sample of CaCO3 was transferred to a 500 mL volumetric flask, dissolved using a minimum of 6 M HCI, and diluted to 500 mL volume. After transferring a 50.00 mL portion of this solution to a 250 mL conical flask, the pH was adjusted by adding 5 mL of a pH 10 NH3- NH4Cl buffer containing a small amount of Mg-EDTA. After adding calmagite as an indicator, the solution was titrated with the EDTA and 42.63 mL was required to reach the end point. Calculate the molar concentration of EDTA in the titrant. (8 marks)

Answers

(a) EDTA is the most widely used chelating agent in titrations due to its ability to form stable complexes with a wide range of metal ions, including those of calcium, magnesium, iron, and zinc. (b)  the molar concentration of the EDTA titrant is 0.008391 M.

a) The stability constants of these complexes are high, which means that EDTA can effectively chelate metal ions even in dilute solutions. Additionally, EDTA has a relatively low molecular weight and can be easily dissolved in water, making it a convenient and versatile chelating agent for titrations.

(b) First, we need to calculate the molar concentration of Ca²+ in the solution. The mass of CaCO3 used to prepare the solution is:

mass of CaCO3 = 0.3571 g

The molar mass of CaCO3 is:

molar mass of CaCO3 = 100.09 g/mol

Using these values, we can calculate the number of moles of CaCO3:

moles of CaCO3 = mass of CaCO3 / molar mass of CaCO3

                = 0.3571 g / 100.09 g/mol

                = 0.003569 mol

Since the solution was diluted to a final volume of 500 mL, the molar concentration of Ca²+ is:

molar concentration of Ca²+ = moles of CaCO3 / final volume

                           = 0.003569 mol / 0.500 L

                           = 0.007138 M

During the titration, the EDTA reacts with the Ca²+ ions in the solution according to the following stoichiometry:

Ca²+ + EDTA⁴⁻ → CaEDTA²⁻

To determine the molar concentration of EDTA, we need to use the volume of EDTA solution required to reach the end point of the titration. This volume is:

volume of EDTA solution = 42.63 mL = 0.04263 L

We also know that the molar concentration of Ca²+ in the solution is 0.007138 M. Since the stoichiometry of the reaction is 1:1, the moles of EDTA used in the titration are equal to the moles of Ca²+ in the solution. Therefore, the molar concentration of EDTA is:

molar concentration of EDTA = moles of EDTA / volume of EDTA solution

                          = moles of Ca²+ / volume of EDTA solution

                          = molar concentration of Ca²+ × volume of Ca²+ solution / volume of EDTA solution

                          = 0.007138 M × 0.05000 L / 0.04263 L

                          = 0.008391

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What volume of air is present in human lungs if 0. 19 mol are present at 312 K and 1. 3 atm?

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The volume of air present in the human lungs, assuming ideal gas behavior, is approximately 5.16 liters at 312 K and 1.3 atm, given that 0.19 mol of gas is present.

According to the ideal gas law, PV = nRT, where P is the pressure, V is the volume, n is the number of moles, R is the ideal gas constant, and T is the temperature. Rearranging the equation to solve for V, we have V = (nRT) / P. Substituting the given values, V = (0.19 mol * 0.0821 L·atm/(mol·K) * 312 K) / 1.3 atm, which simplifies to V ≈ 5.16 liters.

Therefore, approximately 5.16 liters of air is present in the human lungs under the specified conditions. It's important to note that this calculation assumes ideal gas behavior and may not precisely reflect the actual volume of air in the lungs due to various physiological factors.

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Explain one way that water can impact the weather and how that can affect humans.

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One way that water can impact the weather is through the process of evaporation. When the sun heats up water bodies such as oceans, lakes, and rivers, water molecules become more energetic, and some of them break their bonds and rise up into the air as water vapor. This process is known as evaporation.

As water vapor rises, it cools down, and some of it condenses into tiny water droplets or ice crystals, forming clouds. These clouds can then produce precipitation, such as rain, snow, sleet, or hail, depending on the temperature and atmospheric conditions. This precipitation can be beneficial to humans as it provides water for drinking, irrigation, and other uses.

However, extreme precipitation events, such as heavy rain or snowstorms, can also lead to flooding, landslides, and other hazards, which can affect human lives and properties.

Moreover, changes in the amount and distribution of precipitation due to climate change can impact agricultural production, water availability, and the occurrence of natural disasters, such as droughts, wildfires, and hurricanes.

Therefore, understanding the role of water in the weather is essential for predicting and mitigating the impacts of extreme weather events on human societies and ecosystems.

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a copper complex is prepared in the laboratory. the percent composition was determined and found to be 32% cu, 5.9% h, 27.4% n, and 34.7% cl. what is the empirical formula of the complex?

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[Cu(H2O)4(NH3)2(Cl)]


sorry if it’s wrong

which pair is not a conjugate acid-base pair? h2so4 ; h2so3 hno2 ; no2− c2h5nh2 ; c2h5nh3

Answers

The pair that is not a conjugate acid-base pair is [tex]H_2SO_4 and H_2SO_3.[/tex]

A conjugate acid-base pair consists of two species that differ by only one proton (H+). In this case, both[tex]H_2SO_4 and H_2SO_3.[/tex] are acids, and they differ by an oxygen atom, not a proton, so they cannot be considered a conjugate acid-base pair.

The other two pairs are conjugate acid-base pairs:
1.  [tex]NO_2^-[/tex] (acid) and  [tex]NO_2^-[/tex] (its conjugate base) - differ by one proton
2. [tex]C_2H_5NH_2[/tex] (base) and [tex]C_2H_5NH_3[/tex] (its conjugate acid) - differ by one proton

[tex]H_2SO_4[/tex] is an acid that can donate two protons (H+) to form HSO4- and then SO42-, while H2SO3 is an acid that can donate one proton ([tex]H^+[/tex]) to form [tex]HSO_3^-[/tex]. [tex]HNO_2 and NO_2^-,[/tex] as well as [tex]C_2H_5NH_2 and C_2H_5NH_3[/tex], are conjugate acid-base pairs.  [tex]NO_2^-[/tex] can donate one proton (H+) to form [tex]NO_2^-[/tex], while [tex]C_2H_5NH_2[/tex]can donate one proton (H+) to form [tex]C_2H_5NH_3^+[/tex].

Therefore, [tex]H_2SO_4 and H_2SO_3.[/tex]are not a conjugate acid-base pair.

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An electron and a proton are fixed at a separation distance of 949 nm. find the magnitude e and the direction of the electric field at their midpoint.

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The magnitude of the electric field at the midpoint between the fixed electron and proton can be found using the formula:

[tex]E = k*q/r^2[/tex]

where k is Coulomb's constant (k = 9 × 10^9 N⋅m^2/C^2), q is the charge of the particle producing the electric field (in this case, either the electron or proton), and r is the distance between the charged particle and the point where the electric field is being measured (which is the midpoint in this case).

Since the electron and proton have equal and opposite charges (e = 1.6 × 10^-19 C and -e = -1.6 × 10^-19 C, respectively), the net charge at the midpoint is zero. Therefore, the electric field at the midpoint is zero.

Mathematically, we can show this as follows:

[tex]E = k*q/r^2 = (9 × 10^9 N⋅m^2/C^2) * (1.6 × 10^-19 C) / (0.949 × 10^-6 m)^2[/tex]

E = 2.31 × 10^-6 N/C

However, since the charges at either end of the separation distance are equal and opposite, they create equal and opposite electric fields at the midpoint. Thus, the net electric field at the midpoint is zero.

Therefore, the direction of the electric field at the midpoint is undefined, since there is no net electric field there.

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Remembering that Sn2 reactions go with 100% inversion of configuration, while Sn1 reactions lead to racemization, explain why the reaction of (R)-2-butanol as in this experiment gives a mixture of about 75% (S)- 2 - bromobutane and about 25% (R)-2-bromobutane.

Answers

The observed product mixture of 75% (S)-2-bromobutane and 25% (R)-2-bromobutane can be explained by the preference for the nucleophile to attack from the opposite side of the molecule as the bulky tert-butyl group.

The reaction of (R)-2-butanol with hydrobromic acid (HBr) proceeds through an Sn1 mechanism, which involves the formation of a carbocation intermediate. The carbocation intermediate can then be attacked by a nucleophile, in this case, Br- ion, to form the final product, 2-bromobutane.

In the Sn1 mechanism, the stereochemistry of the starting material is lost during the formation of the carbocation intermediate because it is a planar species, and there is no preference for either side of the molecule to face the nucleophile.

Thus, the nucleophile can attack the carbocation from either the top or the bottom face of the molecule with equal probability, leading to a racemic mixture of products (50:50 mixture of (R)-2-bromobutane and (S)-2-bromobutane).

However, in this case, the product mixture is not racemic, with about 75% (S)-2-bromobutane and about 25% (R)-2-bromobutane. This indicates that there must be a preference for the nucleophile to attack from one side of the molecule over the other.

This preference for one stereoisomer over the other is likely due to steric hindrance effects. Since the carbon atom bearing the leaving group (OH) has four different substituents, it is a chiral center, and the (R)-2-butanol is the enantiomer with the OH group positioned towards the rear.

In the transition state leading to the product with an (S)-configuration, the bromine attacks from the opposite side of the molecule, where there is less steric hindrance from the bulky tert-butyl group.

Conversely, in the transition state leading to the product with an (R)-configuration, the bromine attacks from the same side of the molecule as the bulky tert-butyl group, leading to greater steric hindrance, which slows down the reaction rate and reduces the yield of the product with an (R)-configuration.

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