C6H12O6 O3 NF3 Co KNO3 H2 CO

Which one of these are molecules list all that apply

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Answer 1
Oh wow , what grade are you in ukliblo ?

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NaBH4 does not react quickly with alcohol solvents, but it does react very quicklywith water. This indicates that the NaBH4 isn’t directly interacting with water, but adifferent compound in solution. If it were reacting directly with the water, then itwould also have similar reactivity with alcohol solvents since their pKas areapproximately the same.After NaBH4 donates a hydride to a carbonyl compound, we are left with BH3 and analkoxide base (RO-). These compounds undergo a Lewis Acid and Lewis Basereaction. Draw that LA/LB reaction below.

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Any material that can take in a pair of non-bonding electrons is said to be a Lewis acid. Hydrogen ion, or H+, is an excellent illustration of a Lewis acid.

NaBH₄ (sodium borohydride) reacts selectively with carbonyl compounds and not with water or alcohol solvents. After NaBH₄ donates a hydride (H-) to a carbonyl compound, the resulting products are BH3 (borane) Hydrogen and an alkoxide base (RO-).
The Lewis Acid/Base reaction occurs between these two products, where BH₃ acts as a Lewis Acid (electron pair acceptor) and the alkoxide base (RO-) acts as a Lewis Base (electron pair donor). The reaction can be represented as:
BH₃ + RO- → R-O-BH₃
In this reaction, the lone pair of electrons on the oxygen atom in the alkoxide base forms a coordinate covalent bond with the boron atom in BH₃. This results in the formation of an alkoxide-borane complex.

A Lewis acid/base reaction is one that involves the acquisition or loss of an electron pair.

An acceptor of electron pairs is Lewis acid.

Lewis base: a donor of electron pairs.

This reaction is a Lewis acid/base reaction because it includes the loss and gain of electrons.

I2 is a Lewis acid since it is accepting electrons.

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Select the types for all the isomers of [Pt(en)Cl2] Check all that apply.
__mer isomer
__optical isomers
__cis isomer
__trans isomer
__fac isomer
__none of the above

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The types of isomers for [[tex]Pt(en)Cl_2[/tex]] are:

cis isomer

trans isomer

[[tex]Pt(en)Cl_2[/tex]] refers to a complex ion of platinum(II) with ethylenediamine (en) and two chloride ions ([tex]Cl^-[/tex]). The complex has two possible isomers based on the relative orientation of the ligands around the central metal ion.

The two isomers are:

cis-[[tex]Pt(en)Cl_2[/tex]]: In this isomer, the two ethylenediamine ligands are adjacent to each other, and the two chloride ligands are opposite to each other.

trans-[[tex]Pt(en)Cl_2[/tex]]: In this isomer, the two ethylenediamine ligands are opposite to each other, and the two chloride ligands are adjacent to each other.

Both of these isomers are examples of geometrical isomers. They are not optical isomers since they are not mirror images of each other. They are also not fac or mer isomers since those terms are used to describe coordination compounds with more than two ligands.

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How many moles of barium hydroxide would you need in order to prepare 0. 500 L or a 2. 70 M barium hydroxide solution?

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You would need 1.35 moles of barium hydroxide to prepare a 0.500 L solution with a concentration of 2.70 M.

To determine the number of moles of barium hydroxide (Ba(OH)2) needed to prepare a 0.500 L solution with a concentration of 2.70 M, we can use the formula for molarity:

Molarity (M) = Number of moles of solute / Volume of solution (in liters)

Rearranging the formula, we can calculate the number of moles of solute:

Number of moles of solute = Molarity (M) * Volume of solution (in liters)

Given that the volume of the solution is 0.500 L and the concentration is 2.70 M, we substitute these values into the formula:

Number of moles of Ba(OH)2 = 2.70 mol/L * 0.500 L

Number of moles of Ba(OH)2 = 1.35 moles

In summary, the calculation involves multiplying the molarity of the solution by the volume of the solution in liters to obtain the number of moles of the solute. In this case, a 0.500 L solution with a concentration of 2.70 M requires 1.35 moles of barium hydroxide.

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pb-208 has atomic mass of 207.976652 u. what is the binding energy per nucleon for this nuclide? provide your answer rounded to 3 significant digits.

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Binding energy per nucleon for the nuclide Pb-208 which has atomic mass of 207.976652 u.  = 5.70 x 10⁻¹³ J/nucleon.

The binding energy of a nuclide is the energy required to completely separate all its individual nucleons (protons and neutrons) from each other.

To calculate the binding energy per nucleon, we need to first find the total binding energy of the nucleus. This can be calculated using Einstein's famous equation:

E = mc²

where E is the energy equivalent of the mass difference, m is the mass defect (difference between the mass of the nucleus and the sum of the masses of its individual nucleons), and c is the speed of light.

The mass defect can be calculated as:

mass defect = (number of protons x mass of proton) + (number of neutrons x mass of neutron) - mass of nucleus

For Pb-208, we have:

number of protons = 82

mass of proton = 1.00728 u

number of neutrons = 126

mass of neutron = 1.00867 u

mass of nucleus = 207.976652 u

mass defect = (82 x 1.00728 u) + (126 x 1.00867 u) - 207.976652 u

= 0.125931 u

The total binding energy can be calculated as:

E = (mass defect) x (speed of light)²

E = 0.125931 u x (2.998 x 10⁸ m/s)² x (1.66054 x 10⁻²⁷ kg/u)

E = 1.186 x 10⁻¹⁰ J

Finally, the binding energy per nucleon can be calculated as:

binding energy per nucleon = (total binding energy) / (number of nucleons)

number of nucleons = number of protons + number of neutrons = 82 + 126 = 208

binding energy per nucleon = 1.186 x 10⁻¹⁰ J / 208 nucleons

binding energy per nucleon = 5.70 x 10⁻¹³ J/nucleon

Rounding this to 3 significant digits gives:

binding energy per nucleon = 5.70 x 10⁻¹³ J/nucleon.

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Identify the common substance that has the highest density. A) iron B) table salt C) ethanol D) mercury E) aluminum

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The common substance that has the highest density is mercury at 13.6 g/cm³. So the correct option is (D).

Mercury has a density of 13.53 g/cm³, which is much higher than the densities of iron, table salt, ethanol, and aluminum. This means that a given volume of mercury will weigh much more than the same volume of any of the other substances listed.
The common substance with the highest density among the given options is D) mercury.
A) Iron: Density = 7.87 g/cm³
B) Table salt: Density = 2.16 g/cm³
C) Ethanol: Density = 0.789 g/cm³
D) Mercury: Density = 13.6 g/cm³
E) Aluminum: Density = 2.7 g/cm³
Comparing the densities of these substances, mercury has the highest density at 13.6 g/cm³. So the correct option is (D).

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Hi!

The common substance with the highest density among the options provided is D) mercury. Density refers to the mass of a substance per unit volume, and mercury is known for having a higher density compared to the other substances listed.

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explain why pentane-2,4 dione forms two different alkylation proucts a&b when the number of equivalents of base is increased from one to two

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Pentane-2,4-dione forms two different alkylation products A and B when the number of equivalents of base is increased from one to two due to the phenomenon of enolization.

When pentane-2,4-dione is treated with one equivalent of base, the enolate intermediate formed can attack the electrophile from either the α or β position resulting in the formation of only one product. However, when two equivalents of base are added, two enolate intermediates are formed, and they can attack the electrophile from both the α and β positions. This leads to the formation of two different alkylation products A and B, respectively.

In conclusion, pentane-2,4-dione forms two different alkylation products A and B when the number of equivalents of base is increased from one to two due to the formation of two enolate intermediates which can attack the electrophile from both the α and β positions.

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a 29.2 gram sample of xenon gas has a volume of 826 milliliters at a pressure of 3.76 atm. the temperature of the xe gas sample is °c.

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A 29.2 gram sample of xenon gas has a volume of 826 milliliters at a pressure of 3.76 atm. the temperature of the xe gas sample is -101.18°c.

The ideal gas theory can be represented by this equation

PV = nRT

where P is pressure, V is volume, n is number of molecules, R is ideal gas constant (8.314J/K⋅mol), T is temperature.

From the question above, we know that:

mass of xenon gas = 29.2 g

atomic mass of xenon gas= 131.293 u

V = 826 mL = 0.000826 m³

P = 3.76atm = 380982 Pa

Now, we will find the number of  moles of Xe

n = mass/atomic mass

n = 29.2 g/ 131.293u

n = 0.22 mol

By substituting the following parameters, we can determine the temperature

PV = nRT

380982 x  0.000826= 0.22 x 8.314 x T

T = 171.97 K = -101.18°C

Hence, the temperature of the gas sample is -101.18°C

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Substance A undergoes a first order reaction A → B with a half-life of 20 min at 25 °C. If the initial concentration of A in a sample is 1.6 M, what will be the concentration of A after 80 min? (A) 0.40 M(B) 0.20 M (C) 0.10 M (D) 0.050 M

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0.10 M will be the concentration of A after 80 min.

We need to use the equation for first order reactions, which is: ln[A]t = -kt + ln[A]0, where [A]t is the concentration of A at time t, k is the rate constant, and [A]0 is the initial concentration of A.
We are given that the half-life of the reaction is 20 minutes, which means that k = ln2/20 = 0.03465 min^-1.
We can now use this value of k to find the concentration of A after 80 minutes:
ln[A]80 = -0.03465 x 80 + ln(1.6)
ln[A]80 = -2.772 + 0.470
ln[A]80 = -2.302
To get the concentration of A, we need to take the antilog of this value:
[A]80 = e^-2.302
[A]80 = 0.099 M
Therefore, the answer is (C) 0.10 M.
Substance A undergoes a first-order reaction A → B with a half-life of 20 minutes at 25 °C. The initial concentration of A is 1.6 M. To determine the concentration of A after 80 minutes, we can use the half-life concept. Since 80 minutes is equivalent to 4 half-lives (80 minutes / 20 minutes per half-life), we can calculate the concentration as follows:
1st half-life (20 min): 1.6 M / 2 = 0.8 M
2nd half-life (40 min): 0.8 M / 2 = 0.4 M
3rd half-life (60 min): 0.4 M / 2 = 0.2 M
4th half-life (80 min): 0.2 M / 2 = 0.1 M
Therefore, the concentration of A after 80 minutes will be 0.1 M (Option C).

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Consider the two metabolic reactions below:
Reaction 1: A + B → C ΔG˚ = 8.8 kJ/mol
Reaction 2: C → D ΔG˚ = -15.5 kJ/mol
1. If reaction 1 and 2 are coupled, what would the net reaction be?
A. A + B + C → D
B. A + B → D
C. A → D
D. A + B → C + D
2. The net reaction would have ΔG˚ = _____ kJ/mol

Answers

1. Tthe net reaction is given by option (A): A + B + C → D.

2. The net reaction would have ΔG˚ = -6.7 kJ/mol.

1.How to determine what would the net reaction be?

To determine the net reaction when reaction 1 and reaction 2 are coupled, we can simply combine the reactions and cancel out the intermediate compound. Let's examine the reactions:

Reaction 1: A + B → C

Reaction 2: C → D

By combining these reactions, we can eliminate C as an intermediate:

A + B + C → D

Therefore, the net reaction is given by option (A): A + B + C → D.

2.How to determine ΔG˚ of the net reaction?

As for the second part of the question, to determine the ΔG˚ for the net reaction, we can sum up the individual ΔG˚ values of the reactions:

ΔG˚(net) = ΔG˚(reaction 1) + ΔG˚(reaction 2)

         = 8.8 kJ/mol + (-15.5 kJ/mol)

         = -6.7 kJ/mol

Hence, the net reaction would have ΔG˚ = -6.7 kJ/mol.

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Determine the pH at the equivalence (stoichiometric) point in the titration of 40 mL of 0.12 M HNO_2(aq) ith 0.1 M NaOH(aq). The Ka of HNO_2 is 7.1 x 10^(-4)

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The pH at the equivalence point is 5.65, calculated using the Henderson-Hasselbalch equation and given Ka value.


To determine the pH at the equivalence point, we first need to find the concentration of the conjugate base ([tex]NO^{2-[/tex]) produced during the titration.

At the equivalence point, moles of [tex]HNO_2[/tex] equal moles of NaOH.

Moles of [tex]HNO_2[/tex] = 40mL x 0.12M = 0.0048 mol. Moles of NaOH = 0.0048 mol.

Next, find the volume of NaOH added: 0.0048 mol / 0.1M = 0.048 L or 48 mL.

Total volume = 40 mL + 48 mL = 88 mL.

The concentration of [tex]NO^{2-[/tex]= 0.0048 mol / 0.088 L = 0.0545 M.

Finally, use the Henderson-Hasselbalch equation:

pH = pKa + log([[tex]NO^{2-[/tex]]/[[tex]HNO_2[/tex]]). The pKa = -log(7.1 x[tex]10^{(-4))[/tex]= 3.15.

Since [[tex]NO^{2-[/tex]] = [[tex]HNO_2[/tex]] at the equivalence point, the equation becomes pH = pKa = 3.15 + log(1) = 5.65.

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The pH at the equivalence point of the titration of 40 mL of 0.12 M HNO_2(aq) with 0.1 M NaOH(aq) is 8.77.

At the equivalence point, all of the HNO_2 has reacted with NaOH to form NaNO_2 and water. The moles of HNO_2 initially present can be calculated as 0.12 M x 0.04 L = 0.0048 moles.

Since the reaction between HNO_2 and NaOH is 1:1, 0.0048 moles of NaOH are required to completely react with all of the HNO_2. The volume of NaOH needed to reach the equivalence point can be calculated as 0.0048 moles / 0.1 M = 0.048 L.

This means that the total volume of the solution at the equivalence point is 0.04 L + 0.048 L = 0.088 L.

At the equivalence point, the moles of HNO_2 that have reacted with NaOH are equal to the moles of NaOH added. The moles of NaOH added can be calculated as 0.1 M x 0.048 L = 0.0048 moles.

The moles of NaNO_2 formed are also 0.0048 moles. The concentration of NaNO_2 in the final solution can be calculated as 0.0048 moles / 0.088 L = 0.0545 M.

Since NaNO_2 is the salt of a weak acid, it will hydrolyze in water to produce OH^- ions. The pOH can be calculated using the Kb value of NaNO_2, and then the pH can be calculated using the relationship pH + pOH = 14. The pH at the equivalence point is found to be 8.77.

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draw the structure of the pth derivative you would obtain by edman degradation of the peptide: can't.a. Use the wedge/hash bond tools to indicate stereochemistry. b. Draw the predominant structure at pH 7 using the charge tools to adjust formal charges.

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The pth derivative obtained from Edman degradation of the peptide can't would be a peptide fragment with a chain length of p amino acids.

Edman degradation is a technique used for sequencing peptides by cleaving off the N-terminal amino acid residue of the peptide and identifying it. The process is repeated sequentially until the entire peptide is sequenced. Each cycle of Edman degradation results in the formation of a pth derivative, which is a peptide fragment with a chain length of p amino acids.

To draw the structure of the pth derivative, we need to know the sequence of amino acids in the peptide. From the name of the peptide, we can deduce that it contains the amino acids cysteine (C), alanine (A), asparagine (N), and threonine (T) in an unknown sequence. Using the chemical structures of these amino acids, we can draw the structure of the pth derivative at each cycle of Edman degradation.

In conclusion, the pth derivative obtained from Edman degradation of the peptide can't would be a peptide fragment with a chain length of p amino acids. The structure of the pth derivative can be drawn using the chemical structures of the amino acids in the peptide and the knowledge of the Edman degradation process.

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explain why the michaelis-menten plot levels off at high substrate concentration.

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The Michaelis-Menten plot levels off at high substrate concentrations due to enzyme saturation, where all enzyme active sites are occupied, and the reaction rate reaches its maximum velocity (Vmax).

The Michaelis-Menten plot is a graph that shows the relationship between substrate concentration and the rate of enzyme-catalyzed reaction. At low substrate concentrations, the rate of reaction increases rapidly as more substrate is added.

However, as the substrate concentration increases, the rate of reaction eventually levels off and reaches a maximum value. This is due to the fact that at high substrate concentrations, all of the enzyme active sites are occupied by substrate molecules, and the rate of reaction cannot increase any further.

This state is known as saturation, and it is the point at which the enzyme is working at its maximum efficiency. At saturation, the enzyme is said to have reached its maximum velocity, or Vmax, and the Michaelis-Menten plot levels off.

Therefore, the Michaelis-Menten plot levels off at high substrate concentrations because the enzyme is working at its maximum capacity and cannot process any more substrate.

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1. Write a nuclear reaction for the neutron-induced fission of U?235 to form Xe?144 and Sr?90
Express your answer as a nuclear equation.
2. How many neutrons are produced in the reaction?

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1. The nuclear reaction for the neutron-induced fission of U-235 to form Xe-144 and Sr-90 can be expressed as follows:
n + U-235 → Xe-144 + Sr-90 + 2n. 2. In the above nuclear reaction, 2 neutrons are produced.


1. To write a nuclear reaction for the neutron-induced fission of U-235 to form Xe-144 and Sr-90, you need to express it as a nuclear equation:

n + U-235 → Xe-144 + Sr-90 + additional neutrons

In this case, n represents a neutron and the numbers after the elements represent their atomic mass. Now, you need to balance the equation by finding the number of additional neutrons produced:

n + 235 = 144 + 90 + x

Solve for x:

x = 1 + 235 - 144 - 90
x = 2

So, the balanced nuclear equation is:

n + U-235 → Xe-144 + Sr-90 + 2n

2. In this reaction, 2 neutrons are produced.

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according to brønsted and lowry, which one of the following is not a conjugate acid-base pair? h3o /oh- ch3oh2 /ch3oh hi/i- hso4-/so42- h2/h-

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The pair that is not a conjugate acid-base pair according to Brønsted-Lowry is H₃O+/OH-.

A conjugate acid-base pair consists of two species that differ by the transfer of a proton (H+). In this context, we can analyze each pair:

1. H₃O+/OH-: This is not a conjugate pair, as OH- needs to gain a proton to become H₂O, not  H₃O+ .
2. CH₃OH₂⁺/CH₃OH: This is a conjugate pair, as CH₃OH can accept a proton to become CH₃OH₂⁺.
3. HI/I-: This is a conjugate pair, as I- can accept a proton to become HI.
4. HSO₄⁻/SO₄²⁻: This is a conjugate pair, as SO₄⁻² can accept a proton to become HSO₄⁻.
5. H₂/H-: This is a conjugate pair, as H- can accept a proton to become H₂.
Therefore, the pair H₃O⁺/OH⁻is not a conjugate acid-base pair according to Brønsted and Lowry's theory.

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the following reaction can be classified as what type(s) of reaction(s)? 2 al(oh)3 (aq) 3 h2so4 (aq) → al2(so4)3 (s) 6 h2o (l)

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The given chemical equation represents a double displacement reaction, also known as a precipitation reaction. In this type of reaction, the cations and anions of two ionic compounds switch places, forming two new ionic compounds.

One of the products formed in this reaction is a solid precipitate, which separates from the solution.
In the given equation, aluminum hydroxide (Al(OH)3) reacts with sulfuric acid (H2SO4) to form aluminum sulfate (Al2(SO4)3) and water (H2O). The aluminum ions (Al3+) from the reactant compound combine with sulfate ions (SO4 2-) from the acid to form the product compound. Meanwhile, the hydroxide ions (OH-) from the aluminum hydroxide react with the hydrogen ions (H+) from the sulfuric acid to form water.
Overall, this is a balanced chemical equation that represents a double displacement or precipitation reaction, where a solid precipitate is formed from the reaction between two aqueous solutions.

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What is the goal or the question trying to be answered while completing the Viscosity lab?



Question 1 options:



a. Why is honey sticky?




b. How does temperature influence viscosity?




c. How fast does honey flow down a pan?

Answers

The goal of the Viscosity lab is to investigate how temperature influences viscosity.

Viscosity is a measure of a fluid's resistance to flow. In this lab, the main question being addressed is how temperature affects viscosity. By conducting experiments and analyzing the results, the goal is to understand the relationship between temperature and the flow properties of a fluid.

The lab may involve measuring the viscosity of different liquids at various temperatures and observing how the viscosity changes as the temperature is manipulated. The focus is on examining how the internal structure and intermolecular forces within the fluid are affected by temperature, leading to changes in viscosity.

By answering this question, the lab aims to provide insights into the fundamental properties of fluids and their behavior under different temperature conditions, contributing to a better understanding of the concept of viscosity.

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2 FeO(s)⇄2 Fe(s)+O2(g) Keq=1×10^−6 at 1000KCO2(g)⇄C(s)+O2(g) Keq=1×10^−32 at 1000KThe formation of Fe(s) and O2(g) from FeO(s) is not thermodynamically favorable at room temperature. In an effort to make the process favorable, C(s) is added to the FeO(s) at elevated temperatures. Based on the information above, which of the following gives the value of Keq and the sign of ΔG° for the reaction represented by the equation below at 1000K?2 FeO(s)+C(s)⇄2 Fe(s)+CO2(g)a. Keq: 1×10^−38 ΔG°: Positiveb. Keq: 1×10^−38 ΔG°: Negativec. Keq: 1×10^26 ΔG°: Positived. Keq: 1×10^26 ΔG°: Negative

Answers

The value of Keq is (c) Keq: 1×10²⁶ and the sign of ΔG° for the reaction at 1000K is Positive.

The Keq value for the reaction 2FeO(s) + C(s) ⇄ 2Fe(s) + CO₂(g) can be obtained by multiplying the Keq values for the two reactions given in the problem: Keq = Keq₁ x Keq₂. Thus,

Keq = (1x10⁻⁶) x (1x10⁻³²)

Keq = 1x10⁻³⁸.

Since ΔG° = -RTln(Keq),

a positive value of ΔG° means that the reaction is not thermodynamically favorable at 1000K.

However, C(s) is added to the reaction mixture to drive the reaction in the forward direction. The addition of C(s) will increase the concentration of CO₂(g) and hence decrease the value of Keq. Therefore, the value of Keq is much greater than 1x10⁻³⁸ and the sign of ΔG° is positive. Option (c) is the correct answer.

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The three-dimensional shape of a molecule depends on the number of electron groups around the central atom. Because like charges repel, the molecule adopts a shape that allows the electron groups to be as far apart as possible. Very often, a two-dimensional dot structure does not accurately represent what the molecule would look like in three dimensions.Match each two-dimensional structure to its correct three-dimensional description.

Answers

When matching two-dimensional structures to their three-dimensional descriptions, you should consider the number of electron groups around the central atom and the molecular geometry.

I would need the specific two-dimensional structures and the three-dimensional descriptions to match them with. However, I can still help you understand the general concept.
Common molecular geometry include linear, trigonal planar, tetrahedral, trigonal bipyramidal, and octahedral.
In chemistry, molecules or ions having similar formulae but distinct contents are referred to as isomers. The term "isomers" refers to molecules with the same chemical structure but different three-dimensional forms. Even so, isomers don't necessarily have the same qualities. Stereoisomerism, also known as spatial isomerism, and structural isomerism, sometimes known as constitutional isomerism, are the two main types of isomerism.  
For example, if a molecule has two electron groups around the central atom, it would adopt a linear shape. If there are three electron groups, it would likely adopt a trigonal planar shape. Four electron groups would result in a tetrahedral shape, and so on.
To correctly match the structures, analyze the two-dimensional dot structures, determine the number of electron groups, and predict the molecular geometry accordingly. Then, find the corresponding three-dimensional description based on the predicted geometry.

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calculate to three significant digits the density of carbon dioxide gas at exactly 15°c and exactly 1atm. you can assume carbon dioxide gas behaves as an ideal gas under these conditions.

Answers

The density of carbon dioxide gas at exactly 15°C and exactly 1 atm is 52.75 g/L.

To calculate the density of carbon dioxide gas at exactly 15°C and exactly 1 atm, we can use the ideal gas law:

PV = nRT

where P is pressure, V is volume, n is the number of moles, R is the gas constant, and T is temperature in Kelvin.

We know that the pressure is 1 atm, and we can convert the temperature of 15°C to Kelvin by adding 273.15:

T = 15°C + 273.15 = 288.15 K

The gas constant R is 0.08206 L•atm/(mol•K).

To calculate the density, we need to rearrange the ideal gas law to solve for the number of moles n and the volume V:

n = PV/RT

V = nRT/P

The molar mass of carbon dioxide is 44.01 g/mol.

Putting it all together, we get:

n/V = P/RT

n/V = 1 atm / (0.08206 L•atm/(mol•K) * 288.15 K)

n/V = 1.1988 mol/L

ρ = n/V * M = 1.1988 mol/L * 44.01 g/mol = 52.75 g/L

Therefore, the density of carbon dioxide gas at exactly 15°C and exactly 1 atm is 52.75 g/L, rounded to three significant digits.

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Physiological pH of blood (7.4) is maintained by the bicarbonate ion/carbonic acid equilibrium (see reactions below)-
HCO3- +H3O+ ---> H2CO3 +H2O
H2CO3 --> CO2 +H2O
a. excessive physical exertion can lead to acidosis of blood. Assume that the blood pH has dropped to 7.31. What is the ratio of bicarbonate to the carbonic acid in the blood? (pKa of carbonic acid is 6.37)
b. how can the human body possibly respond to this acidosis?

Answers

The HCO3⁻ acts as a base and removes excess H⁺ by the formation of H₂CO₃.

Dissociation of carbonic acid: H₂CO₃(aq) ⇄ HCO₃⁻(aq) + H⁺(aq).

Adding acid: HCO₃⁻(aq) + H⁺(aq ⇄ H₂CO₃(aq).

pH of a solution is defined as the hydrogen ion concentration present in that solution. A buffer solution is defined as a substance which prevents the change in pH of a solution  by either  absorbing or releasing the H⁺ ion present in a solution.

A buffer solution can resist the pH change which may generally take place upon the addition of even a small amount of acidic or basic components. It is able to neutralize small amounts of  acid or base added to the solution,  which makes the pH of the solution relatively stable.

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Consider the reaction of a 20.0 mL of 0.220 M CsH5NHCI (Ka = 5.9 x 10-6) with 12.0 mL of 0.241 M CSOH. a) Write the net ionic equation for the reaction that takes place. b) What quantity in moles of CsH5NH would be present at the start of the titration? c) What quantity in moles of OH would be present if 12.0 mL of OH were added? d) What species would be left in the beaker after the reaction goes to completion? e) What quantity in moles of CsH5NH* would be left in the beaker after the reaction goes to completion? f) What quantity in moles of CHEN are produced after the reaction goes to completion? g) What would be the pH of this solution after the reaction goes to completion and the system reaches equilibrium? 1 0.29 of 1 point earned

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The net ionic equation for the reaction is [tex]$\mathrm{CsH_5NH^+ + OH^- \rightarrow CsH_5NH_2^+ + H_2O}$[/tex]. The quantity in moles of [tex]$\mathrm{CsH_5NH^+}$[/tex] present at the start of the titration is 0.00440 mol. The quantity in moles of [tex]OH^-[/tex] present if 12.0 mL of [tex]OH^-[/tex] were added is 0.00289 mol.

a) The net ionic equation for the reaction is:

[tex]$\mathrm{CsH_5NH^+ + OH^- \rightarrow CsH_5NH_2^+ + H_2O}$[/tex]

b) The quantity in moles of [tex]CsH_5NH^+[/tex] present at the start of the titration can be calculated using the formula:

moles = concentration x volume

moles of [tex]CsH_5NH^+[/tex] = 0.220 mol/L x 0.0200 L = 0.00440 mol

c) The quantity in moles of [tex]OH^-[/tex] that would be present if 12.0 mL of OH- were added can be calculated using the formula:

moles = concentration x volume

moles of [tex]OH^-[/tex] = 0.241 mol/L x 0.0120 L = 0.00289 mol

d) After the reaction goes to completion, [tex]CsH_5NH^+[/tex] would be converted to [tex]CsH_5NH^+[/tex] and there would be no [tex]OH^-[/tex] left in the solution.

e) The quantity in moles of [tex]CsH_5NH^+[/tex] that would be left in the beaker after the reaction goes to completion can be calculated using the formula:

moles = initial moles - moles reacted

moles of [tex]CsH_5NH^+[/tex] = 0.00440 mol - 0.00289 mol = 0.00151 mol

f) The quantity in moles of CHEN that are produced after the reaction goes to completion is equal to the moles of [tex]OH^-[/tex] that reacted since the reaction is a 1:1 stoichiometric ratio. Therefore, the quantity in moles of CHEN produced is 0.00289 mol.

g) To determine the pH of the solution after the reaction goes to completion and the system reaches equilibrium, we need to calculate the concentration of [tex]H^+[/tex] ions in the solution. This can be done using the formula for the acid dissociation constant (Ka):

[tex]$\mathrm{K_a = \frac{[H^+][CsH_5NH^+]}{[CsH_5NH]}}$[/tex]

We know the values of Ka and the initial concentrations of [tex]CsH_5NH^+[/tex] and [tex]CsH_5NH[/tex], so we can rearrange the equation and solve for [[tex]H^+[/tex]]:

[tex]$\mathrm{[H^+] = \sqrt{\frac{K_a \times [CsH_5NH]}{[CsH_5NH^+]}}}$[/tex]

[tex]$\mathrm{[H^+] = \sqrt{\frac{5.9 \times 10^{-6} \times 0.220}{0.00440-0.00289}}}$[/tex]

[tex][H^+] = 0.000826 M[/tex]

[tex]$\mathrm{pH = -\log_{10}[H^+]}$[/tex]

[tex]$\mathrm{pH = -\log_{10}(0.000826)}$[/tex]

pH = 3.08

Therefore, the pH of the solution after the reaction goes to completion and the system reaches equilibrium is 3.08.

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determine the molarity of the borate ion at t1 (ice-water) and at t2 (room temperature). Eq. 2) 4. Calculate AH [There is only one value.] (Eg. 4) 5. Calculate A Sº at T1 (ice-water) and at T2 (room temperature). (Eq. 3) Record all of your results (#2 to #5) in the table: Ksp = [Na+12 [borate] (Eg. 1) determine the Std. Gibb's Free Energy change for the reaction: Gº = -RT In(Ksp) (Eq. 2) Δ Go =ΔΗο -ΤΔ So (Eq. 3) m Constant (Ksp) is determined at two different temperatures, T1 and T2, we ormulation for the dependence of the equilibrium constant K on tempera Std. Enthalpy change for this reaction as well: In (Ksp2 / Ksp1) = - (A H° /R) x (1/T2 - 1/T1) (Eq. 4) We will take advantage of the basic nature of the borate ion and titrate it with a standard hydrochloric acid solution: B.O(OH)42 lag) + 2 HCl(ag) + 3 H20 -4 H3BO3(aq) + 2 Clag) Titration Reaction Notice two moles of hydrochloric acid are required for every mole of borate ion. By taking an aliquot of the saturated Borax solution and titrating it with standardized HCI, we can Oletermine the concentration of the borate ion, [borate), needed to calculate Kse. The concentration of the sodium ion is then detery via the reaction stoichiometry: [Na'] = 2 [borate] (Eq. 5)

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The borate ion will be titrated with hydrochloric acid to determine its concentration and then the concentration of sodium ion will be determined using the stoichiometry of the reaction.

The problem statement involves calculating the molarity of the borate ion at two different temperatures, determining the standard Gibbs free energy change for the reaction, and calculating the standard entropy change at each temperature.

To calculate the molarity of the borate ion, a titration with hydrochloric acid is performed, and the concentration of sodium ion is determined using the stoichiometry of the reaction. Then, the standard Gibbs free energy change and the standard entropy change at two different temperatures can be calculated using equations 2 and 3. Finally, the dependence of the equilibrium constant K on temperature can be determined using equation 4.

The determination of these values will provide information on the thermodynamic stability of the borate ion and its dependence on temperature, which is important for understanding its behavior in various chemical reactions.

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If we want to compare only the effect of the -OH group on the surface tension, which two liquids should we compare?WaterMethanolEthanolPentanolPentaneOctane

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To compare the effect of the -OH group on the surface tension, we should compare two liquids that differ only in the presence or absence of the -OH group. This will help isolate the impact of the -OH group on surface tension while keeping other factors constant.

In this case, we can compare ethanol (CH3CH2OH) and pentane (C5H12). Ethanol contains the -OH group, while pentane does not.

By comparing these two liquids, we can observe the specific influence of the -OH group on surface tension. Ethanol's -OH group introduces hydrogen bonding, which can increase intermolecular forces and consequently affect surface tension. Pentane, lacking the -OH group, does not exhibit hydrogen bonding to the same extent.

By examining the surface tension of ethanol and pentane, we can attribute any differences primarily to the presence or absence of the -OH group, allowing for a more focused comparison of its effect.

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1 mol h2 requires passage of how many faradays

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The passage of 1 mol H2 requires 2 Faradays.

The balanced equation for the electrolysis of water is:
2H2O → 2H2 + O2
For every mole of H2 produced, two moles of electrons are needed to reduce the two protons in each H2O molecule to H2 gas. One Faraday is equal to the amount of electrical charge (i.e., the number of electrons) needed to reduce or oxidize one mole of a substance during an electrolytic reaction. Therefore, for the reduction of one mole of H2O to produce one mole of H2, two Faradays are required.
To find out how many Faradays are required for the passage of 1 mol H2, we'll use the following terms and concepts:
1. Mole (mol): A unit of measurement for the amount of substance, equal to 6.022 x 10^23 particles (Avogadro's number).
2. Hydrogen (H2): A diatomic molecule composed of two hydrogen atoms.
3. Faraday: A unit of electric charge, equal to the charge of 1 mole of electrons, approximately 96,485 Coulombs.
Now let's calculate how many Faradays are needed:
Step 1: Determine the moles of electrons involved in the reaction.
For the formation of H2, the balanced half-reaction is: 2H+ + 2e- → H2
This means that for every 1 mol of H2, 2 moles of electrons (2e-) are involved in the reaction.
Step 2: Calculate the required Faradays.
1 mol of electrons = 1 Faraday (96,485 Coulombs)
So, for 2 moles of electrons, we need 2 Faradays.
Therefore, the passage of 1 mol H2 requires 2 Faradays.

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1 mol H2 requires passage of 2 Faradays.

1. According to Faraday's law of electrolysis, the amount of substance produced or consumed at an electrode during electrolysis is proportional to the charge passed through the cell.
2. For the production of 1 mol H2, we must consider the balanced half-reaction for the reduction of hydrogen ions to form hydrogen gas: 2H+ + 2e- → H2
3. From this half-reaction, we see that 2 moles of electrons (2e-) are required to produce 1 mol of hydrogen gas (H2).
4. Since 1 Faraday is equal to the charge of 1 mole of electrons (approximately 96,485 C/mol), we can conclude that 1 mol H2 requires the passage of 2 Faradays, as 2 moles of electrons are needed for the production of 1 mol H2.

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What is the overall reaction for the following cell line notation of a galvanic cell? Al(s) | AP+(aq) || H(aq) | H2(g) | Pt(s) A. 3H2(g) + 2A1+ (aq) + 6H*(aq) + 2Al(s) B. 2Al3+ (aq) + 6H*(aq) → 3H2(g) + 2Al(s) C. Al(s) + 3H*(aq) + Pt(s) → Al3+ (aq) + PtHa(s) D. 2H2(g) + Al3+(aq) + Pt(s) → Al(s) + PtHa(s) E. 2Al(s) + 6H*(aq) → 2Al3+ (aq) + 3H2(g) E Ο Α

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The overall reaction for the given cell line notation of a galvanic cell is:

B. [tex]2Al(s) + 6H+(aq)[/tex] → [tex]2Al_3+(aq) + 3H_2(g)[/tex]

What is the balanced reaction in the galvanic cell?

The given cell line notation represents a galvanic cell consisting of two half-cells. On the left side, we have the aluminum electrode (Al(s)) in contact with a solution of AP+ ions (AP+(aq)), while on the right side, we have a hydrogen electrode ([tex]H_2[/tex](g)) in contact with an acidic solution (H+(aq)) and a platinum electrode (Pt(s)).

The balanced reaction in the galvanic cell is represented by the overall cell line notation. By examining the notation, we can see that aluminum (Al) is oxidized, losing electrons to become [tex]Al_3[/tex]+ ions, while hydrogen ions (H+) from the acidic solution are reduced, gaining electrons to form hydrogen gas ([tex]H_2[/tex]). The presence of the platinum electrode (Pt(s)) serves as a catalyst and does not participate in the overall reaction.

In summary, the overall reaction for the given galvanic cell line notation is 2Al(s) + 6H+(aq) → 2Al3+(aq) + 3[tex]H_2[/tex](g), as mentioned in option B.

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. Using the Bohr model, calculate the energy of a photon emitted when an electron in a Li2+ ion moves from an orbit with n=3 to the orbit with n=2.
Group of answer choices
A. 7.826×1038 J
B. 9.079×10-19 J
C. 3.2685×10-18 J
D. 2.724×10-18 J

Answers

The energy of the photon emitted when an electron in a [tex]Li^{2+[/tex] ion moves from an orbit with n=3 to the orbit with n=2 is [tex]-1.93 * 10^{-18} J[/tex] or [tex]2.724 * 10^{-18} J[/tex]. The correct option is D.

The energy of a photon emitted when an electron in a [tex]Li^{2+[/tex] ion moves from an orbit with n=3 to the orbit with n=2 can be calculated using the Bohr model.

The equation used to calculate the energy of the emitted photon is given by

E = -13.6 eV (1/nf2 - 1/ni2)

Where E is the energy of the emitted photon in eV, nf is the final level of the electron, and ni is the initial level of the electron.

Substituting in the given values, we get

E = -13.6 eV (1/22 - 1/32)

Simplifying, this gives

E = -13.6 eV (9/4 - 1/9)

E = -13.6 eV (8/9)

E = -12.093 eV

Converting eV to joules, we get

E = -12.093 eV × [tex]1.602 * 10^{-19[/tex] J/eV

E = [tex]-1.93 * 10^{-18} J[/tex]

Therefore, the energy of the photon emitted when an electron in a [tex]Li^{2+[/tex] ion moves from an orbit with n=3 to the orbit with n=2 is [tex]-1.93 * 10^{-18} J[/tex] J or [tex]2.724 * 10^{-18} J[/tex].

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Bohr's model consists of a small nucleus (positively charged) surrounded by negative electrons moving around the nucleus in orbits. The correct answer is D. 2.724×10-18 J.

According to the Bohr model, the energy of a photon emitted or absorbed during a transition of an electron between two energy levels in an atom is given by:

ΔE = E_final - E_initial = - R_H ([tex]1/n_final^2[/tex] - [tex]1/n_initial^2[/tex])

where R_H is the Rydberg constant, n_final is the final energy level, and n_initial is the initial energy level.

For the given transition of an electron from n=3 to n=2 in a [tex]Li2+[/tex] ion, the Rydberg constant for [tex]Li2[/tex] + is 2.179 ×  [tex]10^{-18}[/tex] J, so we have:

ΔE = - (2.179 ×  [tex]10^{-18}[/tex]J) ([tex]1/2^2[/tex] - [tex]1/3^2[/tex])

ΔE = 2.724 ×  [tex]10^{-18}[/tex] J

Therefore, the energy of the photon emitted during the transition is 2.724 × [tex]10^{-18}[/tex] J.

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why are we adding vinegar to the reaction? remember that vinegar is mostly water and approximately 5 cetic acid (ch3cooh).

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the reason for adding vinegar, which is mostly water and approximately 5% acetic acid (CH3COOH), to a reaction is to create an acidic environment.

This is important for certain chemical reactions because it helps to control the pH and improve the efficiency of the reaction. Acetic acid acts as a weak acid, meaning it can donate a hydrogen ion (H+) to the solution, this increase in H+ ions lowers the pH, making the environment more acidic. Acidic conditions can be necessary for specific reactions, such as those involving enzymes or catalysts that require a particular pH range to function optimally.

Additionally, adding vinegar can help drive certain reactions forward by providing a source of protons, which are needed in various acid-base reactions. Furthermore, the use of vinegar is convenient, safe, and cost-effective, making it an ideal choice for household or educational purposes. In summary, vinegar is added to reactions to create an acidic environment that is beneficial for various chemical processes, ensuring efficient and successful outcomes.

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some amino acids such as glutamic acid actually have three pka's rather than the two pka's of alanine. why?

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Glutamic acid has three pKa values because it has three ionizable groups: the carboxylic acid group, the amino group, and the side chain carboxylic acid group.

These groups can donate or accept protons at different pH levels, leading to the three pKa values. The ionizable groups in amino acids can donate or accept protons depending on the pH of the solution. At low pH, all of the groups are protonated, while at high pH, all are deprotonated. However, at intermediate pH values, the groups can donate or accept protons in different combinations, resulting in different levels of ionization. Glutamic acid has three ionizable groups: the carboxylic acid group (-COOH), the amino group (-NH3+), and the side chain carboxylic acid group (-CH2-COOH). Each of these groups can donate or accept a proton, resulting in three pKa values for glutamic acid. The pKa values for the carboxylic acid and amino groups are similar to those of other amino acids, while the pKa of the side chain carboxylic acid group is lower, making it more acidic.

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Which ions are unlikely to form colored coordination complexes in an octahedral ligand environment?a. Sc3+b. Fe2+
c. Co3+
d. Ag+
e. Cr3+

Answers

Among the given options, the ion that is unlikely to form a colored coordination complex in an octahedral ligand environment is d. Ag+ (silver ion).

Color in coordination complexes arises from the absorption of certain wavelengths of light due to electronic transitions within the metal's d orbitals. Transition metal ions, such as Sc3+, Fe2+, Co3+, and Cr3+, typically have partially filled d orbitals and can exhibit a wide range of colors when forming coordination complexes.

However, Ag+ is a d^10 ion, meaning its d orbitals are fully filled. As a result, it does not have any available d electrons for electronic transitions that can absorb visible light and produce color. Therefore, Ag+ ions are generally not involved in the formation of colored coordination complexes in an octahedral ligand environment.

It's worth noting that while Ag+ does not usually form colored complexes in an octahedral environment, it can form colored complexes in different ligand environments, such as linear or tetrahedral, where the electronic transitions may be allowed.

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Cobalt 60 is a radioactive source with a half-life of about 5 years. after
how many years will the activity of a new sample of cobalt 60 be
decreased to 1/8 its original value?
*

Answers

Cobalt 60 is a radioactive source with a half-life of about 5 years.  after approximately 15 years, the activity of the new sample of Cobalt-60 will decrease to 1/8 (or ½^3) of its original value.

The half-life of Cobalt-60 is approximately 5 years. This means that after every 5-year period, the activity of the sample will be reduced by half. To determine after how many years the activity will decrease to 1/8 of its original value, we need to find the number of half-life periods required for this reduction. Since we want the activity to decrease to 1/8, which is equal to ½^3, it means we need three half-life periods for this reduction.

Since each half-life is 5 years, we can multiply the half-life by the number of periods needed:

Number of years = Half-life × Number of periods

Number of years = 5 years × 3 periods

Number of years = 15 years

Therefore, after approximately 15 years, the activity of the new sample of Cobalt-60 will decrease to 1/8 (or ½^3) of its original value.

This calculation is based on the understanding that the radioactive decay of Cobalt-60 follows exponential decay, where the activity decreases by half every half-life period. By using the concept of half-life, we can determine the time required for a specific reduction in activity.

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