in fireworks, the heat of the reaction of an oxidizing agent, such as kclo4, with an organic compound excites certain salts, which emit specific colors. strontium salts have an intense emission at 641 nm. what is the energy (in kj) of this emission for 4.09 g of the chloride salt of strontium? assume that all the heat produced is converted to emitted light. enter to 2 decimal places. (mts 2/17/2018)

Answers

Answer 1

The energy emitted by 4.09 g of strontium chloride salt is 8.01 8.00 x 10⁻²⁴ kJ  (rounded to 2 decimal places).

What is the emission energy?

To determine the energy of the emission at 641 nm, we can use the formula:

E = hc/λ

where;

E is the energy, h is Planck's constant (6.626 x 10⁻³⁴ J·s), c is the speed of light (3 x 10⁸ m/s), and λ is the wavelength in meters.

First, we need to convert the wavelength from nanometers to meters:

641 nm = 641 x 10⁻⁹ m

Next, we can plug in the values and solve for E:

E = (6.626 x 10⁻³⁴J·s)(3 x 10⁸ m/s)/(641 x 10⁻⁹ m)

E = 3.10 x 10⁻¹⁹ J

To convert from joules to kilojoules, we divide by 1000:

E = 3.10 x 10⁻²² kJ

Now we can use the molar mass of the chloride salt of strontium to calculate the total energy released:

SrCl₂ has a molar mass of 158.53 g/mol, so 4.09 g is equivalent to:

n = 4.09 g / 158.53 g/mol

n = 0.0258 mol

The energy released by 0.0258 mol of strontium chloride at 100% efficiency is:

E_total = nE

E_total = (0.0258 mol)(3.10 x 10⁻²² kJ/mol)

E_total = 8.00 x 10⁻²⁴ kJ

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Related Questions

a solution is prepared by mixing 736.0 ml of ethanol with 694.0 ml of water. the molarity of ethanol in the resulting solution is 9.186 m. the density of ethanol at this temperature is 0.7893 g/ml. calculate the difference in volume between the total volume of water and ethanol that were mixed to prepare the solution and the actual volume of the solution.

Answers

The volume difference between the total volume of water and ethanol that were mixed to prepare the solution and the actual volume of the solution is 538.56 ml.

What is the volume difference?

To calculate the volume difference, we need to first calculate the total volume of the solution and the volume of each component in the solution.

The total volume of the solution is the sum of the volumes of ethanol and water:

Total volume = volume of ethanol + volume of water

Total volume = 736.0 ml + 694.0 ml

Total volume = 1430.0 ml

To calculate the volume of ethanol in the solution, we need to convert the mass of ethanol to volume using its density:

Mass of ethanol = volume of ethanol x density of ethanol

Volume of ethanol = mass of ethanol / density of ethanol

Volume of ethanol = (9.186 mol/L) x (0.7893 g/ml) x (736.0 ml) / (46.07 g/mol)

Volume of ethanol = 197.44 ml

Similarly, we can calculate the volume of water in the solution:

Volume of water = 694.0 ml

Therefore, the actual volume of the solution is the sum of the volumes of ethanol and water:

Actual volume of solution = volume of ethanol + volume of water

Actual volume of solution = 197.44 ml + 694.0 ml

Actual volume of solution = 891.44 ml

The volume difference is the difference between the total volume of ethanol and water that were mixed and the actual volume of the solution:

Volume difference = Total volume - Actual volume of solution

Volume difference = 1430.0 ml - 891.44 ml

Volume difference = 538.56 ml

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10 ml of ethanol is mixed with 250 ml of water calculate the volume percentage of ethanol

Answers

Answer: 3.85%

Explanation: To calculate the volume percentage of ethanol in the mixture, we need to determine the total volume of the mixture first.

Total volume = volume of ethanol + volume of water

Total volume = 10 ml + 250 ml

Total volume = 260 ml

Now, we can calculate the volume percentage of ethanol in the mixture using the following formula:

Volume percentage of ethanol = (volume of ethanol ÷ total volume) x 100%

Plugging in the values, we get:

Volume percentage of ethanol = (10 ml ÷ 260 ml) x 100%

Volume percentage of ethanol = 3.85%

Therefore, the volume percentage of ethanol in the mixture is 3.85%.

rank the following alkyl halides in order of their increasing rate of reaction with triethylamine: iodoethane 1-bromopropane 2-bromopropane

Answers

The rate of reaction of alkyl halides with triethylamine increases with the electron-releasing effect of the halide group, which increases in the order - Iodoethane < 1-bromopropane < 2-bromopropane.

The strength of nucleophiles and the weakness of leaving groups decide the rate of SN2 reactions. This is what determines the reactivity of alkyl halides.

Alkyl halides are classified as primary, secondary, or tertiary based on the number of carbons that the halogen is bonded to. Because primary alkyl halides have more accessibility to their halogen and less steric hindrance around it, the speed of the reaction is greater.

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A certain half-reaction has a standard reduction potential EPod=-0.75 V. An engineer proposes using this half-reaction at the cathode of a galvanic cell that must provide at least 0.90 V of electrical power. The cell will operate under standard conditions. Note for advanced students: assume the engineer requires this half-reaction to happen at the cathode of the cell. Is there a minimum standard reduction potential that the half-reaction used at the anode of this cell can have? Is there a maximum standard reduction potential that the half-reaction used at the anode of this cell can have? By using the information in the ALEKS Data tab, write a balanced equation describing a half reaction that could be used at the anode of this cell. Note: write the half reaction as it would actually occur at the anode.

Answers

Using the following formula, the total cell potential, Ecell, may be calculated:   Ecathode + anode equals Ecell. where Ecathode is the cathode half-reduction reaction's potential and Eanode.

We can determine the minimal Eanode needed to create a cell potential of 0.90 V since the engineer suggests employing a half-reaction with EPod = -0.75 V at the cathode:

Ecathode + anode equals Ecell.

Eanode: 0.90 V = -0.75 V

Eanode = 0.75 0.90 volts

Eanode equals 1.65 V.

The half-reaction employed at the anode must thus have a standard reduction potential of -1.65 V or less.

The typical reduction potential of the half-reaction utilised at the anode, on the other hand, has no upper limit. Yet, a higher Ecell and a more effective galvanic cell would be produced by a larger reduction potential at the anode.

We can utilise the half-reaction to create a balanced equation for the anode half-reaction:

Cu(s) becomes Cu2+(aq) plus 2e-

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How many milliliters of 1.58 M HCl are needed to react completely with 23.2 g of NaHCO3 (= 84.02 g/mol)?
HCl(aq) + NaHCO3(s) ? NaCl(s) + H2O(l) + CO2(g)
a. 175 mL
b. 536 mL
c. 276 mL
d. 572 mL
e. 638 mL

Answers

c. 276 mL of 1.58 M HCl.

To answer this question, we need to use the mole ratio between the two reactants: 1 mole of HCl for every 1 mole of NaHCO3.

In this case, we need 23.2 g of NaHCO3, which is equal to 0.273 moles (23.2 g / 84.02 g/mol).

Since we need 1 mole of HCl for every 1 mole of NaHCO3, we can calculate the number of moles of HCl needed with the following equation: 0.273 moles of NaHCO3 x 1 mole HCl/1 mole NaHCO3 = 0.273 moles of HCl.

Now we can use the molarity of HCl (1.58 M) to calculate the volume of HCl needed. 1.58 M HCl x 0.273 moles HCl/1 L HCl = 0.433 L HCl, or 433 mL of HCl. Therefore, the correct answer is c. 276 mL of 1.58 M HCl.

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Label each of the following species as a strong acid, a weak acid, a strong base, or a weak base. (1) LiOH [ Select] (2) CH3NH2 [ Select ] (3) HF [Select) (4) HBO [Select)

Answers

The given species and their label as strong acid, weak acid, strong base or weak base are: Strong acid: LiOH, strong base: CH₃NH₂ and Weak base: HF weak acid: HBO.

What is an acid and a base?

An acid is a molecule that donates hydrogen ions or protons and/or accepts electrons. When dissolved in water, it increases the concentration of H⁺ ions. Acids have a pH of less than 7.

A base is a substance that accepts hydrogen ions or protons and/or donates electrons. When dissolved in water, it increases the concentration of OH⁻ ions. Bases have a pH greater than 7.

A strong acid is an acid that is 100% ionized in water. It is highly reactive and has a low pH.

A weak acid is an acid that partially dissociates in water. It is less reactive than a strong acid and has a pH greater than 7.0.

A strong base is a base that is completely ionized in water. It has a high pH and is highly reactive.

A weak base is a base that partially dissociates in water. It is less reactive than a strong base and has a pH less than 7.0.

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true/ false: the main form of ketones present in the blood is called acetoacetate (select one word answer only please)

Answers

The sentence "The main form of ketones present in the blood is called acetoacetate" is True.

Acetoacetate is one of the three ketone bodies produced in the human liver. The other two ketones are beta-hydroxybutyrate and acetone.

What are ketones? Ketones are substances that are formed when the body breaks down fat for energy when glucose, which is the body's main source of energy, is scarce.

The liver synthesizes ketones from fats as a backup source of fuel when the body runs out of glucose.

A high concentration of ketones in the bloodstream is known as ketosis, and it can occur when a person is fasting, dieting, or has uncontrolled diabetes.

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a scientist dilutes 50.0 ml of a ph 5.85 solution of hcl to 1.00 l. what is the ph of the diluted solution (kw

Answers

A scientist dilutes 50.0 ml of a pH 5.85 solution of HCl to 1.00 L. The pH of the diluted solution (Kw = 1.0 × 10-14) is approximately 1.85.

PH is the negative logarithm of the hydrogen ion (H+) concentration in a solution. A decrease in the pH of a solution means that the H+ concentration has increased.

The following formula can be used to calculate the pH of a solution:

pH = -log[H+]

The number of hydrogen ions per liter of solution is referred to as the hydrogen ion concentration [H+]. In addition, the hydroxide ion (OH-) concentration may be calculated using the following formula:

[H+] [OH-] = 1.0 × 10-14

The pH of the solution can be calculated using the equation given below:

5.85 = -log[H+]5.85 = -log[H+]H+ = 1.38 x 10-6

The number of moles of HCl in 50 mL of a 5.85 pH solution is 0.00138 mol. The number of moles of HCl after dilution to 1.00 L can be determined using the equation below:

n1V1 = n2V2

0.00138 mol x 50 ml = n2 x 1.00 LN2 = 0.0000276 mol

After dilution, the HCl concentration is 0.0000276 moles/liter. The hydroxide ion concentration [OH-] in the solution can be determined using the formula given below:

[H+] [OH-] = 1.0 × 10-140.0000276 [OH-] = 1.0 × 10-14[OH-] = 3.6 x 10-10 mol/L

The pH of the solution can be calculated using the equation given below:

pH = -log[H+]pH = -log(3.6 × 10-10)pH = 9.44

The pH of the diluted solution (Kw = 1.0 × 10-14) is approximately 1.85.

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what is the [H3O+] and the pH of a buffer that consists of 0.41 M HNO2 and 0.66 M KNO2? (Ka of HNO2=7.1x10^-4)

Answers

The pH of the buffer can be calculated using the equation pH=-log[H3O+], which gives pH = -log(2.9x10^-4) = 3.54.

PH is the degree of acidity or alkalinity of a solution, expressed in base 10 as the negative logarithm of the H ion concentration. 

The [H3O+] and pH of a buffer that consists of 0.41 M HNO2 and 0.66 M KNO2 can be calculated using the Ka value of HNO2, which is 7.1x10^-4.

The [H3O+] is equal to the concentration of the acidic component (HNO2) times Ka, so [H3O+]= 0.41 M * 7.1x10^-4 = 2.9x10^-4 M.

The pH of the buffer can be calculated using the equation pH=-log[H3O+], which gives pH = -log(2.9x10^-4) = 3.54.

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What would you predict, the solubility of KHT (solid) in pure water compared with the solubility of KHT (solid) in a 0.1 M KCl solution, which one will be higher? Explain your answer

Answers

The solubility of KHT (solid) in pure water compared with the solubility of KHT (solid) in a 0.1 M KCl solution will be higher in a 0.1 M KCl solution. KCl is an electrolyte, which is a substance that dissociates into ions when it is dissolved in water. The presence of these ions can affect the solubility of other substances in the solution, which is known as the

common-ion effect.The common-ion effect is the reduction in the solubility of a substance due to the presence of a common ion in the solution. In this case, KCl contains K+ ions, which are also present in KHT. When KCl is dissolved in

water, it dissociates into K+ and Cl- ions. The K+ ions from KCl can react with the KHT and form the insoluble salt KHT. As a result, the solubility of KHT in the solution is reduced.In pure water, there are no K+ ions present, so the solubility

of KHT will be higher. However, in a 0.1 M KCl solution, the presence of K+ ions from KCl will decrease the solubility of KHT. Therefore, the solubility of KHT in a 0.1 M KCl solution will be lower than in pure water.

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coefficient in a chemical reaction is a number that goes in front of an element or compound in a balanced equation. for example in the balanced equation below the coefficient in front of the h2o is 2, meaning 2 molecules of h2o are reacting to make 2 molecules of h2 and 1 molecule of o2. 2 h2o --> 2 h2 o2 what is the coefficient that goes in front of the eca in the reaction below. e3bc4 d(ca)2 --> d3(bc4)2 eca

Answers

The coefficient that goes in front of the ECA in the chemical reaction given above is 2.

It has been indicated that coefficient in a chemical reaction is a number that goes in front of an element or compound in a balanced equation. The unbalanced chemical equation for the given reaction is:

[tex]E_{3} BC_{4} D(CA)_{2}[/tex]  → [tex]D_{3} (BC_{4} ) ECA[/tex]

The balanced equation of the chemical reaction above is:

[tex]2E_{3} BC_{4} D(CA)_{2}[/tex]  → [tex]D_{3} (BC_{4} )_{2} ECA[/tex]

We can see that 2 comes before ECA in the balanced chemical equation above. Therefore, the coefficient that goes in front of the ECA in the chemical reaction given above is 2.

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Write all each equation with absolute without absolute value given for the conditions y=|x + 5| if x<-5

Answers

Without absolute value , for y=|x + 5| for  x <-5, y = -2x

If x < -5, then x + 5 < 0. Therefore, y = |x + 5| = -(x + 5).

y = -(x + 5)

Note that this equation is only valid when x < -5. For values of x greater than or equal to -5, the absolute value of (x + 5) becomes positive, and y = |x + 5| = x + 5. Therefore, the equation for the full domain of y = |x + 5| is:

y = -(x + 5) for x < -5

Therefore | x -5 | should be changed to 5 - x to get a positive value.

Also | x - (-5) | should be changed to -5 -x to get a positive value.Therefore y = 5 - x + -5 - x = -2x

without absolute value , for x <-5, y = -2x

The term "absolute value" is not commonly used. However, there is a related concept called "absolute configuration." Absolute configuration refers to the spatial arrangement of atoms or groups of atoms around a chiral center in a molecule. A chiral center is a carbon atom that has four different groups attached to it.

The absolute configuration of a chiral center can be determined using the Cahn-Ingold-Prelog (CIP) rules, which assign priority to the four different groups based on their atomic numbers. By following these rules, we can determine whether the chiral center has an R or S configuration. Knowing the absolute configuration of a chiral center is important because it determines the molecule's biological activity and the way it interacts with other molecules in a chemical reaction.

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1) In this experiment, you will be mixing aqueous solutions of sodium carbonate and calcium chloride to produce solid calcium carbonate.

Na CO2 (aq) +CaCl(aq) — 2 NaCl(aq) +CaCO3

Order the steps required to predict the volume (in mL) of 0. 200 M sodium carbonate needed to produce 2. 00 g of calcium carbonate. There is an excess of calcium chloride.

Comp

Identi

volum

2

>

Calcu

Check

>

Step 1

Convert mass of calcium carbonate 10 moles of calcium carbonate

Step 2

Compare moles of calcium carbonate to moles of sodium carbonate based on balanced equation to calculate moles of sodium carbonate required

Step 3

Compute the volume of sodium carbonate solution required

Step 4

Convert the volume of sodium carbonate solution required from liters to milliers

2) Na2CO3(aq) + CaCl2(ag) + 2NaCl(aq) + CaCO3(-)

Calculate the volume (in mL) of 0. 200 M Na2CO, needed to produce 2. 00 g of CaCO3(s). There is an excess of CaCl.

Molar mass of calcium carbonate = 100. 09 g/mol

Volume of sodium carbonate - 100 mL

METHODS

RESET

MY NOTES

A LAB DATA

Answers

Based on the information provided, the correct order of steps required to predict the volume of 0.200 M sodium carbonate needed to produce 2.00 g of calcium carbonate is:

Step 1: Identify the molar mass of calcium carbonate (CaCO3)

Step 2: Convert the given mass of calcium carbonate to moles using its molar mass

Step 3: Use the balanced chemical equation to determine the mole ratio between calcium carbonate and sodium carbonate

Step 4: Calculate the amount of moles of sodium carbonate required

Step 5: Convert the moles of sodium carbonate to volume in liters using its molarity

Step 6: Convert the volume in liters to milliliters

Therefore, the correct order of steps is:

Step 1: Identify

Step 2: Convert

Step 3: Compute

Step 4: Convert

Step 5: Convert

Step 6: Check

Using the given information, the calculation can be done as follows:

Step 1: The molar mass of calcium carbonate (CaCO3) is given as 100.09 g/mol.

Step 2: The given mass of calcium carbonate is 2.00 g. Therefore, the number of moles of calcium carbonate can be calculated as follows:

2.00 g / 100.09 g/mol = 0.01998 mol ≈ 0.020 mol

Step 3: According to the balanced chemical equation, the mole ratio between calcium carbonate and sodium carbonate is 1:1. Therefore, the amount of moles of sodium carbonate required is also 0.020 mol.

Step 4: The molarity of the sodium carbonate solution is given as 0.200 M. Therefore, the volume of sodium carbonate solution required in liters can be calculated as follows:

0.020 mol / 0.200 mol/L = 0.100 L = 100 mL

Step 5: The volume in liters needs to be converted to milliliters:

0.100 L x 1000 mL/L = 100 mL

Step 6: Check the answer to make sure it is reasonable and makes sense.

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calculate the ph for each case in the titration of 50.0 ml of 0.220 m hclo(aq) with 0.220 m koh(aq). use the ionization constant for hclo. what is the ph before addition of any koh? ph

Answers

The pH of the given solution has to be calculated when titrating 50.0 ml of 0.220 M HClO (aq) with 0.220 M KOH (aq) before the addition of any KOH will be 13.34.

What is the pH of solution?

To determine the pH of solution, we need to first determine the ionization constant of HClO (aq).

Ka = [H₃O⁺] [ClO⁻]/[HClO]

Let's write down the acid dissociation reaction of HClO (aq).

HClO (aq) + H₂O (l) → H₃O⁺(aq) + ClO⁻(aq) (Ka = 3.5 times 10⁻⁸)

Initial concentration: [HClO] = 0.220m

[H₃O⁺] = x

[ClO⁻] = x

At equilibrium, Ka = (x)(x)/(0.220 - x)

3.5 times 10⁻⁸ = x²/(0.220 - x)

Since the concentration of x in denominator is much smaller than the initial concentration, we can consider that as 0.220

0.220 - x.x = 4.69 times 10⁻⁴m

The concentration of H⁺ ions is equal to the concentration of H₃O⁺ ions. Thus, [x]small

[H₃O⁺] = 4.69 times 10⁻⁴m

pH = -log [H₃O⁺] = -log (4.69 times 10⁻⁴) = 3.33

The pH of the solution before adding any KOH is 3.33. Calculate pH after each addition of KOH. After adding 50.0 ml of 0.220 M KOH (aq), the concentration of HClO (aq) will become zero. We will have KOH (aq) remaining in the solution. Thus, we will have to calculate the pH of a strong base. The stoichiometry of the reaction will be 1:1 because both HClO (aq) and KOH (aq) are monoprotic acids and bases respectively. We have to calculate the number of moles of KOH (aq) added. The number of moles of KOH (aq) will be,

n = MV

Where, M is the molarity of KOH (aq) and V is the volume of KOH (aq) added. n = (0.220m) (50.0ml/1000) = 0.011mol

The amount of KOH (aq) is equal to the amount of OH⁻ ions.

[OH⁻] = 0.011mol (0.050L) = 0.22M

pOH = - log [OH⁻] = - log (0.22) = 0.6575

pH = 14 - pOH = 14 - 0.6575 = 13.34

The pH of the solution is 13.34.

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What kind of system is an exploded hydrogen balloon?
A. Isolated system
B. Closed system
C. Open system
D. No way to tell

Answers

An exploded hydrogen balloon is an example of an open system (option C).

What is an open system?

An open system is a system that can exchange both matter and energy with its surroundings. In an open system, there is a flow of matter and energy in and out of the system. This means that the system is not isolated from its environment, and it interacts with the outside world.

An exploded hydrogen balloon is an example of an open system because during the explosion, the system (which includes the balloon and the hydrogen gas inside) releases matter (hydrogen gas) and energy (in the form of heat and sound) into the surrounding environment.

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The partial pressure of oxygen in the atmosphere is digits. the partial 0.210 atm. Calculate the partial pressure in mm Hg and torr. Round each of your answers to 3 significant digits____mm Hg ____torr

Answers

The partial pressure of oxygen in the atmosphere is 0.210 atm.

Therefore, the partial pressure of oxygen in mm Hg is 0.210 atm x 760 = 158.6 mm Hg and the partial pressure of oxygen in torr is 0.210 atm x 760/101.325 = 1.55 torr.


The air in the atmosphere is composed of many different gases. The most common of these gases is nitrogen, which makes up 78% of the atmosphere.

Oxygen makes up 21% of the atmosphere, and the other gases make up 1%. The atmospheric pressure is the pressure created by the weight of the gases in the atmosphere.

The atmospheric pressure is measured in units of atmospheres (atm). The atmospheric pressure at sea level is usually around 1 atm, which is equal to 760 mm Hg and 101.325 torr.

This is the same pressure that you feel when you take a breath of air.

The partial pressure of a gas is the amount of pressure exerted by that gas alone, as opposed to the total atmospheric pressure. The partial pressure of oxygen in the atmosphere is 0.210 atm.

This means that, out of the total atmospheric pressure of 1 atm, 0.210 atm of the pressure is from oxygen.

Partial pressure is often measured in units of mm Hg or torr. To convert from atm to mm Hg, the value is multiplied by 760.

Therefore, the partial pressure of oxygen in mm Hg is 0.210 atm x 760 = 158.6 mm Hg and the partial pressure of oxygen in torr is 0.210 atm x 760/101.325 = 1.55 torr.

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Which one of the following compounds behaves as an acid when dissolved in water?
A. RaO
B. RbOH
C. C4H10
D. HI

Answers

The compound that behaves as an acid when dissolved in water is HI (hydrogen iodide). Thus, the correct option will be D.

What is an acid?

HI is an Arrhenius acid, meaning it produces hydrogen ions (H⁺) in aqueous solution. The compound that behaves as an acid when dissolved in the water Hydrogen iodide (HI). HI is a diatomic molecule and a colorless gas at room temperature.

Hydrogen iodide is a strong acid when dissolved in water, with a pKa of −10. Hydrogen iodide is also used as a reducing agent in organic chemistry in the production of iodinated compounds.

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Explain the following statement about the rate law equation: The rate constant isn't really
constant. Include the definition of the term rate constant in your answer and give two
specific examples to support this statement.

Answers

Answer:

In chemical kinetics, the rate constant (k) is a proportionality constant that relates the rate of a chemical reaction to the concentrations of the reactants. It is often included in the rate law equation, which expresses the relationship between the rate of the reaction and the concentrations of the reactants.

However, the rate constant is not truly constant because it can vary with different experimental conditions. The rate constant is affected by factors such as temperature, pressure, and the presence of catalysts or inhibitors. For example, an increase in temperature usually leads to an increase in the rate constant, while the addition of a catalyst can decrease the activation energy and increase the rate constant.

Two specific examples that support this statement are:

1) The effect of temperature on the rate constant: Consider the reaction A → B, which has a rate law equation of rate = k[A]. If the temperature is increased, the rate constant will increase due to the increase in kinetic energy of the reactant molecules. This means that the reaction will proceed faster at higher temperatures, even if the concentration of A remains the same.

2) The effect of catalysts on the rate constant: Consider the reaction C + D → E, which has a rate law equation of rate = k[C][D]. If a catalyst is added to the reaction, it can increase the rate constant by providing an alternate pathway with a lower activation energy. This means that the reaction will proceed faster at the same concentrations of C and D with the catalyst present than without it.

Explanation:

1) A 50.0 gram sample of water is heated from 20.5 oC to 27.1 oC. How many Joules of heat were added to this solution?2) A 17.27 gram sample of aluminum initially at 92 degrees is added to a container containing water. The final temperature of the metal is 25.1 oC. What is the total amount of energy in Joules added to the water? What was the energy lost by the metal?3) Mixing 25.0 mL of 1.2 M HCl and 25.0 mL of 1.1 M NaOH were mixed. The temperature of the initial solution was 22.4 oC. Assuming a Heat of Neutralization of -55.8 KJ/mol, what would the final temperature be if the specific heat for this solution is 4.03 J/g?

Answers

The equation Q = mCT, where m is the mass of the water, C is its specific heat capacity, and T is the temperature change, We obtain Q as follows by substituting the values: (50.0 g) (4.18 J/goC) (27.1 oC - 20.5 oC) = 1393 J.

The equation Q = mCT, where m is the mass of the water, C is its specific heat capacity, and T is the temperature change, can be used to compute the energy gained by the water. Q = (17.27 g) (0.902 J/goC) (25.1 oC - 92 oC) = -2644 J, where the negative sign denotes energy loss by the metal, is obtained by substituting the numbers. According to the given reaction's heat of neutralisation, 55.8 kJ of heat are emitted for every mole of reacting HCl and NaOH. The formula n = C V, where C is the concentration and V is the volume, can be used to determine the number of moles of HCl and NaOH. With the numbers substituted, we obtain n(HCl) = (1.2n(NaOH) = (1.1 mol/L) (0.025 L) = 0.0275 mol and n(NaOH) = (1.1 mol/L) (0.025 L) = 0.03 mol, respectively. NaOH is limiting, therefore when 0.0275 mol of HCl and 0.0275 mol of NaOH combine, 55.8 kJ of heat are produced. The formula Q = n H, where n is the number of moles of the limiting reactant and H is the heat of reaction, can be used to determine the overall amount of heat emitted. We obtain Q = (0.0275 mol) (-55.8 kJ/mol) = -1.5365 kJ by substituting the variables. Q = mCT, where m is the mass of the solution, C is its specific heat capacity, and T is the change in temperature, can be used to determine how much heat the solution absorbs. When the values are substituted, we obtain Q = (50.0 g) (4.03).

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The presence of heterogeneous catalyst will not affect the:
Select the correct answer below:
A. molecularity of the overall chemical equation
B. molecularity of the rate-determining step
C. both of the above
D. none of the above

Answers

The correct answer is option C. The presence of heterogeneous catalyst will not affect the molecularity of the overall chemical equation or the molecularity of the rate-determining step.

What is a Heterogeneous catalyst?

A heterogeneous catalyst is a substance that speeds up a reaction by increasing the rate of reaction without being consumed or being part of the product.

The surface of a solid is a popular spot for such a catalyst.The majority of heterogeneous catalysts are solids, but there are some that are liquids.

The two types of catalysts are homogeneous and heterogeneous. Homogeneous catalysts are dissolved in the same phase as the reactants, while heterogeneous catalysts are not.

Heterogeneous catalysts are most frequently found in the form of a solid dispersed in a gas or liquid.

In chemistry, heterogeneous catalysis is the most common type of catalysis. The following are some examples of heterogeneous catalysts:Catalytic converterZSM-5 ,zeoliteFCC (Fluid Catalytic Cracking) catalyst ,Molecular sieves ,Selective Catalytic Reduction (SCR).

The majority of heterogeneous catalysts are solids, but there are some that are liquids. Some examples include the solvent-liquid-solid (SLS) and liquid-liquid-solid (LLS) systems.

Heterogeneous catalysis is extensively utilized in industry, particularly in the production of chemicals and fuels, due to its effectiveness and ease of application.

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When ammonia reacts with oxygen, nitrogen monoxide and water are produced. The balanced equation for this reaction is: 4NH3 (g) + 5O2 (g) 4NO (g) + 6H2O (g) If 16 moles of ammonia react, The reaction consumes moles of oxygen The reaction produces moles of nitrogen monoxide and moles of water

Answers

The reaction consumes 20 moles of oxygen, and it produces 16 moles of nitrogen monoxide and 24 moles of water.

What is mole?

The quantity amount of substance is a measure of how many elementary entities of a given substance are in an object or sample. The mole is defined as containing exactly 6.022×10²³ elementary entities.

When ammonia reacts with oxygen, the balanced equation is:

4NH3(g) + 5O2(g) → 4NO(g) + 6H2O(g)

It is known that 16 moles of ammonia react, and we have to calculate the moles of oxygen, nitrogen monoxide, and water produced by the reaction.

The balanced equation shows that 4 moles of NH3 react with 5 moles of O2 to produce 4 moles of NO and 6 moles of H2O.

According to the stoichiometry of the reaction, 16 moles of NH3 will react with

(5/4) × 16 = 20 moles of O2

Hence, the reaction consumes 20 moles of oxygen.

The balanced equation shows that 4 moles of NH3 react with 4 moles of NO to produce 4 moles of NO and 6 moles of H2O.

According to the stoichiometry of the reaction, 16 moles of NH3 will produce

(4/4) × 16 = 16 moles of NO

Hence, the reaction produces 16 moles of nitrogen monoxide.

The balanced equation shows that 4 moles of NH3 react with 6 moles of H2O to produce 4 moles of NO and 6 moles of H2O.

According to the stoichiometry of the reaction, 16 moles of NH3 will produce

(6/4) × 16 = 24 moles of H2O

Hence, the reaction produces 24 moles of water.

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consider an ideal gas of molecules, with n adsorbing sites. each site can be occupied or unoccupied by one or two of the ideal gas molecules. determine the average number of molcules adsorbed by the table

Answers

The average number of molecules adsorbed by the table is the number of different ways of placing a total of r particles on n adsorption sites when two particles can occupy each site given by (r + n-1) C (n-1).

This formula follows from the fact that each placement corresponds to choosing n-1 boundaries that divide the particles into n groups (each group may be empty) and then putting one group into each adsorption site. Thus the required number of ways is(r + n-1) C (n-1). The number of ways of placing r particles on n adsorption sites when one or two particles can occupy each site is the sum of the number of ways in which exactly one particle occupies a site and the number of ways in which two particles occupy a site. Each adsorption site can be either empty, occupied by one molecule, or occupied by two molecules. Therefore, there are three different states that each adsorption site can have. There are n adsorption sites, and therefore there are 3n different states that the table can have. Each state is characterized by the number of molecules adsorbed by the table. Therefore, the average number of molecules adsorbed by the table is given by the sum of the number of molecules adsorbed in each state, divided by the total number of states. The number of molecules adsorbed in each state is the sum of the number of molecules adsorbed by each adsorption site, overall adsorption sites. Therefore, the number of molecules adsorbed in each state is either 0, 1, or 2.

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What volume of 0.125 M HNO3, in milliliters, is required to react completely with 1.70 g of Ba(OH)2? 2 HNO3(aq) + Ba(OH)2(s) Ba(NO3)2(aq) + 2 H2O(l)

Answers

Answer:

What volume of 0.125 M HNO3, in milliliters, is required to react completely with 1.70 g of Ba(OH)2? 2 HNO3(aq) + Ba(OH)2(s) Ba(NO3)2(aq) + 2 H2O(l)

Explanation:

The complete and balanced chemical equation for the reaction of nitric acid

H

N

O

3

with barium hydroxide

B

a

(

O

H

)

3

is given by

2

H

N

O

3

(

a

q

)

+

B

a

(

O

H

)

2

B

a

(

N

O

3

)

2

(

a

q

)

+

2

H

2

O

(

a

q

)

The volume of a certain concentration of nitric acid

H

N

O

3

required to react with a particular amount of

B

a

(

O

H

)

2

is obtained by first calculating the number of moles of

H

N

O

3

using stoichiometry. Using the molar mass of

B

a

(

O

H

)

2

,

M

M

B

a

(

O

H

)

2

=

171.3

g

/

m

o

l

,

and the mole ratio

2

m

o

l

H

N

O

3

1

m

o

l

B

a

(

O

H

)

2

,

then

{eq}\begin{align} \rm moles\ of\ HNO_3...

hope it hels you

a semipermeable membrane is placed between the following solutions. which solution will decrease in volume? view available hint(s)for part a a semipermeable membrane is placed between the following solutions.which solution will decrease in volume? solution a: 1.4% (m/v) starch solution b: 7.62% (m/v) starch

Answers

The solution that will decrease in volume when a semipermeable membrane is placed between the following solutions of 1.4% (m/v) starch and 7.62% (m/v) starch is the first one, solution A.

A semipermeable membrane is a kind of selective barrier that lets certain molecules cross while preventing others from crossing. It is a membrane that allows certain molecules or ions to pass through it by diffusion, typically by osmosis.

When a semipermeable membrane is placed between the solutions of 1.4% (m/v) starch and 7.62% (m/v) starch, solution A will decrease in volume while solution B will increase in volume.

Because the 1.4% (m/v) starch solution is less concentrated, it contains a greater amount of water, which means that it will swell when placed next to the more concentrated 7.62% (m/v) starch solution. However, due to the semipermeable membrane, only the water molecules from the 1.4% (m/v) starch solution can pass through the membrane into the more concentrated 7.62% (m/v) starch solution.

As a result, water will be transferred from solution A to solution B, causing solution A to decrease in volume while solution B to increase in volume.

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niacin is one of the b vitamins with the formula hc5h4nco2. consider a 0.020m solution of niacin with a ph of 3.26. use this information to find the ka of niacin.
a. 5.9 x 10 ^-9
b. 1.5 x 10 ^-5
c. 5.5 x 10 ^-4
d. 3.3 x 10 ^-3
e. 6.6 x 10 ^4

Answers

The Ka of niacin can be calculated using the pH and concentration of the niacin solution as 5.9 × 10⁻⁹. Niacin is a weak acid. Thus, the correct option is A.

What is the meaning of the Ka of a weak acid?

The acidity constant of a weak acid is known as the Ka. It is a measure of the acidity of a weak acid, which is a substance that does not completely dissociate in water. The expression for the acid dissociation of the weak acid (HA) can be given as follows:

HA ⇋ H⁺ + A⁻

Initially, the concentration of the HA in the solution is [HA]. When an acid is added to the water, the concentration of hydrogen ion [H⁺] is increased. At the same time, the concentration of the conjugate base [A⁻] increases. At equilibrium, the concentration of the three substances will be as follows:

[H⁺] = x[A⁻] = x[HA] = [HA] - x

The pH of a solution can be calculated from [H⁺] as follows:

pH = - log10 [H⁺]

The Ka is calculated using the equilibrium expression below:

Ka = [H⁺][A⁻] / [HA]

Substitute the given values into the equations.

pH = 3.26

pH = -log10 [H+]

[H+] = 6.9 × 10⁻⁴

[HA] = 0.02M

Ka = [H+][A-] / [HA]

Ka = (6.9 × 10⁻⁴)² / (0.02 - 6.9 × 10⁻⁴)

Ka = 5.9 × 10⁻⁹

Hence, the Ka of niacin is 5.9 × 10⁻⁹.

Therefore, the correct option is A.

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Rank the Alkyl Halides in Order of Increasing E2 Reactivity 2 Rank the following alkyl halides in order of increasing reactivity in an E2 reaction. Be sure to answer all parts. lowest reactivity ______intermediate reactivity ______highest reactivity ______

Answers

The alkyl halides ranked in order of increasing E2 reactivity are: lowest reactivity - tert-butyl bromide; intermediate reactivity - sec-butyl bromide; highest reactivity - ethyl bromide.

Tert-butyl bromide is the least reactive alkyl halide because it has the greatest steric hindrance, meaning there is less space for the nucleophile and base to interact. Sec-butyl bromide has intermediate reactivity because it has less steric hindrance than tert-butyl bromide but more than ethyl bromide. Ethyl bromide is the most reactive alkyl halide because it has the least steric hindrance and therefore the nucleophile and base can interact with ease. In summary, the order of increasing E2 reactivity is: tert-butyl bromide, sec-butyl bromide, and ethyl bromide.

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Practice Problem 11.15b Propose an efficient synthesis for the following transformation. y The transformation above can be performed with some reagent or combination of the reagents listed below. Give the necessary reagent(s) in the correct order, as a string of letters (without spaces or punctuation, such as "EBF"). If there is more than one correct solution, provide just one answer. A B с Br2 HBr, ROOR cat. OsO4, NMO D HBr E H2, Pd F H2SO4, H2O, HgSO4 I 1) O3; 2) DMS H 1) xs NaNH2, 2) H20 1) R2BH; 2) H2O2, NaOH Practice Problem 11.18d Propose an efficient synthesis for the following transformation. The transformation above can be performed with some reagent or combination of the reagents listed below. Give the necessary reagent(s) in the correct order, as a string of letters (without spaces or punctuation, such as "EBF"). If there is more than one correct solution, provide just one answer. B с HBr, ROOR 1) O3; 2) DMS Br2, hv F D H2S04, H20, HgSO4 E H2, Lindlar's cat. HC=CNa I G HBr H NaOme 1) R2BH; 2) H2O2, NaOH Practice Problem 11.21a X Incorrect. Propose an efficient synthesis for the following transformation. The transformation above can be performed with some reagent or combination of the reagents listed below. Give the necessary reagent(s) in the correct order, as a string of letters (without spaces or punctuation, such as "EBF"). If there is more than one correct solution, provide just one answer. A B HBr, ROOR HC=CNa 1) R2BH; 2) H2O2, NaOH D HBr E CH3CH2Br H2S04, H2O, HgSO4 G NaOH н conc. H2SO4, heat I 1) LiAlH4; 2) H307 Practice Problem 11.21b Propose an efficient synthesis for the following transformation. :- The transformation above can be performed with some reagent or combination of the reag spaces or punctuation, such as "EBF"). If there is more than one correct solution, provide j B с t-BuOK 1) O3; 2) DMS Br2, hv D H2SO4, H20, HgSO4 E H2, Lindlar's cat. F HC=CNa H HBr, ROOR HBr I 1) R2BH; 2) H202, NaOH Practice Problem 11.21c Propose an efficient synthesis for the following transformation. SOH The transformation above can be performed with some reagent or combination of the reagents listed below. Give the necessary reagent(s) in the correct order, as a string of letters (without spaces or punctuation, such as "EBF"). If there is more than one correct solution, provide just one answer. B с HBr, ROOR HC=CNa 1) R2BH; 2) H202, NaOH F D HBr E CH3CH2Br H2SO4, H20, HgSO4 I G NaOH H conc. H2S04, heat 1) 03; 2) H20 Propose an efficient synthesis for the following transformation. - li The transformation above can be performed with some reagent or combination of the reagents listed below. Give the necessary reagent(s) in the correct order, as a string of letters (without spaces or punctuation, such as "EBF"). If there is more than one correct solution, provide just one answer. А B HBr conc. H2S04, heat HC=CNa D HBY, ROOR E Hy, Lindlar's cat. 1) O3; 2) DMS G Brą, hv H dilute H2SO4 I H2, Pt Practice Problem 11.25a Propose an efficient synthesis for the following transformation: % Br The transformation above can be performed with some combination of the reagents listed below. Give the necessary reagents in the correct order for each transformation, as a string of letters (without spaces or punctuation, such as "EBF"). If there is more than one correct solution, provide just one answer. А t-BuOK B OsO4, NMO c 1) O3; 2) DMS D H2, Pt E H2, Lindlar's cat F xs HBr I G 1) BH 3.THF; 2) H202, NaOH H MeONa Br2, hv Reagent(s);

Answers

The reagent(s) for the given transformation is "A B C D E F G H I", which is t-BuOK, OsO4, NMO, O3, DMS, H2, Pt, H2, Lindlar's cat., xs HBr, BH3.THF, H202, NaOH, MeONa, Br2, hv.

What is transformation?

Transformation is the process of changing something into a different form or state. It can involve altering the physical characteristics, behaviors, attitudes, or perceptions of an entity. Transformation is a process that occurs in a variety of contexts including business, education, technology, and personal development.

A) t-BuOK - For the given transformation, the initial step is to add an alkoxide, here t-BuOK, to the starting material.
B) OsO4, NMO - After the addition of the alkoxide, the resulting intermediate has to be oxidized by OsO4 and NMO reagents.
C) 1) O3; 2) DMS - The intermediate then has to be ozonolyzed using ozone and dimethyl sulfide (DMS).
D) H2, Pt - The ozonolysis will result in a mixture of aldehyde and ketone. The aldehyde has to be hydrogenated using H2 and Pt.
E) H2, Lindlar's cat. - The ketone has to be hydrogenated using H2 and Lindlar's catalyst.
F) xs HBr - The product of the hydrogenation has to be converted to a tertiary alcohol by an elimination reaction with HBr.
G) 1) BH3.THF; 2) H202, NaOH - The tertiary alcohol has to be oxidized to a tertiary ketone using BH3.THF, H202 and NaOH.
H) MeONa - The tertiary ketone has to be methylated using MeONa.
I) Br2, hv - The product of the methylation has to be brominated using Br2 and heat.
Therefore, the reagent(s) for the given transformation is "A B C D E F G H I", which is t-BuOK, OsO4, NMO, O3, DMS, H2, Pt, H2, Lindlar's cat., xs HBr, BH3.THF, H202, NaOH, MeONa, Br2, hv.

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What is used to prepare a calibration curve? O A solvent blank. O A set of solutions with various unknown analyte concentrations. O A set of solutions with a range of precisely known analyte concentrations. A set of solutions with the exact same analyte concentration.

Answers

Option 3) A set of solutions with a range of precisely known analyte concentrations is used to prepare a calibration curve. The curve is generated by plotting the response (such as absorbance or peak area) of the instrument against the concentration of the analyte in the standard solutions.

The calibration curve is then used to determine the concentration of the unknown sample by comparing its response to the curve. A solvent blank is used to correct for any background signal from the solvent or other components in the sample matrix.

Calibration is the process of identifying any departure from the correct value by comparing the output of a measuring system or instrument to a standard or reference of established accuracy. Calibration's goals include ensuring the measurement system's accuracy and dependability and fixing any potential deviations.

In many different fields, including manufacturing, healthcare, and environmental monitoring, calibration is crucial. It is used to calibrate tools like spectrophotometers, pH metres, balances, and thermometers, among others. To make sure the instruments are operating within the necessary specifications, calibration procedures are normally carried out on a regular basis.

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Nitrogen combines with oxygen in the atmosphere during lightning flashes to form nitrogen monoxide, NO, which then reacts further with O2 to produce nitrogen dioxide, NO2. (a) What mass of NO2 is formed when NO reacts with 364 g O2? __ g (b) How many grams of NO are required to react with this amount of O2?

Answers

(a) 1046.5 g of NO₂ is formed when NO reacts with 364 g of O₂.

(b) 682.5g of NO is required to react with 364 g of O₂.

(a)

The balanced chemical equation for the formation of nitrogen dioxide is given below:

2NO + O₂ → 2NO₂

We have been given the mass of oxygen, and we have to calculate the mass of nitrogen dioxide formed. Using stoichiometry:

Amount of NO₂ produced =2 x  Amount of O₂ used

The molecular mass of NO₂ = 46 g/mol

The molecular mass of O₂ = 32 g/mol

Number of moles of O₂ = 364 g / 32 g/mol = 11.375 mol

From the balanced chemical equation:

1 mole O₂ produces 2 moles of NO₂

So, 11.375 moles O₂ will produce 11.375 x 2 = 22.75 moles of NO₂

Amount of NO₂ produced

= Number of moles × Molecular mass

=22.75  mol × 46 g/mol= 1046.5 g

Thus, 1046.5 g of NO₂ is formed when NO reacts with 364 g of O₂.

(b)

From the balanced chemical equation:

2 moles of NO requires 1 mole of O₂ or 1 mole of O₂ needs 2 mole of NO₂

11.375 moles of O₂ will need = 11.375 x 2 = 22.75 moles of NO

Amount of NO required = Number of moles × Molecular mass= 22.75 mol × 30 g/mol= 682.5 g

Thus, 682.5g of NO is required to react with 364 g of O₂.

Therefore, 364g of O₂ will require 682.5g of NO and will produce 1046.5 g of NO₂.

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Which organism provides energy to all other organisms in this ecosystem?



coyote


prarie grass


vulture


prarie dog

Answers

Answer:

The organism that provides energy to all other organisms in an ecosystem is usually a primary producer, which is an organism that produces its own food through photosynthesis or chemosynthesis. In this ecosystem, the primary producer is likely the prairie grass, as it converts sunlight into energy through photosynthesis and is the basis of the food chain. The other organisms listed (coyote, vulture, prairie dog) are consumers and obtain their energy by eating other organisms, either directly or indirectly.

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