the rate of decomposition of ph3 was studied at 861.00 °c. the rate constant was found to be 0.0575 s–1.

Answers

Answer 1

the concentration of  P[tex]H_{3}[/tex] after 12.50 seconds is approximately 0.313 M.

To determine the concentration of  P[tex]H_{3}[/tex] after 12.50 seconds, we can use the first-order rate equation:

[tex]\[ \text{Rate} = k \cdot [\text{PH_{3} }] \][/tex] P[tex]H_{3}[/tex]]

Given:

Initial concentration of P[tex]H_{3}[/tex] = 0.95 M

Rate constant (k) = 0.0745[tex]s^(-1)[/tex]

Time (t) = 12.50 s

Using the first-order rate equation, we can rearrange it to solve for the concentration of  P[tex]H_{3}[/tex]at a specific time:

{ P[tex]H_{3}[/tex]} = { P[tex]H_{3}[/tex]} [tex]e^{-kt}[/tex]

Substituting the given values:

[tex]PH_{3} = 0.95 \, \text{M} \cdot e^{-(0.0745 \, \text{s}^{-1} \cdot 12.50 \, \text{s})} \][/tex]

Calculating this expression, we find:

{ P[tex]H_{3}[/tex]} =  0.313

Therefore, the concentration of  P[tex]H_{3}[/tex] after 12.50 seconds is approximately 0.313 M.

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The rate of decomposition of PH3 was studied at 861.00 °C. The rate constant was found to be 0.0745 s–1. If the reaction is begun with an initial PH3 concentration of 0.95 M, what will be the concentration of PH3 after 12.50 s?  


Related Questions

The rate constant of a certain reaction E known to obey the Arrhenius equation, and to have an activation anergy E a ​
=62.0 kJimol. If the rate constant of this reaction is 5.4×10 4
M −1
−s −1
at 342.0C +

, what will the rate constant be at 297.0−C ? Round your answer to 2 significant digits.

Answers

The rate constant at 172.0°C is approximately 3.299 × 10³ M⁻¹s⁻¹.

The Arrhenius equation relates the rate constant (k) of a reaction to the temperature (T) and the activation energy (Ea). It is given by:

k = A × exp(-Ea / (R × T))

where:

k is the rate constant,

A is the pre-exponential factor or frequency factor,

Ea is the activation energy,

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

T is the temperature in Kelvin.

To find the rate constant (k) at 172.0°C (which is 445.2 K), we can use the given information and rearrange the Arrhenius equation:

k₁ = 5.0 × 10⁴ M⁻¹s⁻¹ (rate constant at 201.0°C, which is 474.2 K)

Ea = 30.0 kJ/mol (activation energy)

T₁ = 474.2 K (temperature at 201.0°C)

T₂ = 445.2 K (temperature at 172.0°C)

We can set up a ratio using the Arrhenius equation:

k₂ / k₁ = exp((Ea / (R × T₁)) - (Ea / (R × T₂)))

Substituting the given values:

k₂ / (5.0 × 10⁴ M⁻¹s⁻¹) = exp((30.0 × 10³ J/mol) / (8.314 J/(mol K) × 474.2 K) - (30.0 × 10³ J/mol) / (8.314 J/(mol K) × 445.2 K))

k₂ / (5.0 × 10⁴ M⁻¹s⁻¹) = exp(7.198 - 7.640)

k₂ / (5.0 × 10⁴ M⁻¹s⁻¹) = exp(-0.442)

k₂ = (5.0 × 10⁴ M⁻¹s⁻¹)×exp(-0.442)

k₂ = 3.299 × 10³ M⁻¹s⁻¹

Therefore, the rate constant at 172.0°C is approximately 3.299 × 10³ M⁻¹s⁻¹.

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The rate constant of a certain reaction E known to obey the Arrhenius equation, and to have an activation anergy Ea = 30.0 KJ/mol.  ​If the rate constant of this reaction is 5.0×10⁴ M⁻¹S⁻¹ at 201.0⁰ C, what will the rate constant be at 172.0 ⁰C.

Be sure to answer all parts. An empty Erlenmeyer flask weighs 256.6 g. When filled with water (d=1.00 g/cm 3
), the flask and its contents weigh 407.2 g. (a) What is the volume of water in the flask? Enter your answer in scientific notation. ×10 cm 3
(b) How much does the flask weigh when filled with the same volume of chloroform (d=1.48 g/cm 3
) ?

Answers

a) So, the volume of water in the flask is 1.506 × 10² cm³ b) Therefore, the flask weighs 479.9 g when filled with the same volume of chloroform (d=1.48 g/cm³).

(a) What is the volume of water in the flask?

Step 1: Calculate the mass of water

Mwater = Mass of flask and water - mass of flask

= 407.2 - 256.6

= 150.6 g

Step 2: Calculate the volume of water using density and mass

Density of water, d = 1.00 g/cm³

Volume of water,

Vwater= Mass of water/Density of water

= 150.6/1.00

= 150.6 cm³

= 1.506 × 10² cm³

So, the volume of water in the flask is 1.506 × 10² cm³

(b) How much does the flask weigh when filled with the same volume of chloroform (d=1.48 g/cm³)?

When filled with chloroform, the

mass of the flask and chloroform = Mass of empty flask + Mass of chloroform

Similarly,

Mchloroform = Mflask + Vwater × Dchloroform

Mchloroform = 256.6 + 1.506 × 10² × 1.48

Mchloroform = 256.6 + 223.3

Mchloroform = 479.9 g

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What is the expected major product arising from the reaction of 1-butene with dilute sulfuric acid? (Hint; draw out chemical structures)
Select one:
a. 1-butanol via a Markovnikov addition
b. 2-butanol via a Markovnikov addition
c. 1-butanol via an anti-Markovnikov addition
d. 2-butanol via an anti-Markovnikov addition
e. 2-butanesulfonic acid via a Markovnikov addition

Answers

The correct answer to this question is option C: 1-butanol via an anti-Markovnikov addition.1-butene is an unsymmetrical alkene that can react with an acid such as sulfuric acid to produce an alcohol via an anti-Markovnikov addition.

The reaction involves protonation of the double bond and the formation of a carbocation intermediate. This intermediate can be attacked by the nucleophile water, which will add to the least substituted carbon of the alkene (an anti-Markovnikov addition) to give the alcohol as the major product.The chemical equation for the reaction is as follows:$$\ce{CH3CH2CH=CH2 + H2SO4 ->[H2O] CH3CH2CH2CH2OH}$$.

Thus, the expected major product arising from the reaction of 1-butene with dilute sulfuric acid is 1-butanol via an anti-Markovnikov addition.An anti-Markovnikov addition reaction is an organic reaction where the nucleophile (or hydrogen) adds to the less-substituted carbon of the alkene.

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How manyH_{2}SO_{4}molecules are there in 200 cm^3 ofH_{2}SO_{4}, and whose density is 1.83 g/cm^3?

Answers

There are 2.43 × 10²³ sulfuric acid molecules in 200 cm³ of H2SO4, which has a density of 1.83 g/cm³.

The number of sulfuric acid (H2SO4) molecules in 200 cm³ of H2SO4 whose density is 1.83 g/cm³ is 2.43 x 10²³ molecules.

H2SO4 is a colorless, odorless, oily liquid. Sulfuric acid is a strong, dense acid that is an essential component of the chemical industry.

It is widely used in the chemical and pharmaceutical industries. Sulfuric acid (H2SO4) has a density of 1.83 g/cm³.

The volume of H2SO4 is given in the problem.

The formula for calculating the number of sulfuric acid molecules is as follows:

Number of H2SO4 molecules

= (Amount of H2SO4 in grams)/(Molecular weight of H2SO4) × Avogadro's number

= (1.83 × 200)/(98 × 10³) × 6.022 × 10²³

≈ 2.43 × 10²³ molecules.

According to Avogadro's law, one mole of any substance contains 6.022 × 10²³ particles, be it molecules or atoms.

In other words, one mole of sulfuric acid has a mass of 98 g.

Therefore, 200 cm³ of sulfuric acid, which has a density of 1.83 g/cm³, has a mass of 366 g, which is equivalent to 3.73 moles.

Multiplying the number of moles by Avogadro's number yields the number of sulfuric acid molecules.

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identify the various parts of the name for the coordination compound potassium tetrachlorocuprate(ii) compound formula.

Answers

The compound formula for potassium tetrachlorocuprate(II) is [tex]K_2[CuCl_4][/tex], indicating that two potassium ions are combined with one copper ion and four chloride ions to form the compound.

The name "potassium tetrachlorocuprate(II)" for the coordination compound indicates several important parts:

"Potassium": This is the cation present in the compound, which is potassium (K+). It signifies the metal ion.

"Tetrachlorocuprate(II)": This refers to the anion in the compound. It consists of the central metal ion, copper (Cu2+), coordinated with four chloride ions (Cl-) around it. The Roman numeral "(II)" indicates the oxidation state of copper, which is +2 in this case.

"Compound": This term signifies that the given substance is a compound, formed by the combination of multiple elements or ions.

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there are many ways to produce electricity. describe two energy sources that use a chemical reaction in the process of making electricity

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Two energy sources that utilize chemical reactions in the process of generating electricity are fuel cells and batteries.

Batteries: Batteries are electrochemical cells that convert chemical energy into electrical energy. They are made up of two electrodes, a cathode and an anode, and an electrolyte, which is a substance that allows ions to flow between the electrodes.

When a battery is connected to a load, the chemical reaction between the electrodes and the electrolyte produces an electric current.

Fuel cells: Fuel cells are also electrochemical cells, but they use a continuous supply of fuel and oxygen to produce electricity. The most common type of fuel cell is the proton exchange membrane fuel cell (PEMFC), which uses hydrogen and oxygen as fuel.

When hydrogen and oxygen are combined at the anode of a PEMFC, they produce electrons and protons. The electrons flow through an external circuit to create an electric current, while the protons flow through the electrolyte to the cathode. At the cathode, the protons combine with oxygen to form water.

Both batteries and fuel cells are important sources of electricity, and they have a wide range of applications. Batteries are used in a variety of devices, including cell phones, laptops, and cars. Fuel cells are used in vehicles, power plants, and other applications where a continuous source of electricity is needed.

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Completely classify gaseous CO 2

. Homogeneous Mixture Mixture Compound Element Heterogeneous Mixture Pure Substance

Answers

In conclusion, gaseous CO2 can be classified as a pure substance, and it can exist in both homogeneous and heterogeneous mixtures, depending on its environment. option a & c

Gaseous CO2 can be classified as a pure substance. A pure substance refers to a substance that contains only one type of particle. These particles can either be atoms or molecules. In this case, gaseous CO2 is composed of only one type of molecule: carbon dioxide.

Carbon dioxide is made up of one carbon atom and two oxygen atoms. It is produced naturally through biological processes like respiration, fermentation, and photosynthesis. Carbon dioxide is also produced through industrial processes like combustion, cement production, and fossil fuel extraction.

As a gas, carbon dioxide can exist in both a homogenous mixture and a heterogeneous mixture. In a homogenous mixture, carbon dioxide molecules are evenly distributed throughout the mixture, and it appears to be uniform throughout. An example of a homogenous mixture containing carbon dioxide is soda water.

On the other hand, carbon dioxide can also exist in a heterogeneous mixture where it is not evenly distributed throughout the mixture. An example of a heterogeneous mixture containing carbon dioxide is dry ice. Dry ice is a mixture of solid carbon dioxide and air. When dry ice is exposed to air, it sublimates, which means it turns from a solid directly into a gas, and the carbon dioxide molecules mix with the air molecules, creating a heterogeneous mixture.

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Use and interpret standard heats of formation. (a) Write the balanced chemical equation that represents the standard heat of formation of N 2
O 5
(s) at 298 K 1
Be sure to specify states. Write fractions with a slash, such as 1/2 for one half. If a box is not needed leave it blank. (b) The standard enthalpy change for the following reaction is −576 kJ at 298 K. 2Na(s)+I 2
( s)⟶2NaI(s) What is the standard heat of formation of NaI(s) ? kJ/mol

Answers

2N2(g) + 5O2(g) ⟶ 2N2O5(s)The balanced chemical equation that represents the standard heat of formation of N2O5(s) at 298 K is 2N2(g) + 5O2(g) ⟶ 2N2O5(s).(b) -987.2 kJ/molThe standard heat of formation of NaI(s) is -987.2 kJ/mol.

Standard heats of formation are the energy changes that occur when one mole of a substance is formed from its constituent elements under standard conditions. It can be represented as ΔH˚f, the standard heat of formation. This value is zero for the standard state of an element.

The balanced chemical equation that represents the standard heat of formation of N2O5(s) at 298 K is as follows:

2N2(g) + 5O2(g) ⟶ 2N2O5(s)

The standard heat of formation of a compound is defined as the enthalpy change associated with the formation of one mole of the compound from its constituent elements in their standard states.

The standard heat of formation of NaI(s) can be calculated using Hess's Law, which states that if a reaction can be expressed as the sum of two or more other reactions, then the enthalpy change for the overall reaction is equal to the sum of the enthalpy changes for the individual reactions.

Using Hess's Law, the standard heat of formation of NaI(s) can be calculated as follows:

2Na(s) + I2(g) ⟶ 2NaI(s) ΔH1˚

=-576 kJ2Na(s) + 2Cl2(g) ⟶ 2NaCl(s) + ΔH2˚Na(s) + 1/2I2(g) ⟶ NaI(s) + ΔH3˚

The second equation is the reverse of the third equation and, thus, the enthalpy change for the third equation should have the opposite sign of the enthalpy change for the second equation.

ΔH2˚=-411.2 kJΔH3˚

=+71.9 kJ/molNa(s) + 1/2I2(g) ⟶ NaI(s) + 71.9 kJ/mol2Na(s) + 2Cl2(g) ⟶ 2NaCl(s) + 411.2 kJ/mol2Na(s) + I2(g) ⟶ 2NaI(s) + (-576 kJ/mol)

Using Hess's Law, we can say that

ΔH3˚ + (-ΔH2˚) = ΔH1˚ΔH3˚ + 411.2 kJ/mol

= -576 kJ/molΔH3˚ = -411.2 kJ/mol + (-576 kJ/mol)ΔH3˚

= -987.2 kJ/mol

The standard heat of formation of NaI(s) is -987.2 kJ/mol.

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an autotroph captures energy from other sources and does not actually produce energy because ... question 14 options: 1) energy cannot be created or destroyed. 2) the transfer of energy increases entropy. 3) once energy is created it can be destroyed. 4) kinetic energy is based on location.

Answers

An autotroph captures energy from other sources and does not actually produce energy because energy cannot be created or destroyed. Hence option option 1 is correct.

An organism that has the ability to manufacture food on its own can do so by utilising resources such as light, water, carbon dioxide, or other elements. Autotrophs are also known as producers since they make their own nourishment.

A lower trophic level always transfers energy to a higher trophic level. Autotrophs are producers and are found at the bottom of the food chain. Heterotrophs are consumers that function as primary, secondary, and tertiary consumers at higher trophic levels. As a result, autotrophs and heterotrophs exchange energy.

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Use the References to access Important values if needed for this question. 1. How many MOLECULES of phosphorus triiodide are present in 6.95 grams of this compound? molecules. 2. How many GRAMS of phosphorus triiodide are present in 9.49×10 22
molecules of this compound? grams. Use the References to access important values if needed for this question. a. How many ATOMS of carbon are present in 7.14 grams of carbon tetrafluoride? atoms of carbon . b. How many GRAMS of fluorine are present in 7.51×10 22
molecules of carbon tetrafluoride? grams of fluorine .

Answers

The number of grams of Fluorine in 7.51 × 10²² molecules of Carbon Tetrafluoride is 0.9495 g.

Given,

1. Number of grams of Phosphorus Triiodide = 6.95 g

To find, Number of molecules of Phosphorus Triiodide = ?

First we need to find the molar mass of the compound Phosphorus Triiodide.

Phosphorus Triiodide (PI3)

Molar Mass of PI3 = Molar Mass of P + 3 × Molar Mass of I

= 30.97 + (3 × 126.9)

= 30.97 + 380.7

= 411.67 g/mol

Number of moles of PI3 = Given mass / Molar mass

= 6.95 / 411.67

= 0.01685 mol

One mole of any substance contains Avogadro's number (6.022 × 10²³) of particles (molecules or atoms).

Therefore,

Number of molecules of PI3 = Number of moles × Avogadro's number

= 0.01685 × 6.022 × 10²³

= 1.014 × 10²² molecules

Hence, the number of molecules of phosphorus triiodide present in 6.95 grams of this compound is 1.014 × 10²² molecules.

2. Number of molecules of Carbon Tetrafluoride = 7.51 × 10²² molecules

To find,Number of grams of Carbon Tetrafluoride = ?

a. Number of atoms of Carbon in 7.14 grams of Carbon Tetrafluoride.

To find the number of atoms of carbon, we first need to calculate the number of moles of Carbon Tetrafluoride.

Carbon Tetrafluoride (CF4)

Molar mass of CF4 = Molar Mass of C + 4 × Molar Mass of F

= 12.01 + 4 × 18.99

= 12.01 + 75.96

= 88.97 g/mol

Number of moles of CF4 = Given mass / Molar mass

= 7.14 / 88.97

= 0.080 mol

One mole of Carbon Tetrafluoride (CF4) contains one mole of carbon (C) atoms, i.e. 6.022 × 10²³ carbon atoms. Therefore,

Number of atoms of carbon = Number of moles × Avogadro's number

= 0.080 × 6.022 × 10²³

= 4.82 × 10²² atoms

b. Number of grams of Fluorine in 7.51 × 10²² molecules of Carbon Tetrafluoride.

To find the number of grams of Fluorine, we first need to calculate the number of moles of Carbon Tetrafluoride.

Carbon Tetrafluoride (CF4)

Molar mass of CF4 = Molar Mass of C + 4 × Molar Mass of F

= 12.01 + 4 × 18.99

= 12.01 + 75.96

= 88.97 g/mol

Number of moles of CF4 = Number of molecules / Avogadro's number

= 7.51 × 10²² / 6.022 × 10²³

= 0.0125 mol

In one mole of CF4, there are 4 moles of Fluorine (F). Therefore,

Number of moles of Fluorine = 4 × 0.0125

= 0.050 mol

Molar mass of F = 18.99 g/mol

Number of grams of Fluorine = Number of moles × Molar mass

= 0.050 × 18.99

= 0.9495 g

Hence, the number of grams of Fluorine in 7.51 × 10²² molecules of Carbon Tetrafluoride is 0.9495 g.

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you mix 25.0 ml of 0.300 m ammonium carbonate with 50.0 ml of 0.200 m aluminum chloride and observe a white precipitate. what mass of solid is obtained? give the concentration of each ion still remaining in solution after the precipitation is complete.

Answers

The mass of the precipitate that is produced from the reaction is  0.585 g

What is a precipitate?

Number of moles of ammonium carbonate = 25/1000 L * 0.3 M

= 0.0075 moles

Number of moles of aluminum chloride = 50/1000 * 0.2 M

= 0.01 moles

If 3 moles of ammonium carbonate reacts with 2 moles of aluminum chloride

0.0075 moles of ammonium carbonate reacts with 0.0075 * 2/3

= 0.005 moles

Thus ammonium carbonate is the limiting reactant.

If 3 moles of ammonium carbonate produces 1 mole of the precipitate

0.0075 moles of ammonium carbonate would produce 0.0075 moles* 1/3

= 0.0025 moles

Mass of the precipitate = 0.0025 moles * 234 g/mol

= 0.585 g

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Magnesium+makes+up+2.1%+of+the+earth's+crust.+how+many+grams+of+magnesium+are+in+a+sample+of+the+earth's+crust+with+a+mass+of+50.25+g?

Answers

105.425 grams of magnesium are in a sample of the earth's crust with a mass of 50.25g.

To solve the given problem we can use the following steps:

We know that magnesium makes up 2.1% of the earth's crust.

Therefore, the mass of magnesium in 1% of the earth's crust is (50.25 g x 2.1%) / 100 = 1.05425 g.

So, the mass of magnesium in the entire earth's crust is 1.05425 g x 100 = 105.425 g

Thus, there are 105.425 grams of magnesium in a sample of the earth's crust with a mass of 50.25 g.

Hence, the required answer is 105.425 grams.

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One-half liter of 2.57m hi is mixed with 284 ml of 2.78 m of h2so4. what is the concentration of h+ in the resulting solution? enter a number to 4 decimal places and in m of h+.

Answers

The concentration of H⁺ in the resulting solution is 4.0757 M.

To calculate the concentration of H⁺ in the resulting solution, we can use the concept of molar concentration and the stoichiometry of the given acids.

Given:

Volume of HI (hydroiodic acid) = 0.5 L = 500 mL

Molarity of HI = 2.57 M

Volume of H₂SO₄ (sulfuric acid) = 284 mL

Molarity of H₂SO₄ = 2.78 M

First, we need to calculate the moles of H⁺ contributed by each acid:

Moles of H⁺ from HI = (Molarity of HI) × (Volume of HI in L) = 2.57 M × 0.5 L = 1.285 mol

Moles of H⁺ from H₂SO₄ = (Molarity of H₂SO₄) × (Volume of H₂SO₄ in L) = 2.78 M × 0.284 L = 0.79052 mol

Next, we sum up the moles of H⁺ from both acids:

Total moles of H⁺ = Moles of H⁺ from HI + Moles of H⁺ from H₂SO₄ = 1.285 mol + 0.79052 mol = 2.07552 mol

Finally, we calculate the concentration of H⁺ in the resulting solution:

Concentration of H⁺ = (Total moles of H⁺) / (Total volume of the resulting solution in L) = 2.07552 mol / (0.5 L + 0.284 L) = 4.0757 M

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(a) assuming that drg3 and l are the same in both experiments, estimate the value of b. (b) estimate the value of ket when r

Answers

The value of B is -0.7 [tex]nm^{-1}[/tex], assuming that both l and DrG3 are the same in both experiments.

In a chemical reaction, an electron acceptor is a species that accepts or receives electrons, whereas an electron donor delivers or donates electrons. The creation of chemical bonds and the movement of electric current in several procedures, including redox reactions, are made possible by this transfer of electrons.

Given that,

[tex]K_{et}=2.02\times10^{5}\\r=1.11 nm\\K_{et2}=2.8\times10^{4}\\r2=1.23 nm\\[/tex]

Using Equation:

⇒ [tex]\ln{K_{et}} = -Br+Constant[/tex]

The slope of a plot of [tex]\ln{K_{et}}[/tex] v/s r is -B

The slope of a line default by two pound slope is,

Slope = [tex]\frac{\triangle y}{\triangle x}[/tex] = [tex]\frac{\ln{K_{et2}} - \ln{K_{et}}}{r2-r1} = -B[/tex]

-B = [tex]\frac{\ln{2.8\times10^{4}} - \ln{2.02\times10^{5}}}{1.23-1.11}[/tex]

-B=0.7 [tex]nm^{-1}[/tex]

B=-0.7 [tex]nm^{-1}[/tex]

Therefore, the value of B is -0.7 [tex]nm^{-1}[/tex].

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The correct question is: For a pair of electron donors and acceptors, ket = 2.02 × 105 s-1 when r = 1.11 nm and ket = 2.8 × 104 s-1 when r = 1.23 nm. (a) Assuming that DrG3 and l are the same in both experiments, estimate the value of b.

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If the accepted value for hte heat of combustion for sugar is 5639 kj/mol. calculate the percent error.

Answers

The percent error for the heat of combustion of sugar, given an accepted value of 5639 kJ/mol and a measured value of 5700 kJ/mol, is approximately 0.79%.

To calculate the percent error, we substitute the measured value (M) and the accepted value (A) into the formula:

Percent Error = [(M - A) / A] × 100%

In this case, the measured value is M = 5700 kJ/mol, and the accepted value is A = 5639 kJ/mol. Substituting these values into the formula, we have:

Percent Error = [(5700 - 5639) / 5639] × 100%

= (61 / 5639) × 100%

≈ 0.79%

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What is the density of a substance that has a mass of 33.23 g and a volume of 21.72 mL ?

Answers

The density of the substance is 1.53 g/mL.

The formula to determine the density of a substance is given as follows;

Density = Mass/Volume

We are given;

Mass = 33.23 g

Volume = 21.72 mL

To find the density, we will substitute the given values in the formula for density;

Density = Mass/Volume

= 33.23 g / 21.72 mL

= 1.53 g/mL

Therefore, the density of the substance is 1.53 g/mL.

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determine the number of atoms for each compound in reactants,number of atoms for each compound in the products,balance chemical reactions show all work.

Answers

Balancing ensures that the law of conservation of mass is satisfied, where the total number of atoms in the reactants is equal to the total number of atoms in the products.

By carefully analyzing the number of atoms for each element in the reactants and products, and adjusting the coefficients accordingly, we can balance the chemical equation. To balance chemical reactions and determine the number of atoms in reactants and products, we need to follow a systematic approach. First, we identify the elements present in each compound and count the number of atoms for each element. Then, we balance the equation by adjusting coefficients in front of the compounds. Finally, we calculate the number of atoms in the balanced equation. This process ensures that the law of conservation of mass is upheld, where the total number of atoms in the reactants equals the total number of atoms in the products.

When balancing a chemical equation, we need to consider the number of atoms for each element on both sides of the equation. Let's take the example of the reaction between hydrogen gas (H2) and oxygen gas (O2) to form water (H2O). In the reactants, we have 2 atoms of hydrogen and 2 atoms of oxygen. In the products, we have 2 atoms of hydrogen and 1 atom of oxygen.

To balance this equation, we can start by adjusting the coefficient in front of water (H2O) to ensure the same number of hydrogen atoms on both sides. In this case, we set the coefficient to 2, giving us 4 hydrogen atoms in the products. Now, we have 4 hydrogen atoms and 2 oxygen atoms in the products, which means we need to balance the oxygen atoms.

To achieve this, we adjust the coefficient in front of oxygen gas (O2) to 2. This gives us 4 oxygen atoms in the reactants and 4 oxygen atoms in the products. Now, the equation is balanced with 4 hydrogen atoms and 4 oxygen atoms on both sides.

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Question:

determine the number of atoms for each compound in reactants,number of atoms for each compound in the products,balance chemical reactions show all work.

What volume of the stock solution (part a) would contain the number of moles present in the diluted solution (part b)? express your answer with the appropriate units.

Answers

The volume of the solution that we are looking for in the problem is 0.06 moles

What is a stock solution?

A stock solution refers to a concentrated solution of a substance that is prepared with the intention of diluting it to obtain lower concentrations for various applications.

From part A;

Number of moles of luminol = 20g/177 g/mol

= 0.11 moles

Molarity =  0.11 moles * 1000/75 L

= 1.45 M

From part B;

Number of moles = Concentration * volume

= 0.03 M * 2L

= 0.06 moles

From part C;

Volume = Number of moles /Concentration

= 0.06 moles/1.45 M

= 0.04 L or 40 mL

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What volume (in ml) of 0.7 m barium hydroxide would neutralize 98.8 ml of 2.709 m hydrobromic acid? enter to 1 decimal place.

Answers

According to the balanced chemical equation, it takes 1 mole of Ba(OH)₂ to neutralize 2 moles of HBr.

2 HBr + Ba(OH)₂ → BaBr₂ + 2 H₂O

From the balanced equation, we can see that the stoichiometric ratio between HBr and Ba(OH)₂ is 2:1.

Let's calculate the volume of Ba(OH)₂:

Molarity of HBr = 2.709 M

Volume of HBr = 98.8 ml = 0.0988 L

Molarity of Ba(OH)₂ = 0.7 M

Volume of Ba(OH)₂ = ?

Using the stoichiometric ratio, we have:

(2.709 M) × (0.0988 L) = (0.7 M) × (Volume of Ba(OH)₂) × 2

Volume of Ba(OH)₂ = (2.709 M × 0.0988 L) / (0.7 M × 2)

Volume of Ba(OH)₂ ≈ 0.1959 L

195.9 ml (rounded to 1 decimal place)

Therefore, approximately 195.9 ml of 0.7 M barium hydroxide would be required to neutralize 98.8 ml of 2.709 M hydrobromic acid.

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a monoprotic weak acid, ha , dissociates in water according to the reaction ha(aq)↽−−⇀h (aq) a−(aq) the equilibrium concentrations of the reactants and products are [ha]

Answers

The equilibrium concentrations of the reactants and products in the dissociation reaction of a monoprotic weak acid, ha(aq)↽−−⇀h (aq) a−(aq), can be determined using the equation for the equilibrium constant, Ka.

To calculate the equilibrium concentration of [ha], we need the initial concentration of the weak acid and the value of Ka. Once we have those values, we can use an ICE table (Initial, Change, Equilibrium) to find the equilibrium concentration.Let's assume the initial concentration of ha is [ha]₀ mol/L. At equilibrium, let's say the concentration of ha is [ha] mol/L.

The dissociation reaction can be represented as: (aq) + a−(aq) The equilibrium expression for this reaction is: Ka = [h][a−] / [ha] Since ha is a monoprotic weak acid, the concentration of [h] at equilibrium is equal to the concentration of [a−] at equilibrium, which we can represent as x. Substituting the values into the equation, we get:
Ka = x * x / [ha] Rearranging the equation, we find:
x² = Ka * [ha] Taking the square root of both sides.

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Use your model and data to predict the angle of reflection of a beam of light reflected off a mirror if the angle of incidence of the beam of light is 40 degrees. Explain your reasoning for how you came up with your prediction

Answers

The predicted angle of reflection for a beam of light reflected off a mirror with an angle of incidence of 40 degrees is 40 degrees. This prediction is based on the law of reflection.

The angle of reflection of a beam of light reflected off a mirror can be predicted using the law of reflection. According to this law, the angle of incidence is equal to the angle of reflection.

In this case, the angle of incidence is given as 40 degrees. Therefore, the angle of reflection will also be 40 degrees. This is because the law of reflection states that the angle at which a beam of light strikes a mirror is equal to the angle at which it is reflected.

The law of reflection is a fundamental principle in optics that describes the behaviour of light when it interacts with a mirror or other reflective surface. It states that the angle of incidence, which is the angle between the incident beam of light and the normal (a line perpendicular to the surface of the mirror), is equal to the angle of reflection, which is the angle between the reflected beam of light and the normal.

In this case, since the angle of incidence is given as 40 degrees, we can use the law of reflection to predict that the angle of reflection will also be 40 degrees. This means that the beam of light will be reflected off the mirror at the same angle at which it strikes the mirror.

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t. place all hydrogens . present moleculartm 2. c13 h2f 3

Answers

Therefore, the total number of hydrogen atoms will be equal to 3 × 13 = 39.

Now, we can place all the hydrogen atoms in the given compound as follows:

We have 39 hydrogen atoms which are placed in the above structure at appropriate positions.

The molecular formula of the given compound is C13H2F3.

We are required to place all the hydrogens present in the compound. So, let's count the number of hydrogen atoms in the given compound.

Number of hydrogen atoms in the compound = 2 × 13 + 3 = 29.

Now, let's place all the hydrogens present in the compound.

The compound has 13 carbon atoms, and each carbon atom forms four bonds.

Out of these, one bond is with the fluorine atom and the rest three bonds are with the hydrogen atoms.

So, we can place 3 hydrogen atoms per carbon atom.

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Describe about the stable structures of cyclic
compounds (3~6 membered ring) in terms of torsional strain and
angle strain.

Answers

Cyclic compounds have a stable structure which is determined by their ring size. Cyclopropane and cyclobutane rings are under torsional strain as there is an eclipsed conformation in which the torsional angle is 0°. The angles are 60° in cyclopropane and 90° in cyclobutane.

These angles are not near the ideal tetrahedral angle of 109.5°.Due to this strain, cyclopropane and cyclobutane undergo reactions easily in order to release the strain. The strain energy is much lower in cyclopentane and cyclohexane due to their ring angles being closer to the ideal tetrahedral angle of 109.5°. Cyclopentane has 108° bond angles and has little torsional strain. Cyclohexane can exist in different conformations and the most stable form is the chair conformation, in which all carbons are staggered and there are no eclipsed bonds.

In terms of angle strain, small rings experience angle strain due to the ring angles being less than 109.5°. Cyclopropane and cyclobutane have the most angle strain. Cyclic compounds with larger rings such as cyclopentane and cyclohexane have little angle strain.

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Enter your answer in the prowided bor. Carry out the following calculation, maling sure that year answer has the correct aumber of significant figures: 3.45 m
4.475 m×3.40 m

=

Answers

We multiply 15.255 m² with 3.45 m,15.255 m² × 3.45 m = 52.671975 m³ ≈ 52.7 m³ (3 significant figures)

Therefore, the answer is 52.7 m³ (3 significant figures).

Given, 3.45 m4.475 m × 3.40 m

To carry out the given calculation, multiply 4.475 m and 3.40 m first and then multiply the result with 3.45 m. D

oing so, we get,

4.475 m × 3.40 m

= 15.255 m² (4 significant figures).

We multiply 15.255 m² with 3.45 m,

15.255 m² × 3.45 m

= 52.671975 m³ ≈ 52.7 m³ (3 significant figures)

Therefore, the answer is 52.7 m³ (3 significant figures).

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Determine the isomeric relationship of propene and cyclopropane. Justify your classification.

Answers

Therefore, the isomeric relationship between propene and cyclopropane is that they are structural isomers. They have different physical and chemical properties but the same molecular formula. The main difference between the two is that propene has a double bond while cyclopropane has a ring structure.

Propene and cyclopropane are both hydrocarbons with different chemical structures. Propene, also known as propylene, has the molecular formula C3H6 and contains one double bond between two carbon atoms with one hydrogen atom attached to each of the carbons.

The third carbon atom is bonded to two hydrogen atoms. Cyclopropane, on the other hand, has the same molecular formula as propene but is cyclic in nature, containing three carbon atoms. All three carbon atoms are joined together, and each of them is bonded to two hydrogen atoms. Cyclopropane is an example of a cycloalkane.

The isomeric relationship between propene and cyclopropane is that they are structural isomers. Structural isomers are isomers that have the same molecular formula but a different arrangement of atoms. In this case, propene and cyclopropane have the same molecular formula but a different arrangement of atoms, making them structural isomers.

The double bond in propene allows for the carbon atoms to be arranged in a linear chain, while in cyclopropane, the carbon atoms are arranged in a ring, with each carbon atom bonded to two other carbon atoms and two hydrogen atoms. Hence, propene and cyclopropane cannot be converted into one another without breaking or forming bonds. Isomers are molecules with the same chemical formula but different structural formulas.

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Atmospheric pressure is 1.00 atm , but air is only composed of 21.0 % (by moles) oxygen. Thus, the partial pressure of oxygen in air is less than 1.00 atm . What is the millimolar concentration of dissolved oxygen for a lake or stream under the partial pressure of oxygen and a temperature of 20 ∘C ? Express the millimolar concentration numerically to two significant figures.

Answers

The millimolar concentration of dissolved oxygen for a lake or stream under the partial pressure of oxygen and a temperature of 20°C is 0.0027 mmol/L.

Atmospheric pressure is 1.00 atm, but air is only composed of 21.0 % (by moles) oxygen. Thus, the partial pressure of oxygen in air is less than 1.00 atm.  

Given:P(atm) = 1.00 atm

Fraction of oxygen = 21.0%

Temperature (T) = 20°C

Conversion factor: 1 atm = 101.325 kPa

Solution:Partial pressure of O2 in air = 21/100 × 1 atm

= 0.21 atm

According to Henry's law, the concentration of dissolved oxygen (C) is directly proportional to the partial pressure of oxygen (P) at a given temperature (T).Mathematically, it can be written as:

C = kHP …… (1) where kH is Henry's law constant for O2 at a particular temperature, P is the partial pressure of O2, and C is the concentration of dissolved O2.If P is in atm, then C will be in mol/L.If P is in kPa, then C will be in mmol/L.The Henry's law constant for O2 at 20°C is 1.31 × 10⁻⁵ M/atm or 1.31 × 10⁻² mmol/L/kPa.Substituting the given values in equation (1), we get:

C = kH × P= 1.31 × 10⁻² mmol/L/kPa × 0.21 atm (as P is in atm)C = 0.0027 mmol/L (up to two significant figures).

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You need to make an aqueous solution of 0.164M sodium carbonate for an experiment in lab, using a 125 mL volumetric flask. How much solid sodium carbonate should you add? grams mL In the laboratory you dissolve 22.4g of iron(III) bromide in a volumetric flask and add water to a total volume of 250 - mL. What is the molarity of the solution? 5 more group attempts remaining

Answers

a)You should add approximately 2.16 grams of solid sodium carbonate to the 125 mL volumetric flask to prepare a 0.164 M solution.

b)The molarity of the iron(III) bromide solution is approximately 0.303 M.

To prepare a 0.164 M aqueous solution of sodium carbonate using a 125 mL volumetric flask, you need to calculate the amount of solid sodium carbonate required.

Molarity (M) is defined as moles of solute per liter of solution. Therefore, to calculate the amount of solid sodium carbonate (in moles) needed, we can use the following equation:

moles = Molarity × Volume (in liters)

moles = 0.164 M × 0.125 L

moles ≈ 0.0205 mol

Since the molar mass of sodium carbonate (Na2CO3) is approximately 105.99 g/mol, we can calculate the mass of solid sodium carbonate needed using the equation:

mass = moles × molar mass

mass ≈ 0.0205 mol × 105.99 g/mol

mass ≈ 2.16 g

Therefore, you should add approximately 2.16 grams of solid sodium carbonate to the 125 mL volumetric flask to prepare a 0.164 M solution.

For the second part of the question:

Given that 22.4 g of iron(III) bromide is dissolved in a volumetric flask and water is added to reach a total volume of 250 mL (0.250 L), we can calculate the molarity of the solution.

Molarity (M) is defined as moles of solute per liter of solution. Therefore, we can calculate the moles of iron(III) bromide using the equation:

moles = mass / molar mass

moles = 22.4 g / (molar mass of iron(III) bromide)

The molar mass of iron(III) bromide (FeBr3) is approximately 295.57 g/mol.

moles ≈ 22.4 g / 295.57 g/mol

moles ≈ 0.0758 mol

Now, we can calculate the molarity of the solution using the equation:

Molarity (M) = moles / volume (in liters)

Molarity ≈ 0.0758 mol / 0.250 L

Molarity ≈ 0.303 M

Therefore, the molarity of the iron(III) bromide solution is approximately 0.303 M.

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Which of the following factors will affect the accuracy of the measured molar mass of the complex? Only tick factors which correctly answer the question; ticking other answers will result in a reduced mark. Select one or more: measuring the absorbance of the solution at a wavelength of 580 nm instead of 480 nm. not mixing the solution in step 18 thoroughly. adding 4.9 mL of 2MKSCN in step 18 , instead of 5.0 mL. adding excess permanganate at step 17 so the solution is pink in colour.

Answers

Adding excess permanganate would oxidize some of the Fe2+ ions to Fe3+ ions, which would then lead to the formation of an incorrect complex. Therefore, it would affect the accuracy of the measured molar mass of the complex.

Molar mass is the mass of one mole of a substance, usually measured in grams per mole. Accuracy in the measured molar mass of the complex depends on the following factors: measuring the absorbance of the solution at a wavelength of 580 nm instead of 480 nm:

This would affect the molar mass of the complex as the wavelength at which absorbance is measured has a direct effect on the molar mass of the complex.not mixing the solution in step 18 thoroughly:

A poorly mixed solution in step 18 would affect the accuracy of the measured molar mass of the complex. adding 4.9 mL of 2MKSCN in step 18, instead of 5.0 mL: The concentration of the solution is of paramount importance as it is directly related to the molar mass of the complex.

Therefore, the 0.1 mL difference would affect the accuracy of the molar mass of the complex.adding excess permanganate at step 17 so the solution is pink in colour:

Adding excess permanganate would oxidize some of the Fe2+ ions to Fe3+ ions, which would then lead to the formation of an incorrect complex. Therefore, it would affect the accuracy of the measured molar mass of the complex.

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1. -log 5 y = 2.8
2. A silver nanocrystal has an entropy of 1.02 X 10-22 J/K. How many equivalent microstates correspond to its macrostate? (Use at least 3 sig figs in all calculations.)
3. Calculate the change in entropy (in J/K) that occurs when 200. g of ethanol (C2H6O) condenses from a gas to a liquid at its boiling point, 78oC (Hfus = 4.9 kJ/mol, Hvap = 38.56 kJ/mol).
4.If you plan on mixing 0.600 M NH3, 3.00 atm Cl2, 0.250 atm N2, and 2.00 M HCl, what will be the initial reaction quotient for the reaction below?
2 NH3 (aq) + 3 Cl2 (g) --> N2 (g) + 6 HCl (aq)

Answers

2. The number of equivalent microstates is 10²².

3. The change in entropy is 95.8 J/K.

4. The initial reaction quotient is 0.0078.

2. The entropy of a system is a measure of the number of microstates that are consistent with its macrostate. The more microstates that are consistent with a macrostate, the higher the entropy of the system.

In this case, the entropy of the silver nanocrystal is 1.02 x 10⁻²² J/K. This means that there are 10²² microstates that are consistent with the macrostate of the nanocrystal.

To calculate the number of microstates, we can use the following equation:

S = k ln W

where S is the entropy, k is Boltzmann's constant (1.38 x 10⁻²³ J/K), and W is the number of microstates.

In this case, we have:

[tex]1.02 \times 10^{-22} , \text{J/K} = 1.38 \times 10^{-23} , \text{J/K} \ln W[/tex]

ln W = 7.4

[tex]W = 10^{7.4}[/tex]

Therefore, the number of equivalent microstates is 10²².

3. The change in entropy (ΔS) is given by the following equation:

ΔS = ΔH/T

where ΔH is the change in enthalpy, T is the temperature, and ΔS is the change in entropy.

In this case, we have:

ΔS = (4.9 kJ/mol + 38.56 kJ/mol)/(78 + 273) K

ΔS = 95.8 J/K

Therefore, the change in entropy is 95.8 J/K.

4. The reaction quotient (Q) is a measure of the concentration of the reactants and products at a given point in a reaction. It is calculated using the following equation:

[tex]Q = \frac{[products]}{[reactants]^n}[/tex]

where n is the stoichiometric coefficient of each reactant or product.

In this case, the reaction quotient is:

[tex]Q = \frac{(2.00 , \text{M})^6}{(0.600 , \text{M})^2 (3.00 , \text{atm})^3}[/tex]

Q = 0.0078

Therefore, the initial reaction quotient is 0.0078.

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Organic chemistry lab. Describe the recrystallization procedure used to remove impurities from the desired product. The solvent used was warmed acetone and the product that was being purified/ recrystallized was Trimyristin. Please include acetone and Trimyristin when explaining the procedure and what each step does (how it works to remove impurities).

Answers

Recrystallization is a widely used method of purifying organic compounds. It works based on the principle of the selective solubility of the impurities and the desired compound in a solvent at different temperatures and then cooling the solution so that the compound of interest will crystallize out of the solution while impurities remain dissolved.

It is a three-step process: dissolving the impure substance, removing impurities, and finally, the separation of the pure compound.What is Trimyristin?Trimyristin is an ester of glycerol and fatty acid, found in nutmeg and coconut oil. It is an excellent source of hydrogen and carbon that can be used in the preparation of surfactants, synthetic flavourings, plasticizers, and cosmetics among other things.Recystallization of Trimyristin using warmed acetone:Trimyristin is recrystallized from warmed acetone to remove impurities. Acetone is a good solvent for recrystallizing Trimyristin as it is a polar, aprotic solvent that is suitable for this purpose.

Trimyristin dissolves in warmed acetone, and upon cooling, the solution's impurities remain in solution while Trimyristin crystallizes out. The procedure of recrystallization used to remove impurities from Trimyristin involves the following steps:Step 1: Dissolution of the impure compoundThe impure Trimyristin is added to the warm solvent, acetone, in a flask and stirred until it dissolves. This step helps to remove any insoluble impurities. Step 2: Removal of the impuritiesThe solution is then filtered through a hot filter to remove any insoluble impurities, such as dust, dirt, or other organic compounds, that may have remained in the solution.

This hot filtration helps to remove any impurities that might have remained in the solution.Step 3: Crystallization of Trimyristin from the solutionFinally, the solution is cooled slowly so that the Trimyristin crystals can be precipitated out of the solution. The slow cooling of the solution ensures that Trimyristin crystals form and separate out from the impurities, which remain dissolved in the solvent. Once the crystals have formed, they can be separated from the solution by vacuum filtration or decantation. The Trimyristin crystals can then be dried and weighed.

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