The molecule that exhibits the greatest London dispersion forces is a.The strength of the intermolecular forces depends on the size of the molecule, and thus the number of electrons it contains. This is because London dispersion forces, which are also known as induced dipole-induced dipole attractions, are temporary intermolecular forces that arise when there are temporary fluctuations in the electron density within a molecule.
The greater the electron cloud, the more polarizable the molecule, and the stronger the London dispersion forces. As a result, the larger a molecule is, the stronger its London dispersion forces are likely to be.The other options given don't contain larger molecules than option A. Therefore, the correct answer to the question is a.
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540,000 19. The growth process of Pseudomonas bacteria is a first order process with k=−0.035 min−1 at 37 Cells ∘C. The initial concentration is 1.0×103cells/L. What is the concentration (cells/L) after 3.00 hours? Give your answer in the numerical response line for #19 with the appropriate significant figures. 2.0×10′20. The growth process of Pseudomonas bacteria is a first order process with k=0.035 min−1 at 37 min∘C. The initial concentration is 1.0×103cells/L. How long will it take for the cells to double (hours)? Give your answer in the numerical response line for #20 with the appropriate significant figures.
The time required for Pseudomonas bacteria to double is 0.3305 hours. he initial concentration of Pseudomonas bacteria is given to be 1.0 × 10³ cells/L with the growth rate constant k as -0.035 min⁻¹ at 37°C.
We are required to find the concentration of the bacteria after 3.00 hours. We can use the first-order rate equation for the decay of bacteria.
`[tex]\frac{dN}{dt} = -kN`[/tex]
Here, N is the number of bacteria, t is the time and k is the rate constant.
Substituting the given values, we get: `[tex]\frac{dN}{dt} = -(-0.035) \times 1.0 \times 10^3[/tex]
`[tex]\frac{dN}{dt} = 35N` `=> \frac{dN}{N} = 35 dt`[/tex]
Integrating both sides, we get `ln(N) = 35t + C`
Here, C is the constant of integration. Since the initial concentration is given to be 1.0 × 10³ cells/L, we have
`ln(1.0 \times 10^3) = C` `=> C = 6.907`
Substituting this value, we get `ln(N) = 35t + 6.907`At t = 0, N = 1.0 × 10³ cells/L and at t = 3 hours, we are required to find the concentration.
`[tex]ln(N) = 35 \times 3 + 6.907[/tex] `=> `[tex]N = e^{35 \times 3 + 6.907}[/tex] `=> `[tex]N = 2.0 \times 10^{20}[/tex]
Therefore, the concentration of Pseudomonas bacteria after 3.00 hours is 2.0 × 10²⁰ cells/L.20. The growth process of Pseudomonas bacteria is given to be a first-order process with a rate constant k of 0.035 min⁻¹ at 37°C. We are required to find how long it will take for the cells to double in number.
The time required for the number of cells to double is known as doubling time, tᵈ. Doubling time can be calculated using the formula: `
[tex]t^d = \frac{ln(2)}{k}`[/tex]
Here, k = 0.035 min⁻¹. Substituting this value, we get: `tᵈ = ln(2) / 0.035` `=> tᵈ = 19.83 min`
We need to convert minutes to hours. `[tex]1 \space hour = 60 \space minutes[/tex] `=> `[tex]t^d = \frac{19.83}{60}[/tex] `=> `[tex]t^d = 0.3305 \space hours[/tex]
Therefore, the time required for Pseudomonas bacteria to double is 0.3305 hours (rounded off to 3 significant figures).
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What is the relationship between lattice enerygy and the strength of the attractive force holding ions in place?
The strength of the attractive force holding ions in place is directly related to the lattice energy.
Lattice energy refers to the energy released when gaseous ions come together to form a solid ionic compound. It is a measure of the strength of the attractive forces between the ions in the crystal lattice. The lattice energy is influenced by two main factors: the charges of the ions and the distance between them.
The strength of the attractive force holding ions in place is directly proportional to the lattice energy. When ions with opposite charges come together, they form strong electrostatic attractions between them. These attractions, known as ionic bonds, hold the ions in a fixed position within the crystal lattice. The greater the magnitude of the charges on the ions, the stronger the attractive force between them, resulting in higher lattice energy.
Furthermore, the distance between the ions also plays a crucial role in determining the strength of the attractive force. As the distance between ions decreases, the electrostatic attractions between them intensify, leading to an increase in lattice energy. This is because the closer the ions are, the stronger the electrostatic forces of attraction they experience.
In summary, the relationship between lattice energy and the strength of the attractive force holding ions in place is direct. Higher lattice energy corresponds to stronger attractive forces, which in turn result from larger ion charges and shorter distances between the ions.
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Classify P2Br8, WS2, KI, CH4 as molecular compounds or ionic
compounds
P₂Br₈, WS₂, and CH₄ are all molecular compounds, meaning that they are composed of discrete molecules held together by covalent bonds. KI is an ionic compound, meaning that it is composed of ions held together by electrostatic attractions. Therefore,
P₂Br₈: Molecular compoundWS₂: Molecular compoundKI: Ionic compoundCH₄: Molecular compoundIn general, molecular compounds are formed by sharing electrons between atoms, resulting in discrete molecules. Ionic compounds are formed by the transfer of electrons from one atom to another, resulting in the formation of ions that are held together by electrostatic attractions.
P₂Br₈ and WS₂ are both molecular compounds as they consist of covalent bonds between the atoms within the molecules.
KI is an ionic compound as it is composed of the cation K⁺ and the anion I⁻, which are held together by ionic bonds.
CH₄ is a molecular compound as it consists of covalent bonds between carbon (C) and hydrogen (H) atoms within the molecule.
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Sometimes, scientists will take the melting point of their recrystallized product. You will not be doing a melting point experiment until later in the semester, but theoretically, why would getting the melting point of your recrystallized product be beneficial? o Hint: It has to do with the purity of your sample Factors that could potentially have had an effect on the experimental outcomes
The melting point is the temperature at which a substance turns from a solid to a liquid. It's crucial to learn the melting point of a substance for a variety of reasons, including the identification and purity of the substance. As a result, it is essential to obtain the melting point of the recrystallized product.
If a substance has a lower melting point than it should, it is possible that it is impure. The impurities present in a substance will lower the melting point. The purer the substance, the higher the melting point will be. The melting point of the recrystallized product is essential to determine the purity of the product. If the melting point is close to the expected value, the substance is most likely pure. If the melting point is low, it means that the substance is not pure and that impurities are present. If the melting point is high, it means that the substance is too pure, or in other words, it has no impurities.
Obtaining the melting point of the recrystallized product is beneficial to determine the purity of the substance. It is essential to take the melting point of the recrystallized product since the purer the substance, the higher the melting point will be. If the melting point is low, it means that the substance is not pure and that impurities are present. Therefore, melting point data provides information on the purity of the substance.
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True or false, explain the false
20. C Organic chemistry studies the structure, properties, synthesis and reactivity of chemical compounds foed mainly by carbon and hydrogen, which may contain other elements, generally in small amounts such as oxygen, sulfur, nitrogen, halogens, phosphorus, silicon.
21. Every reaction begins with the gain of energy for the breaking of the bonds of the reactants.
22. C The entropy of the reactants is greater than that of the products.
23. A reaction where the change in enthalpy is greater than the change in entropy can be classified as spontaneous.
24. The energy of inteediates is greater than that of reactants and products.
25. The breaking of the water molecule into hydrogen and oxygen is an endotheic process, that is, energy is required to break the bonds of oxygen with hydrogen. One way to achieve this breakdown, and the foation of the products, is by increasing the temperature (example: 100 °C)
First and last statements are true while rest of the statements are false and the reasons are given below.
20. True - Organic chemistry studies the structure, properties, synthesis and reactivity of chemical compounds foed mainly by carbon and hydrogen, which may contain other elements, generally in small amounts such as oxygen, sulfur, nitrogen, halogens, phosphorus, silicon.
21. False - Every reaction requires the gain or the release of energy for the formation or breaking of the bonds of the reactants.
22. False - The entropy of the products is greater than that of the reactants.
23. False - A reaction where the change in enthalpy is greater than the change in entropy can be classified as non-spontaneous.
24. False - The energy of intermediates is lesser than that of reactants and products.
25. True - The breaking of the water molecule into hydrogen and oxygen is an endothermic process, that is, energy is required to break the bonds of oxygen with hydrogen. One way to achieve this breakdown, and the formation of the products, is by increasing the temperature (example: 100 °C).
Organic chemistry is a branch of chemistry that studies the structure, properties, synthesis, and reactivity of organic compounds. It mainly deals with compounds containing carbon and hydrogen atoms. These organic compounds can also contain other elements such as nitrogen, sulfur, oxygen, halogens, phosphorus, silicon, and others.
Every reaction requires the gain or release of energy for the formation or breaking of the bonds of the reactants. The energy required for bond breaking is always more significant than that released during bond formation, and the difference between the two is known as the change in enthalpy.
The entropy is the measure of disorder or randomness of a system. In an exothermic reaction, the entropy of the products is greater than the entropy of the reactants. The change in entropy is related to the dispersal of matter and energy within a system and its surroundings.
A reaction where the change in enthalpy is greater than the change in entropy can be classified as non-spontaneous. This is because such a reaction requires energy to occur and is not spontaneous on its own.The energy of intermediates is lesser than that of reactants and products.
The intermediates are reactive species that exist in between the reactants and the products and are unstable in nature.The breaking of the water molecule into hydrogen and oxygen is an endothermic process, that is, energy is required to break the bonds of oxygen with hydrogen. One way to achieve this breakdown, and the formation of the products, is by increasing the temperature.
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solid potassium hydroxide is slowly added to 125 ml of a 0.0456 m calcium nitrate solution. the concentration of hydroxide ion required to just initiate precipitation is
The concentration of hydroxide ion required to just initiate precipitation is 0.0456 M.
To determine the concentration of hydroxide ion required to initiate precipitation, we need to consider the stoichiometry of the reaction between calcium nitrate and potassium hydroxide. The balanced chemical equation for the reaction is:
Ca(NO3)2 + 2KOH -> Ca(OH)2 + 2KNO3
From the equation, we can see that 1 mole of calcium nitrate reacts with 2 moles of potassium hydroxide to produce 1 mole of calcium hydroxide.
Given that the initial volume of the calcium nitrate solution is 125 ml, and its concentration is 0.0456 M, we can calculate the number of moles of calcium nitrate present in the solution using the formula:
moles = concentration x volume
= 0.0456 M x 0.125 L
= 0.0057 moles
Since the stoichiometry of the reaction tells us that 1 mole of calcium nitrate reacts with 2 moles of potassium hydroxide, we need twice the number of moles of calcium nitrate for complete precipitation of calcium hydroxide. Therefore, the moles of hydroxide ions required to initiate precipitation is:
moles of hydroxide ions = 2 x 0.0057 moles
= 0.0114 moles
Finally, we can calculate the concentration of hydroxide ions required by dividing the moles by the final volume. The final volume is not given in the question, but assuming it remains the same as the initial volume (125 ml or 0.125 L), we have:
concentration of hydroxide ions = moles of hydroxide ions / final volume
= 0.0114 moles / 0.125 L
= 0.0912 M
Therefore, the concentration of hydroxide ion required to just initiate precipitation is 0.0912 M.
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Calculate the theoretical yield and the percent yield for the reaction of aluminum and ozone described below. Do this by constructing a BCA table, determining the maximum grams of product that can be produced, and determining the percent yield. Complete Parts 1-3 before submitting your answer.
2Al+O3 â Al 2O3
â
Theoretical yield: Calculate the maximum grams of Al2O3 that can be produced using a BCA table.
Percent yield: Calculate the percent yield by comparing the actual yield to the theoretical yield and expressing it as a percentage.
To determine the theoretical yield and percent yield for the reaction of aluminum (Al) and ozone (O3) to form aluminum oxide (Al2O3), we need to construct a BCA (balanced chemical equation) table and calculate the maximum grams of product that can be produced.
First, balance the chemical equation:
2Al + O3 → Al2O3
Next, construct the BCA table:
2Al + O3 → Al2O3
Initial: x y 0
Change: -2x -x +x
Equilibrium: x y - x x
Based on the balanced equation, we can see that 1 mole of Al2O3 is produced for every 2 moles of Al reacted. Since we do not have information about the amounts of Al and O3 provided, we cannot determine the limiting reactant directly. However, by comparing the stoichiometric ratios, we can conclude that the limiting reactant is likely to be O3.
Assuming we have an excess of Al, we can use the number of moles of O3 to calculate the maximum moles of Al2O3 that can be produced. From the BCA table, we see that the moles of Al2O3 formed are equal to x.
Finally, using the molar mass of Al2O3, we can convert the moles of Al2O3 to grams to determine the theoretical yield.
To calculate the percent yield, we would need the actual yield from a specific experimental result. The percent yield is then calculated by dividing the actual yield by the theoretical yield and multiplying by 100.
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A 47.8-mg sample of boron reacts with oxygen to fo 154 {mg} of the compound boron oxide. What is the empirical foula of boron oxide? Express your answer as a chemical foula.
The empirical formula of a compound is the simplest whole number ratio of the atoms present in the compound. It is calculated by dividing the molecular formula by the greatest common factor of the number of atoms of each element.
A 47.8 mg sample of boron (B) reacts with oxygen (O) to form 154 mg of boron oxide. The mass of oxygen can be determined by subtracting the mass of boron from the mass of the compound:Mass of oxygen = Mass of boron oxide - Mass of boron= 154 mg - 47.8 mg= 106.2 mgNow, we need to determine the empirical formula of boron oxide.
To do this, we need to convert the masses to moles using the molar masses of boron and oxygen Boron: Molar mass = 10.81 g/mol 47.8 mg = 47.8 x 10^-3 g
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Does a van der waal gas require more work for compression than an
ideak gas?
*ideal
Van der Waals gas and Ideal gas both have unique properties that make them different from each other. Van der Waals gas is a type of real gas while Ideal gas is a type of imaginary gas. They are both governed by different laws, and as a result, they possess different characteristics and properties. In terms of work for compression, a Van der Waals gas requires more work than an Ideal gas.
Here’s why:
Van der Waals gas is a real gas and behaves like a mixture of Ideal gas particles and intermolecular forces that exist between the particles. It consists of particles that occupy a finite volume and attract each other, resulting in an increased pressure that reduces the volume of the gas. As the pressure increases, the particles get closer and closer together, leading to greater intermolecular attractions and resulting in an increase in work for compression.
On the other hand, Ideal gas is an imaginary gas that does not interact with other gas particles or have any intermolecular forces. It only follows the Ideal gas law, which states that pressure, volume, and temperature are directly proportional to each other. Therefore, an Ideal gas requires less work for compression than a Van der Waals gas since Ideal gas particles do not interact with each other.
In conclusion, a Van der Waals gas requires more work for compression than an Ideal gas due to the intermolecular attractions between the gas particles. This results in a higher pressure that reduces the volume of the gas and thus requires more work to compress.
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Reggie is making a gingerbread house. He adds some candies on the roof to make it look nicer. Each candy has a mass of 3 grams. Reggie says he added 24 grams of candy to the roof.
Reggie did not add 24 grams of candy to the roof; his statement is incorrect.
According to Reggie, he added 24 grams of candy to the roof. However, we know that each candy has a mass of 3 grams. Therefore, to determine the actual amount of candy added, we can divide the total mass (24 grams) by the mass of each candy (3 grams).
24 grams ÷ 3 grams per candy = 8 candies
The calculation shows that Reggie actually added 8 candies to the roof, not 24 grams of candy. Reggie's statement of adding 24 grams is incorrect and does not align with the given information about the mass of each candy.
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You need to make an aqueous solution of 0.162 M barium acetate for an experiment in the lab, using a 125 mL volumetric flask. How much solid barium acetate should you add?
How many milliliters of an aqueous solution of 0.187 M magnesium nitrate is needed to obtain 15.4 grams of the salt?
In the laboratory, you dissolve 22.2 g of potassium nitrate in a volumetric flask and add water to a total volume of 375. mL.
What is the molarity of the solution? M
1. 0.162 M barium acetate requires 2.025 grams of solid.
2. 0.187 M magnesium nitrate solution: 82.35 mL for 15.4 grams.
3. 22.2 grams of potassium nitrate in 375 mL gives a molarity of 2.66 M.
1. Calculation for barium acetate:
Moles of barium acetate = Molarity × volume of solution (in liters)
Moles of barium acetate = 0.162 M × 0.125 L = 0.02025 moles
Grams of barium acetate = moles of barium acetate × molar mass
Grams of barium acetate = 0.02025 moles × 255.43 g/mol = 2.025 grams
2. Calculation for magnesium nitrate:
Volume of solution (in liters) = moles of solute / Molarity
Volume of solution (in liters) = 15.4 g / (0.187 mol/L) = 82.35 mL (converted to liters by dividing by 1000)
3. Calculation for potassium nitrate:
Molarity = moles of solute / volume of solution (in liters)
Molarity = 22.2 g / (375 mL / 1000) L = 2.66 M
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Deteine the number of atoms of in 25.0 moles of {Al}_{2}({SO}_{4})_{3}
One mole of any substance contains 6.022 x 10²³ atoms/molecules/formula units. The compound {Al₂(SO₄)₃} is made up of two aluminum atoms, three sulfur atoms, and twelve oxygen atoms.
Thus, the number of atoms in one mole of {Al₂(SO₄)₃} is:
2 x 6.022 x 10²³ (Al atoms/mole) + 3 x 6.022 x 10²³ (S atoms/mole) + 12 x 6.022 x 10²³ (O atoms/mole)= 2 x 6.022 x 10²³ + 3 x 6.022 x 10²³ + 12 x 6.022 x 10²³= (2 + 3 + 12) x 6.022 x 10²³= 17 x 6.022 x 10²³= 1.025 x 10²⁵ atoms/mole of {Al₂(SO₄)₃}
The number of atoms in 25.0 moles of {Al₂(SO₄)₃} is given by:
25.0 moles {Al₂(SO₄)₃} x 1.025 x 10²⁵ atoms/mole= 2.56 x 10²⁶ atoms of {Al₂(SO₄)₃}
There are 2.56 x 10²⁶ atoms in 25.0 moles of {Al₂(SO₄)₃}.
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Aqueous hydrobromic acid (HBr) will react with soid sodium hydroxide (NaOH) to prodoce aqueous sodium bromide (NaBr) and liouid water (H, O). Suppose 42.19 of hydrobromic acid is mixed with 9.2 g of sodium hydroxide. Caiculate the maximum mass of water that could bo produced by the chemical reaction. Be sure your answer has the correct number of significant digits
Taking into account definition of reaction stoichiometry, 4.14 grams of H₂O are formed when 42.19 of hydrobromic acid is mixed with 9.2 g of sodium hydroxide.
Reaction stoichiometryIn first place, the balanced reaction is:
HBr + NaOH → NaBr + H₂O
By reaction stoichiometry (that is, the relationship between the amount of reagents and products in a chemical reaction), the following amounts of moles of each compound participate in the reaction:
HBr: 1 moleNaOH: 1 moleNaBr: 1 moleH₂O: 1 moleThe molar mass of the compounds is:
HBr: 81 g/moleNaOH: 40 g/moleNaBr: 103 g/moleH₂O: 18 g/moleBy reaction stoichiometry, the following mass quantities of each compound participate in the reaction:
HBr: 1 mole ×81 g/mole= 81 gramsNaOH: 1 mole ×40 g/mole= 40 gramsNaBr: 1 mole ×103 g/mole= 103 gramsH₂O: 1 mole ×18 g/mole= 18 gramsLimiting reagentThe limiting reagent is one that is consumed first in its entirety, determining the amount of product in the reaction.
To determine the limiting reagent, it is possible to use a simple rule of three as follows: if by stoichiometry 81 grams of HBr reacts with 40 grams of NaOH, 41.19 grams of HBr reacts with how much mass of NaOH?
mass of NaOH= (41.19 grams of HBr× 40 grams of NaOH)÷ 81 grams of HBr
mass of NaOH= 20.83 grams
But 20.83 grams of NaOH are not available, 9.2 grams are available. Since you have less mass than you need to react with 41.19 grams of HBr, NaOH will be the limiting reagent.
Mass of each product formedTaking into account the limiting reagent, the following rule of three can be applied: if by reaction stoichiometry 40 grams of NaOH form 18 grams of H₂O, 9.2 grams of NaOH form how much mass of H₂O?
mass of H₂O= (9.2 grams of NaOH×18 grams of H₂O)÷40 grams of NaOH
mass of H₂O= 4.14 grams
Finally, 4.14 grams of H₂O are formed.
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Reaction Molecularity. Rate expression (a) H2O2⟶H2O+O rate = (b) OH+NO2+N2⟶HNO3+N2 rate = (c) HCO+O2⟶HO2+CO rate =
H2O2 ⟶ H2O + O Rate = k [H2O2]b) OH + NO2 + N2 ⟶ HNO3 + N2 Rate = k [OH] [NO2] [N2]c) HCO + O2 ⟶ HO2 + CO Rate = k [HCO] [O2]
Reaction molecularity, rate expression, and examples. A reaction's molecularity is the number of molecules involved in the reaction's elementary step. The rate equation is a representation of the reaction's rate in terms of the concentration of reactants.
The reaction rate is influenced by several variables, including concentration, temperature, and pressure. A mechanism is a set of reactions that explain how a reaction happens, and it includes elementary steps. The rate expression for the reaction mechanism is obtained by combining all of the elementary reactions' rate equations. The rate equation can help you figure out what influences the reaction rate.
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The refo reaction between steam and gaseous methane (CH4 ) produces "synthesis gas," a mixture of carbon monoxide gas and dibydrogen gas. Synthesis gas is one of the most widely used industrial chemicals, and is the major industrial source of hydrogen. Suppose a chemical engineer studying a new catalyst for the refo reaction finds that 128 . liters per second of methane are consumed when the reaction is nun at 207. C and the methane is supplied at 0.94 atm. Calculate the rate at which dihydrogen is being produced. Give your answer in kilograms per second. Round your answer to 2 significant digits.
The rate at which dihydrogen is being produced is 3.25 g/s.
Given data are: volume, V = 128 L/s
Pressure, P = 0.94 atm
Temperature, T = 207°C
= 207 + 273
= 480 K
From the given information, it is clear that the chemical engineer studying a new catalyst for the refo reaction finds that 128 litres per second of methane are consumed.
So, the rate of consumption of CH4 = 128 L/s
Now, the balanced chemical equation for the reaction between methane and steam is:
[tex]CH4 + H2O ⟶ CO + 3H2[/tex]
Molar mass of CH4 = 12 + 4 = 16 gm/mol
Let's write the ideal gas equation for the reaction
PV = nRT
n = number of moles of CH4R
= gas constant
= 0.0821 L atm/K mol
Molar mass of CH4 = 16 g/mol
1 atm pressure and 273 K temperature is considered as STP
1 mole of any gas at STP will occupy 22.4 L volume
PV = n
RTPV = (mass/molar mass)
RT Mass of CH4 in 128 L at 0.94 atm and 480 K temperature can be calculated as,
128 x 0.94 = (mass/16) x 0.0821 x 480
Mass of CH4 = 4.73 g
Therefore, the number of moles of CH4
n = (mass/molar mass)
n = (4.73 g)/(16 g/mol)
n = 0.2956 mol
Moles of dihydrogen produced in the reaction, n(H2) = 3 × 0.2956
= 0.8868 mol
From ideal gas equation, PV = nRT
Number of moles of dihydrogen, n(H2) = PV/RT
Volume of hydrogen = V(H2)
= n(H2)RT/PV(H2)
= 0.8868 * 0.0821 * 480 / 0.94
= 36.52 L/s
Molar mass of dihydrogen, H2 = 2 g/mol
Density of H2 gas at STP, D = 0.089 g/L
Mass of H2 produced in 36.52 L/s can be calculated as
Mass = volume * density
= 36.52 L/s * 0.089 g/L
= 3.25 g/s
Hence, the answer is 3.25.
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7) Draw a β-turn involving ...APGA... HINT: Be sure to draw the important H-bond between the two A amino acids.
A β-turn involving the amino acids APGA consists of a tight turn in the polypeptide chain, with two alanine residues forming hydrogen bonds. The diagram represents a simplified schematic of the β-turn structure.
A β-turn is a common secondary structure motif in proteins characterized by a tight turn of the polypeptide chain. One common type of β-turn is a Type I β-turn, which involves four amino acid residues arranged in a specific pattern.
In the case of a β-turn involving the amino acids APGA, the structure can be depicted as follows:
H H
| |
N--C--C--N N--C--C--N
/ \ / \
H O H O
| | | |
A -- P -- G -- A A -- P -- G -- A
In the diagram, the amino acid residues A, P, G, and A are represented by their one-letter codes. The hydrogen bonds between the two alanine (A) residues are indicated by dashed lines, connecting the amide hydrogen (H) of the first alanine residue to the carbonyl oxygen (O) of the second alanine residue.
Note that the N and C represent the nitrogen and carbon atoms of the peptide backbone, respectively.
Please keep in mind that the representation above is a simplified schematic, and the actual β-turn structure may have additional interactions and geometric details.
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A 45. 2-mg sample of phosphorus reacts with selenium to form 131. 6 mg of the selenide.
The number of mole of phosphorus that reacted, given that 45.2 mg of phosphorus reacts is 0.0015 mole
How do i determine the number of mole of phosphorus that reacted?The number of mole of phosphorus that reacted can be obtained as illustrated below:
Mass of phosphorus that reacted = 45.2 mg = 45.2 / 1000 = 0.0452 gMolar mass of phosphorus = 31 g/mol Mole of phosphorus that react =?Mole of phosphorus that react = mass that reacted / molar mass
= 0.0452 / 31
= 0.0015 mole
Thus, we can conclude from the above calculation that the number of mole of phosphorus that reacted is 0.0015 mole
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Complete question:
A 45.2-mg sample of phosphorus reacts with selenium to form 131. 6 mg of the selenide. What is the number of mole of phosphorus that reacted?
Light travels at a speed of 2.998×108 m/sm/s in a
vacuum.
A. What is the frequency of radiation whose wavelength is 0.81
nm? B. What is the wavelength of radiation that has a frequency of
7.0×101
The relationship between wavelength and frequency of radiation can be given by the formula:
c = λν where c is the speed of light (2.998 x 10^8 m/s), λ is the wavelength of radiation, and ν is the frequency of radiation. Answers: A. The frequency of radiation whose wavelength is 0.81 nm is 3.7 x 10^17 Hz. B. The wavelength of radiation that has a frequency of 7.0 x 10^14 Hz is 4.3 x 10^-4 m or 430 nm.
Explanation: Part A Given: Speed of light, c = 2.998 x 10^8 m/s Wavelength of radiation, λ = 0.81 nm = 0.81 x 10^-9 m Using the formula: c = λνν = c/λ= (2.998 x 10^8 m/s) / (0.81 x 10^-9 m)ν = 3.7 x 10^17 Hz Therefore, the frequency of radiation whose wavelength is 0.81 nm is 3.7 x 10^17 Hz. Part B Given: Frequency of radiation, ν = 7.0 x 10^14 Hz Using the formula: c = λνλ = c/ν= (2.998 x 10^8 m/s) / (7.0 x 10^14 Hz)λ = 4.3 x 10^-4 m or 430 nm. Therefore, the wavelength of radiation that has a frequency of 7.0 x 10^14 Hz is 4.3 x 10^-4 m or 430 nm.
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Rank pure samples of each of the following species in order of increasing boiling point. Question List (5 items) (Drag and drop into the appropriate area)
Increasing Boiling Point
Boiling point refers to the temperature at which a liquid turns into vapor, so the greater the boiling point, the more heat is required to turn the substance into a gas.
Here are the five substances in order of increasing boiling point:
1. Methane (CH4) - This is a colorless and odorless gas that is used as a fuel. Its boiling point is -161.6 degrees Celsius.
2. Ethanol (C2H5OH) - This is a colorless, volatile, and flammable liquid that is used as a solvent and fuel. Its boiling point is 78.4 degrees Celsius.
3. Water (H2O) - This is a transparent, odorless, tasteless liquid that is used in many applications, including agriculture, industry, and food preparation. Its boiling point is 100 degrees Celsius.
4. Propylene glycol (C3H8O2) - This is a colorless and odorless liquid that is used as a solvent and antifreeze. Its boiling point is 188.2 degrees Celsius.
5. Glycerin (C3H8O3) - This is a sweet-tasting, colorless, and odorless liquid that is used in many applications, including food, pharmaceuticals, and cosmetics. Its boiling point is 290 degrees Celsius.
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A solution of cuso4 was electrolyses between copper and the following result were obtained
Mass of anode before electrolysis =14•40g
Mass of anode after electrolysis =8•00g
Mass of cathode before electrolysis =11•50g
What is the mass of cathode after electrolysis
The mass of the cathode after electrolysis is 5.10 g.
To determine the mass of the cathode after electrolysis, we need to apply the principle of mass conservation. According to this principle, the total mass before electrolysis should be equal to the total mass after electrolysis.
Given:
Mass of anode before electrolysis = 14.40 g
Mass of anode after electrolysis = 8.00 g
Mass of cathode before electrolysis = 11.50 g
To find the mass of the cathode after electrolysis, we can subtract the change in mass of the anode from the initial mass of the cathode:
Mass of cathode after electrolysis = Mass of cathode before electrolysis - Change in mass of anode
Change in mass of anode = Mass of anode before electrolysis - Mass of anode after electrolysis
Change in mass of anode = 14.40 g - 8.00 g
Change in mass of anode = 6.40 g
Mass of cathode after electrolysis = 11.50 g - 6.40 g
Mass of cathode after electrolysis = 5.10 g
Therefore, the mass of the cathode after electrolysis is 5.10 g.
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select the best answer that depicts the major organic product you would expect based on what you learned from the prior video for this questions cl
The major organic product expected from the reaction with KOtBu is the elimination product (alkene).
When a strong base like KOtBu (potassium tert-butoxide) is used, it favors elimination reactions. In this case, the most likely outcome is the elimination of a proton from a beta carbon and the departure of a leaving group, resulting in the formation of an alkene.
During the reaction, the tert-butoxide ion (OtBu-) acts as a strong base, abstracting a proton from a carbon adjacent to the leaving group. This creates a carbon-carbon double bond (alkene) and leaves the leaving group attached to the other carbon. The elimination reaction occurs through an E₂ mechanism, which involves the concerted elimination of the leaving group and a proton.
The selection of KOtBu as the base suggests that a strong, non-nucleophilic base is desired, which is suitable for E₂ eliminations. Other options may include E₁ reactions with a weak base or substitution reactions (SN₁ or SN₂) with a nucleophilic base. However, based on the information provided, the major product expected is the alkene resulting from an E₂ elimination.
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which quantity must change to have a transmutation? a) oxidation number b) atomic mass c) atomic number d) electrical charge
The correct option is c) Atomic number.
Transmutation is the conversion of one chemical element or isotope into another. The quantity that must change for a transmutation is atomic number. Transmutation can be described as the conversion of one chemical element into another. It can also be described as a change in the atomic nucleus that results in the conversion of one element into another. In order for a transmutation to occur, the number of protons in the nucleus of the atom must change. This means that the atomic number must change. The atomic number is the number of protons in the nucleus of an atom. If the number of protons changes, then the element itself will change. For example, the transmutation of uranium into lead is a well-known example of this process. Uranium has an atomic number of 92, while lead has an atomic number of 82. In order for this transmutation to occur, the number of protons in the nucleus of the atom must change from 92 to 82.
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5. In Part 2, how did the temperature of the water change when you added the ice?
Why? Explain how you know that thermal energy was transferred between water and
ice when you mixed them. Explain the molecular process that occurs in this thermal
energy transfer.
A)The temperature of the water drops when ice is added to it. This happens as a result of a heat transfer that is brought on by the ice absorbing thermal energy from the water.
B) The temperature drop that was noticed is how we know that thermal energy was transferred from the water to the ice.
C)Heat is transferred when the more energetic water molecules collide with the colder ice molecules in a process known as heat conduction.
D)The ice melts and the water temperature drops as a result of the energy transfer, which causes the ice molecules to gain energy and the water molecules to lose energy.
The temperature of the water dropped when you added ice to it. The reason for this temperature change is that the ice absorbs thermal energy from the water, causing the water's temperature to drop.
Based on the laws of heat transfer and the observation of temperature change, we can deduce that thermal energy was exchanged between the water and the ice. Until equilibrium is attained, thermal energy constantly transfers from an object with a higher temperature to one with a lower temperature.
In this instance, the water is initially warmer than the ice. Heat is transferred from the water to the ice when the ice is introduced, and this continues until both have reached the same temperature. As a result, the temperature of the water drops, signaling a thermal energy transfer from the water to the ice.
Heat conduction is the term for the molecular process behind this thermal energy transfer. Water molecules' kinetic energy causes them to move constantly at the molecular level. The water molecules close to the ice come into contact with the cooler ice molecules when the ice is introduced.
The ice molecules, which have lower kinetic energy, get thermal energy from the more energetic water molecules through molecular collisions. The average kinetic energy (temperature) of the water molecules decreases as a result of this energy transfer.
The ice molecules gain thermal energy and start to melt as a result of these collisions and energy transfers, whilst the water molecules lose thermal energy and the temperature drops.
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Give the hybridization for the [tex]\mathrm{O}[/tex] in [tex]\mathrm{OF}_2[/tex].
[tex]s p^3 d[/tex]
[tex]s p^3 d^2[/tex]
[tex]s p^3[/tex]
[tex]s p^2[/tex]
[tex]s p[/tex]
The hybridization for the [F]^- ion is sp^3.
What is the hybridization of the [F]^- ion?In the [F]^- ion, the fluorine atom has gained an extra electron, resulting in a negatively charged ion. To determine the hybridization, we look at the electron configuration around the central atom, which is fluorine in this case.
Fluorine has the electron configuration 1s^2 2s^2 2p^5. Since the [F]^- ion has gained one electron, the new electron configuration becomes 1s^2 2s^2 2p^6.
To determine the hybridization, we count the number of electron groups around the central atom. In the case of the [F]^- ion, there is one electron group, consisting of the lone pair of electrons on fluorine. The lone pair occupies one orbital.
Since there is only one electron group, the hybridization is sp^3, which means that the lone pair is located in an sp^3 hybrid orbital.
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he half-life of a radioactive substance is 21 years. If we begin with a sam substance, calculate the value of b to complete the model belo which gi sample remaining after t years. f(t)=85⋅(b) t
Enter your answer for b in the box below, rounded to three decimals.
The value of b in the equation [tex]\( f(t) = 85 \cdot b^t \)[/tex] represents the decay factor of the radioactive substance. To determine the value of \( b \), we can use the information that the half-life of the substance is 21 years.
The half-life of a radioactive substance is the time it takes for half of the substance to decay. In this case, the half-life is 21 years, which means that after 21 years, the amount of the substance remaining will be half of the initial amount.
We can use this information to set up an equation:
[tex]\(\frac{1}{2} = b^{21}\)[/tex]
To solve for b, we need to take the 21st root of both sides of the equation:
[tex]\(b = \left(\frac{1}{2}\right)^{\frac{1}{21}}\)[/tex]
Using a calculator, we can evaluate this expression:
[tex]\(b \approx 0.965\)[/tex]
Therefore, the value of b in the equation [tex]\( f(t) = 85 \cdot b^t \)[/tex] is approximately 0.965.
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Phenobarbital 10 mg p.o. is ordered for a child weighing 9 lb. The recommended maintenance dosage is 3 to 5 mg/kg/day q12h. What is the maximum dosage range for this child. Calculate the range to the Tenth Place.
a. 17 mg/kg/day
b. 20.5 mg/kg/day
c. 18 mg/kg/day
d. 20 mg/kg/day
The maximum dosage range for this child is 20.4 mg/kg/day. So, option B is accurate.
To calculate the maximum dosage range for the child, we need to convert the weight from pounds to kilograms.
1 pound is approximately equal to 0.4536 kilograms.
Weight of the child = 9 lb * 0.4536 kg/lb = 4.0824 kg
Now we can calculate the maximum dosage range:
Minimum dosage: 3 mg/kg/day * 4.0824 kg = 12.2472 mg/day
Maximum dosage: 5 mg/kg/day * 4.0824 kg = 20.412 mg/day
Rounded to the nearest tenth, the maximum dosage range for this child is 12.2 mg/kg/day to 20.4 mg/kg/day.
Therefore, the correct answer is:
b. 20.5 mg/kg/day.
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please answer this question and show work
and the foal charge on C is In the Lewis structure of {HCO}_{3} ; the foal charge on {H} is
The formal charge on C in the Lewis structure of HCO3- is zero.
In the Lewis structure of HCO3-, the central carbon (C) atom is bonded to three oxygen (O) atoms and has one lone pair of electrons. Each oxygen atom is also bonded to a hydrogen (H) atom. By assigning electrons to the atoms and calculating the formal charges, it is determined that the formal charge on C is zero.
To calculate the formal charge on an atom, the formula is:
Formal charge = valence electrons - lone pair electrons - 0.5 * bonding electrons
For the carbon atom in HCO3-, the formal charge is:
Formal charge on C = 4 valence electrons - 0 lone pair electrons - 3 * 2 bonding electrons
= 4 - 0 - 6
= -2 + 2 (from the overall charge of HCO3-)
= 0
The formal charge on the carbon (C) atom in the Lewis structure of HCO3- is zero. This indicates that the carbon atom is neither deficient nor in excess of electrons, making it stable within the molecule.
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4. Find the radius r_{ {node }} where the node occurs in the 2 {~s} orbital of {B}^{+4} .
Answer: 5
Explanation:
Important peaks in an IR for CuDMSO, DMSO, RuDMSO. and
literature values for IR pls insert table of literature
values
Infrared spectra are compound-specific and vary based on functional groups. Important peaks in IR spectra include O-H/N-H stretching (3400-2500 cm⁻¹) and C-S stretching (1050-1000 cm⁻¹) for DMSO. CuDMSO and RuDMSO have characteristic peaks related to their complexes. Literature sources like Aldrich FT-IR Spectral Library provide detailed IR peak information.
The important peaks in the infrared (IR) spectra of CuDMSO, DMSO, and RuDMSO, as well as general literature values for common IR peaks.
Infrared spectra are unique for each compound and can vary depending on the specific molecule and its functional groups. Here are some general guidelines for the important peaks in IR spectra:
CuDMSO: The IR spectrum of CuDMSO may show characteristic peaks related to the copper complex and the DMSO ligand. The exact positions of the peaks will depend on the specific coordination environment and bonding interactions.
DMSO (Dimethyl sulfoxide): Common peaks in the IR spectrum of DMSO include a broad peak around 3400-2500 cm⁻¹, which corresponds to the stretching vibrations of O-H and N-H bonds. Another important peak is around 1050-1000 cm⁻¹, which corresponds to the C-S bond stretching vibration.
RuDMSO: Similarly, the IR spectrum of RuDMSO will have characteristic peaks related to the ruthenium complex and DMSO ligand. The specific positions of the peaks will depend on the nature of the coordination and bonding interactions.
Literature values for IR peaks: There are numerous literature sources that provide IR spectral data for various compounds. These references often include tables or databases containing peak positions and assignments for functional groups and specific compounds. Some commonly used references for IR spectra include the Aldrich FT-IR Spectral Library, SDBS (Spectral Database for Organic Compounds), and NIST Chemistry WebBook.
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Explain the ""Phosphate trap"" in the estuary of Chesapeake Bay. Why was a local ban o phosphorus in detergents not particularly helpful in mitigating eutrophication in the estuary?
The “Phosphate trap” in the estuary of Chesapeake Bay is a phenomenon that causes a low oxygen condition in the bottom waters of the Bay. The local ban on phosphorus in detergents was not particularly helpful in mitigating eutrophication in the estuary of Chesapeake Bay.
The “Phosphate trap” is a process whereby, under certain conditions, phosphate in the sediments is released and becomes available for growth in the overlying water column.
This is due to the fact that detergents account for only a minor part of the phosphorus inputs into the Chesapeake Bay. The major sources of phosphorus are agricultural run-off, wastewater treatment plants, and air deposition. Therefore, reducing the phosphorus input from these major sources will be more effective in mitigating eutrophication in the Chesapeake Bay.
Overall, the local ban on phosphorus in detergents had a limited effect on mitigating eutrophication in the estuary of Chesapeake Bay.
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