How much silver was in the solution if all of the silver was removed as Ag metal by electrolysis for 0.50 hr with a current of 1.00 mA (1 mA = 10-3 A)?

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Answer 1

To calculate the amount of silver in the solution, we need to consider the Faraday's laws of electrolysis.

According to Faraday's laws, the amount of substance deposited or liberated during electrolysis is directly proportional to the quantity of electric charge passed through the solution.The molar mass of silver is approximately 107.87 g/mol The charge number (z) for silver is 1 because each silver ion (Ag+) accepts one electron to form silver metal (Ag).Therefore, the amount of silver in the solution was approximately 0.0199 grams after 0.50 hours of electrolysis with a current of 1.00 mA.

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determine the end final value of n in a hydrogen atom transition if the electron starts in n=1 and the atom absorbs a photon of light with an energy of 2.044x10^-18

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The end final value of n in a hydrogen atom transition can be determined if the electron starts in n=1 and the atom absorbs a photon of light with an energy of 2.044x10^-18.

In a hydrogen atom, the energy of a transition is given by the equation:ΔE = - 2.178 x 10^-18 J (1/nf^2 - 1/ni^2)where:ΔE = energy of transition (J)ni = initial energy levelnf = final energy levelGiven: ni = 1hf = 2.044 x 10^-18 JWe need to solve for nf. First, we need to find the initial energy level in joules.

The energy of an electron in the first energy level is given by:E = - 2.178 x 10^-18 J/n^2where:n = energy levelPlugging in n = 1:E = - 2.178 x 10^-18 J/1^2= - 2.178 x 10^-18 JNow we can solve for nf:ΔE = - 2.178 x 10^-18 J (1/nf^2 - 1/1^2)hf = - 2.178 x 10^-18 J (1/nf^2 - 1)2.044 x 10^-18 J = 2.178 x 10^-18 J (1/nf^2 - 1)1/nf^2 - 1 = 2.044 x 10^-18 J/2.178 x 10^-18 J1/nf^2 - 1 = 0.9384/nf^2 = (1 + 0.9384)^-1nf^2 = 1.0655nf = √(1.0655)nf = 1.032

Summary:The final value of n in a hydrogen atom transition is 1.032 if the electron starts in n = 1 and the atom absorbs a photon of light with an energy of 2.044 x 10^-18 J.

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why can we ignore the disposition of the lone pairs on terminal atoms

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The disposition of lone pairs on terminal atoms can be ignored in many cases because they do not significantly affect the overall molecular geometry or properties.

In molecular geometry, the arrangement of atoms around a central atom determines the overall shape of a molecule. The positions of bonded atoms and the presence of lone pairs influence the molecular geometry. However, the disposition of lone pairs on terminal atoms, which are atoms bonded only to the central atom and not involved in branching or further extension of the molecule, is often not crucial to determining the molecular shape.

The reason for this is that lone pairs on terminal atoms do not significantly affect the steric interactions or bonding angles in the molecule. The lone pairs on terminal atoms primarily affect the local electronic environment around those specific atoms, but they have minimal impact on the overall shape of the molecule. This is because the molecular geometry is primarily determined by the arrangement of atoms and lone pairs around the central atom.

Therefore, in many cases, it is acceptable to ignore the disposition of lone pairs on terminal atoms when considering the overall molecular geometry and properties. This simplification allows for a more straightforward analysis of the molecule and its behavior. However, it is important to note that in certain cases, such as when considering specific electronic properties or reactivity, the disposition of lone pairs on terminal atoms may need to be taken into account for a more accurate understanding.

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Answer:

When applying VSEPR theory, attention is first focused on the electron pairs of the central atom, disregarding the distinction between bonding pairs and lone pairs. These pairs are then allowed to move around the central atom (at a constant distance) and to take up positions that maximize their mutual separations.

The clean-room in a computer industry requires perfect filtration efficiency to the incoming air; i.e. penetration factor P = 0. The ventilation rate is maintained at λ = 3 h¹. Consider the manufacture is located in an area with rather constant outdoor particle number concentration 0 = 12000 cm³ of a certain particle size, which has deposition rate 2 = 1 h¹¹. Assume that the indoor particle number concentration, C, satisfies the mass-balance equation dC -= P2O-(2+2)C to answer the following questions: dt a. Show that the indoor concentration can be mathematically described by C(t)= Ce+", where Co is the initial indoor particle number concentration at t=0? b. Assume at t=0 the indoor particle number concentration was Co=5000 cm³, then how many hours would it take to reduce this concentration into C/2?

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a. substituting in the expression of C(t) obtained in part a, we get,2500 = 12000/ (1 + 12000/ 5000 - 1) * e^(-2*3*t)  we get,t = 1/ (6 * log (2)) * log (5/3)≈ 0.276 h Therefore, it would take approximately 0.276 hours to reduce this concentration into C/2.

The differential equation for the indoor concentration of the given computer industry can be given as follows: dC/dt = P (0- C) - 2C²The above differential equation can be solved by the method of separating the variables as follows: dC/ (P (0- C) - 2C²) = dtIntegrating both sides, we get,-1/ [2P log (C/ (C- P0))] + (P0/ [P (C- P0)]) - (1/ (2C)) = t + c where c is the constant of integration. After simplification, the above equation can be expressed as:C(t) = P0/ (1 + (P0/ Co - 1) e^(-2Pt))The initial particle concentration Co is the value of C at t = 0. Hence, Ce = P0/ (1 + P0/ Co - 1) which can be simplified as Ce = Co/ (1 + P0/ Co - 1) = Co/P0b. Given that Co = 5000 cm³ and C/2 = 5000/2 = 2500 cm³,

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find the optimal bst for the following keys and frequencies. keys |1|2|3|4 freq |4|6|2|3

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In order to find the optimal BST for the following keys and frequencies keys |1|2|3|4 freq |4|6|2|3, one can use the concept of Dynamic Programming.

During Dynamic Programming, you need to find the expected cost of each sub-tree and return the root that has a minimum expected cost.This can be done by using a 2D array named `dp` with its size `n+1` by `n+1`, where `n` is the number of nodes or the length of the array. `dp[i][j]` represents the expected cost of the optimal BST between `i`th node to the `j`th node, where nodes are represented by indices of the array.The general formula for the expected cost is as follows :`dp[i][j] = min(dp[i][k-1] + dp[k+1][j] + sum(freq[i, ... , j]))`Here, `k` ranges from `i` to `j` and represents the root. `sum(freq[i, ... , j])` is the sum of the frequencies of the keys between `i`th node and `j`th node.Let's solve this problem using the above approach for the given keys and frequencies. We can use the following table to fill in the `dp` values.```
   |  1   2   3   4
--  +--------------
1  |  4  18  14  21
2  |     6   6  11
3  |         2   6
4  |             3
```Here, the values in the diagonal of `dp` are the frequencies of the individual nodes.The expected cost of the optimal BST for all keys is `dp[1][n]` i.e `dp[1][4]` which is `53`. Thus, the optimal BST can be constructed as follows :```
       2
     /   \
    1     4
         /
        3
```

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an unsaturated fatty acid resulting from hydrogenation is known as:___

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An unsaturated fatty acid resulting from hydrogenation is known as: saturated fatty acid.

An unsaturated fatty acid resulting from hydrogenation is known as a saturated fatty acid. Hydrogenation is a chemical process in which hydrogen is added to unsaturated fats, converting them into saturated fats. Unsaturated fatty acids contain double bonds in their carbon chain, which provide flexibility and a liquid state at room temperature.

However, during hydrogenation, these double bonds are converted into single bonds by adding hydrogen atoms. This process increases the saturation level of the fatty acid, making it more stable and solid at room temperature. Saturated fatty acids have a higher melting point and are commonly found in animal fats and some plant-based oils. They are known to increase the levels of LDL cholesterol in the body, which can contribute to heart disease when consumed in excess.

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describe how rho-dependent termination occurs in bacteria. drag the terms on the left to the appropriate blanks on the right to complete the sentences. not all terms will be used.

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the process is a key step in regulating gene expression in bacteria.

Rho-dependent termination is a process that occurs in bacterial transcription, where the termination of RNA synthesis is __dependent__ on the activity of the __bacterial__ protein Rho.

During transcription, RNA polymerase moves along the DNA template, creating a single-stranded RNA molecule. As the RNA polymerase encounters a termination sequence, it pauses and waits for the release factor to bind. However, in rho-dependent termination, the release factor cannot bind until the Rho protein interacts with the RNA polymerase. The Rho protein moves along the RNA strand and when it reaches the RNA polymerase,

it causes the polymerase to pause and release the newly synthesized RNA molecule. This process is a key step in regulating gene expression in bacteria.

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what kind of reaction is MgSO4(s)+ HCl(aq)>MgCl2(aq)+H2SO4(aq)

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Answer:

A: Double displacement reaction.

reaction → MgSO4(s)+ 2HCl(aq)⇆MgCl2(aq)+H2SO4(aq)

Here we can see that magnesium (Mg) is the element bonded with sulfate ion (SO4+) and hydrogen (H) is connected with chlorine (Cl).Hence after the reaction, we can see that the chlorine atom replaces the sulfate io,n and that of hydrogen is replaced with sulfate ion.Such a reaction where the atoms or molecules are replaced with another atom or molecule is called a double displacement reaction. further, in particularly this reaction, we can see that 2 molecules of HCl are deduced to produce one mole of Magnesium chloride and sulphuric acid.hence this reaction is useful in making sulphuric acid.

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Which of following statement is TRUE for the two half cells with the salt bridge was made of 0.1M KNO3? . Zn(s) in 0.1M Zn(NO3)2 · Mg(s) in Mg(NO3)2 . Potassium cation will migrate to the half cell with Mg2+ ions. Electron will move : Zn(s) -> Mg(s) Nothing happens (ZERO cell potential). Nitrate anion will migrate to the half cell with Mg2+ ions. Question 2 Which of following statement is TRUE for the two half cells with the salt bridge was made of 0.1M KNO3? Zn(s) in 0.1M Zn(NO3)2 Cu(s) in 0.1M Cu(NO3)2 Nothing happens (ZERO cell potential). Potassium cation will migrate to th half cell with Cu2+ ions. Nitrate anion will migrate to the half cell with Cu2+ ions. Electron will move : Cu(s) -> Zn(s) Question 3 What is the cell potential, Ecell at 25°C? Fe(s)[0.01M Fe2+ || 1M Fe2+ [Fe(s) 0.059V 0.030V 0.12V 0.18V 0.089V

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The correct statement for the two half cells with the salt bridge was made of 0.1M KNO3: Potassium cation will migrate to the half cell with Mg2+ ions. This is due to the principle of electroneutrality which states that the movement of cations should match with the movement of anions to balance the positive and negative charges.

This is done to ensure that the half-cells maintain a neutral charge. In the given reaction, Zn acts as an anode while Mg acts as a cathode. So, the reaction taking place here is a redox reaction. At the anode, oxidation takes place where Zn gets oxidized to Zn2+. The salt bridge ensures that the flow of ions takes place in the half cells and keeps the cell potential in balance.

The correct statement for the two half cells with the salt bridge was made of 0.1M KNO3: Potassium cation will migrate to the half cell with Cu2+ ions. Similar to the above explanation, the principle of electroneutrality is applied here to determine the migration of ions. In the given reaction, Cu acts as a cathode while Zn acts as an anode. So, the reaction taking place here is a redox reaction. At the anode, oxidation takes place where Zn gets oxidized to Zn2+. The salt bridge is responsible for the flow of ions between the two half-cells and helps in balancing the cell potential.

The cell potential at 25°C is 0.12V.The given reaction, Fe(s)[0.01M Fe2+ || 1M Fe2+ [Fe(s), is a redox reaction. At the anode, Fe gets oxidized to Fe2+ and releases two electrons. So, the reaction taking place is: Fe(s) → Fe2+ (aq) + 2e-At the cathode, the Fe2+ ions gain two electrons and get reduced to Fe atoms. So, the reaction taking place is: Fe2+ (aq) + 2e- → Fe(s)The given cell is a Daniell cell and its cell potential is 0.12V at 25°C. Therefore, the correct answer is 0.12V.

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what is the major organic product obtained from the following sequence of reactions? naoch2ch3 ch3ch2oh phbr

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The major organic product obtained from the following sequence of reactions is ethylbenzene (C8H10).

The given sequence of reactions can be represented as follows:naoch2ch3 + ch3ch2oh → ch3ch2ona + ch3ch2oh → ch3ch2och2ch3 (diethyl ether)ch3ch2och2ch3 + phbr → C6H5CH2CH2OCH2CH3 + NaBrThe overall reaction is:naoch2ch3 + ch3ch2oh + phbr → C6H5CH2CH2OCH2CH3 + NaBrThe final product is diethyl benzyl ether, which can be represented as C6H5CH2CH2OCH2CH3.

It is the etherification product of benzyl alcohol and diethyl ether. The benzyl group gets attached to the oxygen of diethyl ether to form diethyl benzyl ether.The main answer is diethyl benzyl ether while the summary of the reaction can be presented as follows:NaOCH2CH3 and CH3CH2OH react to form CH3CH2OCH2CH3 (diethyl ether).When NaOCH2CH3 and CH3CH2OH react, they produce diethyl ether (CH3CH2OCH2CH3) as a product

When diethyl ether reacts with PhBr (bromobenzene), it forms diethyl benzyl ether. The structure of diethyl benzyl ether is C6H5CH2CH2OCH2CH3.

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the solubility product of agcl is 1.82·10−10. how many grams of agcl (mw = 143.321 g/mol) can be dissolved in 500.0 ml of water at room temperature?

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0.153 g of AgCl can be dissolved in 500.0 mL of water at room temperature. The molar mass of AgCl is 143.321 g/mol. The solubility product (Ksp) is 1.82 x 10⁻¹⁰ .

Solubility refers to the maximum amount of a solute that can be dissolved in a solvent at a certain temperature. The most typical measure of solubility is the mass of the solute that can dissolve in a certain quantity of solvent. The solubility of a substance is dependent on a variety of factors, including temperature and the chemical nature of the solvent and solute.

The solubility product is denoted as Ksp in chemistry, and it is a measure of the solubility of a solid in an aqueous solution. It is the product of the ion concentrations of the solid in the aqueous solution, and it is usually expressed in units of mol²/L² or simply as moles per liter.

The formula to calculate the mass of solute is given by: mass = molar mass x moles

Number of moles can be calculated using the following formula: n = √(Ksp/4)

Substitute the given values: Ksp = 1.82 x 10⁻¹⁰ n = √(1.82 x 10⁻¹⁰/4)n = 2.135 x 10⁻⁶

Moles of AgCl present in 500 ml of water = 2.135 x 10⁻⁶ x 0.5 = 1.0675 x 10⁻⁶ M

Therefore, Mass of AgCl = molar mass x number of moles

Mass of AgCl = 143.321 x 1.0675 x 10⁻⁶

Mass of AgCl = 0.153 g

0.153 g of AgCl can be dissolved in 500.0 mL of water at room temperature.

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Which of the following pairs is interconverted in the process of mutarotation? A. D-glucose and D-fructose B. D-glucose and L-glucose C. D-glucose and D-mannose D. a-D glucopyranose and B-D-glucopyranose E. None of the above answers is correct.

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Mutarotation is the interconversion of α and β anomers of a sugar. The correct option that shows the pairs interconverted in the process of mutarotation is option D: a-D-glucopyranose and B-D-glucopyranose.

Mutarotation is a phenomenon where the specific rotation of plane-polarized light of an optically active compound varies over time due to a structural rearrangement of that compound. This occurs when an anomeric carbon, which is a chiral center, switches between its alpha and beta configurations. Pairs that are interconverted in the process of mutarotation are α-D-glucopyranose and β-D-glucopyranose.

The term a-D-glucopyranose refers to an alpha-glucose molecule with a ring closure, while B-D-glucopyranose is a beta-glucose molecule with a ring closure. The two forms of glucose are known as anomers, which are a group of stereoisomers. When a cyclic carbohydrate has two stereoisomers that differ only in the configuration around the anomeric carbon, these are referred to as anomers.

Therefore, the correct option is D.

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how does the relationship between food and photosynthesis illustrate the law of thermodynamics?

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The relationship between food and photosynthesis illustrate the law of thermodynamics in various ways, as follows:Law of ThermodynamicsThe law of thermodynamics states that energy can be transformed from one form to another, but it can neither be created nor destroyed.

However, the overall amount of energy in a closed system will remain constant.Photosynthesis is the process in which green plants use sunlight to synthesize foods, such as glucose, by converting carbon dioxide and water into oxygen and glucose.FoodPhotosynthesis provides food for the plants and other organisms which feed on them. In other words, food is produced through photosynthesis in plants, which can be consumed by other organisms.Relationship between Food and PhotosynthesisPhotosynthesis produces food through the conversion of carbon dioxide and water into glucose. Food is consumed by organisms who need energy for their metabolism. Therefore, the relationship between food and photosynthesis is symbiotic. As one process produces food, the other consumes it. Hence, the law of thermodynamics applies because energy is neither created nor destroyed in the process. The energy from the sun is transformed into chemical energy in the form of glucose, which is then consumed by other organisms for their own energy requirements. This constant flow of energy from one organism to another illustrates the first and second laws of thermodynamics.

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for the reaction n2(g) 3h2(g)2nh3(g) h° = -92.2 kj and s° = -198.7 j/k the equilibrium constant for this reaction at 337.0 k is . assume that h° and s° are independent of temperature.

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The value of the equilibrium constant (Kp) at a temperature of 337.0 K for the reaction N2(g) + 3H2(g) ⇌ 2NH3(g) with ΔH° = -92.2 kJ and ΔS° = -198.7 J/K is to be determined. Furthermore, we must assume that ΔH° and ΔS° are independent of temperature. The equilibrium constant (Kp) can be determined by calculating the standard reaction Gibbs free energy (ΔG°) and using the equation shown below;ΔG° = -RTlnKpWhere R is the ideal gas constant, T is the absolute temperature, and lnKp is the natural logarithm of the equilibrium constant (Kp). The standard reaction Gibbs free energy (ΔG°) can be determined using the following equation;ΔG° = ΔH° - TΔS° = -92.2 kJ - (337.0 K)(-198.7 J/K)ΔG° = -92.2 kJ + 67,030 J = -25,170 J = -25.17 kJIt is important to note that J is the SI unit of energy, while kJ is its multiple. Since we are using the value of R in units of J/K·mol, the units for ΔG° must be J.

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The equilibrium constant for the given reaction at 337.0 K is 0.0426 for the reaction N2(g) + 3H2(g) ⇌ 2NH3(g).

Given reaction is: N2(g) + 3H2(g) ⇌ 2NH3(g)Hence the equilibrium constant Kp can be calculated as below: Kp = (P(NH3)2) / (P(N2) * P(H2)3)

Let's find the values of ΔH° and ΔS° at 337.0 K using the following equation:ΔG° = ΔH° - TΔS°Here, ΔG° = -RTln(Kp).

Where, R = 8.314 J K-1 mol-1T = 337.0 K

Now, -RTln(Kp) = ΔH° - TΔS°-8.314 x 337.0 ln(Kp) = (-92.2 x 1000 J mol-1) - (337.0 x ΔS° J mol-1 K-1)-2790.42 ln(Kp) = -92200 - 337ΔS°=> ln(Kp) = 33.03 - (ΔS° / 8.314)

On comparing the above equation with the standard form of Gibbs-Helmholtz equation,i.e. ln(Kp) = -ΔG° / RTWe get,ΔG° = -2790.42 J mol-1.

Now, let's calculate Kp at 337.0 K using the following formula: Kp = e^(-ΔG°/RT)Kp = e^(-2790.42 / (8.314 x 337.0))

Kp = 0.0426Hence, the equilibrium constant for the given reaction at 337.0 K is 0.0426 (approximately).

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a 25.00 ml sample of 0.310 m koh is titrated with 0.750 m hno3 at 25 °c. calculate the initial ph before any titrant is added.

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To calculate the initial pH before any titrant is added, you can use the formula for the concentration of the hydroxide ion [OH-] in the solution. The following are the steps to calculate the initial pH before any titrant is added: Step 1: Calculate the concentration of OH- in the solution

To calculate the concentration of OH- in the solution, we can use the expression for the reaction that occurs between KOH and HNO3 as follows: KOH + HNO3 -> KNO3 + H2OThus, for each mole of KOH that reacts, one mole of H2O and one mole of KOH are produced. From this, we can see that the number of moles of OH- produced is equal to the number of moles of KOH added and can be calculated as follows: moles of OH- = moles of KOH added = Molarity of KOH * Volume of KOH added= 0.310 mol/L * 25.00 mL / 1000 mL/L= 0.00775 mol/L Step 2: Calculate the concentration of OH- in solution The concentration of OH- can be determined by dividing the number of moles of OH- by the volume of the solution as follows:[OH-] = moles of OH- / Volume of solution= 0.00775 mol/L / 25.00 mL / 1000 mL/L= 0.310 mol/L Step 3: Calculate the pOH of the solution The pOH of the solution can be calculated using the expression: pOH = -log[OH-]= -log(0.310)= 0.509Step 4: Calculate the pH of the solution The pH of the solution can be calculated using the expression: pH + pOH = 14pH = 14 - pOH= 14 - 0.509= 13.491The initial pH before any titrant is added is 13.491.

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Select the choice below that best represents the process representing the electron affinity enthalpy of phosphorus. - a)P(s) + 2e +p2-(0) b)P(s) + +P"(s) c) P(9) + e- -P(s) d) P(G)-e-p+(9) e)P(9) +-P(9)

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the process representing the electron affinity enthalpy of phosphorus is:

a) P(s) + 2e- -> P2-(g)

This choice represents the addition of two electrons to a solid phosphorus atom (P) to form a diatomic phosphide ion (P2-) in the gaseous state. The notation "P(s)" represents the solid phosphorus atom, and "P2-(g)" represents the phosphide ion in the gas phase. The reaction involves the gain of two electrons by phosphorus, resulting in an increase in electron affinity enthalpy.

what is electrons?

Electrons are subatomic particles that are fundamental to the field of chemistry. They have a negative charge (-1) and a mass that is approximately 1/1836th the mass of a proton or neutron. Electrons are located outside the nucleus of an atom and occupy energy levels or orbitals surrounding the nucleus.

In chemistry, electrons play a crucial role in determining the chemical properties and behavior of atoms and molecules. Some important aspects of electrons in chemistry include:

1. Electron configuration: The arrangement of electrons in energy levels or orbitals around the nucleus is known as the electron configuration. It determines the stability and reactivity of an atom.

2. Chemical bonding: Electrons participate in chemical bonding, which is the process of sharing or transferring electrons between atoms to form compounds. Covalent bonds involve the sharing of electrons, while ionic bonds involve the transfer of electrons.

3. Valence electrons: Valence electrons are the electrons present in the outermost energy level of an atom. They are responsible for the atom's bonding behavior and chemical reactivity.

4. Redox reactions: Electrons are involved in oxidation-reduction (redox) reactions, which involve the transfer of electrons between species. Oxidation refers to the loss of electrons, while reduction refers to the gain of electrons.

5. Electron movement: Electrons can move between energy levels or orbitals through processes such as absorption or emission of energy in the form of photons.

6. Electron density and molecular orbitals: Electron density refers to the probability of finding an electron in a specific region around the nucleus. In molecular orbitals, electrons are described by wave functions that determine their distribution within a molecule.

Understanding the behavior and interactions of electrons is fundamental to explaining the structure, properties, and reactivity of matter in the field of chemistry.

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a sampe contains 16g of a radioactive isotpe. how much radioactive isotope remains in teh sample after 1 half-life?

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After one half-life, half of the radioactive isotope will have decayed. This means that only half of the initial amount remains.

After one half-life, half of the radioactive isotope will have decayed, leaving only half of the initial amount remaining. Therefore, if the sample initially contains 16 grams of the radioactive isotope, after one half-life, there will be 8 grams of the radioactive isotope remaining in the sample. If the sample initially contains 16 grams of the radioactive isotope, after one half-life, there will be 8 grams of the radioactive isotope remaining in the sample.

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find the ∆hrxn for the reaction: 3c(s) 4h2(g) →c3h8(g) 2 using these reactions with known ∆h’s: c3h8(g) 5o2(g) →3co2(g) 4h2o(g) ∆h = −2043 kj c(s) o2(g) →co2(g) ∆h = −393.5 kj

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The enthalpy change of the given reaction is -628 kJ. Reaction equations:  C₃H₈(g) + 5O₂(g) → 3CO₂(g) + 4H₂O(g)    

C(s) + O₂(g) → CO₂(g)ΔH values:    

ΔH₁ = -2043 kJ     ΔH₂ = -393.5 kJ

The given reaction is: 3c(s) + 4H₂(g) →  C₃H₈(g)

The required reaction equation can be obtained from the above given two reactions as follows: C₃H₈(g) + 5O₂(g) → 3CO₂(g) + 4H₂O(g)      ....(1)

2C(s) + 2O₂(g) → 2CO₂(g)      .... (2)

Multiplying Equation 2 by 1.5 gives: 3C(s) + 3O₂(g) → 3CO₂(g)    ....(3)

Adding Equation 1 and Equation 3 gives:  C₃H₈(g) + 3C(s) + 4H₂(g) + 8O₂(g) → 3CO₂(g) + 4H₂O(g) + 3CO₂(g)       ....(4)

Simplifying the above equation gives: 3C(s) + 4H₂(g) → C₃H₈(g) + 2O₂(g)      ...(5)

Comparing the given reaction with the above obtained Equation 5, we can see that the given reaction is equal to half of Equation 5.

Hence the enthalpy change of the given reaction will also be half of the enthalpy change of Equation 5. So, ΔH of the given reaction can be calculated as follows:ΔH = (1/2) * ΔH₅ Where, ΔH₅ is the enthalpy change of Equation 5.ΔH₅ = ΔH₁ - 2ΔH₂            

[Substituting the values of ΔH₁ and ΔH₂]ΔH₅ = (-2043 kJ) - 2(-393.5 kJ)ΔH5 = -2043 + 787ΔH₅ = -1256 kJ

Substituting the value of ΔH₅ in the equation for ΔH, we get: ΔH = (1/2) * ΔH₅ΔH = (1/2) * (-1256 kJ)ΔH = -628 kJ

Hence, the enthalpy change of the given reaction is -628 kJ.

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given the standard enthalpies of formation of substances in the below chemical reaction calcualte for the reaction is blank joules

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we substitute the values into the formula:∆H°rxn = [∆H°f[H2O(l)] + ∆H°f[CO2(g)]] − [∆H°f[C2H5OH(l)]]∆H°rxn = [−285.8 + (−393.5)] − [−277.6]∆H °rxn = −285.8 − 393.5 + 277.6∆H°rxn = −401.7 kJ/mol Therefore, the reaction releases 401.7 kJ/mol.

To solve the problem, we need to use the formula:∆H°rxn = ∑[∆ H°f(products)] − ∑[∆H°f(reactants)]Where ∆H°rxn is the standard enthalpy change of reaction, ∆H°f is the standard enthalpy of formation of a substance. It is given that the standard enthalpies of formation of substances are as follows:∆H°f[H2O(l)] = −285.8 kJ/mol∆H°f[CO2(g)] = −393.5 kJ/mol∆H°f[C2H5OH(l)] = −277.6 kJ/mol ,It appears that you have calculated the standard enthalpy change (∆H°rxn) for a reaction involving the formation of water (H2O) and carbon dioxide (CO2) from ethanol (C2H5OH). The values you provided for the standard enthalpy of formation (∆H°f) of water, carbon dioxide, and ethanol were used in the calculation.It's important to note that the values you used for the standard enthalpies of formation should be obtained from reliable sources or experimental data. Additionally, the calculation assumes standard conditions (25 °C and 1 atm) and that the reaction is occurring at constant pressure.

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in which temperature treatment was potato catalase most active

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Potato catalase was most active in the incubator (option B).

What is a catalase?

Catalase, an enzyme renowned for its remarkable prowess, facilitates the decomposition of hydrogen peroxide into the harmonious elements of water and oxygen. It thrives ubiquitously among the diverse tapestry of life, permeating the existence of plants, animals, and bacteria.

The optimal functioning of catalase unfurls gracefully at a temperature reminiscent of the human body's ambient warmth, approximately 37 degrees Celsius. Hence, the catalytic efficacy of the potato's catalase surged to its zenith upon finding solace within the nurturing confines of the incubator, meticulously calibrated to maintain the exactitude of 37 degrees Celsius.

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Complete question:

in which temperature treatment was potato catalase most active?

a. Ice water bath

b. Incubator

c. Boiling water

d. The catalase performed the same under all three treatments.

what mechanistic role the hcl plays in the reaction of 2-methyl-2-butanol

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HCl plays the role of a catalyst in the reaction of 2-methyl-2-butanol, which is an acid-catalyzed reaction.

-methyl-2-butanol reacts with HCl to form 2-chloro-2-methylbutane, which is an SN1 reaction in which the rate-limiting step is the formation of the carbocation intermediate.

HCl acts as a catalyst in this reaction because it can donate a proton to 2-methyl-2-butanol to form a carbocation intermediate that is more reactive than the starting material. In this way, HCl speeds up the reaction rate without being consumed in the reaction.

SummaryThe HCl plays the role of a catalyst in the acid-catalyzed reaction of 2-methyl-2-butanol, donating a proton to form a carbocation intermediate that is more reactive than the starting material. This speeds up the reaction rate without being consumed in the reaction.

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what is the solubility of mgco3 in a solution that contains 0.080 m mg2 ions

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The solubility of MgCO3 in a solution that contains 0.080 M Mg2+ ions is approximately 8.26 × 10-4 M.

The solubility of MgCO3 in a solution that contains 0.080 M Mg2+ ions can be determined using the solubility product constant (Ksp) of MgCO3 and the ionization reaction of MgCO3.

The balanced chemical equation for the reaction of MgCO3 with water is:MgCO3(s) + H2O(l) ⇌ Mg2+(aq) + HCO3-(aq)

The Ksp expression for MgCO3 can be written as: Ksp = [Mg2+][CO32-]Since MgCO3 is a sparingly soluble salt, it will dissociate partially in water to form Mg2+ and CO32- ions. Therefore, the equilibrium concentrations of Mg2+ and CO32- ions can be assumed to be equal to the solubility of MgCO3 (S).

Thus, the Ksp expression for MgCO3 can be simplified as: Ksp = S2This means that the solubility of MgCO3 in a solution containing 0.080 M Mg2+ ions is equal to the square root of the Ksp value of MgCO3. The Ksp value of MgCO3 is 6.82 × 10-6.

Thus, the solubility of MgCO3 in the given solution can be calculated as:S = √(Ksp) = √(6.82 × 10-6) ≈ 8.26 × 10-4 M.

Therefore, the solubility of MgCO3 in a solution that contains 0.080 M Mg2+ ions is approximately 8.26 × 10-4 M.

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which reaction characteristics are changing by the addition of a catalyst to a reaction at constant temperature?

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The addition of a catalyst to a reaction at a constant temperature can affect several reaction characteristics:

Reaction Rate: A catalyst can increase the rate of a chemical reaction by providing an alternative reaction pathway with lower activation energy. It provides an alternative mechanism for the reaction to proceed, allowing the reactants to form products more quickly. As a result, the reaction rate is enhanced. Activation Energy: Catalysts lower the activation energy required for the reaction to occur. By providing an alternative pathway with lower energy barriers, a catalyst allows the reactant molecules to overcome the activation energy hurdle more easily, facilitating the reaction. Equilibrium Position: A catalyst does not affect the equilibrium position of a reversible reaction. It can speed up the attainment of equilibrium by accelerating the forward and backward reactions equally. However, the actual concentrations of the reactants and products at equilibrium remain the same. Reaction Selectivity: Catalysts can influence the selectivity of a reaction, promoting the formation of specific products while suppressing undesired side reactions. They can facilitate specific bond-breaking and bond-forming steps, favoring certain reaction pathways over others.

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Part A Watch the animation, then check off the samples that will conduct electricity. Check all that apply. View Available Hint(s) Solid sugar U Solid NaCl U NaCl solution Sugar solution Submit

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The samples that will conduct electricity are: Solid NaCl and NaCl solution.

:When a substance dissolves in water, it forms ions that can conduct electricity. Solid sugar and sugar solution don't conduct electricity.

When electricity is passed through sugar solution or solid sugar, it will not conduct electricity. Similarly, NaCl is a salt that conducts electricity because it forms ions when dissolved in water.

NaCl solution conducts electricity due to the movement of these ions.

Here is the summary:The substances that can conduct electricity are those that are able to dissolve in water and form ions. Solid sugar and sugar solution do not conduct electricity because they are unable to form ions in water. Solid NaCl and NaCl solution are able to form ions in water and therefore can conduct electricity.

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Consider the reaction between ozone and a metal cation, M2+, to form the metal oxide, MO2, and dioxygen:
O3 + M2+(aq) + H2O(l) ?O2(g) + MO2(s) + 2 H+
for which Eocell = 0.46.
Given that Eored of ozone is 2.07 V, calculate Eored of MO2. Put in your answer to 2 decimal places!

Answers

To calculate the reduction potential (Eored) of MO2 in the given reaction, we can use the Nernst equation Eored = Eocell - (0.0592/n) * log(Q).

We can see that 4 moles of electrons are transferred since there are 4 moles of charges on the left side (2 from M2+ and 2 from H+) and no charges on the right side.Now, we can substitute the values into the Nernst equation to calculate Eored of MO2 Therefore, the reduction potential (Eored) of MO2 in the given reaction is 0.46 V.We can see that 4 moles of electrons are transferred since there are 4 moles of charges on the left side (2 from M2+ and 2 from H+) and no charges on the right side.

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identify the products formed in this brønsted-lowry reaction. hso−4 hno2↽−−⇀acid base

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Bronsted-Lowry acid-base reaction is a reaction in which the transfer of a proton (H+) takes place from one species to another. The acid is a species that gives the proton, while the base is a species that accepts it.Acid base reaction equation:HSO4- + HNO2⇀−−⇀→ NO2- + H2O + SO42-The products of the Bronsted-Lowry reaction are NO2-, H2O, and SO42-.

The reaction takes place between HSO4- and HNO2. HSO4- can be considered as an acid and HNO2 as a base, where HSO4- will donate a proton to HNO2 and get converted into SO42-, while HNO2 will accept a proton from HSO4- and get converted into NO2-. The chemical reaction equation for the acid-base reaction is given as follows:HSO4- + HNO2⇀−−⇀→ NO2- + H2O + SO42-The given Bronsted-Lowry reaction has an acid HSO4- and a base HNO2, where HSO4- donates a proton to HNO2, which accepts it, and NO2-, H2O, and SO42- are formed. Thus, the products formed in this Bronsted-Lowry reaction are NO2-, H2O, and SO42-.Note: The Bronsted-Lowry acid-base reaction is based on the donation and acceptance of protons, so it is also known as proton transfer reaction.

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(a) write the expression for the equilibrium constant (kc) for the reversible reaction n2() o2()⇌2no()δ=181kj

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The equilibrium constant (Kc) for the reversible reaction N2(g) + O2(g)  2NO(g) with  = 181 kJ is determined by the concentrations of the reactants and products at equilibrium, which depend on the reaction conditions. The energy released during the reaction is 181 kJ/mol.

The equilibrium constant (Kc) for the reversible reaction N2(g) + O2(g)  2NO(g) with  = 181 kJ is calculated as follows: Kc = [NO]2/[N2][O2] where [N2], [O2], and [NO] are the concentrations of nitrogen gas, oxygen gas, and nitrogen monoxide gas, respectively. The energy released during the reaction is 181 kJ/mol, which can be interpreted as the energy required to break the bonds of the reactants is greater than the energy released when the bonds of the products are formed. At equilibrium, the rate of the forward reaction is equal to the rate of the backward reaction, and the concentrations of the reactants and products remain constant.

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We can express the equilibrium constant Kc as follows:Kc = (2z)² / (x - 2z)(y - z)Kc = 4z² / (x - 2z)(y - z). The above expression for Kc can be simplified using the quadratic formula.

The expression for the equilibrium constant, Kc for the reversible reaction N2(g) + O2(g) ⇌ 2NO(g) with δH = 181 kJ can be written as:Kc = [NO]² / [N2] [O2]

Where [NO], [N2], and [O2] are the molar concentrations of the respective reactants or products at equilibrium.

Let us assume that the initial concentration of N2 is x mol/L and the initial concentration of O2 is y mol/L, therefore the initial concentration of NO will be zero mol/L.

At equilibrium, the molar concentration of N2 will be (x - 2z) mol/L, the molar concentration of O2 will be (y - z) mol/L and the molar concentration of NO will be 2z mol/L (where z is the equilibrium concentration of NO).

Using the above equation, we can express the equilibrium constant Kc as follows:Kc = (2z)² / (x - 2z)(y - z)Kc = 4z² / (x - 2z)(y - z)The above expression for Kc can be simplified using the quadratic formula.

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If two coherent light sources superimpose then bright and dark regions of light is observed. Such phenomenon of production of fringes/bands due to superimposition of two light sources is called interference.
The condition for the bright fringe/maximum of the interference pattern is,
Here, is the slit separation, is the order of the fringe, is the angle between the central maximum to the pattern (based small angle approximation) and is the wavelength.

Answers

The condition for a bright fringe or maximum in the interference pattern is given by the equation: nλ = d * sinθ.

When two coherent light sources superimpose, the phenomenon of interference occurs, leading to the production of bright and dark regions called fringes or bands. The interference pattern arises due to the constructive and destructive interaction between the waves originating from the two light sources.

The condition for a bright fringe or maximum in the interference pattern is given by the equation: nλ = d * sinθ, where 'n' represents the order of the fringe (an integer value), 'λ' is the wavelength of the light, 'd' is the slit separation between the two light sources, and 'θ' is the angle between the central maximum and the bright fringe location, based on the small angle approximation.

In this equation, constructive interference occurs when the path difference between the waves is an integer multiple of the wavelength, resulting in a bright fringe. The bright fringes correspond to the maxima of the interference pattern, while the dark regions represent the minima or areas of destructive interference.

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what is the lowest energy conformation for the compound? ch3 ch3 cl

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The compound you provided, [tex]CH3-CH3-Cl[/tex], represents 1-chloroethane. The lowest energy conformation of this molecule can be determined by considering the steric interactions between the atoms and minimizing the potential energy.

In 1-chloroethane, the carbon atom bonded to the chlorine[tex](C-Cl)[/tex]is a chiral center, which means it has four different substituents: two methyl groups[tex](CH3)[/tex] and one chlorine [tex](Cl)[/tex]. To determine the lowest energy conformation, we need to consider the spatial arrangement of these substituents.

The most stable conformation of 1-chloroethane is the anti conformation, where the two methyl groups are in a staggered arrangement (180° apart) and on opposite sides of the molecule. The chlorine atom is then positioned in the space between the two methyl groups.

Here's the structure of 1-chloroethane in its lowest energy anti conformation attached.

In this conformation, the steric interactions between the methyl groups are minimized because they are as far apart as possible (180° dihedral angle). The chlorine atom is also positioned to avoid close contact with the methyl groups.

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explain why the first reaction creates a racemic mixture and the second produces only a single enantiomer

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In organic chemistry, isomers are compounds that have the same molecular formula but different structural arrangements. Enantiomers are one of the two types of isomers. Enantiomers are non-superimposable mirror images of each other, so they are chiral.

When a molecule is chiral, it has a non-superimposable mirror image that is not identical to it. Chiral molecules, for instance, have mirror images that are non-superimposable, making them unique. A chiral molecule can exist in two enantiomeric forms, each of which has a different biological activity, physical properties, and chemical properties. The main difference between the first reaction, which creates a racemic mixture, and the second reaction, which generates only a single enantiomer, is that the first reaction is not selective, whereas the second reaction is selective. The stereochemistry of a reaction determines the nature of the product mixture when a reaction proceeds in the presence of a chiral molecule. A racemic mixture is formed when equal quantities of both enantiomers are created. In a racemic mixture, two enantiomers of the same compound are produced in equivalent quantities. Racemic mixtures are produced as a result of non-selective reactions. As a result, racemic mixtures of carboxylic acids are created when acid chlorides are combined with racemic mixtures of secondary amines. Because the amines are secondary, they are not sufficiently hindered, making them more prone to reaction with the acid chloride. Since the reaction is not selective, equal quantities of both enantiomers are formed. A single enantiomer, on the other hand, is produced when a reaction is selective. In other words, when a reaction is selective, it generates only one enantiomer. Enantiomerically pure compounds, such as optically pure carboxylic acids, can be produced when a single enantiomer is used. If an excess of optically pure amine is used to react with a single enantiomer of an acid chloride, for example, an enantiomerically pure carboxylic acid product will be produced.

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calculate the kp for the following reaction at 25°c: h2(g) + i2(g) ⇌ 2hi(g) δg o = 2.60 kj/mol

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At 25°C, the equilibrium constant, Kp, for the reaction H2(g) + I2(g) ⇌ 2HI(g) is approximately 0.036.

The equilibrium constant, Kp, for the reaction H2(g) + I2(g) ⇌ 2HI(g) at 25°C can be calculated using the standard Gibbs free energy change, ΔG°, of 2.60 kJ/mol.

The equilibrium constant, Kp, is related to the standard Gibbs free energy change, ΔG°, through the equation:

ΔG° = -RT ln(Kp)

Where R is the gas constant (8.314 J/(mol·K)) and T is the temperature in Kelvin. To calculate Kp, we need to convert the given ΔG° value from kJ/mol to J/mol:

ΔG° = 2.60 kJ/mol = 2600 J/mol

Substituting the values into the equation, we have:

2600 J/mol = - (8.314 J/(mol·K)) * (25 + 273.15 K) * ln(Kp)

Simplifying the equation and rearranging, we can solve for ln(Kp):

ln(Kp) = - (2600 J/mol) / [(8.314 J/(mol·K)) * (25 + 273.15 K)]

ln(Kp) ≈ - 3.303

Now, we can calculate Kp by taking the exponent of both sides:

Kp ≈ e^(-3.303)

Kp ≈ 0.036

Therefore, at 25°C, the equilibrium constant, Kp, for the reaction H2(g) + I2(g) ⇌ 2HI(g) is approximately 0.036.

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