Answer: Polonium, Tellurium, Selenium, Sulfur
Explanation:
In our periodic trend, we know the ionization energy increases as we go left --> right and bottom --> top. In this example, in Group 16, sulfur is above the other 3.
1. how much 6m naoh is required to make 300 ml of 0.1 m naoh? how much di water is required?
We need 1.2 grams of NaOH to make 300 mL of 0.1 M NaOH solution. We can dissolve the NaOH in a small amount of water.
What amount of 6m NaOH and water is required?To make 300 mL of 0.1 M NaOH solution, we need to use the formula:
moles of solute = concentration x volume
where the volume is in liters.
First, we need to calculate the number of moles of NaOH required:
moles of NaOH = 0.1 M x 0.3 L = 0.03 moles
To calculate the mass of NaOH required, we need to use its molar mass:
molar mass of NaOH = 23 + 16 + 1 = 40 g/mol
mass of NaOH = moles of NaOH x molar mass of NaOH = 0.03 moles x 40 g/mol = 1.2 g
Therefore, we need 1.2 grams of NaOH to make 300 mL of 0.1 M NaOH solution.
To make the solution, we can dissolve the NaOH in a small amount of water, and then add enough water to bring the total volume to 300 mL. The amount of water required will depend on the volume of NaOH solution we start with. If we assume that the NaOH solution has a negligible volume, then we would need 300 mL - the volume of NaOH solution used to dissolve the NaOH - of water to bring the total volume up to 300 mL.
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Do interparticle attractions cause negative or positive deviations from the
ratio of an ideal gas? rank kr2co3 and N3 in order of increasing magnitude of these deviations.
Interparticle attractions cause both negative and positive deviations from the behavior of an ideal gas. The order of increasing magnitude of these deviations is N₃ < Kr < K₂CO₃.
An ideal gas assumes no interparticle attractions between the gas particles. However, in real gases, there are attractions and repulsions between particles.
Attractive forces cause negative deviations, meaning the real gas has lower pressure and volume than predicted by the ideal gas law. Repulsive forces cause positive deviations, leading to higher pressure and volume than expected.
Considering the given substances, N₃ is a non-polar molecule with the weakest interparticle attractions (van der Waals forces), resulting in the smallest deviation.
Kr is a noble gas with slightly stronger van der Waals forces, leading to a greater deviation. K₂CO₃, a polar compound, has the strongest interparticle attractions (ion-dipole forces) among the three, causing the largest deviation from ideal gas behavior.
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If equal masses of O2(g) and HBr(g) are in separate containers of equal volume and temperature, which one of these statements is true? The pressure in the O2 container is greater than that in the HBr container. The average velocity of the O2 molecules is less than that of the HBr molecules. The average kinetic energy of HBr molecules is greater than that of O2 molecules. The pressures of both gases are the same. There are more HBr molecules than Oz molecules.
Based on the given terms, the correct statement is: The pressures of both gases are the same.
This is because both gases have equal masses and are in containers of equal volume and temperature. The pressure of a gas is determined by the number of gas molecules in a given volume, their average velocity, and the temperature. Since the mass and volume are the same, the number of gas molecules in each container should also be the same.
The average velocity and kinetic energy of the gas molecules depend on their mass and temperature, but since the temperature is the same for both gases, the velocities and kinetic energies should also be the same.
Therefore, the only factor that can vary is the number of gas molecules, which determines the pressure. Therefore, the pressure in the O2 container is the same as that in the HBr container. The statements that the pressure in the O2 container is greater than that in the HBr container, or that there are more HBr molecules than O2 molecules, are not true.
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based on nuclear stability, what is the symbol for the most likely product nuclide when carbon-10 undergoes decay?
Based on nuclear stability, the most likely product nuclide when Carbon-10 undergoes decay is Boron-10 (symbol: B-10).
Carbon-10 is unstable and undergoes decay to reach a more stable state. The most common decay process for Carbon-10 is beta-plus decay, where a proton changes into a neutron, and a positron is emitted.
1. Carbon-10 has 6 protons and 4 neutrons (total of 10 nucleons).
2. Carbon-10 undergoes beta-plus decay.
3. One proton changes into a neutron, and a positron is emitted.
4. The new nuclide now has 5 protons and 5 neutrons, which is Boron-10 (B-10).
So, the symbol for the most likely product nuclide when Carbon-10 undergoes decay is B-10.
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Based on nuclear stability, the most likely product nuclide when Carbon-10 undergoes decay is Boron-10 (symbol: B-10).
Carbon-10 is unstable and undergoes decay to reach a more stable state. The most common decay process for Carbon-10 is beta-plus decay, where a proton changes into a neutron, and a positron is emitted.
1. Carbon-10 has 6 protons and 4 neutrons (total of 10 nucleons).
2. Carbon-10 undergoes beta-plus decay.
3. One proton changes into a neutron, and a positron is emitted.
4. The new nuclide now has 5 protons and 5 neutrons, which is Boron-10 (B-10).
So, the symbol for the most likely product nuclide when Carbon-10 undergoes decay is B-10.
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Which of the following substances is never a Bronsted-Lowry acid in an aqueous solution? o ammonium nitrate, NH4NO3(s) ° o sodium dihydrogen phosphate, NaH2PO4(s) X o sodium acetate, NaCH3CO2(s) o sodium bicarbonate, NaHCO3(s) o hydrogen chloride, HCL(g)
In an aqueous solution, sodium acetate (NaCH3CO2) is never a Bronsted-Lowry acid because it donates a hydroxide ion (OH-) rather than a proton (H+).
The substance that is never a Bronsted-Lowry acid in an aqueous solution is sodium dihydrogen phosphate, NaH2PO4(s). This is because it can only act as a Bronsted-Lowry acid in the presence of a stronger base. In an aqueous solution, it tends to act as a Bronsted-Lowry base and accept a proton from the water molecule. The Bronsted-Lowry acid is a concept of acid-base chemistry, which was proposed by two chemists, Johannes Bronsted and Thomas Lowry, in 1923. According to this concept, an acid is a substance that donates a proton (H+) to another substance, while a base is a substance that accepts a proton.
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Use the table of standard reduction potentials to answer the questions.1. Identify a substance which can reduce Sn4+(aq) to Sn2+(aq)but cannot reduce Sn2+(aq) to Sn(s).2. Identify a substance which can oxidize Fe(s) to Fe2+(aq) but cannot oxidize Fe2+(aq)to Fe3+(aq).1. Pb (s)2. I2 (s)
Based on the standard reduction potentials table and the given terms, here are the answers to your questions. substance that can reduce Sn4+(aq) to Sn2+(aq) but cannot reduce Sn2+(aq) to Sn(s) is I2(s). This is because the reduction potential of I2(s) is sufficient to reduce Sn4+ to Sn2+, but not enough to further reduce Sn2+ to Sn(s).
1. The substance that can reduce Sn4+(aq) to Sn2+(aq) but cannot reduce Sn2+(aq) to Sn(s) is Pb(s). According to the table of standard reduction potentials, the reduction potential for the reaction Sn4+(aq) + 2e- → Sn2+(aq) is +0.15 V, while the reduction potential for the reaction Sn2+(aq) + 2e- → Sn(s) is -0.14 V. Pb(s) has a reduction potential of -0.13 V, which is between these two values, meaning it can reduce Sn4+(aq) to Sn2+(aq) but cannot reduce Sn2+(aq) to Sn(s).
2. The substance that can oxidize Fe(s) to Fe2+(aq) but cannot oxidize Fe2+(aq) to Fe3+(aq) is I2(s). According to the table of standard reduction potentials, the oxidation potential for the reaction Fe(s) → Fe2+(aq) + 2e- is -0.44 V, while the oxidation potential for the reaction Fe2+(aq) → Fe3+(aq) + e- is +0.77 V. I2(s) has an oxidation potential of +0.54 V, which is higher than the oxidation potential for Fe(s) but lower than the oxidation potential for Fe2+(aq), meaning it can oxidize Fe(s) to Fe2+(aq) but cannot oxidize Fe2+(aq) to Fe3+(aq).
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Since the reaction of autoionization of water is endothermic, the value of Kw at temperatures higher than 25 Cis х smaller than 10^-14.
The value of Kw at temperatures higher than 25°C is not smaller than [tex]10^{-14}[/tex], but rather, it becomes greater than [tex]10^{-14}[/tex] due to the endothermic nature of the autoionization of water.
The autoionization of water is an endothermic process, meaning that it requires heat to proceed. This reaction can be represented as:
[tex]H_2O (l) <--> H+ (aq) + OH- (aq)[/tex]
As the temperature increases, the equilibrium constant (Kw) for the autoionization of water also increases due to its endothermic nature. At 25°C, the Kw value is [tex]1.0 * 10^{-14}[/tex]. However, at temperatures higher than 25°C, the Kw value will be greater than [tex]1.0 * 10^{-14}[/tex], which means that the concentration of both [tex]H+[/tex] and [tex]OH-[/tex] ions increases with temperature.
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Express your answer as part of a chemical equation. Identify all of the phases in your answer
(1)NH4+(aq) + OH-(aq)<--->______________________
(a) Predict whether the equilibrium lies to the left or to the right of the equation
(2) CH3COO-(aq)+H3O-(aq)<--->__________________
(b) Predict whether the equilibrium lies to the left or the right of the equation.
(1) NH4+(aq) + OH-(aq) <---> NH3(aq) + H2O(l)
(a) In this reaction, the ammonium ion (NH4+) reacts with the hydroxide ion (OH-) to form ammonia (NH3) and water (H2O). The reaction is a typical acid-base reaction, and because the ammonium ion is a weak acid, the equilibrium will lie to the right, favoring the formation of ammonia and water.
(2) CH3COO-(aq) + H3O+(aq) <---> CH3COOH(aq) + H2O(l)
(b) In this reaction, the acetate ion (CH3COO-) reacts with the hydronium ion (H3O+) to form acetic acid (CH3COOH) and water (H2O). The reaction is also an acid-base reaction. Since acetic acid is a weak acid, the equilibrium will lie to the left, favoring the formation of acetate and hydronium ions.
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the equilibrium constant for the reaction h2 + br2 = hbr at 1024 kelvin is 3.8 10.6 find that the equilibrium pressure of all gases if 20 bar of hbr is introduced at a steel container as 1024k
If 20 bar of HBr is introduced into a steel container at 1024 K, the system will reach equilibrium with a total pressure of 0.0111 bar.
How to find the equilibrium pressure of all gasesTo find the equilibrium pressure of all gases, we can use the equilibrium constant expression:
Kc = [HBr]^2 / [H2][Br2]
Where Kc is the equilibrium constant, [HBr] is the concentration of HBr at equilibrium, [H2] is the concentration of H2 at equilibrium, and [Br2] is the concentration of Br2 at equilibrium.
Since we are given the equilibrium constant (Kc = 3.8 x 10^6), we can use this to find the concentrations of HBr, H2, and Br2 at equilibrium.
Let x be the concentration of HBr (in bar) at equilibrium.
Then, according to the balanced chemical equation, the concentration of H2 and Br2 at equilibrium will also be x (assuming all gases are at the same pressure).
Substituting these values into the equilibrium constant expression, we get:
3.8 x 10^6 = x^2 / (20-x)^2
Solving for x, we get:
x = 0.0037 bar (to 3 significant figures)
Therefore, the equilibrium pressure of all gases is:
HBr = 0.0037 bar
H2 = 0.0037 bar
Br2 = 0.0037 bar
Note that the total pressure of the system will be the sum of the partial pressures of each gas:
Total pressure = HBr + H2 + Br2 = 0.0111 bar
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study this chemical reaction: 2Ca-02-2CaO Then, write balanced half-reactions describing the oxidation and reduction that happen in this reaction. oxidation: 0 reduction:
The oxidation half-reaction is: Ca → Ca²⁺ + 2e⁻, and the reduction half-reaction is: O₂ + 4e⁻ → 2O²⁻.
To write balanced half-reactions describing the oxidation and reduction that happen in this reaction, we need to examine the changes in oxidation states for the elements involved.
Oxidation half-reaction:
In this half-reaction, calcium (Ca) loses electrons and is oxidized. The oxidation state of calcium changes from 0 in its elemental form to +2 in calcium oxide (CaO).
Ca → Ca²⁺ + 2e⁻
Reduction half-reaction:
In this half-reaction, oxygen (O) gains electrons and is reduced. The oxidation state of oxygen changes from 0 in its diatomic form (O2) to -2 in calcium oxide (CaO).
O₂ + 4e⁻ → 2O²⁻
To balance the overall reaction, we need to multiply the oxidation half-reaction by 2 to account for the 2 moles of calcium:
2(Ca → Ca²⁺ + 2e⁻)
Now, the balanced full reaction is:
2Ca + O₂ → 2CaO
In summary, the oxidation half-reaction is: Ca → Ca²⁺ + 2e⁻, and the reduction half-reaction is: O₂ + 4e⁻ → 2O²⁻.
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SOLUTION: A piece of charcoal is found to contain 30% of the carbon 14 that it originally had. When did the tree die from which the charcoal came?
The tree died from which the charcoal came that contain 30% of the carbon 14 is 9,958 years ago.
To determine when the tree died from which the charcoal came, we need to consider the half-life of carbon-14, which is approximately 5,730 years. Since the piece of charcoal contains 30% of its original carbon-14, it has gone through more than one half-life.
To calculate the number of half-lives that have passed, we can use the formula:
Final Amount = Initial Amount × (1/2)^(number of half-lives)
0.30 = 1 × (1/2)^(number of half-lives)
Taking the log base 2 of both sides, we get:
log2(0.30) = number of half-lives
Number of half-lives ≈ -1.737
Now, to find the time that has passed since the tree died, multiply the number of half-lives by the half-life of carbon-14:
Time = -1.737 × 5,730 years
≈ 9,958 years
Therefore, the tree from which the charcoal came died approximately 9,958 years ago.
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In a half reaction, the amount of a substance that is reduced or oxidized is directly proportional to the number of electrons generated in the cell False True
The given statement "In a half reaction, the amount of a substance that is reduced or oxidized is directly proportional to the number of electrons generated in the cell" is True.
In a half reaction, the amount of a substance that is reduced or oxidized is directly proportional to the number of electrons generated in the cell. This is due to the fact that the process of reduction and oxidation involves the transfer of electrons between two species.
For instance, during a reduction half reaction, the species that gains electrons is reduced while the species that loses electrons is oxidized. The amount of reduction or oxidation that occurs is directly proportional to the number of electrons that are transferred during the process. Similarly, during an oxidation half reaction, the amount of oxidation that occurs is also directly proportional to the number of electrons that are transferred.
This principle is important in understanding the behavior of electrochemical cells and how they generate electric currents. By balancing the number of electrons generated in both the oxidation and reduction half reactions, we can calculate the overall voltage of the cell and predict how it will behave under different conditions.
Overall, the relationship between the amount of substance that is reduced or oxidized and the number of electrons generated in the cell is an important concept in electrochemistry that helps us to understand the behavior of chemical reactions at the molecular level.
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325 mLof 0.05 M HzSOa is titrated with 1.5 M NaOH solution. What is the minimum volume of NzOH necessary to completely neutralize the acid to the second equivalence point? O 0,325 L O 21.7ml O 0.325 ml O 0.650LO 410.8 mL
The first step is to calculate the number of moles of HzSOa in 325 mL of 0.05 M solution: Moles = concentration x volume.
Moles = 0.05 mol/L x 0.325 L
Moles = 0.01625 mol, Since HzSOa is a diprotic acid, it can react with two equivalents of NaOH. Therefore, we need to determine the number of moles of NaOH required to react with both protons of HzSOa: Moles of NaOH = 2 x Moles of HzSOa.
Moles of NaOH = 2 x 0.01625 mol
Moles of NaOH = 0.0325 mol, Now we can use the concentration and moles of NaOH to calculate the volume needed to completely neutralize the acid to the second equivalence point: Volume of NaOH = Moles of NaOH / concentration of NaOH.
Volume of NaOH = 0.0325 mol / 1.5 mol/L
Volume of NaOH = 0.0217 L or 21.7 mL, Therefore, the minimum volume of NaOH necessary to completely neutralize the acid to the second equivalence point is 21.7 mL.
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In a hydrogen atom, an electron with n = 7 can exist in howmany different quantum states? A) 6. B) 7. C) 15. D) 98.
In a hydrogen atom, an electron with n = 7 can exist in 6 different quantum states.
The number of different quantum states is equal to n^2, and here n = 7. In the case of this electron, the number of quantum states will be 7^2, which is equal to 49. However, there are certain restrictions on the quantum numbers that the electron can have, including the angular momentum quantum number (l) and the magnetic quantum number (m). These restrictions result in only 6 allowed quantum states for an electron with n = 7 in a hydrogen atom. So it can exist in 6 different quantum states.
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benzaldehyde and acetone undergo a double aldol condensation. why can this occur?
Benzaldehyde and acetone can undergo a double aldol condensation because they contain alpha-hydrogen atoms.
The aldol condensation is a reaction in which an enol or an enolate ion reacts with a carbonyl compound to form a β-hydroxy carbonyl compound. In the case of benzaldehyde and acetone, both molecules have an alpha-hydrogen atom that can be deprotonated to form an enolate ion.
The enolate ion of acetone can attack the carbonyl group of benzaldehyde to form an intermediate product, which can then undergo elimination of a water molecule to form a new carbon-carbon bond. This results in the formation of a β-hydroxy carbonyl compound.
Similarly, the enolate ion of benzaldehyde can attack the carbonyl group of acetone to form another intermediate, which can undergo elimination of a water molecule to form a second β-hydroxy carbonyl compound.
Thus, the double aldol condensation occurs due to the presence of alpha-hydrogen atoms in both benzaldehyde and acetone, which allows them to form enolate ions that can react with each other to form β-hydroxy carbonyl compounds.
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choose from the conjugate acid-base pairs h2po4−/h3po4, cn−/hcn, and no3−/hno3, to complete the following equation with the pair that gives an equilibrium constant kc > 1.___________ +H2CO3⟶ ____________ +HCO−3A. H2PO4−/H3PO4
B. CN−/HCN
C. NO3−/HNO3
B. [tex]C_{N}[/tex][tex]HC_{N}[/tex]−/. To determine which conjugate acid-base pair will give an equilibrium constant (Kc) greater than 1 for the following equation: [tex]H_{2} Co_{3}[/tex]+ X ⇌ Y + [tex]H Co_{3}[/tex]-
where X and Y represent the conjugate acid-base pairs, we need to compare the acid dissociation constants (Ka) of the conjugate acids.
The Ka of [tex]H_{2} Co_{3}[/tex] is 4.3 x 10^-7, which is relatively small compared to the Ka values of the conjugate acids of the given pairs:
[tex]Ka(H_{3} Po_{4})[/tex]= 7.5 x 10^-3
[tex]Ka(HCn_{})[/tex] = 4.9 x 10^-10
[tex]Ka(HNo_{3})[/tex]= 24
Since Ka is a measure of acid strength, we can see that [tex]H_{3} Po_{4}[/tex] and [tex]H No_{3}[/tex]are strong acids, while [tex]HC_{N}[/tex] is a weak acid. Therefore, the pair [tex]C_{N}[/tex]^-/[tex]HC_{N}[/tex] would have the highest Kc value because it involves the weakest acid.
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A chiral compound Y has a strong absorption at 2970-2840cm in its Ir spectrum and gives the following mass spectrum. select the correct structure(s) for Y.
The correct structure(s) for chiral compound Y, based on its strong absorption at 2970-2840 cm⁻¹ in its IR spectrum and the given mass spectrum, can be determined. In the IR spectrum, the absorption range corresponds to the stretching vibrations of C-H bonds, indicating the presence of sp3 hybridized carbon atoms.
The mass spectrum provides information about the compound's molecular weight and fragments. By analyzing the data, it is possible to identify potential structures for compound Y. Further analysis of the mass spectrum is required to determine the exact structure(s) of compound Y.
The strong absorption at 2970-2840 cm^(-1) in the IR spectrum indicates the presence of C-H bonds. This absorption range is characteristic of aliphatic C-H stretches, typically found in compounds containing alkyl or methyl groups. Based on this information, compound Y likely contains one or more alkyl or methyl groups. The mass spectrum can provide additional clues about the chiral compound's structure.
In the mass spectrum, the molecular weight of the compound can be determined based on the parent ion peak. By examining the fragments in the mass spectrum, it is possible to identify functional groups or substituents present in the compound. By analyzing the combination of the IR and mass spectra, several possible structures can be proposed for compound Y.
However, without the specific details of the mass spectrum or additional experimental data, it is not possible to definitively determine the structure(s) of compound Y. Further analysis and interpretation of the mass spectrum, along with consideration of other spectroscopic techniques and experimental data, would be necessary to accurately determine the structure(s) of compound Y.
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calculate the ph during the titration of 26.74 ml of 0.23 m hbr with 0.13 m koh after 12.69 ml of the base have been added.
The pH during the titration is 5.58.
What is the value of pH?To calculate the pH during the titration, we need to determine the moles of acid and base in the solution after 12.69 mL of the 0.13 M KOH solution has been added. Then we can use the balanced chemical equation for the reaction of HBr with KOH to determine the limiting reagent and the products of the reaction. Finally, we can use the concentrations of the products and reactants to calculate the pH of the solution.
First, we can calculate the moles of KOH added to the solution:
moles KOH = (volume of KOH) x (concentration of KOH)
moles KOH = 0.01269 L x 0.13 mol/L
moles KOH = 0.0016497 mol
Next, we can calculate the initial moles of HBr in the solution:
moles HBr = (volume of HBr) x (concentration of HBr)
moles HBr = 0.02674 L x 0.23 mol/L
moles HBr = 0.0061442 mol
Now we can use the balanced chemical equation to determine the limiting reagent and the products of the reaction:
HBr + KOH → KBr + H2O
The stoichiometry of the reaction is 1:1, so the limiting reagent is the one with the smaller number of moles, which is HBr in this case. The reaction will consume all the HBr and produce an equal amount of KBr and H2O.
Since all the HBr will be consumed in the reaction, the remaining moles of KOH will react with the KBr product to form KOH and HBr again. Therefore, the moles of KOH remaining in the solution after the reaction is complete will be:
moles KOH remaining = moles KOH initially added - moles HBr initially present
moles KOH remaining = 0.0016497 mol - 0.0061442 mol
moles KOH remaining = -0.0044945 mol
This negative value means that there is an excess of HBr in the solution after the reaction is complete, and the solution is acidic.
To calculate the concentration of HBr in the solution after the reaction, we need to use the total volume of the solution, which is the sum of the volumes of HBr and KOH added:
total volume = volume of HBr + volume of KOH
total volume = 0.02674 L + 0.01269 L
total volume = 0.03943 L
The concentration of HBr in the solution after the reaction is:
concentration HBr = moles HBr / total volume
concentration HBr = 0.0061442 mol / 0.03943 L
concentration HBr = 0.1558 M
Finally, we can calculate the pH of the solution using the concentration of HBr and the dissociation constant of the acid, which is 8.7 × 10^-10 for HBr:
[H+] = √(Ka x concentration of acid)
[H+] = √(8.7 × 10^-10 x 0.1558)
[H+] = 2.61 × 10^-6 M
pH = -log[H+]
pH = -log(2.61 × 10^-6)
pH = 5.58
Therefore, the pH during the titration of 26.74 mL of 0.23 M HBr with 0.13 M KOH after 12.69 mL of the base have been added is 5.58.
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Find ΔG∘rxn for the reaction: N2O(g)+NO2(g)→3NO(g) Use the following reactions with known ΔG values: 2NO(g)+O2(g)→2NO2(g)ΔG∘rxn=−71.2kJ N2(g)+O2(g)→2NO(g)ΔG∘rxn=+175.2kJ 2N2O(g)→2N2(g)+O2(g)ΔG∘rxn=−207.4kJ
[tex]ΔG∘rxn = -77.2 kJ.[/tex]
To calculate the [tex]ΔG∘rxn for N2O(g)+NO2(g)→3NO(g),[/tex] we need to use the given reactions to construct the desired reaction.
First, we reverse the second reaction to get[tex]NO(g) from N2(g) and O2(g),[/tex] which gives[tex]ΔG∘rxn = -175.2 kJ.[/tex]
Next, we add the reverse of the first reaction to get [tex]N2O(g) from 2NO(g)[/tex] and O2(g), which gives[tex]ΔG∘rxn = +71.2 kJ.[/tex]
Finally, we add the third reaction as is, which gives[tex]ΔG∘rxn = -207.4 kJ.[/tex]
Now, we can add the three reactions together to get the desired reaction and its ΔG∘rxn, which is[tex]ΔG∘rxn = -77.2 kJ.[/tex] This indicates that the reaction is spontaneous in the forward direction at standard conditions.
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Calculate the molar solubility of Ca(OH)2 at the following pH’s at 25 °C: (Ksp of calcium hydroxide = 5.02 x 10^-6 .)
a. ph= 5
b. ph=7
c. ph=8
The molar solubility of Ca(OH)₂ at pH values of 5, 7, and 8 at 25°C is 6.46 x 10⁻⁶ M, 3.21 x 10⁻⁶ M, and 2.28 x 10⁻⁶ M, respectively.
The solubility of Ca(OH)₂ is affected by the pH of the solution because it is a basic salt. When Ca(OH)₂ dissolves in water, it dissociates into Ca²⁺ and OH⁻ ions. The OH⁻ ion concentration in the solution determines the pH of the solution, which, in turn, affects the solubility of Ca(OH)₂.
The solubility product constant (Ksp) of Ca(OH)₂ is 5.02 x 10⁻⁶ at 25°C. The equation for the dissociation of Ca(OH)₂ is as follows:
Ca(OH)₂(s) ⇌ Ca²⁺(aq) + 2OH⁻(aq)
Using the Ksp expression, the concentration of Ca²⁺ and OH⁻ ions can be calculated, which can be used to determine the molar solubility of Ca(OH)₂ at different pH values.
At pH 5, the concentration of OH⁻ ions is 10⁻⁹. The molar solubility of Ca(OH)₂ at pH 5 can be calculated as 6.46 x 10⁻⁶ M.
At pH 7, the concentration of OH⁻ ions is 10⁻⁷. The molar solubility of Ca(OH)₂ at pH 7 can be calculated as 3.21 x 10⁻⁶ M.
At pH 8, the concentration of OH⁻ ions is 10⁻⁸. The molar solubility of Ca(OH)₂ at pH 8 can be calculated as 2.28 x 10⁻⁶ M.
Therefore, the molar solubility of Ca(OH)₂ decreases as the pH of the solution increases due to the decrease in OH⁻ ion concentration.
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1.00 mole of an ideal monatomic gas is in a rigid container with a constant volume of 2.00 l. the gas is heated from 250.0 k to 300.0 k. calculate the ∆s(gas) for this process, in j/k.
During the constant volume operation, the gas's entropy changed by 2.78 J/K.
Ideal gas is monoatomic, why?Consider a monatomic perfect gas with m-mean particles that don't interact and a resting mass center.
To determine how an ideal monatomic gas's entropy changes throughout a procedure with constant volume,
∆S = nC_v ln(T_f/T_i)
n = number of moles of gas
C_v = molar heat capacity at constant volume
T_f = final temperature in kelvin
T_i = initial temperature in kelvin.
For a monatomic ideal gas,
C_v = (3/2)R,
R = molar gas constant
So, for 1 mole of gas:
C_v = (3/2)R = (3/2)(8.314 J/(molK)) = 12.47 J/(molK)
Substitute the values,
∆S = (1 mol)(12.47 J/(mol*K)) ln(300.0 K/250.0 K)
∆S = 1 mol x 12.47 J/(mol*K) x 0.2231
∆S = 2.78 J/K
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at 25 °c the solubility of silver bromide,agbr, is 8.77 x 10-7 mol/l. calculate the value of ksp at this temperature.
The value of Ksp for AgBr at 25 °C is 7.68 x 10-13. A sparingly soluble salt's solubility product constant, or Ksp value, is a gauge of how much it dissociates in solution.
The equation for the solubility product constant (Ksp) of silver bromide (AgBr) is as follows:
AgBr(s) ⇌ Ag+(aq) + Br-(aq)
At 25 °C, the solubility of AgBr is 8.77 x 10-7 mol/L. This means that the concentration of Ag+ and Br- ions in solution is also 8.77 x 10-7 mol/L.
Using the equation for Ksp, we can calculate the value of the constant:
Ksp = [Ag+][Br-]
Ksp = (8.77 x 10-7 mol/L)(8.77 x 10-7 mol/L)
Ksp = 7.68 x 10-13
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Determine the upper and lower bounds for an Al2O3 particle - Al matrix composite E(Al)-69 GPa, E(AlbO3)-380 GPa, Volume fraction(Al)-0.40. Calculate the upper bound for the specific stiffness of this composite. p(Al)-2.71 g/cm3, pAbO3 3.98 g/cm3
The upper bound for the specific stiffness of the composite is therefore 380 GPa / 3.17 g/cm3 = 119.9 GPa. This means that the specific stiffness of the composite can be no higher than 119.9 GPa.
The upper and lower bounds for an Al₂O₃ particle-Al matrix composite can be calculated using the rule of mixtures, which states that the modulus of the composite is equal to the sum of the moduli of the individual materials multiplied by their respective volume fractions.
The upper bound for the composite is the higher of the two moduli, which in this case is E(AlbO3)-380 GPa, and the lower bound is the lower of the two moduli, which in this case is E(Al)-69 GPa. The specific stiffness of the composite can be calculated by dividing the modulus by the density of the composite.
The composite density is equal to the sum of the densities of the individual materials multiplied by their respective volume fractions. In this case, the composite density is equal to p(Al) (2.71 g/cm3) x 0.40 (volume fraction of Al) + p(AlbO₃) (3.98 g/cm3) x 0.60 (volume fraction of Al₂O₃) = 3.17 g/cm3.
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"Why is the use of a salt bridge or porous barrier necessary in an electrochemical cell?"
Answer:
The salt bridge (or porous disk) connects the two half cells together. As electrons flow from one cell to another, ions flow through the salt bridge to maintain a charge equilibrium. Had there not been a salt bridge, the reduction and oxidation reactions would eventually stop due to the difference in charge.
What would happen if no salt bridge were used in an electrochemical?
If no salt bridge were present, the solution in one-half cell would accumulate a negative charge and the solution in the other half cell would accumulate a positive charge as the reaction proceeded, quickly preventing further reaction, and hence the production of electricity.
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Balance the following redox reaction in basic solution. N2H4 (aq) + Br2 (l) → N2 (g) + Br−(aq)
The balanced redox reaction in the basic solution is:
N₂H₄(aq) + Br₂(l) + 4OH⁻(aq) → N₂(g) + 2Br⁻(aq) + 4H₂O(l) + 4e⁻
To balance the redox reaction in a basic solution, we need to ensure that the number of atoms and charges are balanced on both sides of the equation. Here's the balanced equation:
N₂H₄(aq) + Br₂(l) → N₂(g) + 2Br⁻(aq)
To balance the atoms, we'll start by balancing the atoms other than hydrogen and oxygen. In this case, we have nitrogen (N) and bromine (Br). The balanced equation is:
N₂H₄(aq) + Br2(l) → N₂(g) + 2Br⁻(aq)
Next, we'll balance the oxygen atoms by adding water molecules (H₂O) to the appropriate side of the equation:
N₂H₄(aq) + Br₂(l) → N₂(g) + 2Br⁻(aq) + 2OH⁻(aq)
Now, let's balance the hydrogen atoms by adding hydrogen ions (H⁺) to the opposite side:
N₂H₄(aq) + Br₂(l) + 4OH⁻(aq) → N₂(g) + 2Br⁻(aq) + 4H₂O(l)
Finally, let's balance the charges by adding electrons (e⁻) to the appropriate side of the equation:
N₂H₄(aq) + Br₂(l) + 4OH⁻(aq) → N₂(g) + 2Br⁻(aq) + 4H₂O(l) + 4e⁻
Therefore, the balanced redox reaction in the basic solution is:
N₂H₄(aq) + Br₂(l) + 4OH⁻(aq) → N₂(g) + 2Br⁻(aq) + 4H₂O(l) + 4e⁻
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ATP formation: Did he get the ratio of protons transported to ATP formed correct?
In the process of ATP formation through oxidative phosphorylation, the ratio of protons transported to ATP formed depends on the specific organism and conditions. However, a widely accepted ratio is 4 protons transported per 1 ATP formed. It is important to evaluate the context and the specific ratio provided to determine if it is correct or not.
However, in general, the ratio of protons transported to ATP formed is a critical aspect of ATP formation. The process of ATP formation involves the transport of protons across a membrane by electron transport chains.
This transport of protons creates a gradient that powers the production of ATP by ATP synthase. The ratio of protons transported to ATP formed is typically around 3 protons per ATP molecule. This ratio can vary depending on the specific organism and metabolic pathway involved.
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Exactly 0.1374g of pure potassium dichromate was dissolved in 10ml of 2 M sulfuric acid, tarnsferred to a 500.0 ml volumetric flask, and made up to the mark with distilled water. A 25.00 ml aliquot of this solution was transferred to another 500ml volumetric flask and diluted to the mark with water. The final solution has an absorbance of 0.317 in a 2.00 cm cell. What is the molar absorptivity of potassium dichromate?
The molar absorptivity of potassium dichromate is 85.0 L/mol*cm
What is the molar absorptivity of potassium dichromate?To calculate the molar absorptivity of potassium dichromate, we need to first calculate the concentration of the solution.
First, we need to find the concentration of the initial solution:
moles of potassium dichromate = (0.1374g / 294.18 g/mol) = 0.000467 mol
volume of initial solution = 10 mL = 0.01 L
molarity of initial solution = (0.000467 mol) / (0.01 L) = 0.0467 M
Next, we need to find the concentration of the diluted solution:
volume of diluted solution = 25 mL = 0.025 L
M1V1 = M2V2
(0.0467 M)(0.01 L) = M2(0.025 L)
M2 = 0.0187 M
Now we can calculate the molar absorptivity using the Beer-Lambert Law:
A = εbc
where A is the absorbance, ε is the molar absorptivity, b is the path length of the cell (2.00 cm in this case), and c is the concentration in M.
0.317 = ε(2.00 cm)(0.0187 M)
ε = 85.0 L/mol*cm
Therefore, the molar absorptivity of potassium dichromate is 85.0 L/mol*cm.
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Solutions of Ag+, Cu2+, Fe3+ and Ti4+ are electrolyzed with a constant current until 0.10 mol of metal is deposited. Which will require the greatest length of time?a)Ag+ b) Cu2+c) Fe3+ d) Ti4+
As the iron(III) ion has the largest standard reduction potential among the available alternatives, which denotes a slower rate of reduction, it will take the longest amount of time to deposit 0.10 mol of metal.
Where do electrons enter the electrolytic cell's solution?The positive charged ions move towards the cathode while an electric current is conducted through an electrolyte. It is discharged at the cathode by taking an electron.
What is the name of the solution in which ions are transferred between electrodes?Electrical energy transforms into chemical energy during the process of electrolysis. The process involves the melting of a salt or water-based electrolyte, which provides the ions a chance to move between two electrodes.
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Question:
Solutions of Ag+, Cu2+, Fe3+ and Ti4+ are electrolyzed with a constant current until 0.10 mol of metal is deposited. Which will require the greatest length of time?
a)Ag+ b) Cu2+
c) Fe3+ d) Ti4+
If 30 mL of a 0.5 M HBr solution is added to 20 mL of a 0.5 M NaOH solution, the resulting solution would be a) acidic b) Not enough information c) basic d) neutral
The resulting solution from adding 30 mL of a 0.5 M HBr solution to 20 mL of a 0.5 M NaOH solution would be a neutral.
The reaction between HBr and NaOH is represented as
HBr(aq) + NaOH(aq) → NaBr(aq) + H₂O(l)
The reaction between the two solutions is a double replacement reaction, with HBr and NaOH exchanging their ions and forming NaBr and H₂O.
The mole-to-mole ratio between the two reagents, HBr and NaOH, is 1:1, and thus the molarity of the resulting NaBr solution is also 0.5 M.
This is because the molarity of the solution is determined by the amount of moles of the product present in the solution, and the moles of the product are determined by the moles of the reagents in the reaction.
The reaction is a neutralization reaction because the number of moles of HBr and NaOH is equal in this situation and it results in the formation of water. The reaction creates an equal number of H+ and OH- ions, leaving the solution neutral.
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A chemist designs a galvanic cell that uses these two half-reactions:
half-reaction standard reduction potential
MnO2(s) + 4H+(aq) + 2e− → Mn+2(aq) + 2H2O(l) = E0red+1.23V
Fe+3(aq) + e− → Fe+2(aq) = E0red+0.771V
Answer the following questions about this cell.
Write a balanced equation for the half-reaction that happens at the cathode. Write a balanced equation for the half-reaction that happens at the anode. Write a balanced equation for the overall reaction that powers the cell. Be sure the reaction is spontaneous as written. Do you have enough information to calculate the cell voltage under standard conditions? Yes
No
If you said it was possible to calculate the cell voltage, do so and enter your answer here. Round your answer to 2 significant digits. V
The cell voltage under standard conditions is 0.46V. For a galvanic cell, the half-reaction with the more positive reduction potential will happen at the cathode, and the other one will happen at the anode.
Cathode half-reaction (reduction):
MnO2(s) + 4H+(aq) + 2e− → Mn+2(aq) + 2H2O(l)
Anode half-reaction (oxidation):
Fe+3(aq) + e− → Fe+2(aq)
Balanced overall reaction:
MnO2(s) + 4H+(aq) + 2Fe+3(aq) → Mn+2(aq) + 2H2O(l) + 2Fe+2(aq)
We have enough information to calculate the cell voltage under standard conditions.
Cell voltage = E0(cathode) - E0(anode) = 1.23V - 0.771V = 0.459V
So, the cell voltage under standard conditions is approximately 0.46V.
The half-reaction that happens at the cathode is:
Fe+3(aq) + e− → Fe+2(aq)
The half-reaction that happens at the anode is:
MnO2(s) + 4H+(aq) + 2e− → Mn+2(aq) + 2H2O(l)
To write the overall balanced equation, we need to multiply the cathode half-reaction by 2 and add it to the anode half-reaction:
2Fe+3(aq) + 2e− → 2Fe+2(aq)
MnO2(s) + 4H+(aq) + 2e− → Mn+2(aq) + 2H2O(l)
--------------------------------------------
2Fe+3(aq) + MnO2(s) + 4H+(aq) → 2Fe+2(aq) + Mn+2(aq) + 2H2O(l)
To determine if the reaction is spontaneous, we need to compare the standard reduction potentials of the half-reactions. The cathode half-reaction has a lower reduction potential (0.771V) than the anode half-reaction (1.23V), which means the reaction is spontaneous as written.
We can calculate the cell voltage under standard conditions by subtracting the reduction potential of the anode half-reaction from the reduction potential of the cathode half-reaction:
E0cell = E0cathode - E0anode
E0cell = 1.23V - 0.771V
E0cell = 0.46V
Therefore, the cell voltage under standard conditions is 0.46V.
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