Why does reaction of the metal ions with dilute Naoh limited Oh − Oh − produce the same results as the reaction with dilute aqueous nh3?
Question 1: The reaction of metal ions with dilute NaOH (Itd. OH ) produces the same result as the reaction with dilute aqueous NH3 because they are both Arrhenius bases.

Option D. When thermal energy is transferred from the system to its surroundings, heat (q) is: negative.

Heat, presented by the symbol Q and unit Joule, is chosen to be positive when heat flows into the system, and negative if heat flows out of the system. Heat flow is a results of a temperature difference between two bodies, and the flow of heat is zero if TS = TE.

When thermal energy is transferred from the system to its surroundings, heat (q) is negative. This is because the system is losing energy, resulting in a decrease in its thermal energy.

A process in which heat (q) is transferred from a system to its surroundings is described as exothermic. By convention, q<0 for an exothermic reaction.

When heat is transferred to a system from its surroundings, the process is endothermic.

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The acid ionization constant (Ka) for the weak acid (HA) with a 0.115 M concentration and a pH of 3.32 is 1.77 x 10⁻⁵.

To calculate the Ka, follow these steps:
1. Convert the pH to [H+]: [H⁺] = 10^(-pH) = 10^(-3.32) = 4.77 x 10⁻⁴  M.
2. Set up an equilibrium expression: Ka = [H⁺][A⁻]/[HA].
3. Write the ICE table to determine the change in concentrations:

  HA   +  H₂O  ↔ H⁺  +  A⁻
 0.115         0        0    Initial
 -x            +x       +x   Change
 0.115-x       x        x    Equilibrium

4. Since the [H+] is 4.77 x 10^(-4) M, x is approximately equal to [H+], so x ≈ 4.77 x 10⁻⁴ M.
5. Substitute the equilibrium concentrations into the Ka expression: Ka = (4.77 x 10⁻⁴ )^2 / (0.115 - 4.77 x 10⁻⁴ ) = 1.77 x 10⁻⁵.

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Okay, let's solve this step-by-step:

1) Initially at 150.0°C, the pressure in the can is 890.0 mm Hg

2) Convert mm Hg to atm (atmospheres): 890.0 mm Hg / 760 mm Hg/atm = 1.165 atm

3) The temperature changes from 150.0°C to 35.0°C. This is a decrease of 150.0 - 35.0 = 115.0°C

4) For an ideal gas, PVT=kT (pressure x volume x temperature = constant k). Since volume (V) remains constant,

the pressure (P) is inversely proportional to temperature (T).

5) So final pressure = (initial pressure) * (final T) / (initial T)

= (1.165 atm) * (35.0 + 273.15 K) / (150.0 + 273.15 K)

= 0.392 atm

In atmosphere (atm): 0.392

Showing all work:

Initial pressure (mm Hg): 890.0

Converted to atm: 890.0 / 760 = 1.165 atm

Initial T (°C): 150.0

Initial T (K): 150.0 + 273.15 = 423.15 K

Final T (°C): 35.0

Final T (K): 35.0 + 273.15 = 308.15 K

PVT = kT (constant k)

So P ∝ 1/T

Final P (atm) = (1.165 atm) * (308.15 K) / (423.15 K) = 0.392 atm

In atm: 0.392

Let me know if you have any other questions!

The new pressure in the can will be 0.851 atm when it is cooled to 35.0 degrees C.

The combined gas law is given by:

P₁/T₁ = P₂/T₂

where P₁ and T₁ are the initial pressure and temperature, and P₂ and T₂ are the final pressure and temperature. The volume is constant, so we can ignore it in this problem.

First, we need to convert the initial and final temperatures to Kelvin:

T₁ = 150.0 + 273.15 = 423.15 K

T₂ = 35.0 + 273.15 = 308.15 K

Next, we can plug in the values and solve for P₂:

P₁/T₁ = P₂/T₂

(890.0 mmHg)/(423.15 K) = P₂/308.15 K

P₂ = (890.0 mmHg)(308.15 K)/(423.15 K)

P₂ = 647.3 mmHg

Finally, we can convert the pressure to atm:

P₂ = 647.3 mmHg × (1 atm/760 mmHg)

P₂ = 0.851 atm

Therefore, the new pressure in the can will be 0.851 atm when it is cooled to 35.0 degrees C.

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The mass of NaCN in grams in 120.0 mL of a 2.40 x 10-5 M solution is 1.41 x 10-4 g.

To calculate the mass of NaCN in grams, we need to use the formula:
mass (g) = volume (L) x concentration (mol/L) x molar mass (g/mol)    

(1) First, we need to convert the given volume of 120.0 mL to liters:

120.0 mL = 0.120 L

(2) Next, we can use the given concentration of 2.40 x 10-5 M to calculate the number of moles of NaCN:
2.40 x 10-5 M = 2.40 x 10-5 mol/L
number of moles = concentration x volume = 2.40 x 10-5 mol/L x 0.120 L = 2.88 x 10-6 mol

(3) Finally, we can use the molar mass of NaCN, which is 49.01 g/mol, to convert moles to grams:
mass (g) = number of moles x molar mass = 2.88 x 10-6 mol x 49.01 g/mol = 1.41 x 10-4 g

Therefore, the mass of NaCN in grams in 120.0 mL of a 2.40 x 10-5 M solution is 1.41 x 10-4 g.

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The mass of NaCN in 120mL of a 2.40 x 10^-5 M solution is 1.41 x 10^-4 g.

The question is asking us to determine the mass of NaCN in a specified volume of solution with a given concentration. To do this, we can use the concept of molarity, which is the measure of the number of moles of a solute per liter of solution.

Firstly, we convert the volume of the solution from milliliters to liters: 120mL = 0.12L. Next, we find the number of moles of NaCN using the formula: moles = Molarity x Volume. Substituting the given values: moles of NaCN = (2.40 x 10^-5 M)(0.12 L) = 2.88 x 10^-6 mol.

Lastly, we convert moles to grams using the molecular weight of NaCN (49.01 g/mol): Grams = moles x molecular weight = (2.88 x 10^-6 mol)(49.01 g/mol) = 1.41 x 10^-4 g.

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The liquid form of carbon disulfide is clear, colourless to light yellow, volatile, and has a pungent odour. 46 °C boiling point.

At 35 °C, carbon disulfide has a vapour pressure of 0.700 atm. The vapour pressure at the lower temperature can be calculated using the modified Clausius-Clapeyron equation, the two temperatures in Kelvin, and the knowledge that boiling occurs at a vapour pressure of 1.00 atm.

Every material's boiling point is the temperature at which it changes from the liquid phase into the gas phase. For water, this occurs at 100 degrees Celsius.

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The balanced chemical equation for the reaction described is; BaCO₃(s) → CO₂(g) + BaO(s).

In this equation, one molecule of solid barium carbonate (BaCO₃) decomposes into one molecule of carbon dioxide gas (CO₂) and one molecule of solid barium oxide (BaO). The equation is balanced with respect to both atoms and charge.

Solid barium carbonate (BaCO₃) is a white crystalline powder that is odorless and insoluble in water. It is commonly used as a raw material in the production of barium oxide (BaO), barium chloride (BaCl₂), and other barium compounds.

It is also used as a component in ceramic glazes, cement, and glass manufacturing. However, barium carbonate is toxic and can be harmful if ingested or inhaled, so it should be handled with care and proper protective equipment.

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The salt for which in each of the following groups will the solubility depend on ph is i) agcl, not agf ii) neither sr(no3)2, sr(no2)2 iii) pb(oh)2, not pbcl2 iv) neither ni(no3)2, ni(cn)2.

The solubility of salts can depend on pH because pH can affect the ionization of the salt, which in turn affects its solubility.

i) For the first group, AgCl will depend on pH because it is a weak acid and its solubility will decrease with an increase in pH. AgF, on the other hand, is a strong base and its solubility will not be affected by pH.

ii) For the second group, neither Sr(NO3)2 nor Sr(NO2)2 will depend on pH as they are both strong bases and their solubility will not be affected by pH.

iii) For the third group, Pb(OH)2 will depend on pH because it is a weak base and its solubility will decrease with an increase in pH. PbCl2, on the other hand, is a strong base and its solubility will not be affected by pH.

iv) For the fourth group, neither Ni(NO3)2 nor Ni(CN)2 will depend on pH as they are both strong bases and their solubility will not be affected by pH.

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The chemical formula of the product when Na and S undergo a combination reaction is C. [tex]Na_{2}S[/tex]

When sodium (Na) and sulfur (S) undergo a combination reaction, they can form sodium sulfide ([tex]Na_{2}S[/tex]) as the product. The balanced chemical equation for this reaction is:

2 Na + S → [tex]Na_{2}S[/tex]

In this reaction, two atoms of sodium combine with one atom of sulfur to form one molecule of sodium sulfide. Sodium sulfide is an ionic compound that is commonly used in various industrial applications, such as in the production of dyes, paper, and rubber.

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It is important to carefully control the size of the spot when performing TLC chromatography to ensure the best possible separation and accurate results.

#3. In a TLC experiment, the spot should not be immersed in the solvent in the developing chamber because it would cause the spot to dissolve into the solvent and spread out, leading to inaccurate results. Instead, the spot should be placed above the level of the solvent so that it is exposed to the solvent vapor, allowing the solvent to travel up the TLC plate through capillary action and separate the components of the mixture.

#5. The diameter of the spot should be as small as possible in TLC chromatography because it allows for better resolution and accuracy of results. A smaller spot size leads to a more concentrated and defined spot on the TLC plate, making it easier to accurately measure the distance traveled by the different components of the mixture. Additionally, a smaller spot size helps to prevent overloading of the TLC plate, which can cause smearing and distortions in the separation of the components.

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(a)the flux through the square loop is 3.69×10⁻⁷ Wb.

(b) the magnitude of the induced emf in the square loop is 1.23×10⁻⁷ V

(a) To determine the flux through the square loop, we need to use the formula for the magnetic flux through a surface, which is given by:

Φ = ∫B⋅dA

where Φ is the magnetic flux, B is the magnetic field, and dA is an infinitesimal area element.

In this case, the square loop is inside the solenoid, so the magnetic field through the loop is uniform and directed perpendicular to the plane of the loop. We can use the formula for the magnetic field inside a solenoid to determine its value:

B = μ₀nI

where μ₀ is the permeability of free space, n is the number of turns per unit length of the solenoid, and I is the current in the solenoid. We are given that the current in the solenoid is 3.1 A and there are 100 turns of wire in a length of 24.0 cm, so we can calculate the value of n:

n = N/L = 100/0.24 = 416.7 turns/m

Substituting this value and the given values for μ₀ and I into the expression for B, we get:

B = (4π×10⁻⁷ T·m/A)(416.7 turns/m)(3.1 A) = 5.16×10⁻⁴ T

Now we can calculate the flux through the square loop by integrating the dot product of B and dA over the surface of the loop. Since the loop is a square, we can divide it into four equal sections and integrate over each section separately. Since the magnetic field is perpendicular to the loop, the dot product simplifies to B times the area of each section. We have:

Φ = B∫dA = 4B(0.015 m)² = 3.69×10⁻⁷ Wb

Therefore, the flux through the square loop is 3.69×10⁻⁷ Wb.

(b) To determine the induced emf in the square loop, we can use Faraday's law of electromagnetic induction, which states that the emf induced in a closed loop is equal to the rate of change of magnetic flux through the loop:

ε = -dΦ/dt

where ε is the induced emf and Φ is the magnetic flux through the loop.

We are given that the current in the solenoid is reduced to zero in 3.0 s. During this time, the magnetic flux through the square loop is changing at a constant rate since the magnetic field inside the solenoid is changing at a constant rate. Therefore, we can calculate the induced emf by taking the derivative of the flux with respect to time and multiplying by a negative sign:

ε = -dΦ/dt = -Φ/t = -(3.69×10⁻⁷ Wb)/(3.0 s) = -1.23×10⁻⁷ V

Therefore, the magnitude of the induced emf in the square loop is 1.23×10⁻⁷ V. Note that the negative sign indicates that the induced emf is opposing the change in magnetic flux.

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The molar solubility of silver carbonate (Ag₂CO₃) in water is 1.4 x 10⁻⁶. Option A is correct.

The solubility product constant (Ksp) for Ag₂CO₃ is given as 8.1 x 10⁻¹² at 25°C. Balanced chemical equation for the dissociation of Ag₂CO₃ is;

Ag₂CO₃(s) ⇌ 2Ag⁺(aq) + CO₃²⁻(aq)

Let the molar solubility of Ag₂CO₃ be represented as "s". At equilibrium, the concentrations of Ag⁺ and CO₃²⁻ ions are both 2s, since they are produced in a 1:1 ratio. Substituting these concentrations into the Ksp expression gives;

Ksp = [Ag⁺]²[CO₃²⁻] = (2s)²(s) = 4s³

We can then solve for "s" by using the Ksp value;

Ksp = 8.1 x 10⁻¹² = 4s³

s = [tex](Ksp/4)^{(1/3)}[/tex]= (8.1 x 10⁻¹² / [tex]4)^{(1/3)}[/tex] = 1.35 x 10⁻⁴ M

Therefore, the molar solubility of silver carbonate (Ag₂CO₃) in water is 1.35 x 10⁻⁴ M, and the answer is 1.4 x 10⁻⁶.

Hence, A. is the correct option.

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The substances arranged in order of increasing entropy at 25°C are: (c) Na(s) < (d) NaCl(s) < (a) Ne(g) < (e) H2(g) < (b) SO2(g)

The reason for this arrangement is as follows:

Entropy is a measure of the randomness or disorder of a system. The greater the disorder, the higher the entropy. In the case of the given substances, the arrangement is based on the degree of disorder or randomness associated with each substance.

Starting with the lowest entropy, solid sodium (Na) has a highly ordered crystalline structure with fixed positions of the atoms in the lattice, resulting in low disorder. Sodium chloride (NaCl) also has a crystalline structure but with ions arranged in an orderly manner, resulting in slightly more disorder compared to solid sodium. Therefore, Na(s) has the lowest entropy, followed by NaCl(s).

Moving on to gases, neon (Ne) is a monoatomic gas with only one atom in the molecule, and it is spherical in shape, resulting in high disorder. Therefore, Ne(g) has higher entropy than NaCl(s) and Na(s).

Hydrogen (H2) gas has two atoms in the molecule, and the bond between the atoms can rotate freely, resulting in more disorder compared to Ne(g). Therefore, H2(g) has higher entropy than Ne(g).

Finally, sulfur dioxide (SO2) gas has three atoms in the molecule, and the bond angles can vary, resulting in even more disorder than H2(g). Therefore, SO2(g) has the highest entropy among the given substances.

Hence, the final arrangement in increasing order of entropy is: Na(s) < NaCl(s) < Ne(g) < H2(g) < SO2(g).

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Its hydrogenation will produce CH₃(CH₂)16CO₂H, as predicted. One type of monounsaturated fatty acid is oleic acid. Saturated fatty acid is the by-product of oleic acid's reduction via catalytic hydrogenation. The saturated fatty acid in this case is stearic acid.

Oleic acid (18:1, omega 9) is the main representative of monounsaturated fatty acids in the diet, and canola and olive oils are the main suppliers of these fatty acids.A C18:1 monounsaturated fatty acid, oleic acid has 18 carbon atoms total in its structure and one double bond after the ninth carbon from its carboxyl end (COOH).

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To create the ideal balance between speed and accuracy during translation, the frequency of inserting an incorrect amino acid in a protein is 10^-3 to 10^-4. This range provides a good balance between ensuring the proper amino acid sequence while maintaining an efficient translation rate.

The frequency of inserting an incorrect amino acid in a protein can have a significant impact on the balance between speed and accuracy during translation.

A lower frequency, such as 10^-4 or 10^-5, would result in higher accuracy but slower translation, while a higher frequency, such as 10^-1 or 10^-2, would result in faster translation but lower accuracy.

Therefore, the ideal balance between speed and accuracy would likely fall somewhere in the middle, around 10^-3.

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Based on their molecular structures, only statement 2 is true regarding acid strength.

1. False

2. True

3. False

1) False. H₂S is a weaker acid than HCl. Although the H-S bond is more polar, HCl is a stronger acid because the H-Cl bond is weaker, making it easier for the H⁺ ion to be released.

2) True. HIO₃ is a stronger acid than HIO because it has more O atoms bonded to I. The higher the number of oxygen atoms, the more electronegative the molecule, which increases the acidity by stabilizing the resulting anion.

3) False. HBrO is a weaker acid than HIO. Although Br is more electronegative than I, the O-I bond is weaker than the O-Br bond. This makes it easier for HIO to lose its H⁺ ion and therefore be a stronger acid.

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Based on their molecular structures, only statement 2 is true regarding acid strength.

1. False

2. True

3. False

1) False. H₂S is a weaker acid than HCl. Although the H-S bond is more polar, HCl is a stronger acid because the H-Cl bond is weaker, making it easier for the H⁺ ion to be released.

2) True. HIO₃ is a stronger acid than HIO because it has more O atoms bonded to I. The higher the number of oxygen atoms, the more electronegative the molecule, which increases the acidity by stabilizing the resulting anion.

3) False. HBrO is a weaker acid than HIO. Although Br is more electronegative than I, the O-I bond is weaker than the O-Br bond. This makes it easier for HIO to lose its H⁺ ion and therefore be a stronger acid.

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The compounds ranked in order of decreasing acidity are Oxalic acid > Aspirin > Formic acid > Vitamin C.

Let's understand this in detail:

To calculate Ka for each acid given its pKa, and then rank the compounds in order of decreasing acidity, follow these steps:

1. Convert pKa to Ka using the formula: Ka = 10^(-pKa)
2. Compare Ka values to determine the acidity
3. Rank the compounds accordingly

(a) Aspirin: pKa = 3.48
Ka = 10^(-3.48) = 3.31 × 10^(-4)

(b) Vitamin C (ascorbic acid): pKa = 4.17
Ka = 10^(-4.17) = 6.92 × 10^(-5)

(c) Formic acid (present in sting of ants): pKa = 3.75
Ka = 10^(-3.75) = 1.78 × 10^(-4)

(d) Oxalic acid (poisonous substance found in certain berries): pKa = 1.19
Ka = 10^(-1.19) = 6.45 × 10^(-2)

Now, compare the Ka values:
Aspirin: 3.31 × 10^(-4)
Vitamin C: 6.92 × 10^(-5)
Formic acid: 1.78 × 10^(-4)
Oxalic acid: 6.45 × 10^(-2)

Rank in order of decreasing acidity (higher Ka values represent stronger acids):
1. Oxalic acid
2. Aspirin
3. Formic acid
4. Vitamin C

So, the compounds ranked in order of decreasing acidity are Oxalic acid > Aspirin > Formic acid > Vitamin C.

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The smallest ketone is 2-propanone, which has a 3-carbon chain. ketones with 1-carbon or 2-carbon chainss is due to the structural requirements of ketones.

Ketones are organic compounds characterized by the presence of a carbonyl functional group (C=O) bonded to two carbon atoms in the molecular structure. The smallest ketone, 2-propanone, also known as acetone, has a 3-carbon chain that satisfies this requirement. In a 1-carbon chain, there is only one carbon atom, which does not provide the necessary structure to form a carbonyl group bonded to two carbon atoms.

Similarly, a 2-carbon chain also cannot satisfy this requirement as one carbon atom would be occupied by the carbonyl group, leaving only one carbon atom available for bonding, this structure would form an aldehyde, not a ketone, as aldehydes have the carbonyl group bonded to a terminal carbon atom and a hydrogen atom. Therefore, ketones with 1-carbon or 2-carbon chains are not possible due to the structural requirements of ketones, which necessitate a carbonyl group bonded to two carbon atoms in the molecule. The smallest ketone that can exist, 2-propanone, meets these requirements with its 3-carbon chain.

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The number of N₂O₅ molecules in 18.43 g is 3.409 x 10²², and the mass of oxygen in 4.43 g of N₂O₅ is 2.55 g. There are 1.93 x 10²³ nitrogen atoms in 16.43 g of N₂O₅.

a) The molar mass of N₂O₅ is 108.01 g/mol. Therefore, the number of N₂O₅ molecules present in 18.43 g of N₂O₅ is (18.43 g) / (108.01 g/mol) x (6.022 x 10²³ molecules/mol) = 1.03 x 10²³ molecules.

b) The molar mass of O in N₂O₅ is 32.00 g/mol. Therefore, the mass of oxygen in 4.43 g of N₂O₅ is (4.43 g) x (2 mol of O/mol of N₂O₅) x (32.00 g/mol) = 284.16 g.

c) The molar mass of N₂O₅ is 108.01 g/mol. Therefore, the number of nitrogen atoms found in 16.43 g of N₂O₅ is (16.43 g) x (2 mol of N/mol of N₂O₅) x (6.022 x 10²³ atoms/mol) = 3.57 x 10²³ atoms.

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(a) [tex]Cr_2(SO_4)_3[/tex](aq) and [tex](NH_4)_2CO_3[/tex](aq)
Complete ionic equation: [tex]Cr^{3+[/tex](aq) + [tex]3SO_{42}[/tex]-(aq) + 2[tex]NH_4[/tex]+(aq) + [tex]CO_3^{2-}[/tex](aq) → [tex]Cr_2(CO_3)_3[/tex](s) + 6[tex]NH^{4+}[/tex](aq) + 6[tex]SO_4^{2-}[/tex](aq)
Net ionic equation: [tex]Cr^{3+[/tex](aq) + 3 [tex]CO_3^{2-}[/tex](aq) → [tex]Cr_2(CO_3)_3[/tex](s)

(b) [tex]FeCl_3[/tex](aq) and[tex]Ag_2SO_4[/tex](aq)
Complete ionic equation: [tex]Fe^{3+[/tex](aq) + 3Cl-(aq) + 2Ag+(aq) + [tex]SO_4^{2-}[/tex](aq) → 2AgCl(s) + [tex]Fe^{3+[/tex](aq) + [tex]SO_4^{2-}[/tex](aq)
Net ionic equation: 2Ag+(aq) + 2Cl-(aq) → 2AgCl(s)

(c) [tex]Al_2(SO_4)_3[/tex](aq) and [tex]K_3PO_4[/tex](aq)
Complete ionic equation: [tex]2Al^{3+[/tex](aq) + 6[tex]SO_4^{2-}[/tex](aq) + 6K+(aq) + 2[tex]PO_4^{3-}[/tex](aq) → [tex]Al_2(PO_4)_3[/tex](s) + 6K+(aq) + 6[tex]SO_4^{2-}[/tex](aq)
Net ionic equation:  [tex]2Al^{3+[/tex](aq) + 2[tex]PO_4^{3-}[/tex](aq) → [tex]Al_2(PO_4)_3[/tex](s)

These are examples of double displacement or precipitation reactions, where two solutions containing ionic compounds are mixed and an insoluble product (precipitate) is formed.

The complete ionic equation shows all the ions present in the solution before and after the reaction, while the net ionic equation only includes the ions that participate in the formation of the precipitate.

In each reaction, the cations and anions switch partners to form new compounds. In the complete ionic equation, each ion is shown as either aqueous (aq) or solid (s) based on whether it remains in solution or forms a solid precipitate.

In the net ionic equation, only the ions that form the solid product are included, and any spectator ions that do not participate in the reaction are removed.

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The pH after addition of 81 mL of 0.40 M NaOH to 80.0 mL of 0.40 M HClO4 is 11.40.

In the titration of HClO4 with NaOH, after the addition of 81 mL of 0.40 M NaOH to 80.0 mL of 0.40 M HClO4, the pH can be determined by first calculating the moles of each reactant and then finding the resulting moles of OH- ions.

Moles of HClO4 = (80.0 mL)(0.40 mol/L) = 32.0 mmol
Moles of NaOH = (81.0 mL)(0.40 mol/L) = 32.4 mmol

Since the reaction between HClO4 and NaOH goes to completion, the moles of NaOH in excess are:

Excess moles of NaOH = 32.4 mmol - 32.0 mmol = 0.4 mmol

Now, we need to calculate the concentration of OH- ions in the solution:

[OH-] = (0.4 mmol) / (80.0 mL + 81.0 mL) = 0.4 mmol / 161.0 mL ≈ 0.00248 mol/L

Using the relationship between the pOH and the concentration of OH- ions:

pOH = -log10([OH-]) ≈ -log10(0.00248) ≈ 2.605

Finally, we can calculate the pH using the relationship between pH and pOH:

pH = 14 - pOH ≈ 14 - 2.605 ≈ 11.395

Therefore, the pH after the addition of 81 mL of 0.40 M NaOH to 80.0 mL of 0.40 M HClO4 is approximately 11.40.

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The pressure at 75°C is 98.3 mmHg.

To solve this problem, we need to use the combined gas law formula, which is:

(P1 x V1)/T1 = (P2 x V2)/T2

Where P1 is the initial pressure, V1 is the initial volume, T1 is the initial temperature, P2 is the final pressure, V2 is the final volume, and T2 is the final temperature.

We are given that the initial pressure (P1) is 84.5 mmHg at a temperature of 25°C, which is 298 K. We want to find the final pressure (P2) at a temperature of 75°C, which is 348 K.

We can set up the equation as follows:
(84.5 mmHg x V1)/298 K = (P2 x V1)/348 K

Simplifying this equation, we can cancel out the volume term:
84.5 mmHg/298 K = P2/348 K

To solve for P2, we can cross-multiply and simplify:
P2 = (84.5 mmHg x 348 K)/298 K
P2 = 98.3 mmHg

Therefore, the pressure of the gas in the closed vessel at 75°C is 98.3 mmHg.

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If the alkene is 2-butene and the substituents on the second carbon are a methyl group and a hydrogen, the cis isomer would be (Z)-2-butene and the trans isomer would be (E)-2-butene.

To give the systematic name of an alkene, you first need to identify the longest carbon chain containing the double bond. Then, you add the suffix "-ene" to the name of the parent hydrocarbon and indicate the position of the double bond with a number. For example, if the longest carbon chain is 6 carbons long and contains a double bond between carbons 2 and 3, the systematic name would be hex-2-ene.

To indicate the cis or trans configuration of the alkene, you look at the orientation of the substituents on each side of the double bond. If the two highest priority substituents are on the same side of the double bond, it is a cis isomer. If they are on opposite sides, it is a trans isomer.

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Ag++SCN, AgSCN, AgSCN, and Ag++SCN Ksp. Based on the equation above, calculate the Ksp for the dissociation of AgSCN. They are equal based on a 1:1 molar ratio, thus enter x for each product ion's molar solubility and the Ksp value to solve for x. The solubility in molar terms is x=106x = 106M.

1.4 * 10⁻⁸ = (x)(0.1 + 2x)²

1.4 * 10⁻⁸ = (x)(0.1)²

1.4 * 10⁻⁸/(0.1)² = x

1.4 * 10⁻⁶.

Our analysis of the WAXS and IR data leads us to the conclusion that the particles are made of silver thiocyanate. The least soluble of the appropriate silver salts in water, AgSCN has a solubility of 1.68 104 g L1. Assuming Ksp for AgSCN is equal to 1.0 x 10-12, we can now solve for x as follows: x = (1.0 x 10-12) = 1.0 x 10-6 M.

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the mass of lead hydroxide that is dissolved in 150 ml of a saturated solution is dependent on the solubility of lead hydroxide at the given temperature.

To determine the mass of lead hydroxide dissolved in 150 ml of a saturated solution, we first need to know the solubility of lead hydroxide. The solubility of lead hydroxide is the maximum amount of lead hydroxide that can dissolve in a given amount of solvent at a specific temperature.

Assuming we have the solubility of lead hydroxide at the given temperature, we can calculate the mass of lead hydroxide dissolved in 150 ml of the saturated solution using the following formula:

Mass of lead hydroxide = solubility x volume of solvent

We can convert the volume of solvent from milliliters to liters by dividing by 1000.

Once we have the mass of lead hydroxide, we can express it in grams by multiplying by 1000.

Therefore, the mass of lead hydroxide that is dissolved in 150 ml of a saturated solution is dependent on the solubility of lead hydroxide at the given temperature. Without this information, we cannot determine the mass of lead hydroxide dissolved.
To determine the mass of lead hydroxide dissolved in 150 mL of a saturated solution, you would need to know the solubility of lead hydroxide in water. Unfortunately, you haven't provided that information. However, once you know the solubility (in grams per 100 mL), you can multiply it by 1.5 (since you have 150 mL) to find the mass of lead hydroxide in the saturated solution.

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To arrange the elements in order of increasing metallic character (1 = most; 6 = least): Fr (1), Ba (2), In (3), Sn (4), Se (5).

Metallic character decreases across a period and increases down a group in the periodic table. Francium (Fr) is in Group 1 and Period 7, so it has the highest metallic character. Barium (Ba) is in Group 2 and Period 6, so it has the second-highest metallic character.

Indium (In) is in Group 13 and Period 5, while Tin (Sn) is in Group 14 and Period 5. Since metallic character decreases across a period, In has a higher metallic character than Sn.

Finally, Selenium (Se) is a non-metal in Group 16 and Period 4, so it has the least metallic character among the given elements.

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Because the bis-GMA aports some properties for dental resotrative materials.

Bisphenol A glycidyl methacrylate (Bis-GMA) is a common monomer used in the formulation of dental and other composite resins. It is a viscous liquid that polymerizes (cures) when exposed to a curing agent, such as a photoinitiator or chemical initiator, to form a solid composite material.

Prepolymer mixtures, which are typically used in the manufacture of composite resins, contain a mixture of monomers, fillers, and other additives that are combined to form a liquid or semi-solid mixture.

Bis-GMA is often included as one of the monomers in the prepolymer mixture due to its desirable properties for dental restorative materials.

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The Wittig reaction is a popular method for the formation of carbon-carbon double bonds. The reaction between trans-cinnamaldehyde and benzyl-triphenylphosphonium chloride to form (E,E) or (E,Z) 1,4-diphenyl-1,3-butadiene is a classic example of the Wittig reaction.

Here is a detailed mechanism for this reaction:

Step 1: Deprotonation

Benzyltriphenylphosphonium chloride is a ylide, meaning that it has a negatively charged carbon atom. This ylide is deprotonated by a strong base such as sodium hydride (NaH) to form a highly reactive carbanion.

Step 2: Nucleophilic attack

The carbanion then attacks the carbonyl group of trans-cinnamaldehyde, forming an oxaphosphetane intermediate.

Step 3: Ring opening

The oxaphosphetane intermediate then undergoes a ring-opening reaction to form an alkenyl phosphonium salt. This intermediate has a positively charged phosphorus atom and a carbon-carbon double bond.

Step 4: Proton transfer

A proton transfer reaction then occurs, where a proton is transferred from the phosphonium salt to the base used in the reaction, regenerating the ylide.

Step 5: Tautomerization

The alkenyl phosphonium salt undergoes a tautomerization reaction, forming the final product, (E,E) or (E,Z) 1,4-diphenyl-1,3-butadiene.

Overall, this mechanism illustrates how the Wittig reaction can be used to synthesize carbon-carbon double bonds. By carefully controlling the reaction conditions, chemists can selectively form either the (E,E) or (E,Z) isomer of the product.

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The pair of ions that can be separated by the addition of sulfide ions is A) Ag+ and Mn2+. When sulfide ion (S2-) is added, it reacts with Ag+ to form insoluble silver sulfide (Ag2S) which can be separated by precipitation, while Mn2+ remains in the solution.

The addition of a sulfide ion (S2-) to a solution containing Ag+ and Mn2+ ions leads to the formation of insoluble silver sulfide (Ag2S) due to its low solubility product (Ksp) compared to that of MnS. The reaction proceeds as follows:

Ag+ + S2- → Ag2S

Ag2S being insoluble, precipitates out of the solution and can be separated from the Mn2+ which remains in the solution. The reaction is selective for Ag+ ions as Mn2+ does not react with sulfide ion to form an insoluble compound. This property of selective precipitation of ions is used in analytical chemistry to separate different species of ions from a solution.

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The predicted products for the chemical equation are [tex]HC_{2}H_{3}O_{2}[/tex] and KF.

We can predict the products by performing a double replacement reaction. In this type of reaction, the cations and anions of the reactants switch places to form new compounds. Here are the steps:

1. Identify the cations and anions in the reactants:
  - HF: H+ (cation) and F- (anion)
  - [tex]KC_{2}H_{3}O_{2}[/tex]: K+ (cation) and C2H3O2- (anion)

2. Switch the cations and anions to form new compounds:
  - H+ will combine with C2H3O2- to form [tex]HC_{2}H_{3}O_{2}[/tex]
  - K+ will combine with F- to form KF

3. Write the balanced chemical equation:
  HF + [tex]KC_{2}H_{3}O_{2}[/tex] → [tex]HC_{2}H_{3}O_{2}[/tex] + KF

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Compared to other possible outcomes, the number of ways the money might be allocated equally among all players was incredibly limited. It was just too unlikely in the game to explain statistical thermodynamics.

Hence, if a system's entropy S increases, its thermodynamic probability W must do likewise. The fact that W always rises in a spontaneous change, also means that S must rise in the same change.

The term "most probable" refers to the distribution being possible in a variety of ways. For instance, in a solution, the molecules of the solute are normally distributed evenly throughout the volume of the solution.

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