A 500 ml buffer is prepared containing 0.50 m NH3 and 0.50 m NH4Cl (pkb for NH3 is 4.74). Calculate the change in ph when 0.15 mol of hcl is added (assume total volume stays constant).

There are approximately 1 x 10^23 He atoms in a balloon containing 1/6 mol Helium.

To answer this question, we first need to understand what a mole is. A mole is a unit of measurement used in chemistry that represents the amount of substance in a system. One mole of any substance contains 6.02 * 10^{23} particles, which is known as Avogadro's number.
In this case, we have a balloon containing 1/6 mol He. This means that there are 1/6 * 6.02 * 10^{23} He atoms in the balloon. Simplifying this, we get:
1/6 * 6.02 * 10^{23} = 1.0033 * 10^{23}
Therefore, there are approximately 1 x 10^23 He atoms in the balloon.

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complete question:

I have a balloon containing 1/6 mol He. How many He atoms are in the balloon?

a) 10^23

b) 4 million

c) 0.01

d) 1 x 10^21

Excess Grignard reagent in the reaction mixture will be destroyed by reacting with water or acidic workup solution, resulting in the formation of a salt or alcohol, making it necessary to ensure complete reaction with aldehyde.

After the addition of the aldehyde, any excess Grignard reagent that remains in the reaction mixture will react with water or the acidic workup solution. This reaction will destroy the Grignard reagent and result in the formation of a salt or alcohol. Therefore, it is important to ensure that all of the Grignard reagent has reacted with the aldehyde before proceeding with the workup. Any remaining Grignard reagent can also react with impurities in the reaction mixture, leading to unwanted side products.

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The balanced chemical equation for the reaction between malachite and heat can be represented as:

[tex]Cu_{2} CO_{3} (OH)_{2} (s)[/tex] → [tex]2CuO(s) + CO_{2} (g) + H_{2} O(g)[/tex]

Using the stoichiometry of the balanced equation, we can determine the number of moles of water and [tex]CO_{2}[/tex] produced when 0.04523 moles of malachite react:

Therefore, for 0.04523 moles of malachite reacted, the number of moles of water produced is also 0.04523 moles.

To convert the moles of water to grams, we can use the molar mass of water:

0.04523 mol [tex]H_{2} O[/tex] x 18.0153 g/mol = 0.814 g [tex]H_{2} O[/tex]

Therefore, 0.814 grams of water were produced when 0.04523 moles of malachite reacted.

   2. The coefficient of [tex]CO_{2}[/tex] in the balanced equation is 1. This means that for every one mole of malachite reacted, one mole of [tex]CO_{2}[/tex] is produced.

Therefore, for 0.04523 moles of malachite reacted, the number of moles of [tex]CO_{2}[/tex] produced is also 0.04523 moles.

Therefore, the answer to the second question is 0.04523 moles of [tex]CO_{2}[/tex] were produced when 0.04523 moles of malachite reacted.

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To determine the order of the reaction in sodium hydroxide and ethyl acetate, we need to perform experiments and analyze the rate of reaction at different concentrations of each reactant.

Let's assume we have conducted experiments with varying concentrations of sodium hydroxide and ethyl acetate while keeping the concentration of other reactants and conditions constant. We will record the rate of reaction for each experiment and plot a graph of the rate of reaction versus the concentration of each reactant.

If the rate of reaction is directly proportional to the concentration of a reactant, the reaction is said to be first-order with respect to that reactant. If the rate of reaction is proportional to the square of the concentration of a reactant, the reaction is second-order with respect to that reactant. And if the rate of reaction is independent of the concentration of a reactant, the reaction is zero-order with respect to that reactant.

Using the experimental data and the rate-concentration graph, we can determine the order of the reaction in sodium hydroxide and ethyl acetate. The order for each reactant can be determined by observing the slope of the graph.

For example, if the graph for sodium hydroxide shows a straight line with a slope of 1, the reaction is first-order with respect to sodium hydroxide. If the graph for ethyl acetate shows a straight line with a slope of 2, the reaction is second-order with respect to ethyl acetate. If the graph for either reactant shows a horizontal line, the reaction is zero-order with respect to that reactant.

In conclusion, the order of the reaction in sodium hydroxide and ethyl acetate can be determined by performing experiments and analyzing the rate-concentration graph. The order for each reactant can be determined by observing the slope of the graph.

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The correct order of increasing atomic radius is

Helium<Neon<Argon<Radon

All of these elements belong to the same group which is group 18 and are known as noble gases. Noble gases have an inert gas configuration which makes them extra stable. In the periodic table, as we go down the group, the atomic radius of the elements generally increases.

The atomic radius increases due to the addition of a new shell at every level. Due to this, the number of energy levels increases and the distance between the nucleus and the outermost orbital also increases. This leads to an increase in the atomic radius while going down the group. Therefore, the atomic radius is increasing in the order He<Ne<Ar<Rn.

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If a CH2OH molecule encounters another CH2OH molecule, there will be hydrogen bonds between the oxygen and hydrogens of separate molecules.

H2C-(H)O ------ H-O-CH2

This is because hydrogen bonding occurs between a highly electronegative atom (such as O, N, F) and a hydrogen atom that is covalently bonded to another highly electronegative atom (O, N, F).

Also, here the oxygen atom in the CH2OH group can act as a hydrogen bond acceptor, while the hydrogens attached to the carbon atoms can act as hydrogen bond donors.

These H-bonds help to stabilize the interaction between the two molecules. There will not be hydrogen bonds between the carbon and hydrogens within the same molecule, as these groups do not have much electronegativity difference.

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Therefore, Kb for the weak base solution R2NH is 4.5 x [tex]10^{-10.[/tex]

Use the Henderson-Hasselbalch equation, which relates the pH of a buffer solution to the pKa of the weak acid and the ratio of the concentrations of the weak acid and its conjugate base.

First, we need to determine the concentration of the weak base, R2NH, before the addition of HCl. We can use the equation:

Kb = Kw / Ka

here Kw is the ion product constant of water (1.0 x 10^-14) and Ka is the acid dissociation constant of the conjugate acid of the weak base. Since the weak base is unknown, we need to use the given pH to calculate the pKa and then use that to find Ka.

pH = pKa + log([A-]/[HA])

where [A-] is the concentration of the conjugate base (R2N-) and [HA] is the concentration of the weak acid (R2NH).

We can rearrange this equation to solve for pKa:

pKa = pH - log([A-]/[HA])

Substituting the given values, we get:

11.10 = pKa + log([R2N-]/[R2NH])

We can then solve for pKa:

pKa = 11.10 - log([R2N-]/[R2NH])

Now that we know the pKa, we can find Ka:

Next, we need to determine the concentration of the weak base after the addition of HCl. We can use the equation:

moles of HCl = moles of R2NH

0.0030 mol HCl = (100/1000) L x (0.10 mol R2NH/L - [R2NH])

Solving for [R2NH], we get:

[R2NH] = 0.099 - (0.0030/0.1) = 0.069 M

Finally, we can use the equation for Kb:

Kb = Kw / Ka = [tex]1.0 * 10^{-14} / (2.2 * 10^{-5)[/tex]

= 4.5 x  [tex]10^{-10.[/tex]

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Infrared spectroscopy is a type of spectroscopy that makes use of infrared light to determine the atomic arrangement or chemical composition. Based on how the IR light interacts with a particular atom, the infrared light will react differently for different bonds.

The exo product is more stable, but because the activation energy for the endo product is smaller, it forms more quickly. The less stable endo isomer is the major result when the temperature is lower because kinetic control is more prominent. The exo product, which is also the thermodynamic product, is the most stable because the smaller one-atom bridge eclipses the anhydride ring with less steric interference. Bond produce a response peak within its spectrum at various wave numbers.

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ΔHf/ enthalpy of phosphorus trichloride is -976 kJ. Enthalpy is a measure of a system's overall heat content.

In a thermodynamic system, energy is measured by enthalpy. Enthalpy is a measure of a system's overall heat content and is equal to the system's internal energy times the sum of its volume and pressure.

Enthalpy, in a technical sense, refers to the internal energy needed to create a system as well as the energy needed to create space for it by generating its pressure, volume, and displacing its surroundings.

P₄(s) + 6Cl₂(g) → 4 PCl₃(g)

ΔHrxn = -976 kJ

ΔHf of phosphorus trichloride = -976 kJ as ΔHf  for P₄ and Cl₂ is 0.

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Assuming that the sulfur atom in the sulfathiazole ring is sp2-hybridized, there are 4 π-electrons present in the ring.

This is because the ring contains two double bonds, each contributing 2 π-electrons.

Sulfathiazole is a heterocyclic organic compound that contains a five-membered ring with a sulfur atom and a nitrogen atom. The hybridization state of the sulfur atom in the sulfathiazole ring can be determined based on the number of sigma bonds and lone pairs of electrons around it.

In sulfathiazole, the sulfur atom is bonded to two carbon atoms and one nitrogen atom, and it also has one lone pair of electrons. The three sigma bonds (two C-S bonds and one S-N bond) around the sulfur atom in sulfathiazole require three hybrid orbitals.

The most common hybridization state for sulfur in organic compounds is sp2 hybridization, where three hybrid orbitals are formed by mixing one s orbital and two p orbitals. This allows the sulfur atom to form sigma bonds in a trigonal planar geometry.

Now, let's consider the pi electrons in the sulfathiazole ring. Pi electrons are involved in pi bonds, which are formed by the overlap of p orbitals perpendicular to the plane of the ring.

In sulfathiazole, there are two double bonds in the ring, each consisting of a carbon-sulfur double bond (C=C-S) and a carbon-nitrogen double bond (C=N). Each of these double bonds contributes 2 pi electrons to the ring, resulting in a total of 4 pi electrons (2 pi electrons from the C=C-S bond and 2 pi electrons from the C=N bond).

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The water in oceans and lakes feels pleasantly warm at night as compared to the air because water has a higher heat capacity than air, which means it can store more heat energy.

When the sun shines on the water during the day, it absorbs heat and stores it in its high heat capacity. At night, the air temperature drops faster than the water temperature, which means the water remains warmer than the air. Additionally, the water releases the stored heat energy throughout the night, creating a comfortable sensation for swimmers.

Moreover, this phenomenon occurs more often in the ocean because the ocean is a large body of water, and its volume of water retains more heat energy than a smaller lake.

Furthermore, the ocean's water is generally more stable in temperature than lakes, which experience greater temperature fluctuations. This is because the ocean's water is constantly circulating and mixing, maintaining a consistent temperature throughout.

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When removing electrons from any atom, the electrons that come off first are the ones in the outermost energy level or highest principal quantum number.

The outermost energy level of an atom is known as the valence shell. Electrons in this shell have the highest energy and are less tightly bound to the nucleus compared to inner electrons. According to the aufbau principle, electrons fill orbitals in increasing order of energy, with lower energy levels being filled before higher ones.

As a result, the outermost energy level has the highest energy and is more easily removed. The valence electrons play a crucial role in determining an atom's chemical behavior, as they are involved in bonding and chemical reactions.

Therefore, when atoms undergo ionization or lose electrons, it is the valence electrons that are typically removed first, leaving behind a positively charged ion.

This process is commonly observed in chemical reactions and is fundamental to understanding the behavior of elements in different bonding scenarios.

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Heat treatment of plain carbon steel starts from the austenite phase because it is a high-temperature phase that allows for the transformation of the microstructure upon cooling. Rapid cooling from austenite is required to produce martensite, a hard and brittle structure.

Martensite has a needle-like, non-lamellar structure, while the equilibrium structures of a 1080 plain carbon steel include ferrite and cementite, which form a lamellar structure known as pearlite. Martensite is harder and more brittle due to its distorted lattice structure and high carbon content, whereas pearlite exhibits a balanced combination of strength and ductility. Tempering is the process of reheating martensite to a lower temperature and then cooling it slowly. This process is done to reduce the brittleness of martensite and improve its ductility while maintaining an appropriate level of hardness. The resulting mechanical properties are more suitable for engineering applications that require a balance of strength and toughness. During tempering, the microstructure of martensite undergoes changes such as the formation of tempered martensite, which consists of small, evenly dispersed carbide particles within a ferrite matrix. This altered microstructure results in improved ductility and toughness while maintaining adequate hardness.

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Protonation of an alcohol (ROH) involves the transfer of a proton (H+) from an acid to the hydroxyl group (OH) of the alcohol, resulting in the formation of an oxonium ion (RO+H2). The efficiency of this process depends on the strength of the acid used as a reagent.

The reagents that are capable of efficiently protonating an alcohol and converting it to oxonium include strong acids like HCl (hydrochloric acid) and [tex]H_{2} SO_{4}[/tex] (sulfuric acid). These acids have a high tendency to donate protons, and as a result, they react readily with the alcohol to form the corresponding oxonium ion.

On the other hand, weak acids like [tex]H_{2} O[/tex] (water) and [tex]NaNH_{2}[/tex] (sodium amide) are not efficient in protonating alcohols. [tex]H_{2} O[/tex] is a neutral molecule that cannot donate protons, while [tex]NaNH_{2}[/tex] is a weak base that tends to deprotonate the alcohol instead of protonating it.

In summary, the reagents that efficiently protonate an alcohol and convert it to oxonium are strong acids like HCl and [tex]H_{2} SO_{4}[/tex]. These acids donate protons readily, and hence they react efficiently with alcohols to form oxonium ions. However, weak acids like [tex]H_{2} O[/tex] and [tex]NaNH_{2}[/tex] are not efficient in protonating alcohols due to their low tendency to donate protons.

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1. The concentration of the weak base that produces a pH of 10.06 is 0.00976 M

2. The required concentration is  [OH-] = 1.67 x 10⁻⁴ M, and the pH = 10.77.

3.  The required concentration is [H+] = 8.11 x 10⁻⁴ M, and the pH = 3.09.

Part 1:

To find the concentration of the weak base that produces a pH of 10.06, we need to use the Kb expression and the equilibrium expression for the reaction of the base with water. The equilibrium expression is:

We also know that:

pH = 14.00 - pOH

Substituting pOH = 3.94 into the equation gives us a pOH of 3.94.

Therefore, [OH-] = 10^(-pOH) = 7.94 x 10^(-4) M

Now, we can use the Kb expression to find [BH+]. Rearranging the expression gives:

[BH+] = Kb[B]/[OH-]

Plugging in the values gives:

[BH+] = (8.80 x 10⁻⁷)(x) / (7.94 x 10⁻⁴) = 0.00976 M

Therefore, the concentration of the weak base that produces a pH of 10.06 is 0.00976 M.

Part 2:

To find the pH of a 0.41 M solution of a weak base with a Kb of 2.2 x 10⁻⁶, we need to use the Kb expression and the equilibrium expression for the reaction of the base with water. The equilibrium expression is:

Assuming that x is the amount of base that reacts with water, we can set up an ICE table and substitute the values into the Kb expression. The table is:

Initial: 0.41 M x 0

Change: -x -x x

Equilibrium: 0.41 - x (10⁻¹⁴)/(0.41 - x) x

Substituting the values into the Kb expression and solving for x gives:

Solving for x gives x = 1.67 x 10⁻⁴ M

Therefore, the [OH-] = 1.67 x 10⁻⁴ M, and the pH = 10.77.

Part 3:

To find the pH of a 0.34 M solution of a weak acid with a Ka of 1.9 x 10⁻⁶, we need to use the Ka expression and the equilibrium expression for the dissociation of the acid. The equilibrium expression is:

Assuming that x is the amount of acid that dissociates, we can set up an ICE table and substitute the values into the Ka expression. The table is:

Initial: 0.34 M 0 0

Change: -x +x +x

Equilibrium: 0.34 - x x x

Substituting the values into the Ka expression and solving for x gives:

Ka = (x²)/(0.34 - x) = 1.9 x 10⁻⁶

Solving for x gives x = 8.11 x 10⁻⁴ M

Therefore, [H+] = 8.11 x 10⁻⁴ M, and the pH = 3.09.

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The first step is to determine the size of the squares that will be cut out of each corner. Let's call this size "x". Since the sheet metal is rectangular and we want to cut squares out of each corner, the length of the box will be 8 - 2x (we subtract 2x because there will be two squares cut out of each end) and the width of the box will be 3 - 2x. The height of the box will simply be "x" since that is how much we are bending up the sides.

So the volume of the box is:

V = (8 - 2x)(3 - 2x)(x)

V = (24x - 30x^2 + 8x^3)

Now we need to find the maximum volume by taking the derivative of V with respect to x, setting it equal to zero, and solving for x.

V' = 24 - 60x + 24x^2

0 = 24 - 60x + 24x^2

0 = 2 - 5x + 2x^2

Using the quadratic formula, we get:

x = (5 ± sqrt(17))/4

Since we can't have a negative value for x (that would mean cutting a negative size square out of each corner), we take the positive value:

x = (5 + sqrt(17))/4

Plugging this value back into the equation for V, we get:

V = 64/3 * (5 - sqrt(17))^3

V ≈ 138

Rounding to the nearest integer, the maximum volume the box can have is 138 cubic feet.

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The (a) is the most balanced and thus most plausible structure.

Plausible structure is a way of organizing the components of a system, process, or idea in a way that makes sense and is reasonable. It involves taking into consideration the available data and analyzing it to form a cohesive structure. A plausible structure is important in order to ensure that all the components of the system, process, or idea work together in harmony and provide a reasonable outcome. It is also important to ensure that the structure is flexible enough to adjust to changing conditions and be able to adapt to future needs. Plausible structure is a fundamental component of engineering, design, and problem solving.

The most plausible resonance structure is (a), as it has the most balanced formal charges on each atom. In (a), the formal charges for S and N are both 0, while in (b) and (c), the formal charges for S and N are +1 and -1, respectively. Therefore, (a) is the most balanced and thus most plausible structure.

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The concentration of the sodium bicarbonate solution, we need to first find the moles of sulfuric acid (H2SO4) and then use the stoichiometry of the balanced equation to find the moles of sodium bicarbonate (NaHCO3). The sodium bicarbonate solution is 0.00204 mol/L.

First, we need to use the balanced chemical equation to determine the moles of sodium bicarbonate (NaHCO3) present in the 25.00 mL sample. From the equation, we can see that 2 moles of sulfuric acid (H2SO4) react with 2 moles of sodium bicarbonate to produce 1 mole of carbon dioxide (CO2), 1 mole of water (H2O), and 1 mole of sodium sulfate (Na2SO4).

So, the moles of NaHCO3 in the sample can be calculated as:

moles NaHCO3 = (moles H2SO4/2) = (0.0200 mol/L x 2.55 mL)/1000 mL/L = 0.000051 mol

Next, we need to calculate the concentration (in mol/L) of the sodium bicarbonate solution. This can be done using the formula:

concentration NaHCO3 = moles NaHCO3/volume of solution (in L)

Since we have 25.00 mL of solution, we need to convert this to liters:

volume of solution = 25.00 mL/1000 mL/L = 0.0250 L

Substituting the values we have, we get:

concentration NaHCO3 = 0.000051 mol/0.0250 L = 0.00204 mol/L

Therefore, the concentration of the sodium bicarbonate solution is 0.00204 mol/L.

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[tex]MnO_4^- + I^-[/tex][tex]+ H_2O[/tex] → [tex]MnO_2 + IO_3^- + H_2O[/tex] is the net ionic equation for the given reaction .

To balance the equation, we must first break it into half-reactions, one for the oxidation and one for the reduction. The oxidation half-reaction is:

[tex]MnO_4^-[/tex]→ [tex]MnO_2[/tex]

To balance this, we add H2O to the right side:

[tex]MnO_4^-[/tex] →[tex]MnO_2 + H_2O[/tex]

To balance this, we add OH- to the left side:

[tex]MnO_4^- + OH^-[/tex]→ [tex]MnO_2 + H_2O[/tex]

For the reduction half-reaction, we have:

[tex]I^-[/tex]→ [tex]IO_3^-[/tex]

Again, the number of oxygen atoms on each side is not equal, so we add [tex]H_2O[/tex] to the left side:

[tex]I^- + H_2O[/tex] →[tex]IO_3^-[/tex]

Now the oxygen atoms are balanced, but we have introduced hydrogen atoms. To balance this, we add H+ to the right side:

[tex]I^- + H_2O[/tex] →[tex]I^- + H_2O[/tex]

This gives us the overall balanced equation:

[tex]MnO_4^- + I^- + H_2O[/tex]→ [tex]MnO_2 + IO_3^- + H^+[/tex]

To determine the smallest whole-number coefficient for H2O, we look at the number of H atoms on each side of the equation. There is one H atom on the left and one on the right, so the coefficient for H2O is 1.

Therefore, the balanced equation in basic solution is [tex]MnO_4^- + I^-[/tex][tex]+H_2O[/tex] →[tex]MnO_2 + IO_3^- + H_2O[/tex]

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The boiling point of the compound is 80.0 °C

Using Clausius-Clapeyron equation:

ln(P2/P1) = (-ΔHvap/R) x (1/T2 - 1/T1)

At the boiling point, P2 = 1 atm and T2 = Tb, where Tb is the boiling point.

Assume that the substance behaves ideally, so we can use the ideal gas law:

PV = nRT

n/V = P/RT = ρ/RT

The molar density of a vapor is given by:

n/V = ρ/RT = P/RT x MM

Substituting the given values, we get:

MM = ρ x R/T x 1/P = 91.85 J/mol-K x 1/1 atm x 1/101.325 kPa x 1/RT

MM = 0.01131/T (in units of kg/mol)

The enthalpy of vaporization , ΔHvap = 19.25 kJ/mol = 19.25 x 10^3 J/mol

Substituting these values into the equation, we get:

ln(1/P1) = (-ΔHvap/R) x (1/Tb - 1/T1)

ln(1/1 atm) = (-19.25 x 10^3 J/mol / (8.314 J/mol-K)) x (1/Tb - 1/298 K)

Tb = 353.2 K = 80.0 °C

Therefore, the boiling point of the compound is 80.0 °C.

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The pH of the resulting solution of strong acids at 25 °C is approximately 1.27.

To calculate the pH of the resulting solution, we first need to find the moles of each acid and then the total concentration of H⁺ ions.

1. Calculate moles of each acid:
- Nitric acid (HNO₃): moles = 0.018 M × 0.315 L = 0.00567 mol
- Hydrobromic acid (HBr): moles = 0.068 M × 0.760 L = 0.05168 mol

2. Calculate total moles of H⁺ ions:
Total moles of H⁺ = moles of HNO₃ + moles of HBr = 0.00567 + 0.05168 = 0.05735 mol

3. Calculate total volume of the solution:
Total volume = volume of HNO₃ + volume of HBr = 0.315 L + 0.760 L = 1.075 L

4. Calculate the concentration of H⁺ ions:
Concentration of H⁺ = total moles of H⁺ / total volume = 0.05735 mol / 1.075 L = 0.05335 M

5. Calculate the pH of the resulting solution at 25 °C:
pH = -log10(concentration of H+) = -log10(0.05335) ≈ 1.27

The pH of the resulting solution of strong acids is approximately 1.27 at 25 °C.

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a. The balanced net ionic equation for the reaction of solid zinc (Zn) with lead (II) nitrate ([tex]Pb(NO_{3})_{2}[/tex]) can be written as:

Zn(s) + [tex]Pb_{2}^{+}[/tex](aq) + [tex]2NO_{3}^{-}[/tex](aq) → [tex]Zn_{2}^{+}[/tex](aq) + [tex]Pb(NO_{3})_{2}[/tex](s)

The spectator ions are the nitrate ions ([tex]NO_{3}^{-}[/tex]) which do not participate in the reaction and remain in the solution.

b. The balanced net ionic equation for the reaction of solid nickel (Ni) with copper (II) sulfate ([tex]CuSO_{4}[/tex]) can be written as:

Ni(s) + [tex]Cu^{+2}[/tex](aq) + [tex]SO_{4}^{-2}[/tex](aq) → [tex]Ni_{2}^{+}[/tex](aq) + [tex]CuSO_{4}[/tex](s)

The spectator ions are the sulfate ions ([tex]SO_{4}^{-2}[/tex]) which do not participate in the reaction and remain in the solution.

c. The balanced net ionic equation for the reaction of a silver nitrate ([tex]AgNO_{3}[/tex]) solution with solid tin (Sn) can be written as:

[tex]Ag^{+}[/tex](aq) + Sn(s) → Ag(s) + [tex]Sn^{+2}[/tex](aq)

The spectator ion is the nitrate ion  ([tex]NO_{3}^{-}[/tex]) which does not participate in the reaction and remains in the solution.

d. The balanced net ionic equation for the reaction of solid iron (Fe) with tin (II) nitrate ([tex]Sn(NO_{3})_{2}[/tex]) solution can be written as:

Fe(s) +  [tex]Sn^{+2}[/tex](aq) + [tex]2NO_{3}^{-}[/tex](aq) → [tex]Fe^{+2}[/tex](aq) + [tex]Sn(NO_{3})_{2}[/tex](s)

The spectator ions are the nitrate ions  ([tex]NO_{3}^{-}[/tex]) which do not participate in the reaction and remain in the solution.

What is an ionic equation?

An ionic equation is a type of chemical equation that shows the dissociation of ionic compounds into their respective ions in a solution. In other words, it represents a chemical reaction between ions that are dissolved in water.

In an ionic equation, the ions that participate in the chemical reaction are represented in their ionic form, while the non-ionized or molecular compounds are represented in their chemical formula. The ionic equation shows the chemical species that are actually involved in the reaction, and therefore provides a more accurate representation of the reaction than a complete molecular equation.

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The factors that affect the solubility of a slightly soluble salt are; pH, temperature, the presence of common or uncommon ions, the amount of undissolved solid present, and the formation of complex ions. Option, B, C, D, E, G, and H are correct.

The solubility of a slightly soluble salt refers to the maximum amount of the salt that can dissolve in a given amount of solvent at a particular temperature and pressure. A slightly soluble salt is a compound that has a low solubility in a particular solvent, which means that only a small amount of it can dissolve in the solvent.

The solubility of a slightly soluble salt can be affected by various factors, such as pH, temperature, the presence of common or uncommon ions, the amount of undissolved solid present, and the formation of complex ions. These factors can alter the equilibrium between the dissolved and undissolved salt, leading to changes in the solubility of the salt.

Hence, B. C. D. E. G. H. is the correct option.

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--The given question is incomplete, the complete question is

"What factor(s) affect the solubility of a slightly soluble salt? Choose all correct answers. A) Particle size B) pH C) Formation of complex ions D) The presence of uncommon ions E) Temperature F) The presence of oxygen gas G) The amount of undissolved solid present H) The presence of a common ion."

[tex]a) i) pH > 7 ii) pH=9.25 iii) pH < 7[/tex], [tex]b) i) pH=8.05 ii) pH=7.00 iii) pH=6.17[/tex].

[tex]c) i) pH=5.30 ii) pH=7.00 iii) pH=9.04[/tex]. Before adding any HCl, NH3 acts as a weak base and the pH is greater than 7.

After adding 24.0 mL of HCl, NH3 and HCl are in equal moles and the pH is at the equivalence point, which is pH=7. After adding 39.0 mL of HCl, excess HCl is present and the pH becomes acidic, which is less than 7.

a) i) NH3 acts as a weak base and the pH is greater than 7.

ii) At the equivalence point, the pH is 9.25, calculated by finding the pKa of NH3 and using the Henderson-Hasselbalch equation.

iii) After exceeding the equivalence point, the pH becomes acidic and is less than 7.

b) i) At 24.0 mL, the pH is still basic but lower than before, which is around 8.05, calculated by finding the moles of NH3 remaining and HCl added.

ii) At the equivalence point, the pH is 7.

iii) After exceeding the equivalence point, the pH becomes acidic and is less than 7, which is around 6.17.

c) i) After adding 39.0 mL of HCl, the pH becomes acidic, which is less than 7 and is around 5.30.

ii) At the equivalence point, the pH is 7.

iii) After exceeding the equivalence point, the pH becomes basic and is greater than 7, which is around 9.04.

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As a lead-acid battery is discharged, the overall reaction progresses, and the lead sulfate (PbSO4) and water (H2O) are produced.

As a lead-acid battery is discharged, the overall reaction produces more products and therefore consumes more acid. This leads to a decrease in the pH of the solution in the battery. Additionally, as the battery discharges, the voltage of the cell decreases due to the reduction in the concentration of reactants available for the reaction to occur. Therefore, the answer is option B: the pH of the solution increases and the voltage decreases.
Your answer: D. The pH of the solution decreases and the voltage decreases.

The sulfuric acid (H2SO4) concentration in the electrolyte decreases, which leads to a decrease in the pH of the solution. At the same time, as the battery discharges, the voltage of the cell also decreases due to the reduction of the available reactants.

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At 20 degrees Celsius, the Ksp for Ni(OH)₂ is around 1.37 x 10⁻⁸.

Ksp typically rises when temperature rises as a result of an increase in solubility. The ability of a substance, known as a solute, to dissolve in a solvent and create a solution is known as solubility.

The following equation can be used to get the solubility product constant (Ksp) for Ni(OH)₂:

Ni(OH)₂ (s) ⇌ Ni₂+ (aq) + 2OH₋ (aq)

Ksp = [Ni₂₊][OH₋]²

Ni(OH)₂ has a solubility of 0.14 g/L, which may be translated to molar solubility as follows:

molar mass of Ni(OH)₂ = 92.71 g/mol

molar solubility of Ni(OH)₂ = 0.14 g/L / 92.71 g/mol = 0.00151 M

The equilibrium concentrations of Ni₂₊ and OH₋ ions can be determined using the following formula because the stoichiometric ratio of Ni(OH)₂ to Ni₂+ and OH₋ is 1:1:2:

[Ni₂₊] = 0.00151 M

[OH-] = 2 × 0.00151 M = 0.00302 M

Adding these values to the Ksp expression results in:

Ksp = [Ni₂₊][OH₋]²

Ksp = (0.00151 M) × (0.00302 M)²

Ksp = 1.37 × 10⁻⁸

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When 2462 J is used to raise a sample of water from 13.7 °C to 31.3 °C, it is equivalent to 588.4321 cal.

Multiplying the energy by the conversion factor will get the calorie equivalent of a joule measurement. Joules multiplied by a factor of 0.239006 yields the energy in calories.

Since 1925, the definition of a calorie in terms of joules has been in place. Since 1948, one calorie has been equated to roughly 4.2 joules. For one second, one joule is equal to one watt of power that has been emitted or dissipated.

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When 2462 J is used to raise a sample of water from 13.7 °C to 31.3 °C, it is equivalent to 588.4321 cal.

Multiplying the energy by the conversion factor will get the calorie equivalent of a joule measurement. Joules multiplied by a factor of 0.239006 yields the energy in calories.

Since 1925, the definition of a calorie in terms of joules has been in place. Since 1948, one calorie has been equated to roughly 4.2 joules. For one second, one joule is equal to one watt of power that has been emitted or dissipated.

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The limiting reagent for a given reaction can be recognized because it is the reagent that would be used up first. The correct option is (D).

In a chemical reaction, the limiting reagent is the reactant that is completely consumed and limits the amount of product that can be formed. To identify the limiting reagent, follow these steps:
1. Write down the balanced chemical equation for the reaction.
2. Convert the given masses of each reactant to moles using their respective molar masses.
3. Divide the number of moles of each reactant by their respective coefficients in the balanced equation.
4. The reactant with the smallest resublt from step 3 is the limiting reagent, as it will be used up first and determine the maximum amount of product that can be formed.

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The total pressure of the gas mixture containing Rn, He and N₂ is (c) 1.66 atm.

The total pressure of a gas mixture containing Rn, He, and N₂ can be calculated using the mole fraction and partial pressure of N₂. Given that the mole fraction of N₂ is 0.350 and its partial pressure is 0.580 atm, we can determine the total pressure (P_total) using the formula below:

P_total = Partial Pressure of N₂ / Mole Fraction of N₂
P_total = 0.580 atm / 0.350
P_total = 1.66 atm

Therefore, the total pressure of the gas mixture is 1.66 atm (option c).

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