The atmosphere is primarily made of what gas?
Carbon Dioxide
Nitrogen
Oxygen
Argon​

Diluting the solution with an additional 100 grams of water will increase the boiling point and decrease the freezing point of the solution.

When a solution is diluted with an additional 100 grams of water, the boiling point and freezing point of the solution will both be affected.

Boiling Point:

The addition of more water to the solution increases the total volume of the solution. As a result, the concentration of solute particles in the solution decreases. According to Raoult's law, the vapor pressure of the solvent above the solution is directly proportional to the mole fraction of the solvent in the solution.

With a decrease in the concentration of solute particles, the mole fraction of the solvent increases, leading to a decrease in the vapor pressure of the solution. As a consequence, the boiling point of the solution increases.

Therefore, when the solution is diluted with additional water, the boiling point of the solution will be higher compared to the original, more concentrated solution.

Freezing Point:

Similar to the boiling point, the addition of more water increases the total volume of the solution and decreases the concentration of solute particles. According to the colligative properties of solutions, such as the freezing point depression, a decrease in the concentration of solute particles leads to a decrease in the freezing point of the solution.

Hence, when the solution is diluted with additional water, the freezing point of the solution will be lower compared to the original, more concentrated solution.

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Answer:

a. i. 5.092 × 10²⁰ Hz ii. 588.98554 nm ii. 10667809.11 rad/m

b. i. 5.087 × 10²⁰ Hz ii. 589.58286 nm iii. 10657001.3 rad/m

Explanation:

refractive index, n = λ/λ'  where λ = wavelength in vacuum = and λ' = wavelength in air

a. For λ = 589.15788 nm,

i. Frequency,

f = c/λ where c = speed of light in vacuum = 3 × 10⁸ m/s and λ = 589.15788 nm = 589.15788 × 10⁻⁹ m

So, f = 3 × 10⁸ m/s ÷ 589.15788 × 10⁻⁹ m

= 0.005092 × 10¹⁷ /s

= 5.092 × 10²⁰ /s

= 5.092 × 10²⁰ Hz

ii. Wavelength,

Since n = λ/λ'  where λ = wavelength in vacuum = and λ' = wavelength in air

and n = 1.0002926

λ' = λ/n

= 589.15788 nm/1.0002926

= 588.98554 nm

k = 2π/λ'

= 2π/588.98554 nm

= 0.01066780911 rad/nm

= 0.01066780911 rad/nm × 10⁹ nm/1m

= 10667809.11 rad/m

b. For λ = 589.755 37 nm.,

i. Frequency,

f = c/λ where c = speed of light in vacuum = 3 × 10⁸ m/s and λ = 589.755 37 nm. = 589.755 37 × 10⁻⁹ m

So, f = 3 × 10⁸ m/s ÷ 589.755 37 × 10⁻⁹ m

= 0.005087 × 10¹⁷ /s

= 5.087 × 10²⁰ /s

= 5.087 × 10²⁰ Hz

ii. Wavelength,

Since n = λ/λ'  where λ = wavelength in vacuum = and λ' = wavelength in air

and n = 1.0002926

λ' = λ/n

= 589.755 37 nm./1.0002926

= 589.58286 nm

k = 2π/λ'

= 2π/589.58286 nm

= 0.0106570013 rad/nm

= 0.0106570013  rad/nm × 10⁹ nm/1m

= 10657001.3 rad/m

The reagent that would not react with stearic acid is Lithium Aluminium Hydride (LAH).

Stearic acid is a saturated fatty acid consisting of eighteen carbon atoms. In organic chemistry, stearic acid is a common reagent that reacts with other reagents to create a range of useful compounds. In this question, we will discuss which of the following reagents would not react with stearic acid.The four reagents given are: H2, Ni; SOCl2; CH3MgI; NH3/H2O; and LAH.LAH (Lithium Aluminium Hydride) is the reagent that would not react with stearic acid. Lithium Aluminium Hydride (LAH) is a strong reducing agent that reduces carboxylic acids into alcohols. However, stearic acid, being a saturated fatty acid, does not contain any double bonds that can be reduced by the strong reducing agent LAH. Therefore, it does not react with stearic acid.The other reagents mentioned such as H2, Ni, SOCl2, CH3MgI, NH3/H2O all react with stearic acid, and would give different products depending on the reaction conditions and reagents used. Hence, the reagent that would not react with stearic acid is Lithium Aluminium Hydride (LAH).

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Difference of 0.37 represents a difference of 10^(0.37) = 2.28 times more acidity in the rain falling in New England than in the rain produced by the weather system moving through the American Midwest.

In order to calculate the pH of a 1.67 × 10–2 M solution of aminoethanol, we need to make use of the acid dissociation constant (Ka) of the acid H2A:H2A (aq) ⇌ H+ (aq) + HA– (aq)Ka = [H+][HA–] / [H2A]pH = pKa + log ([A–] / [HA])At equilibrium, [H2A] = [A–] + [H+]Aminoethanol is an amphoteric compound, and can act as both an acid and a base. When dissolved in water, it undergoes the following equilibrium:Aminoethanol + H2O ⇌ NH3+CH2CH2OH + OH–Applying the acid dissociation constant of water and simplifying the expression:NH3+CH2CH2OH ⇌ NH3+ + CH2CH2OH–Ka = Kw / KbKb = Kw / KaBases are defined as substances that accept protons (H+), so the conjugate base of aminoethanol is NH2CH2CH2O–:NH2CH2CH2OH + H+ ⇌ NH3+CH2CH2OHThe pKa of NH3+CH2CH2OH is 9.69, so the Kb of NH2CH2CH2O– can be calculated:pKa + pKb = pKw14.00 + pKb = 14.00Kb = 4.16 × 10–6The concentration of OH– can be calculated from the Kb value:Kb = [OH–][NH3+CH2CH2OH] / [NH2CH2CH2O–][OH–] = Kb[NH2CH2CH2O–] / [NH3+CH2CH2OH][OH–] = Kb[NH2CH2CH2O–] / [NH3+CH2CH2OH] = (4.16 × 10–6)(1.67 × 10–2) / (1.67 × 10–2) = 4.16 × 10–8pOH = –log[OH–] = –log(4.16 × 10–8) = 7.38pH + pOH = 14.00pH = 14.00 – 7.38 = 6.62The pH of the solution is 6.62.b. To calculate the OH– concentration in a 4.25 × 10–4 M solution of aminoethanol, we can use the same approach as in part a, but we need to use the concentration value given and solve for [OH–]:NH3+CH2CH2OH + H2O ⇌ NH3+ + CH2CH2OH–Kb = Kw / KaKb = [OH–][NH3+CH2CH2OH] / [NH2CH2CH2O–][OH–] = Kb[NH2CH2CH2O–] / [NH3+CH2CH2OH][OH–] = Kb[NH2CH2CH2O–] / [NH3+CH2CH2OH] = (4.16 × 10–6)(4.25 × 10–4) / (4.25 × 10–4) = 4.16 × 10–8pOH = –log[OH–] = –log(4.16 × 10–8) = 7.38pH + pOH = 14.00pH = 14.00 – 7.38 = 6.62The OH– concentration in the solution is 4.16 × 10–8 M.c. The difference in pH between the two rain samples is 5.04 – 4.67 = 0.37.The pH scale is logarithmic, so a difference of 1.0 in pH represents a tenfold difference in acidity. Therefore, a difference of 0.37 represents a difference of 10^(0.37) = 2.28 times more acidity in the rain falling in New England than in the rain produced by the weather system moving through the American Midwest.

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When more than one gas is present in a container, each gas exerts pressure, which is known as partial pressure. The partial pressure refers to the pressure of any gas inside the container. The partial pressure of the helium in kpa is 101.

Partial pressure is the pressure that one gas in a gas mixture will exert if it occupies the same volume on its own. In a mixture, every gas exerts a particular pressure. The partial pressures of the various gases in a mixture of an ideal gas add up to its total pressure.

The overall pressure exerted by a mixture of gases is equal to the sum of the partial pressures, according to Dalton's law of partial pressures.

P total= P₁ + P₂ + P₃ …

Here,

205 = pf + pCl + pHe

pHe = 205 - (pf + pCl)

pHe = 205 - (89+15) = 101 kpa

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Answer:

ionic --complete transferring

covalent--- sharing of electron

metallic bonding--- occurs between free electrons and metal ions.

Explanation:

In ionic bond, the electrons transfer from one atom to another atom. The atom which loses electrons is known as donor whereas the atom which accept electrons is known as acceptor. In covalent bond, atoms share electrons mutually means both atoms donate their electrons and no one loses their electrons, it can only be shared. Metallic bonding refers to the type of bonding in which electrostatic attractive force present between free electrons  and positively charged metal ions.

Comparing these two scenarios, we can conclude that the order of the reaction with respect to Cl₂ is 1. Therefore, the correct answer is (D) 1.

To determine the order of the reaction with respect to Cl₂, we can use the information provided about the effect of concentration changes on the initial rate.

Let's analyze the given data:

When the initial concentrations of both reactants, NO and Cl₂, are tripled, the initial rate increases by a factor of 27. This indicates that the rate is proportional to the cube of the initial concentration of both reactants.

When only the initial concentration of Cl₂ is tripled, the initial rate increases by a factor of 3. This indicates that the rate is directly proportional to the initial concentration of Cl₂.

Comparing these two scenarios, we can conclude that the order of the reaction with respect to Cl₂ is 1.

Therefore, the correct answer is (D) 1.

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When 6.0 liters of [tex]C_2H_6[/tex] are combusted, the total volume of [tex]CO_2[/tex] formed at STP is approximately 12.02 liters.

To determine the total volume of [tex]CO_2[/tex] formed when 6.0 liters of [tex]C_2H_6[/tex] are combusted, we need to use the balanced chemical equation and stoichiometry.

From the balanced chemical equation:

2 [tex]C_2H_6[/tex](g) + 7 O2(g) → 4 [tex]CO_2[/tex](g) + 6 H2O(g)

We can see that the molar ratio between [tex]C_2H_6[/tex] and [tex]CO_2[/tex] is 2:4, which simplifies to 1:2. This means that for every 2 moles of [tex]C_2H_6[/tex] combusted, 4 moles of [tex]CO_2[/tex] are produced.

To solve this problem, we need to convert the given volume of [tex]C_2H_6[/tex] to moles and then use the stoichiometry to determine the volume of [tex]CO_2[/tex] produced.

Step 1: Convert volume of [tex]C_2H_6[/tex] to moles:

Using the ideal gas law, PV = nRT, at STP (Standard Temperature and Pressure), one mole of any ideal gas occupies 22.4 liters. Therefore, 6.0 liters of [tex]C_2H_6[/tex] is equal to 6.0/22.4 = 0.268 moles of [tex]C_2H_6[/tex].

Step 2: Apply stoichiometry to find moles of [tex]CO_2[/tex]:

Since the molar ratio between [tex]C_2H_6[/tex] and [tex]CO_2[/tex] is 1:2, we multiply the moles of C2H6 by the stoichiometric coefficient ratio:

0.268 moles of [tex]C_2H_6[/tex] * (4 moles [tex]CO_2[/tex] / 2 moles [tex]C_2H_6[/tex]) = 0.536 moles of CO2.

Step 3: Convert moles of [tex]CO_2[/tex] to volume:

At STP, 1 mole of any ideal gas occupies 22.4 liters. Therefore, 0.536 moles of [tex]CO_2[/tex] is equal to 0.536 * 22.4 = 12.02 liters of [tex]CO_2[/tex].

Thus, when 6.0 liters of [tex]C_2H_6[/tex] are combusted, the total volume of [tex]CO_2[/tex] formed at STP is approximately 12.02 liters.

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The correct net ionic equation for the given precipitation reaction is;  Pb²⁺ (aq) + 2I⁻ (aq) → PbI₂(s). Option D is correct.

In the reaction, Pb²⁺ cations from lead nitrate (Pb(NO₃)₂) react with I- anions from potassium iodide (KI) to form solid PbI₂ (lead iodide). This is a precipitation reaction where the insoluble salt PbI₂ is formed.

Option A (2(NO₃)⁻ (aq) + 2K⁺(aq) → 2KNO₃) is not the correct net ionic equation because it represents the dissociation and reformation of the soluble salts potassium nitrate (KNO₃) and lead nitrate (Pb(NO₃)₂), but it does not include the formation of the insoluble PbI₂ precipitate.

Option B (Pb²⁺(aq) + 2(NO₃)⁻ (aq) + 2K⁺ (aq) + 2I⁻ (aq) → PbI₂(s) + 2K⁺ (aq) + 2(NO₃)⁻ (aq)) is not the correct net ionic equation because it includes the spectator ions (K⁺ and NO₃⁻) that do not participate in the actual formation of the precipitate.

Option C (Pb²⁺ (aq) + I₂⁻(aq) → PbI₂(s)) is not the correct net ionic equation because it represents a direct combination of Pb²⁺ and I⁻ ions to form PbI₂, but in the given reaction, the iodide ions come from potassium iodide (KI), not from I₂.

Hence, D. is the correct option.

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HF is classified as a weak acid because it only partially dissociates into ions when dissolved in water, and its relatively low Ka value confirms its limited ionization and weaker acid properties.

Hydrofluoric acid (HF) is classified as a weak acid. The classification of acids as strong or weak depends on their ability to dissociate into ions when dissolved in water. Strong acids readily dissociate completely into ions, while weak acids only partially dissociate.

HF is a weak acid because it does not fully dissociate into H+ ions and F- ions when dissolved in water. Instead, only a fraction of HF molecules dissociate, resulting in a small concentration of H+ ions in solution.

This limited dissociation is due to the strength of the bond between hydrogen and fluorine in HF. The bond is relatively strong, requiring a significant amount of energy to break, and as a result, the dissociation of HF is incomplete.

The Ka value of HF, listed as 6.6 x 10^−4, further supports its classification as a weak acid. Ka is the acid dissociation constant and provides a measure of the extent of dissociation of an acid in solution. A lower Ka value indicates weaker acid strength and a smaller degree of dissociation.

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Answer:

Aluminium is ordinarily classified as a metal. It is lustrous, malleable and ductile, and has high electrical and thermal conductivity. Like most metals, it has a close-packed crystalline structure and forms a cation in an aqueous solution.

The appropriate model for a combination reaction is A+B⟶C (option C)

A combination reaction represents a chemical transformation where multiple substances unite to generate a fresh entity. It follows a general format of A + B → C, with A and B acting as the reactants that undergo a fusion to yield the product C.

Combination reactions commonly exhibit exothermic characteristics, denoting the release of heat. This phenomenon arises due to the increased stability of the resultant products compared to the initial reactants.

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The ionization energy of an atom is the amount of energy required to completely remove an electron from its ground state. In the case of a hydrogen atom in a state with quantum number n, the ionization energy is given by the following equation: Ionization energy = -13.6 eV / n^2

For a hydrogen atom in a state with quantum number n=3, the ionization energy can be calculated as follows:

Ionization energy = -13.6 eV / 3^2 = -13.6 eV / 9 = -1.51 eV

The negative sign indicates that energy is required to remove the electron. Therefore, the largest possible ionization energy of the atom in this state is 1.51 eV.

In the quantum mechanical description, the ionization energy of a hydrogen atom is given by the formula:

Ionization Energy (IE) = -13.6 eV * (1/n²)

where n is the principal quantum number. In this case, n = 3.

IE = -13.6 eV * (1/3²) = -13.6 eV * (1/9) = -1.51 eV

Since the ionization energy is negative, the largest possible ionization energy is the least negative value. Therefore, the answer is (b) 1.51 eV.

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The enthalpy change (ΔH°) for the given process, Co₃O₄ (s) → 3 Co (s) + 2 O₂ (g), is +891.2 kJ.

To calculate ΔH° for the given process using Hess's Law, we need to manipulate the provided equations and their enthalpy changes to obtain the reactions;

Reverse the first reaction; Coo (s) → Co (s) + 0.5 O₂ (g) with ΔH° = +237.9 kJ.

Multiply the first reaction by 3; 3 Coo (s) → 3 Co (s) + 1.5 O₂ (g) with ΔH° = 3 × (+237.9) kJ = +713.7 kJ.

Reverse the second reaction; Co₃O₄ (s) → 3 Coo (s) + 0.5 O₂ (g) with ΔH° = -(-177.5) kJ = +177.5 kJ.

Add the manipulated reactions together;

3 Coo (s) + 0.5 O2 (g) → 3 Co (s) + 1.5 O₂ (g) with ΔH° = +713.7 kJ

Co₃O₄ (s) → 3 Coo (s) + 0.5 O₂ (g) with ΔH° = +177.5 kJ

Cancel out the common species on both sides;

Co3O4 (s) → 3 Co (s) + O2 (g) with ΔH°

= +713.7 kJ + 177.5 kJ

= +891.2 kJ.

Therefore, the ΔH° is +891.2 kJ.

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Approximately 4.44 × [tex]10^{26[/tex] photons of this microwave radiation must be absorbed to warm 250 mL of water from 23.1 ºC to its boiling point .

a. To calculate the energy of a single photon of microwave radiation, we can use the equation E = hc/λ, where E is the energy of the photon, h is Planck's constant (6.626 × 10^-34 J·s), c is the speed of light (2.998 × 10^8 m/s), and λ is the wavelength of the radiation.

Converting the wavelength to meters, we have λ = 12.2 cm = 0.122 m.

Using the equation, E = (6.626 × 10^-34 J·s × 2.998 × 10^8 m/s) / 0.122 m = 1.632 × 10^-24 J.

Therefore, the energy of a single photon of this microwave radiation is 1.632 × 10^-24 J.

b. To calculate the number of photons required to warm 250 mL of water, we need to determine the heat energy required to raise the temperature from 23.1 ºC to its boiling point (100 ºC). The heat energy can be calculated using the formula Q = mcΔT, where Q is the heat energy, m is the mass of water, c is the specific heat capacity of water (4.184 J/g·ºC), and ΔT is the change in temperature.

First, we need to convert the mass of water to grams. Since 1 mL of water is approximately equal to 1 gram, 250 mL of water is equal to 250 grams.

Next, we calculate the heat energy:

Q = (250 g) × (4.184 J/g·ºC) × (100 ºC - 23.1 ºC) = 723,280 J.

To find the number of photons, we divide the total energy (723,280 J) by the energy of a single photon:

Number of photons = 723,280 J / (1.632 ×[tex]10^{-24[/tex] J) ≈ 4.44 × 10^26 photons.

Converting the wavelength to meters, we have λ = 12.2 cm = 0.122 m.

Using the equation, E = (6.626 × [tex]10^{-34[/tex] J·s × 2.998 × [tex]10^8[/tex] m/s) / 0.122 m = 1.632 × [tex]10^{-24[/tex] J.

Therefore, the energy of a single photon of this microwave radiation is 1.632 × [tex]10^{-24[/tex] J.

b. To calculate the number of photons required to warm 250 mL of water, we need to determine the heat energy required to raise the temperature from 23.1 ºC to its boiling point (100 ºC). The heat energy can be calculated using the formula Q = mcΔT, where Q is the heat energy, m is the mass of water, c is the specific heat capacity of water (4.184 J/g·ºC), and ΔT is the change in temperature.

First, we need to convert the mass of water to grams. Since 1 mL of water is approximately equal to 1 gram, 250 mL of water is equal to 250 grams.

Next, we calculate the heat energy:

Q = (250 g) × (4.184 J/g·ºC) × (100 ºC - 23.1 ºC) = 723,280 J.

To find the number of photons, we divide the total energy (723,280 J) by the energy of a single photon (1.632 × [tex]10^{-24[/tex] J):

Number of photons = 723,280 J / (1.632 × [tex]10^{-24[/tex] J) ≈ 4.44 × [tex]10^{26[/tex] photons.

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The laboratory procedure best illustrates the law of conservation of mass is  Option c "Burning 2.4 g of Mg in an open crucible to produce 2 g of MgO and unused reactants"

According to the law of conservation of mass, within an isolated system, mass remains constant and cannot be generated or annihilated, but rather undergoes transformations from one state to another.

For instance, by subjecting 32 grams of sulfur (S) and 56 grams of iron (Fe) to heat, they combine to form 88 grams of iron sulfide (FeS) alongside any unreacted starting materials.

Hence, the cumulative mass of the reactants, namely 32 grams of sulfur and 56 grams of iron, adds up to 88 grams, which aligns with the combined mass of the resultant product.

In this manner, it becomes evident that mass is neither eradicated nor brought into existence; rather, it seamlessly converts from one manifestation to another.

Consequently, the example involving the heating of 32 grams of sulfur and 56 grams of iron to yield 88 grams of iron sulfide, along with any remaining unreacted substances, aptly exemplifies the principle of the conservation of mass.

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Complete question:

Which of the following laboratory procedures best illustrates the law of conservation of mass?

a. Calculating the number of atoms in 11 g of Na

Using 250 g of impure Cu to obtain 200 g of pure Cu

b. Heating 32 g of S and 56 g of Fe to produce 88 g of FeS and unused reactants

c. Burning 2.4 g of Mg in an open crucible to produce 2 g of MgO and unused reactants

When an object is placed at a distance of 25 cm from the lens of focal length 20 cm, the image formed is virtual, erect and enlarged.

A virtual image is an image that appears to be behind the lens, and it is formed by light rays that do not actually pass through it but appear to diverge from it. The image is erect because it is the same size as the object, and it is enlarged because it is closer to the lens than the object.

The image formed by the first lens acts as the object for the second lens. The second lens has a focal length of 25 cm, and the final image is formed 60 cm past the second lens. Using the lens formula, the position of the image formed by the first lens is given by: 1/f = 1/v - 1/u Where f is the focal length of the lens, u is the object distance from the lens and v is the image distance from the lens.

Using the values given, we have: 1/20 = 1/v - 1/25So, 1/v = 1/20 + 1/25 = 9/1000v = 1000/9 = 111.11 cmThis means that the image formed by the first lens is 111.11 cm behind the first lens.

This image acts as the object for the second lens, and we can use the same formula to find the position of the final image. Using the same formula, we have: 1/25 = 1/v' - 1/111.11So, 1/v' = 1/25 + 1/111.11 = 4.84/1000v' = 1000/4.84 = 206.61 cm. Therefore, the final image is formed 206.61 cm past the first lens.

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Answer:

a

Explanation:

i am wrong haha

Answer:

are u out of time ?

Explanation:

extracting energy from nuclear fuels is more expensive than extracting energy from fossil fuels

The aqueous solutions of the following salts are:

(a) [tex]K_2CO_3[/tex]: Basic

(b) [tex]CaCl_2[/tex]: Neutral

(c) [tex]KH_2PO_4[/tex]: Acidic

(d) [tex](NH_4)_2CO_3[/tex]: Acidic

(a) [tex]K_2CO_3[/tex]:

The cation, [tex]K^+[/tex] (potassium ion), is derived from a strong base (KOH), which does not hydrolyze in water. Therefore, it does not contribute to the acidity or basicity of the solution. The anion, [tex]CO_3^{2-[/tex] (carbonate ion), is derived from a weak acid [tex]H_2CO_3[/tex], which can hydrolyze in water.

The hydrolysis of [tex]CO_3^{2-[/tex] can be represented as follows:

[tex]CO_3^{2-} + H_2O[/tex] ⇌ [tex]HCO_3^- + OH^-[/tex]

Since the hydrolysis of [tex]CO_3^{2-[/tex] results in the formation of [tex]OH^-[/tex] ions, the solution will be basic.

(b) [tex]CaCl_2[/tex]:

Both the cation, [tex]Ca_2^+[/tex] (calcium ion), and the anion, [tex]Cl^-[/tex] (chloride ion), are derived from strong acids and bases (HCl and [tex]Ca(OH)_2[/tex]). As a result, they do not undergo hydrolysis in water. Therefore, the solution will be neutral.

(c) [tex]KH_2PO_4[/tex]:

The cation, [tex]K_+[/tex] (potassium ion), does not undergo hydrolysis in water. The anion, [tex]H_2PO_4^-[/tex] (dihydrogen phosphate ion), can hydrolyze in water.

The hydrolysis of [tex]H_2PO_4^-[/tex] can be represented as follows:

H2PO4- + H2O ⇌ [tex]HPO_4^{2-} + H_2PO_4^- + H_3O^+[/tex]

Since the hydrolysis of [tex]H_2PO_4^-[/tex] results in the formation of [tex]H_3O^+[/tex] ions, the solution will be acidic.

(d) [tex](NH_4)_2CO_3[/tex]:

Both the cation, [tex]NH_4^+[/tex] (ammonium ion), and the anion, [tex]CO_3^{2-[/tex] (carbonate ion), can hydrolyze in water.

The hydrolysis of [tex]NH_4^+[/tex] can be represented as follows:

[tex]NH_4^+ + H_2O[/tex] ⇌ [tex]NH_3 + H_3O^+[/tex]

Since the hydrolysis of [tex]NH_4^+[/tex] results in the formation of [tex]H_3O^+[/tex] ions, the solution will be acidic.

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Answer:

we have four moles in 56L of co2

Answer:

Limited Genetic Variability

Explanation:

its 3

Answer:

100% efficiency, this could only happen if there was not any friction Simple Machines Inclined plane, wedge, screw, lever, pulley and wheel and axel they are the most basic devices for making work easier

Explanation:

Answer: B

Explanation:

B. It is correct because iron is more reactive than silver [1]. When iron (III) nitrate solution comes in contact with silver, the iron ions and silver ions will exchange. The more reactive metal will displace the less reactive metal from its compound. In this case, iron is more reactive than silver, so iron ions will displace silver ions from silver nitrate to form iron nitrate and silver. This reaction will produce iron nitrate and silver as products [2][3].

The prediction made by Niko, stating that iron and silver nitrate will form when silver is placed into an iron (III) nitrate solution, is incorrect. This is because silver is less reactive than iron, and the reaction should not produce iron and silver nitrate as products.

The prediction made by Niko is incorrect. When evaluating the reactivity of metals, it is important to consider the reactivity series. The reactivity series ranks metals based on their tendency to undergo redox reactions. In the reactivity series, iron is typically more reactive than silver.

Iron (III) nitrate is a compound consisting of iron ions  and nitrate ions . Silver nitrate, on the other hand, consists of silver ions and nitrate ions . When silver is placed into an iron (III) nitrate solution, a single replacement reaction can occur. However, since silver is less reactive than iron according to the reactivity series, it cannot displace iron from its compound.

Instead, if a reaction occurs, it would involve the displacement of silver by iron, resulting in the formation of iron nitrate and the deposition of silver metal. The correct prediction would be that iron displaces silver, not the formation of iron and silver nitrate as suggested by Niko.

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Answer:

The Answer is gonna be C. the same amount in nuclear fusion reactions as it is in chemical reactions

The authors of the research paper "Molecular Anatomy of a Trafficking Organelle" (Cell, 2006, Vol. 127; 831–846) chose to examine synaptic vesicles due to their crucial role in neuronal communication and synaptic transmission.

Synaptic vesicles are specialized organelles found in neurons that store and release neurotransmitters, which are essential for transmitting signals between nerve cells. They play a vital role in synaptic transmission, a fundamental process underlying brain function. The authors likely chose to focus on synaptic vesicles because understanding their molecular anatomy and trafficking mechanisms is crucial for unraveling the intricate processes involved in neuronal communication.

By studying synaptic vesicles, researchers can gain insights into how these vesicles are formed, transported, and targeted to specific regions within neurons. Investigating the molecular components and mechanisms involved in synaptic vesicle trafficking can provide valuable knowledge about neuronal function, synaptic plasticity, and neurotransmission. Furthermore, studying synaptic vesicles can contribute to our understanding of various neurological disorders associated with synaptic dysfunction, such as Alzheimer's disease, Parkinson's disease, and epilepsy. Therefore, the choice to examine synaptic vesicles in this research paper was likely driven by their significance in neuronal physiology and their potential implications for understanding and treating neurological disorders.

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Answer:

dfdfaxc b

Explanation:

The maximum wavelength of light required to break a chlorine-chlorine single bond is approximately 4.947 x 10⁻⁷ meters or 494.7 nm (nanometers), rounded to four significant digits.

We can use the relationship between energy, wavelength, and speed of light to determine the maximum wavelength of light necessary to break a chlorine-chlorine single bond.

The equation which gives the energy of a photon is:

E = hc/λ

where:

E is the photon's energy.

Planck's constant, h, is (6.626 x 10⁻³⁴ Js)

2.998 x 10⁸ m/s is the speed of light, or c.

λ is the wavelength of light

We are aware that a chlorine-chlorine single bond must be broken with 242 kJ/mol of energy. This can be changed to joules per molecule as follows:

[tex]242 kJ/mol = \frac{242 \times 10^3 J}{(6.022 \times 10^{23} molecules/mol)} \approx 4.015 \times 10^{-19} J/molecule[/tex]

The equation can now be rearranged to find the maximum wavelength:

λ = hc/E

Putting in the values:

[tex]\lambda = \frac {(6.626 \times 10^{-34} Js)(2.998 \times 10^8 m/s)}{(4.015 \times 10^{-19} J/molecule)}[/tex]

Calculating the result:

[tex]\lambda \approx 4.947 \times 10^{-7} meters[/tex]

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Oxygen is likely to decrease in a small, shallow tide pool at low tide.

When the tide goes out, the water in a tide pool becomes shallower and more exposed to the sun. This causes the water to heat up and the oxygen levels to decrease. The decrease in oxygen can be harmful to the organisms that live in the tide pool, as they need oxygen to survive.

The other properties are not likely to decrease in a small, shallow tide pool at low tide. Carbon dioxide levels may increase as the water heats up, but they are not likely to decrease.

Temperature is likely to increase, not decrease. Acidity is not likely to change significantly. Salinity is also not likely to change significantly.

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