how many moles of nh4cl must be dissolved in 1.50 l of 0.60 m nh3 in order to prepare a buffer of ph 9.46? kb =1.8 x 10-5 for nh3 report answer in moles to 2 places after the decimal.

The following compounds would exhibit hydrogen bonding is I. and III. (NH³and C²H⁵OH)

Hydrogen bonding occurs when a hydrogen atom is covalently bonded to a highly electronegative atom (such as nitrogen, oxygen, or fluorine) and interacts with another electronegative atom on a different molecule. In this case, I. NH³ (ammonia) and III. C²H⁵OH (ethanol) exhibit hydrogen bonding. In NH³, the nitrogen atom is more electronegative than hydrogen, which causes a polar bond between N and H atoms. The nitrogen atom can then form a hydrogen bond with the hydrogen atom of another NH³ molecule.

In C²H⁵OH, the oxygen atom is more electronegative than hydrogen, creating a polar bond between O and H atoms. The oxygen atom can form a hydrogen bond with the hydrogen atom of another C²H⁵OH molecule. So, the correct answer is I (NH³) and III (C²H⁵OH) exhibit hydrogen bonding.

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[OH-] = 1.0 x 10^-9 M. The ion product constant of water (Kw) at 25°C is 1.0 x 10^-14. Therefore, [OH-] x [H3O+] = Kw/[H3O+]. Plugging in the given [H3O+], we get [OH-] = Kw/[H3O+] / [H3O+], which equals 1.0 x 10^-9 M.

Given [H3O+], we can use the ion product constant of water (Kw) to find [OH-]. Kw = [H3O+][OH-], so [OH-] = Kw/[H3O+]. Plugging in the given [H3O+] value, we get [OH-] = Kw/[H3O+] / [H3O+]. Since Kw = 1.0 x 10^-14 at 25°C, we can substitute that in and solve for [OH-]. The answer is 1.0 x 10^-9 M.

In this problem, we're given the concentration of hydronium ions ([H3O+]) in a solution, which is 3.0 x 10^-5 M. We're asked to find the concentration of hydroxide ions ([OH-]) in the solution using the ion product constant of water (Kw).

Kw is defined as the product of [H3O+] and [OH-], which is always equal to 1.0 x 10^-14 at 25°C. Using this equation, we can rearrange it to solve for [OH-]: [OH-] = Kw/[H3O+].

Plugging in the given [H3O+] value, we get [OH-] = Kw/[H3O+] / [H3O+], which simplifies to [OH-] = 1.0 x 10^-14 M / 3.0 x 10^-5 M. Solving this equation gives us [OH-] = 3.33 x 10^-10 M.

Therefore, the concentration of hydroxide ions in the solution is 3.33 x 10^-10 M.

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In the insoluble and soluble salt lab, the dropper bottles containing the anions to be studied were all phosphate salt solutions. The insoluble salt among iron, sodium, and phosphate is iron phosphate (FePO₄).

To determine the insoluble salt among the given options consider the following steps:

1. Identify the potential salts that can be formed by combining the given ions: iron phosphate (FePO₄) and sodium phosphate (Na₃PO₄).
2. Check the solubility rules for each potential salt. Generally, phosphate salts tend to be insoluble, with some exceptions like salts with Group 1 elements (e.g., sodium) and ammonium (NH₄⁺) ions.
3. Determine which salt is insoluble based on the solubility rules: iron phosphate (FePO₄) is insoluble, while sodium phosphate (Na₃PO₄) is soluble due to sodium being a Group 1 element.

In the insoluble and soluble salt experiment, iron phosphate (FePO₄) is the insoluble salt among sodium, phosphate, and iron.

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Electrolysis should continue for approximately 3,682 seconds, or 61.36 minutes, to produce 2.5 g of zinc from Zn(NO3)2 (aq) using a current of 2.12 A. The amount of zinc produced in an electrolytic cell can be calculated using Faraday's law of electrolysis

The relationship between the amount of substance produced, the current, and the time can be expressed as: n = (I x t x M) / (z x F)

where n is the amount of substance produced (in moles), I is the current (in amperes), t is the time (in seconds), M is the molar mass of the substance (in grams per mole), z is the number of electrons transferred per molecule of the substance, and F is the Faraday constant (96,485 C/mol).

In this case, we want to produce 2.5 g of zinc using a current of 2.12 A. The molar mass of zinc is 65.38 g/mol, and the number of electrons transferred per molecule of zinc is 2. Thus, we can calculate the time required for the electrolysis as follows:

n = (I x t x M) / (z x F)

2.5 g / 65.38 g/mol = (2.12 A x t x 1 mol/65.38 g) / (2 e- x 96,485 C/mol)

t = (2.5 g x 2 e- x 96,485 C/mol x 65.38 g/mol) / (2.12 A)

t = 3,682 seconds

Therefore, the electrolysis should continue for approximately 3,682 seconds using a current of 2.12 A.

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The hydride ion is a stronger base than the alkoxide ion due to its smaller size and higher electronegativity. After the initial reaction with NaBH4.

the workup steps are designed to neutralize the remaining reagents and separate the desired product from any impurities or byproducts. For example, in a typical reduction reaction with NaBH4, the reaction mixture is quenched with an acidic workup solution, such as HCl or acetic acid, which protonates any remaining NaBH4 or intermediate species and hydrolyzes any unreacted starting material or byproducts. The resulting mixture is then extracted with an organic solvent, such as diethyl ether or dichloromethane, to isolate the desired product. Finally, the organic layer is dried over anhydrous salts, such as sodium sulfate or magnesium sulfate, to remove any residual water or solvent before the product is purified by distillation, chromatography, or recrystallization.

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(a) To prepare 1-butyne from acetylene, the reagent used is CH₃CH₂CH₂Br in the presence of NaNH₂.

(b) To prepare 2-butyne from acetylene, the reagent used is CH₃CHBrCH₂Br in the presence of NaNH₂.

(c) To prepare 3-hexyne from acetylene, the reagent used is CH₃CH₂CH₂C≡CLi followed by treatment with H₃O⁺.

(d) To prepare 2-hexyne from acetylene, the reagent used is CH₃CH₂C≡CCH₂Br in the presence of NaNH₂.

(e) To prepare 1-hexyne from acetylene, the reagent used is CH₃CH₂C≡CLi followed by treatment with H₃O⁺.

(f) To prepare 2-heptyne from acetylene, the reagent used is CH₃CH₂CH₂C≡CLi followed by treatment with H₃O⁺.

Acetylene can undergo several types of reactions to form different alkynes.

(a) To prepare 1-butyne, acetylene can be reacted with 1-bromobutane in the presence of a strong base like sodium amide (NaNH₂) to form 1-butynyl sodium, which is then treated with dilute acid to form 1-butyne.

(b) To prepare 2-butyne, acetylene can be reacted with 2-bromo-2-methylpropane in the presence of a strong base like potassium tert-butoxide (KOtBu) to form 2-butyne.

(c) To prepare 3-hexyne, acetylene can be reacted with 1-bromo-3-hexyne in the presence of a strong base like sodium amide (NaNH₂) to form 1,3-hexadiyne, which is then treated with a mild reducing agent like sodium in liquid ammonia to form 3-hexyne.

(d) To prepare 2-hexyne, acetylene can be reacted with 2-bromo-1-hexene in the presence of a strong base like potassium tert-butoxide (KOtBu) to form 2-hexyne.

(e) To prepare 1-hexyne, acetylene can be reacted with 1-bromo-1-hexene in the presence of a strong base like sodium amide (NaNH₂) to form 1-hexyne.

(f) To prepare 2-heptyne, acetylene can be reacted with 1-bromo-2-heptyne in the presence of a strong base like sodium amide (NaNH₂) to form 1,2-heptadiyne, which is then treated with a mild reducing agent like sodium in liquid ammonia to form 2-heptyne.

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The correct order from greatest to least ionic character would be option (B): P-Cl, As-Cl, Sb-Cl.

The ionic character of a bond is determined by the electronegativity difference between the two atoms that are bonded. The larger the electronegativity difference, the more ionic character a bond will have.

In this case, we need to compare the electronegativity of the three elements involved in the bonds: antimony (Sb), phosphorus (P), and chlorine (Cl). The electronegativity values for these elements are as follows: Sb = 1.9, P = 2.19, and Cl = 3.16.

Using these values, we can see that the electronegativity difference between Cl and Sb is the smallest, followed by As-Cl and then P-Cl. Therefore, we can expect that the bond between Sb-Cl will have the least ionic character, followed by As-Cl and then P-Cl.

Based on this reasoning, the correct order from greatest to least ionic character would be option (B): P-Cl, As-Cl, Sb-Cl.

In summary, when comparing the ionic character of bonds between different elements, we can use the electronegativity values of those elements to determine the order of increasing or decreasing ionic character. The larger the electronegativity difference between two elements, the more ionic character the bond between them will have.

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To provide systematic IUPAC names for alcohols, a specific molecular structure needs to be given that contains a hydroxyl functional group attached to a carbon atom.

Alcohols are organic compounds that contain a hydroxyl (-OH) functional group attached to a carbon atom. In order to provide systematic IUPAC names for alcohols, a specific molecular structure needs to be given.

For example, consider the alcohol structure CH3CH2CH2OH. According to the IUPAC naming system, the longest carbon chain containing the hydroxyl group is identified, which in this case is a three-carbon chain. The name of the parent alkane is propane.

The hydroxyl group is treated as a substituent, and is named as a hydroxy group. Therefore, the systematic IUPAC name for CH3CH2CH2OH is 1-propanol.

In summary, to provide systematic IUPAC names for alcohols, a specific molecular structure needs to be given that contains a hydroxyl functional group attached to a carbon atom.

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The stoichiometry of the reaction is 1:2:2 for Q:R:S.

Hence, the correct option is c.

The reaction is Q-2R 2S, which means that for every mole of Q that reacts, 2 moles of R react and 2 moles of S are produced. Thus, the stoichiometry of the reaction is 1:2:2 for Q:R:S.

At the beginning of the reaction, [S] = 0.0 M, [Q] = [R] = 2.0 M.

At time t = t", [S]* = 1.0 M, which means that 1.0 M of S has been produced, and 1.0/2 = 0.5 M of R has been consumed. Since the initial concentration of R was 2.0 M, the concentration of R at time t" is

[R]* = 2.0 M - 0.5 M = 1.5 M

Since the stoichiometry of the reaction is 1:2:2, for every mole of R that reacts, 0.5 moles of Q react. Thus, the concentration of Q at time t" is

[Q]* = 2.0 M - 0.5/2 = 1.75 M

This answer is not one of the options provided, so the correct answer is (c) none of these.

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To compute the probability of a type ii error when μ = 95.5 and α = 0.07, we need to first determine the critical value for the test. This critical value is determined based on the level of significance, α, and the sample size, as well as the assumed   standard deviation or the standard error of the estimate.

Assuming that we have all the required information, we can use a statistical software program or a statistical table to find the critical value for the test. Once we have the critical value, we can calculate the probability of a type ii error using the following formula:

P(Type II Error) = β = P(Z ≤ Z_crit + (μ - μ0) / σ) - P(Z ≤ Z_crit + (μ - μ1) / σ)

where Z_crit is the critical value, μ0 is the null hypothesis mean, μ1 is the alternative hypothesis mean, and σ is the standard deviation or the standard error of the estimate.

In this case, we are given that μ = 95.5 and α = 0.07, but we do not have information about the standard deviation or the sample size. Therefore, it is not possible to compute the probability of a type ii error without additional information.

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Mass of nitrogen = (2.229*10^-3 mol) x (14.01 g/mol) = 3.12*10^-2 g
The answer is option b) 3.12x10^-2 g.

To calculate the mass of nitrogen in 7.43*10^-4 moles of 3TC, we first need to determine the number of moles of nitrogen present in one mole of 3TC. From the molecular formula of 3TC, we see that there are three nitrogen atoms. Therefore, the number of moles of nitrogen in one mole of 3TC is 3/1 = 3 mol/mol.
Next, we can calculate the number of moles of nitrogen in 7.43*10^-4 moles of 3TC by multiplying this value by the number of moles of 3TC:
moles of nitrogen = (3 mol/mol) x (7.43*10^-4 mol) = 2.229*10^-3 mol
Finally, we can use the molar mass of nitrogen (14.01 g/mol) to calculate the mass of nitrogen in grams:
mass of nitrogen = (2.229*10^-3 mol) x (14.01 g/mol) = 3.12*10^-2 g
Therefore, the answer is option b) 3.12x10^-2 g.

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At STP (Standard Temperature and Pressure), which is defined as 0 °C and 1 atm pressure, all gases have the same average kinetic energy because they have the same temperature. Therefore, the average velocity of gas molecules is inversely proportional to the square root of their molar mass.

The molar mass of NH3 is 17 g/mol, the molar mass of NO2 is 46 g/mol, and the molar mass of N2 is 28 g/mol. Since NH3 has the smallest molar mass, its molecules will have the highest average velocity. Therefore, the molecules in Flask A (which contains NH3) will have the highest average velocity.

To summarize, the average velocity of gas molecules is inversely proportional to the square root of their molar mass. At STP, all gases have the same temperature, so the gas with the smallest molar mass will have the highest average velocity. In this case, NH3 has the smallest molar mass, so its molecules will have the highest average velocity.

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The final temperature of the hot chocolate after equilibrium is reached is 71.1°C.  We used the principle of conservation of energy to find the final temperature of hot chocolate. The heat lost by the hot chocolate will be equal to the heat gained by the cold water.

To find the temperature of the hot chocolate after equilibrium, we can use the principle of conservation of energy. The heat lost by the hot chocolate will be equal to the heat gained by the cold water.

First, let's calculate the heat lost by the hot chocolate. The specific heat capacity of water is given as 4.184 J/g°C, so the heat lost by the hot chocolate can be calculated as:

Q_hot_chocolate = mass_hot_chocolate * specific_heat_water * (initial_temperature_hot_chocolate - final_temperature)

Q_hot_chocolate = 0.200 kg * 4.184 J/g°C * (75.0°C - final_temperature)

Similarly, let's calculate the heat gained by the cold water. The heat gained by the cold water can be calculated as:

Q_cold_water = mass_cold_water * specific_heat_water * (final_temperature - initial_temperature_cold_water)

Q_cold_water = 0.0300 kg * 4.184 J/g°C * (final_temperature - 1.0°C)

According to the principle of conservation of energy, Q_hot_chocolate = Q_cold_water. So we can equate the two equations:

0.200 * 4.184 * (75.0 - final_temperature) = 0.0300 * 4.184 * (final_temperature - 1.0)

Now, solve this equation to find the final temperature of the hot chocolate. After solving, we find that the final temperature of the hot chocolate after equilibrium is reached is approximately 71.1°C.

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Assuming ideal behavior, the number of air molecules in a 13.5×12.0×10.0 ft room at atmospheric pressure of 1.00 atm and room temperature of 20.0 ∘C can be calculated using the ideal gas law.                                                                                          

First, we need to convert the volume to liters by multiplying it with the conversion factor of 28.2 liters per cubic foot. The volume of the room in liters is 13.5×12.0×10.0×28.2 = 45,864 liters. Next, we can use the ideal gas law equation, PV=nRT, where P is the pressure, V is the volume, n is the number of molecules, R is the gas constant, and T is the temperature in Kelvin. Solving for n, we get n = PV/RT, where R = 8.314 J/mol*K. Plugging in the values, we get n = (1.00 atm)(45,864 L)/(8.314 J/mol*K)(293 K) = 2.01×10^25 molecules. Therefore, there are approximately 2.01×10^25 air molecules in a 13.5×12.0×10.0 ft room.

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The pH and percent ionization of a 0.100 M solution of a weak monoprotic acid having the Ka value 1.9 × 10⁻⁵ is 2.86 and 1.38% respectively.

(a) For Ka = 1.9 x 10⁻⁵, the equilibrium expression for the dissociation of the weak acid (HA) can be written as:

Ka = [H+][A-]/[HA]

Let x be the concentration of [H+] and [A-] formed when the acid dissociates. At equilibrium, the concentration of [HA] will be (0.100 - x) as the initial concentration of the acid is 0.100 M.

Using the expression for Ka:

1.9 x 10⁻⁵ = x²/(0.100 - x)

Solving for x using the quadratic formula:

x = 1.38 x 10⁻³ M

pH = -log[H+] = -log(1.38 x 10⁻³) = 2.86

Percent ionization = ([H+]/[HA]) x 100% = (1.38 x 10⁻³/0.100) x 100% = 1.38%

(b) For Ka = 1.9 x 10⁻³, following the same method as above:

x = 4.36 x 10⁻² M

pH = -log[H+] = -log(4.36 x 10⁻²) = 1.36

Percent ionization = ([H+]/[HA]) x 100% = (4.36 x 10⁻²/0.100) x 100% = 43.6%

(c) For Ka = 1.9 x 10⁻¹, following the same method as above:

x = 0.435 M

pH = -log[H+] = -log(0.435) = 0.36

Percent ionization = ([H+]/[HA]) x 100% = (0.435/0.100) x 100% = 435% (This value is not physically possible, indicating that our assumption that the acid is weak may not be valid. A strong acid could have a Ka value of 1.9 x 10⁻¹, which would result in a percent ionization of 100%.)

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The Ksp for the given equilibrium is approximately 5.42 × 10^-6.

We are given that the molar solubility of Ca(OH)2 is 0.0111 M. This means that at equilibrium, the concentration of Ca2+ ions and OH- ions will both be equal to x, since each mole of Ca(OH)2 that dissolves will produce one mole of Ca2+ ions and two moles of OH- ions.

To determine the Ksp for the given equilibrium, we need to first write out the balanced equation:
Ca(OH)2(s) ⇌ Ca2+(aq) + 2OH-(aq)
The Ksp expression for this equilibrium is:
Ksp = [Ca2+][OH-]^2
Therefore, we can substitute x for [Ca2+] and [OH-] in the Ksp expression:
Ksp = (x)(2x)^2 = 4x^3
Substituting the molar solubility value of 0.0111 M for x, we get:
Ksp = 4(0.0111)^3 = 6.3 x 10^-6

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After the finding of molar mass and no. of  moles there are 5.55 × 10²³ oxygen atoms in a 70.0 g sample of scheelite.

The formula of scheelite is CaWO4. The atomic weight of calcium (Ca) is 40.078 g/mol, tungsten (W) is 183.84 g/mol, and oxygen (O) is 15.999 g/mol . To calculate the number of oxygen atoms in a 70.0 g sample of scheelite, you can use the following steps: Step 1: Determine the molar mass of scheelite. Molar mass of CaWO4= (1 × atomic mass of Ca) + (1 × atomic mass of W) + (4 × atomic mass of O)= 40.078 g/mol + 183.84 g/mol + (4 × 15.999 g/mol)= 287.33 g/molStep 2: Calculate the number of moles of scheelite.

Number of moles of CaWO4= Mass of CaWO4 / Molar mass of CaWO4= 70.0 g / 287.33 g/mol= 0.2434 molStep 3: Find the number of oxygen atoms in the sample. Number of oxygen atoms in the sample= (4 × number of moles of CaWO4 × Avogadro's number)= (4 × 0.2434 mol × 6.022 × 10²³ atoms/mol)= 5.55 × 10²³ atoms Hence, there are 5.55 × 10²³ oxygen atoms in a 70.0 g sample of scheelite.

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According to the data sheet and periodic table provided, the gases F2, H2, N2, and O2 are all diatomic molecules at standard temperature and pressure (STP).

The plot you are referring to likely shows the relationship between pressure and volume for each of these gases.
To identify which gas corresponds to curve III on the plot, we need to look at the unique properties of each gas. Curve III represents a gas that is more easily compressed than the other gases at STP, as evidenced by its steeper slope on the plot.
From the periodic table, we know that F2 (fluorine gas) is the most reactive of the diatomic molecules at STP, while H2 (hydrogen gas) is the lightest and most abundant element in the universe. N2 (nitrogen gas) makes up the majority of the Earth's atmosphere, while O2 (oxygen gas) is necessary for respiration and combustion.

Based on this information, we can deduce that the gas corresponding to curve III is most likely F2, since its reactivity would make it more likely to be compressed than the other gases at STP. However, it is important to note that without additional information or context, it is impossible to know for certain which gas corresponds to curve III.

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The 149.2 grams of potassium chloride would be produced if 78 grams of potassium and 71 grams of chlorine completely reacted.

The balanced chemical equation for the reaction between potassium metal (K) and chlorine gas (Cl₂) to form solid potassium chloride (KCl) is:

2K(s) + Cl₂(g) → 2KCl(s)

This equation indicates that two atoms of potassium react with one molecule of chlorine gas to yield two molecules of potassium chloride.

The type of reaction is a combination reaction, also known as a synthesis reaction. In this type of reaction, two or more substances combine to form a single product.

To determine the mass of potassium chloride produced, we need to calculate the limiting reactant. The molar mass of potassium is approximately 39.1 g/mol, and the molar mass of chlorine is approximately 35.5 g/mol.

First, we convert the given masses of potassium (78 g) and chlorine (71 g) into moles by dividing them by their respective molar masses:

Moles of potassium = 78 g / 39.1 g/mol = 2 mol

Moles of chlorine = 71 g / 35.5 g/mol ≈ 2 mol

Since the reactants have a 1:1 stoichiometric ratio, it can be seen that both potassium and chlorine are present in the same amount. Therefore, the limiting reactant is either potassium or chlorine.

Assuming potassium is the limiting reactant, we can calculate the mass of potassium chloride produced. Since 2 moles of potassium react to form 2 moles of potassium chloride, we can use the molar mass of potassium chloride (74.6 g/mol) to calculate the mass:

Mass of potassium chloride = 2 mol × 74.6 g/mol = 149.2 g

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The formal charge on nitrogen in the nitrite ion (NO2-) is +1.

To determine the formal charge on an atom, we compare the number of valence electrons it should have (based on its position in the periodic table) with the number of electrons assigned to it in the Lewis structure. In the case of the nitrite ion (NO2-), the Lewis structure shows that nitrogen (N) is bonded to two oxygen (O) atoms and has one lone pair of electrons.

Nitrogen has a valence electron configuration of 5. In the nitrite ion, each oxygen contributes 6 electrons (since oxygen has 6 valence electrons) and the overall charge of the ion is -1.

By applying the formula for formal charge, which is the valence electrons minus the non-bonding electrons minus half of the bonding electrons, we can calculate the formal charge on nitrogen.

Formal charge = 5 - 2 - (6/2) = +1

Hence, the formal charge on nitrogen in the nitrite ion is +1.

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Changing the TLC solvent to 80:20 hexane:ethyl acetate can affect the separation and Rf values of the compounds being analyzed and may require further optimization to achieve the desired results.

TLC (thin-layer chromatography) is a widely used technique in chemistry for the separation and identification of different components in a mixture. It involves the use of a stationary phase (a thin layer of adsorbent material) and a mobile phase (a solvent) to separate the different components based on their physical and chemical properties. The Rf (retention factor) value is a measure of the distance that a compound has traveled on the TLC plate relative to the distance traveled by the solvent front. It is a useful tool for identifying and characterizing different compounds in a mixture.
The choice of solvent is an important factor in the TLC separation process. Different solvents have different polarities and can affect the separation and Rf values of the compounds being analyzed. In the case of changing the TLC solvent to 80:20 hexane:ethyl acetate, this would result in a more polar solvent system compared to the original solvent. This is because ethyl acetate is a more polar solvent than the commonly used hexane.
As a result of this change, the Rf values of the compounds on the TLC plate may change. Compounds that are more polar and have higher affinity for the stationary phase may have lower Rf values, while less polar compounds may have higher Rf values. It is important to note that the change in Rf values is not always predictable and can depend on the specific properties of the compounds being analyzed.

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Answer:

x= 4.8x10^-5

Explanation:

20ppb=20 parts per billion

______20g Ni________ = ____ XgNi___

1,000,000,000g sample      2400g sample

x=_(20)(2400)_ = 4.8x10^-5

       1 billion

Hope this helps

To find the solubility of AgCl in a solution of MsCl2, we need to use the common ion effect. MsCl2 will dissociate in water to form Ms+ and Cl- ions. The Cl- ions will combine with the Ag+ ions from the dissociation of AgCl to form more AgCl, which will reduce the solubility of AgCl.

The balanced equation for the dissociation of AgCl is:

AgCl(s) ⇌ Ag+(aq) + Cl-(aq)

The Ksp expression for this reaction is:

Ksp = [Ag+][Cl-]

We know that the Ksp of AgCl is 1.8 x 10^-10. Let's assume that x is the solubility of AgCl in the presence of MsCl2.

In the presence of MsCl2, the Cl- concentration will be [Cl-] = [Cl-]initial + [Cl-]dissociated = 2[Cl-]initial, where [Cl-]initial is the initial concentration of Cl- ions from MsCl2.

Since the Ag+ concentration is equal to the Cl- concentration in a saturated solution of AgCl, we can write:

Ksp = [Ag+]^2 = (2[Cl-]initial + x)^2

Solving for x, we get:

x = (-2[Cl-]initial ± √(4[Cl-]initial^2 + 4Ksp))/2

We can simplify this equation to:

x = (-[Cl-]initial ± √([Cl-]initial^2 + Ksp))/1

Substituting the values, we get:

x = (-[Cl-]initial ± √([Cl-]initial^2 + 1.8 x 10^-10))/1

Therefore, the solubility of AgCl in a solution of MsCl2 can be calculated using the above equation.

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Answer:

Magnesium

Iron

Copper

Lead

Silver

Explanation:

When we arrange the species O2, O2-, O2^2-, and O22- in order of increasing bond length, we need to consider the number of electrons in the valence shell of each oxygen atom.

The O2 molecule has a double bond between the two oxygen atoms, and each oxygen atom has six valence electrons. Therefore, the bond length in O2 is shorter than in any of the other species.

Next, we have O2-, which has an additional electron in its valence shell. This extra electron repels the existing electrons, causing the bond length to increase slightly.

The O2^2- ion has two extra electrons in its valence shell, causing even more repulsion and a longer bond length than in O2-.

Finally, the O22- ion has two oxygen atoms with three extra electrons in their valence shells. This creates even more repulsion, resulting in the longest bond length of all four species.

Therefore, the correct order of increasing bond length is: O2 < O2- < O2^2- < O22-.

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The species can be arranged in order of increasing bond length as follows:

o2- < o2 < o22-

The reason for this order is that as electrons are added to the oxygen molecule, the bond length increases due to the increased repulsion between the electrons. So, the oxygen ion with a negative charge (o2-) has the shortest bond length, followed by the neutral oxygen molecule (o2), and finally, the oxygen ion with a double negative charge (o22-) has the longest bond length.

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The reaction of 1-butyne with BH3 in THF, followed by H2O2 and OH-, leads to the formation of 1-butanal as the major organic product.

The reaction of 1-butyne with BH3 in THF, followed by H2O2 and OH-, leads to the formation of 1-butanal as the major organic product. The first step of the reaction involves the addition of BH3 to the triple bond of 1-butyne, leading to the formation of an alkenylborane intermediate. In this intermediate, the boron atom is sp2 hybridized and has a trigonal planar geometry. The addition of H2O2 and OH- to this intermediate leads to the oxidation of the boron atom to a hydroxyl group, and the formation of the corresponding aldehyde.
The stereochemistry of the product is relevant in this reaction. The addition of BH3 to the triple bond of 1-butyne can occur in two ways, leading to the formation of two different regioisomers. In one regioisomer, the boron atom adds to the terminal carbon of the triple bond, while in the other, it adds to the internal carbon. The reaction is highly regioselective, with the terminal addition being favored. The addition of H2O2 and OH- to the alkenylborane intermediate is also stereoselective, with syn addition being favored. Therefore, the major product of the reaction is (Z)-1-butanal, with the hydroxyl group and the double bond on the same side of the molecule.
In case no reaction occurs, the product is ethane (CH3CH3), which is obtained by the reduction of BH3 with H2O2 and OH-.

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The molar absorptivity (ε) of the given solution is 3.08 x 10⁴ L/(mol⋅cm).

The molar absorptivity (ε) is a measure of how strongly a particular chemical species absorbs light at a given wavelength. It is a characteristic of the species, the solvent, and the wavelength of light used.

The molar absorptivity is given by the Beer-Lambert Law, which states that the absorbance (A) of a solution is directly proportional to the concentration (c) of the absorbing species, the path length (l), and the molar absorptivity (ε) of the species, i.e.,

A = εcl

We are given the concentration of the solution as 5.0 x 10⁻⁴ M, the path length as 1.3 cm, and the absorbance as 0.20. Substituting these values in the above equation, we get:

ε = A / (cl) = 0.20 / (5.0 x 10⁻⁴ M x 1.3 cm) = 3.08 x 10⁴ L/(mol⋅cm)

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E°cell = Standard state cell potential

R = 0.0821 Lkmol^-1K^-1 (gas constant)

T = 298 K

n = Number of electrons transferred in balanced redox reaction = 2 (from the half-reactions)

F = 96485 C/mol (Faraday's constant)

Q = Reaction quotient = [Sn^2+] [ClO2^-] / [Sn] [ClO2]

1. Standard state cell potential (E°cell): Since we have Sn/Sn^2+ and ClO2/ClO2^- half-cells, E°cell = E°Sn/Sn^2+ - E°ClO2/ClO2^-

= -0.76 V - 0.94 V = -1.7 V

2. Reaction quotient (Q):

[Sn^2+] = 1.50 M

[ClO2^-] = 1.65 M

[Sn] = 1 M (assumed, since Sn is solid)

[ClO2] = 0.180 atm = 0.180 M

So Q = (1.50 M) (1.65 M) / (1 M) (0.180 M) = 9:1

3. Substitute into cell potential formula:

Ecell = -1.7 V - (0.0821 Lkmol^-1K^-1 * 298 K) * ln(9)

Ecell = -1.7 V - 0.0613 * ln(9)

Ecell = -1.76 V

So the cell potential at 25°C is -1.76 V

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The acetate ion has a negative charge, giving a total of 18 valence electrons in the acetate ion, CH3COO-.

The acetate ion, CH3COO-, is formed by the acetate anion, which has a molecular formula of C2H3O2-. To determine the number of valence electrons in the acetate ion, we need to add the valence electrons of all the atoms in the ion and then subtract the extra electron that gives the ion its negative charge.

The carbon atom has 4 valence electrons, the two oxygen atoms each have 6 valence electrons, and the hydrogen atom has 1 valence electron. So, the total number of valence electrons in the acetate ion is:

4 (valence electrons of carbon) + 2 × 6 (valence electrons of oxygen) + 3 (valence electrons of hydrogen)

= 4 + 12 + 3

= 19

Finally, we subtract one electron since the acetate ion has a negative charge, giving a total of 18 valence electrons in the acetate ion, CH3COO-.

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There are 60.025 grams of H₃PO₄ in 175 ml of a 3.50 M solution of H₃PO₄.

To solve this problem, we can use the formula:
Molarity (M) = moles of solute/liters of solution

First, we need to calculate the moles of H₃PO₄ in the solution:
Molarity = 3.50 M
Volume = 175 ml = 0.175 L

Moles of H₃PO₄ = Molarity x Volume
Moles of H₃PO₄ = 3.50 mol/L x 0.175 L
Moles of H₃PO₄ = 0.6125 moles

Next, we can use the molar mass of H₃PO₄ to convert moles to grams:

Molar mass of H₃PO₄ = 98 g/mol

Grams of H₃PO₄ = moles of H₃PO₄ x molar mass of H₃PO₄
Grams of H₃PO₄ = 0.6125 moles x 98 g/mol
Grams of H₃PO₄ = 60.025 g

Therefore, there are 60.025 grams of H₃PO₄ in 175 ml of a 3.50 M solution of H₃PO₄.

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