Answer:
46g
Explanation:
22.4L of NO2 at STP = 1mol of NO2 = atomic mass of NO2 = 46g
What is the volume occupied by a 10 g sample of nitrogen gas at 250C and 1.0 atm pressure?
The volume occupied by a 10 g sample of nitrogen gas at 25°C and 1.0 atm pressure is 8.61 L.
To calculate the volume occupied by a 10 g sample of nitrogen gas at 25°C and 1.0 atm pressure, we need to use the ideal gas law equation:
PV = nRT
where P is the pressure, V is the volume, n is the number of moles, R is the universal gas constant, and T is the temperature in Kelvin.
First, we need to determine the number of moles of nitrogen gas present in the 10 g sample. To do this, we divide the mass by the molar mass of nitrogen:
n = m/M = 10 g / 28 g/mol = 0.357 mol
Next, we convert the temperature from Celsius to Kelvin:
T = 25°C + 273.15 = 298.15 K
Now we can plug in the values and solve for V:
V = nRT/P = (0.357 mol)(0.0821 L·atm/mol·K)(298.15 K)/(1.0 atm) = 8.61 L
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if 41.24 grams of sodium reacts with 18.69 grams of chlorine gas, how many grams of sodium chloride could potentially be formed
Answer:
30.7 grams
Explanation:
The balanced chemical equation for the reaction between sodium and chlorine gas is:
2 Na + Cl2 → 2 NaCl
The molar mass of sodium is 22.99 g/mol, and the molar mass of chlorine gas is 70.90 g/mol. Using these values, we can calculate the number of moles of each reactant:
Moles of sodium = 41.24 g / 22.99 g/mol = 1.794 mol
Moles of chlorine gas = 18.69 g / 70.90 g/mol = 0.263 mol
According to the balanced equation, the reaction uses two moles of sodium for every one mole of chlorine gas. Therefore, the limiting reactant is chlorine gas, and we can calculate the maximum amount of sodium chloride that can be formed:
Moles of NaCl = 0.263 mol Cl2 × (2 mol NaCl / 1 mol Cl2) = 0.526 mol NaCl
Convert moles of NaCl to grams:
Grams of NaCl = 0.526 mol NaCl × 58.44 g/mol = 30.7 g
The amount of sodium chloride that could potentially be formed is 30.4 grams.
To determine how many grams of sodium chloride could potentially be formed, we first need to balance the chemical equation for the reaction between sodium and chlorine gas:
2 Na + Cl2 → 2 NaCl
This equation shows that two moles of sodium react with one mole of chlorine gas to produce two moles of sodium chloride. We can use the given masses of sodium and chlorine gas to determine how many moles of each are present:
Molar mass of Na = 22.99 g/mol
Molar mass of Cl2 = 70.90 g/mol
Moles of Na = 41.24 g / 22.99 g/mol = 1.79 mol
Moles of Cl2 = 18.69 g / 70.90 g/mol = 0.26 mol
Since two moles of sodium react with one mole of chlorine gas, we can see that there is not enough chlorine gas present to react with all of the sodium. Therefore, chlorine gas is the limiting reactant in this reaction.
The amount of sodium chloride that could potentially be formed is limited by the amount of chlorine gas, so we need to calculate how many moles of sodium chloride can be formed from the available amount of chlorine gas:
Moles of NaCl = 0.26 mol Cl2 × (2 mol NaCl / 1 mol Cl2) = 0.52 mol NaCl
Finally, we can convert the moles of sodium chloride to grams using its molar mass:
Molar mass of NaCl = 58.44 g/mol
Mass of NaCl = 0.52 mol × 58.44 g/mol = 30.4 g
Therefore, the maximum amount of sodium chloride that could potentially be formed is 30.4 grams.
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HELP! What is the authors purpose?
What do you notice about the evidence?
What observation can you make about the organization of an argumentative essay?
A well-organized argumentative essay will have each paragraph contain a distinct topic phrase, a logical progression of ideas and arguments, and proper citation and analysis of the supporting documentation.
How is a persuasive essay organized?The argumentative essay might be structured in one of two ways. The first strategy is to create all of your own arguments before opposing and disproving theirs. The second tactic is to take each point put out by your opponent and refute it on its own.
What formats are available for argumentative essays?There are three different methods for structuring the points of an argument: the Toulmin Method, the Classical Method, and the Rogerian Way.
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an unknown compound has the formula . you burn 0.2236 g of the compound and isolate 0.5459 g of and 0.2235 g of . what is the empirical formula of the
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Full Question
an unknown compound has the formula . you burn 0.2236 g of the compound and isolate 0.5459 g of and 0.2235 g of . what is the empirical formula of the
6. Draw a Bohr-Rutherford diagram for each of the following
molecules. ™
(a) fluorine (F₂)
(b) hydrogen fluoride
A Bohr-Rutherford diagram is a simplified visual representation of the atomic structure of an element. It is named after Niels Bohr and Ernest Rutherford.
How is a Bohr-Rutherford diagram represented?In a Bohr-Rutherford diagram, the nucleus of the atom is represented by a small circle in the center, and the electrons are shown as circles orbiting the nucleus in distinct energy levels or shells. The electrons in the innermost shell are closest to the nucleus and have the lowest energy level, while the electrons in the outermost shell have the highest energy level.
The number of electrons in each shell is determined by the element's atomic number. For example, hydrogen, which has an atomic number of 1, has one electron in its sole shell, while carbon, with an atomic number of 6, has two electrons in its inner shell and four electrons in its outer shell.
The Bohr-Rutherford diagram for fluorine (green) and hydrogen fluoride (purple) are shown.
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calculate the amount of oxygen (a) diffused in 1 hour under steady state conditions through a non-diffusing gas mixture of methane (b) and hydrogen (c) in the volume ratios of 2:1.
The amount of oxygen diffused in 1 hour under the steady state condition through a non diffusing gas mixture of methane is 0.14076 K mole/hr.m2. This is calculated using the expression of Molar flux.
The molar flux = [tex]DA_{M}[/tex] * [tex]P_{t}[/tex]* ([tex]P_{A1}[/tex] - [tex]P_{A2}[/tex]) / [tex]RTZP_{BM}[/tex]
[tex]PB_{M}[/tex] =([tex]P_{B2}[/tex]- [tex]P_{B1}[/tex])/ ln ([tex]P_{B2}[/tex]/ [tex]P_{B1}[/tex])
[tex]P_{B2}[/tex]= 105- 13*103 = 87*103 N/m2, [tex]P_{B2}[/tex]= 105- 6500= 93.5*103 N/m2
[tex]PB_{M}[/tex]= (87*1000- 93.5*1000)/ ln (87/93.5)= 90200 N/m2
[tex]DA_{M}[/tex] = Diffusivity of oxygen into mixture of Methane and hydrogen
= (yCH4/[tex]DA_{B}[/tex] + yH2/[tex]DA_{C}[/tex])
Since volume ratio of Methane to hydrogen is 2:1
y[tex]CH_{4}[/tex]= 2/3 and y[tex]H_{2}[/tex]= 1/3
[tex]DA_{B}[/tex]= 1.86*10-5 m2/sec and [tex]DA_{C}[/tex] = 7*10-5 m2/sec
[tex]DA_{C}[/tex]= 1/ (0.667/1.86*10-5+ 0.333/7*10-5) =2.462*10-5
[tex]N_{A}[/tex] = 2.462*10-5*(13000-6500)/ 8314*273*0.002*90200
= 3.91*10-5 K mole/m2.s
for 1 hour NA= 3.91*10-5*3600 Kmolm2 =0.14076 K mole/hr.m2
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The correct question is,
calculate the amount of oxygen diffused in 1 hour under steady state conditions through a non-diffusing gas mixture of methane
Given ΔfG (SO2(g)) = -300.4 kJ·mol-1 and ΔfG (H2O(g)) = -228.57 kJ·mol-1, calculate ΔGrxn for the reaction below at 25 °C in kJ. SO2(g) + 2 H2(g) → S(s) + 2 H2O(g)
The value of ΔGrxn for the given reaction is -156.74 kJ·mol-1 at 25 °C.
To calculate ΔGrxn for the given reaction, we can use the following equation:
ΔGrxn = ΣnΔfG(products) - ΣmΔfG(reactants)
where ΔfG is the standard molar Gibbs free energy of formation, n and m are the stoichiometric coefficients of the products and reactants respectively.
Let's start by writing the balanced chemical equation for the reaction:
[tex]SO_2(g) + 2 H_2(g)[/tex] → [tex]S(s) + 2 H_2O(g)[/tex]
Now we can use the given values of ΔfG to calculate ΔGrxn:
ΔGrxn = [ΔfG(S) + 2ΔfG([tex]H_2O[/tex])] - [ΔfG([tex]SO_2[/tex]) + 2ΔfG([tex]H_2[/tex])]
ΔGrxn = [0 + 2(-228.57 kJ·mol-1)] - [-300.4 kJ·mol-1 + 2(0)]
ΔGrxn = -457.14 kJ·mol-1 + 300.4 kJ·mol-1
ΔGrxn = -156.74 kJ·mol-1
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Write the letter of the expression in the second column that is most closely related to the following statement: The total pressure of a mixture of gases is equal to the sum of the partial pressures of the component gases.
in equilibrium reactions, we can look at both the forward and the backward reactions and compare the rates to determine information about the directionality of the reaction. a. write the rate expression for both the forward and backward reactions. b. how would the system respond to increasing the concentration of co2 (aq) to reestablish equilibrium? use a kinetic argument to justify your answer. c. what will the concentrations of each species be when equilibrium is reestablished, relative to what they were in the initial equilibrium? justify your answer.
a. The rate expression for the forward and backward reaction can be written as:
[tex]rate = k_{forward} [A]^m [B]^n[/tex]
[tex]rate = k_{backward} [C]^p [D]^q[/tex]
b. If the concentration of [tex]CO_2(aq)[/tex] is increased, the equilibrium would shift to the left to consume the additional [tex]CO_2\\[/tex].
c. At equilibrium, the concentrations of [tex]CO_2(aq)[/tex], A, and B would be higher than their initial concentrations, while the concentrations of C and D would be lower than their initial concentrations.
a) [tex]rate = k_forward [A]^m [B]^n[/tex]
where [tex]k_{forward[/tex] is the rate constant for the forward reaction, [A] and [B] are the concentrations of the reactants, and m and n are the reaction orders with respect to [A] and [B], respectively.
[tex]rate = k_backward [C]^p [D]^q[/tex]
where [tex]k_{backward[/tex] is the rate constant for the backward reaction, [C] and [D] are the concentrations of the products, and p and q are the reaction orders with respect to [C] and [D], respectively.
b. If the concentration of [tex]CO_2(aq)[/tex] is increased, the equilibrium would shift to the left to consume the additional [tex]CO_2[/tex]. This can be justified by Le Chatelier's principle, which states that a system at equilibrium will respond to any stress applied to it in a way that tends to counteract the stress and reestablish equilibrium.
In this case, increasing the concentration of [tex]CO_2(aq)[/tex] would be a stress that would upset the equilibrium, and the system would respond by shifting the equilibrium to the left, where [tex]CO_2(aq)[/tex] is consumed.
c. At equilibrium, the rate of the forward reaction is equal to the rate of the backward reaction. Therefore, the concentrations of the species at equilibrium can be calculated using the equilibrium constant, [tex]K_{eq[/tex]:
[tex]K_{eq} = ([C]^p [D]^q) / ([A]^m [B]^n)[/tex]
where the brackets denote the concentration of each species. At equilibrium, [tex]K_{eq}[/tex] is a constant, which means that the ratio of the product concentrations to the reactant concentrations is constant.
If the concentration of [tex]CO_2(aq)[/tex] is increased, the equilibrium would shift to the left, which would decrease the concentrations of the products (C and D) and increase the concentrations of the reactants (A and B).
Therefore, at equilibrium, the concentrations of [tex]CO_2(aq)[/tex], A, and B would be higher than their initial concentrations, while the concentrations of C and D would be lower than their initial concentrations.
However, the exact concentrations of each species at equilibrium would depend on the values of [tex]K_{eq}[/tex] and the initial concentrations of each species.
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buffer is made by combining 20.0 ml 0.250 m nh4cl with 30.0 ml 0.250 m nh3. a. calculate the ph of the buffer.
To calculate the pH of the buffer, we first need to find the concentration of NH4+ and NH3 in the solution.
The dissociation of NH4Cl in water is as follows:
NH4Cl → NH4+ + Cl-
Since NH4Cl is a strong electrolyte, it dissociates completely in water, and the concentration of NH4+ in solution is the same as the initial concentration of NH4Cl:
[ NH4+ ] = 0.250 M
The reaction between NH3 and water is as follows:
NH3 + H2O ⇌ NH4+ + OH-
The base dissociation constant for ammonia (Kb) is 1.8 x 10^-5. We can use this value to find the concentration of NH3 and OH- in the solution.
Let x be the concentration of NH3 in the solution. Then, the concentration of NH4+ will be 0.250 M - x (since NH4+ and NH3 are in equilibrium). The concentration of OH- can be calculated using the Kb value:
Kb = [ NH4+ ][ OH- ] / [ NH3 ]
1.8 x 10^-5 = (0.250 M - x) x / (0.250 M)
x = 0.0564 M (concentration of NH3)
[ OH- ] = Kb x / [ NH4+ ]
[ OH- ] = (1.8 x 10^-5) (0.0564 M) / (0.250 M - 0.0564 M)
[ OH- ] = 4.37 x 10^-6 M
Since this is a basic solution, the pH can be calculated using the pOH equation:
pOH = -log [ OH- ]
pOH = -log (4.37 x 10^-6)
pOH = 5.36
The pH can be found by subtracting the pOH from 14:
pH = 14 - pOH
pH = 14 - 5.36
pH = 8.64
Therefore, the pH of the buffer is 8.64.
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determine whether each melting point observation corresponds to a pure sample of a single compound or to an impure sample with multiple compounds. wide melting point range choose... narrow melting point range choose... experimental melting point is below literature value choose... experimental melting point is close to literature value
Wide melting point range: Impure sample
Narrow melting point range : Pure sample
A wide melting point range is known as the range of more than 5°C which usually indicates that the substance is impure. A narrow melting point range is known as the range of 0.5 to 2°C which usually indicates that the substance is fairly pure. It explains the impurities effect on the Melting Point. A wide melting point is used as a indicator of purity as there is a general lowering and broadening of the melting range as impurities increase.
A narrow melting point range is defined as the range which suggests a pure sample with one compound when a wide melting point range suggests an impure sample with multiple compounds. Through the wide melting point and narrow melting point range observation of a sample it can provide an indication of whether the sample is pure or impure with multiple compounds present.
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99. a solution containing sodium fluoride is mixed with one containing calcium nitrate to form a solution that is 0.015 m in naf and 0.010 m in ca ( n o 3 ) 2 does a precipitate form in the mixed solution? if so, identify the precipitate.
Since Q > Ksp, a precipitate forms in the mixed solution. The precipitate is calcium fluoride ([tex]CaF_{2}[/tex]).
A solution containing sodium fluoride is mixed with one containing calcium nitrate to form a solution that is 0.015 M in NaF and 0.010 M in [tex]Ca(NO_{3})_{2}[/tex]. To determine if a precipitate forms in the mixed solution, follow these steps:
1. Write the possible reaction between the ions in the solution: NaF (aq) + [tex]Ca(NO_{3})_{2}[/tex] (aq) → [tex]NaNO_{3}[/tex] (aq) + [tex]CaF_{2}[/tex] (s)
2. Identify the solubility rules for the potential products. Sodium nitrate ( [tex]NaNO_{3}[/tex]) is soluble because nitrates are generally soluble. Calcium fluoride ( [tex]CaF_{2}[/tex]) may be insoluble, as fluorides often have limited solubility.
3. Calculate the ion product (Q) and compare it with the solubility product constant (Ksp) of [tex]CaF_{2}[/tex]. If Q > Ksp, a precipitate will form. Q = [tex][Ca_{2+}][F-]^{2}[/tex]. The concentrations of ions in the mixed solution are: [[tex]Ca_{2+}[/tex]] = 0.010 M (from [tex]Ca(NO_{3})_{2}[/tex]) [F-] = 0.015 M (from NaF)
So, Q = (0.010) × ([tex]0.015^{2}[/tex]) = 2.25 × [tex]10^{-6}[/tex] The Ksp of [tex]CaF_{2}[/tex] is 3.9 × [tex]10^{-11}[/tex].
4. Compare Q with Ksp: Q (2.25 × [tex]10^{-6}[/tex]) is greater than Ksp (3.9 × [tex]10^{-11}[/tex]).
Since Q > Ksp, a precipitate forms in the mixed solution. The precipitate is calcium fluoride ( [tex]CaF_{2}[/tex]).
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calculate the ph of a solution that is made when 0.10 l of 0.24 m benzoic acid and 3.00g of sodium benzoate (molar mass = 144.11 g/mol) are added together.
The pH of a solution that is made when 0.10 l of 0.24 m benzoic acid and 3.00g of sodium benzoate (molar mass = 144.11 g/mol) are added together is: 1.74.
To calculate the pH of a solution made by mixing 0.10 L of 0.24 M benzoic acid and 3.00 g of sodium benzoate, we need to determine the concentration of benzoic acid and benzoate ion in the mixture. Then, we can use the acid dissociation constant of benzoic acid to calculate the pH of the solution.
Step-by-step solution:
First, we need to calculate the amount of sodium benzoate added to the solution.
Number of moles of sodium benzoate = mass of sodium benzoate / molar mass of sodium benzoate
= 3.00 g / 144.11 g/mol
= 0.0208 mol
Now, we need to calculate the amount of benzoic acid added to the solution. Since we know the volume and concentration of benzoic acid, we can use the formula:
C = n / V
where,
C = concentration of benzoic acid
n = number of moles of benzoic acid
V = volume of solution in liters
Substituting the given values, we get,
0.24 M = n / 0.10 L
n = 0.024 mol
Therefore, the total number of moles of benzoic acid and benzoate ion in the solution are:
0.024 mol (benzoic acid) + 0.0208 mol (benzoate ion) = 0.0448 mol
Now, we can calculate the molarity of benzoate ion in the solution.
Molarity of benzoate ion = moles of benzoate ion / volume of solution in liters
= 0.0208 mol / 0.10 L
= 0.208 M
Molarity of benzoic acid in the solution is still 0.24 M since it is a weak acid and does not fully ionize in water. Now, we can use the acid dissociation constant of benzoic acid to calculate the pH of the solution.
The acid dissociation constant of benzoic acid is given by the following equation:
Ka = [C6H5COO-][H3O+] / [C6H5COOH]
where,
Ka = 6.5 × 10^-5
[C6H5COO-] = concentration of benzoate ion (M)
[C6H5COOH] = concentration of benzoic acid (M)
H3O+ = concentration of hydronium ion
We know the concentrations of benzoic acid and benzoate ion, but we need to calculate the concentration of hydronium ion. This can be done using the following formula:
Kw = [H3O+][OH-]
where,
Kw = 1.0 × 10^-14 (at 25°C)
Since the solution is neutral, the concentration of hydronium ion is equal to the concentration of hydroxide ion.
Concentration of hydroxide ion = Kw / [H3O+]
= 1.0 × 10^-14 / [H3O+]
We can substitute this value of [OH-] in the equation for Ka.
Ka = [C6H5COO-][H3O+] / [C6H5COOH]
= [0.208 M][H3O+] / [0.24 M]
= 1.73 × 10^-5
[H3O+] = sqrt(Ka × [C6H5COOH] / [C6H5COO-])
= sqrt(6.5 × 10^-5 × 0.24 / 0.208)= 0.018 M
Now, we can calculate the pH of the solution using the formula:
pH = -log[H3O+]= -log(0.018)= 1.74
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Name the following organic molecules.
The IUPAC names of the organic compounds are as follows:
1,1,3, trimethylcyclohexane2-methylethoxy-6-hydroxybutane3-oxopentanedioic acid dimethyl ester2-ethyl-4-hdroxypentanoic acidWhat is the IUPAC nomenclature of organic compounds?The IUPAC nomenclature of organic compounds is a system of naming organic chemical compounds according to a set of rules established by the International Union of Pure and Applied Chemistry (IUPAC).
The basic rules of the IUPAC nomenclature system involve identifying the longest continuous chain of carbon atoms in the molecule (the parent chain), assigning a root name to this chain based on the number of carbon atoms, and adding prefixes or suffixes to indicate functional groups and other substituents.
Stereochemistry (the arrangement of atoms in three-dimensional space) is also taken into account when naming compounds.
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A proton is trapped in a circular motion in a 0.725-T magnetic field,as shown. The radius of the circle is 5.10 cm. Dojon (a) Calculate the speed of the proton: In what direction is it moving in the circle clockwise or counterclockwise? (b) At the instant the proton is at the illustrated position an electric field is turned on that makes the proton continue straight line path, with the same spced and along the direction had at that instant: Calculate how strong and in what direction, is the electric field needed to do this: Clearly explain vour reasoning:
The speed of proton is [tex]2.99 x 10^5 m/s[/tex]. The direction of the electric field should be perpendicular to both the magnetic field and the velocity vector of the proton.
(a) To calculate the speed of the proton, we can use the formula:
v = (q x r x B) / m
where v is the speed, q is the charge of the proton[tex](1.6 x 10^-19 C)[/tex], r is the radius (0.051 m), B is the magnetic field (0.725 T), and m is the mass of the proton [tex](1.67 x 10^-27 kg)[/tex].
[tex]v = (1.6 x 10^-19 C * 0.051 m * 0.725 T) / (1.67 x 10^-27 kg)[/tex]
[tex]v ≈ 2.99 x 10^5 m/s[/tex]
The direction of the proton's movement depends on the orientation of the magnetic field. If the magnetic field is pointing into the page, the proton will move counterclockwise; if the magnetic field is pointing out of the page, the proton will move clockwise.
(b) To make the proton continue in a straight line path, we need an electric field that will balance the magnetic force. The force due to the electric field can be found using:
F = q x E
The force due to the magnetic field can be found using:
F = q x v x B
Since these forces must be equal, we can set them equal to each other:
q x E = q x v x B
E = v x B
[tex]E = 2.99 x 10^5 m/s × 0.725 T[/tex]
[tex]E ≈ 2.17 x 10^5 N/C[/tex]
The direction of the electric field should be perpendicular to both the magnetic field and the velocity vector of the proton. If the magnetic field is pointing into the page, the electric field should point downward; if the magnetic field is pointing out of the page, the electric field should point upward.
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what is the percent yield of the given reaction if 40. g magnesium reacts with excess nitric acid to produce 1.7 g hydrogen gas? mg 2hno3⟶mg(no3)2 h2
The percent yield of the given reaction is 71.11%.
Given, Magnesium (Mg) reacts with excess nitric acid (HNO3) to produce Magnesium nitrate (Mg(NO3)2) and hydrogen gas (H2).
[tex]Mg + 2HNO3 → Mg(NO3)2 + H2[/tex]
Molar mass of Mg = 24.31 g/mol
Molar mass of HNO3 = 63.01 g/mol
Molar mass of Mg(NO3)2 = 148.31 g/mol
Molar mass of H2 = 2 g/mol
The balanced chemical equation shows that 1 mol of Mg produces 1 mol of H2 gas.
So, the amount of hydrogen gas produced = 1.7 g
Moles of Mg reacted = mass/Mr = 40/24.31 = 1.65 moles
From the stoichiometric coefficients of the balanced chemical equation, 1 mole of Mg yields 1 mole of H2.
So, moles of H2 expected = 1.65 moles
Mass of H2 expected = 1.65 moles x 2 g/mol = 3.3 g
The percent yield of a reaction is the actual yield of the product obtained divided by the theoretical yield multiplied by 100.
So, Percent yield = (actual yield / theoretical yield) x 100Actual yield = 1.7 g
Theoretical yield = 3.3 g
Therefore, the percent yield of the given reaction is 71.11%.
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a chemistry student weighs out of acrylic acid into a volumetric flask and dilutes to the mark with distilled water. he plans to titrate the acid with solution. calculate the volume of solution the student will
A chemistry student weighs out of acrylic acid into a volumetric flask, The weight of the acrylic acid the student weighed out, The concentration of the acrylic acid solution after dilution, The concentration of the titrant solution
To calculate the volume of the titrant solution needed for the titration, we need some additional information, such as:
1. The weight of the acrylic acid the student weighed out
2. The concentration of the acrylic acid solution after dilution
3. The concentration of the titrant solution
Once you have this information, follow these steps:
Step 1: Calculate the moles of acrylic acid in the solution.
- Moles = (weight of acrylic acid) / (molar mass of acrylic acid)
Step 2: Calculate the concentration of the diluted acrylic acid solution.
- Concentration = (moles of acrylic acid) / (total volume of the solution)
Step 3: Use the stoichiometry of the reaction between the acrylic acid and the titrant to determine the moles of titrant needed to neutralize the acid.
Step 4: Calculate the volume of the titrant solution needed for titration.
- Volume of titrant = (moles of titrant) / (concentration of titrant solution)
Remember to convert the volume of titrant to the appropriate units, such as milliliters or liters, depending on the question's requirements.
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a solution contains some or all of the following ions: sn4 , ag , and pb2 . the solution is treated as described below. test 1) addition of 6 m hcl causes a precipitate to form. test 2) addition of h2s and 0.2 m hcl to the liquid remaining from test 1 produces no reaction. what conclusions can be drawn from the results of these two tests?
Test 1 and 2 take us to the conclusion that PbCl2 and AgCl precipitate in the first test. SnCl4 and SnS2, both of which are extremely soluble, are present in greater amounts in the second.
This study takes into account the acidity. Except for Pb2+, Ag+, and Hg2+ for chlorides and Sr+2, Ba+2, Pb+2, and Hg+2 for sulfides, the chlorides and sulfides groups are largely soluble.
In the first instance, the HCl content is very high. It implies that HCl reacts with all ions. Because SnCl4 and SnS2 are both very soluble in the solution, there is no reaction in the second case. With Le Chatelier, if we add more reactive, the equilibrium leans to reactive, thus there is more SnCl4.
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should a buffers ph increase, decrease, or be unchanged by the addition of water? explain your answer
The pH of the buffer solution is relatively stable and does not change significantly upon the addition of small amounts of acid or base.
The pH of a buffer solution is determined by the equilibrium between a weak acid and its conjugate base or a weak base and its conjugate acid. When water is added to a buffer solution, the concentration of the buffer components does not change, and the ratio of the weak acid and its conjugate base or weak base and its conjugate acid remains constant. Therefore, the pH of the buffer solution remains unchanged.
However, the addition of large amounts of water can dilute the buffer solution and cause a slight increase in pH due to the decrease in concentration of the buffer components. This effect is more pronounced in weaker buffer solutions. Therefore, in general, the pH of a buffer solution will remain relatively stable upon the addition of small amounts of water, but may increase slightly with the addition of large amounts of water.
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Please answer briefly
Answer:
Explanation:
a
You have a 0.05 M solution of sulfuric acid. What is the concentration in grams per liter (or dm3)?
The sulfuric acid solution has a concentration of 4.904 grams per liter (or dm3).
What is sulphuric acid?With the chemical formula H₂SO₄, sulfuric acid is a potent, colorless, odorless, and extremely corrosive mineral acid. It is also referred to as "vitriol oil." An extremely significant industrial chemical, sulfuric acid is used to make a variety of goods, including fertilizers, detergents, pigments, dyes, medicines, and explosives.
The formula below can be used to get the molar mass of sulfuric acid (H₂SO₄):
H₂SO₄'s molar mass is calculated as follows: 2 × (1.008 g/mol) + 32.06 g/mol + 4(16.00 g/mol) = 98.08 g/mol.
Hence, 98.08 g equals one mole of sulfuric acid.
We must multiply the molarity by the sulfuric acid's molar mass in order to translate the molarity (0.05 M) to grams per liter:
4.904 g/L = 0.05 mol/L x 98.08 g/mol
As a result, the sulfuric acid solution has a concentration of 4.904 grams per liter (or dm³).
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which statement about a chemical equilibrium is correct? group of answer choices the reverse reaction is faster than the forward reaction the forward reaction is faster than the reverse reaction forward and reverse reactions happen at equal rates no reactions take place at equilibrium
Option C). The correct statement about a chemical equilibrium is that "forward and reverse reactions happen at equal rates."
What is a chemical equilibrium, A chemical equilibrium refers to a dynamic process that happens when the rate of the forward reaction is equal to the rate of the reverse reaction. In this case, the concentration of reactants and products will remain constant, and the system is said to be in chemical equilibrium.
The chemical equilibrium is represented by the following equation. aA + bB ↔ cC + dD
Which statement about a chemical equilibrium is correct, The statement about a chemical equilibrium that is correct is that forward and reverse reactions happen at equal rates.
This means that the concentration of products and reactants will remain constant. If the concentration of reactants and products changes, the reaction system will respond to reach the state of equilibrium.
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how is the majority of electricity generated in the area where you live? does the process involve the combustion of coal? check with your teacher if you are not sure.
The process involves burning coal is used to make nearly half of the electricity in the United States.
By burning coal in a boiler to make steam, coal-fired power plants produce electricity. Under tremendous pressure, the produced steam enters a turbine, which spins a generator to generate electricity. The steam is then cooled, dense back into the water, and got back to the kettle to begin the interaction once again.
At the moment, coal provides the majority of the world's electricity. The primary source remains for many nations.
Fossil fuel power plants generate heat by burning oil or coal, which is then used to create steam that powers turbines that generate electricity.
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calcium carbonate is a common ingredient in antacids that reduces the discomfort associated with acidic stomach or heartburn. stomach acid is hydrocholoric acid, hcl. what volume in milliliters (ml) of an hcl solution with a ph of 1.51 can be neutralized by 14.0 mg of caco3? volume: ml if the stomach contains 13.0 ml of ph 1.51 solution, will all of the acid be neutralized? yes no what percentage of the acid is neutralized? if all of the acid is neutralized enter 100%. percentage neutralized:
The volume (ml) of HCl solution at pH 1.52 that can be neutralized with a given amount of CaCO₃ is 17.87 mL
We want to determine the volume of HCl that can be neutralized with a given amount of CaCO₃.
First we will write the chemical equation for the reaction i.e.
2HCl + CaCO₃ → CaCl2 + CO2 + H2O
This means that now 1 mole of CaCO₃, 2 moles of HCl are needed to neutralize.
Mass = 27.0 mg = 0.027 g Using the formula,
mol = mass / molar mass
∴ CaCO₃ mol present =
CaCO₃ mol present = 0.00026977 mol
Since 2 mol HCl is required, 2 mol HCl 70 mol CaCO₃ must be neutralized 20. of CaCO₃ 444 0.00053954 mol HCl
∴ CaCO₃ needs to be neutralized 0.00053954 mol HCl Now for the volume of HCl solution at pH 1.
52 required.
We will first determine the HCl concentration = 10^(-1.52)
[H⁺] = 0.
0302 M
∴ HCl concentration 0.0302 M
Now, for the volume using the formula,
Volume = mol/concentration
Required HCl Volume = 0.01787 L
Hence, the volume in milliliters (mL) of an HCl solution with a pH of 1.52 that can be neutralized by the given CaCO₃ is 17.87 mL.
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write the equation showing the fusion of Li 7 atom with a H 3 atom to form a Be 8 atom and some number of neutrons
The equation showing the fusion of Li-7 atom with a H-3 atom to form a Be-8 atom and some number of neutrons is:
Li-7 + H-3 → Be-8 + n
What is the role of neutrons in the fusion reaction of Li-7 and H-3?The neutrons produced in the fusion reaction carry away excess energy and help to stabilize the beryllium-8 nucleus that is formed. They may also go on to participate in further fusion reactions.
What are some of the challenges associated with achieving nuclear fusion on Earth?Some of the challenges associated with achieving nuclear fusion on Earth include the need to create and maintain the high temperatures and pressures required for fusion reactions to occur, the difficulty of confining and controlling the hot plasma that is produced, and the potential hazards associated with the release of large amounts of energy in a relatively short amount of time.
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what is the wavelength (in nm) of the line in the spectrum of the hydrogen atom that arises from the transition of the electron from the orbital with n
Answer:
The wavelength of the line in the spectrum of the hydrogen atom is 102.57 nm.
The line in the spectrum of the hydrogen atom that results from the electron moving from the orbital with n = 5 to the orbital with n = 2 has a wavelength of 434 nanometers (nm).
The hydrogen atom is the most fundamental form of hydrogen. There is one proton, one electron, and no neutrons in the hydrogen atom. It's the lightest element on the periodic table, and it's also the most abundant. The symbol for hydrogen is H. It is the element that is present everywhere in the cosmos.
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calculate the ph of the resulting solution when 40.0 ml of the 0.25m sodium hydroxide is added to 50.0 ml of 0.040 m nitric acid
The pH of the resulting solution = 1.05
an assessment of the acidity or basicity of an item or solution. Calculations are made for pH on a range of 0 to 14. On this scale, a pH of 7 indicates neutral, which means that it is neither acidic nor basic. The pH scale ranges from greater than 7 for more basic chemicals to less than 7 for more acidic ones. You need to know the hydronium ion concentration in moles per liter to determine the pH of an aqueous solution (molarity).
Given,
Volume of NaOH V1 = 40ml
M1 = 0.04m
Volume of nitric acid V2 = 50
M2 = 0.04M
[tex]concentration ofH^{+} = [H ^{+} ]= \frac{M1V1-M2V2}{V1+V2}[/tex]
[tex]\frac{(40)(0.25)-(50)(0.04) }{40+50}[/tex]
= 10-2/90
= 8/90
pH → -log[H+}
= [tex]Log_{10}[ \frac{8}{90}][/tex]
pH = -(-1.051)
pH = 1.05
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someone help pls simplee
The compounds are;
A - methane
B - nitrogen
C - water
What is a molecular model?A molecular model is a physical or virtual representation of a molecule, which shows the arrangement of its atoms and the nature of the chemical bonds between them.
Molecular models are used to visualize the three-dimensional structure of molecules and to understand their chemical and physical properties.
Molecular models are used in many fields of science, including chemistry, biochemistry, and materials science. They are used to study the properties and behavior of molecules in different environments and to design new molecules with specific properties for use in various applications.
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seawater is not simply concentrated river water. which of the following is not true select one: a. hydrothermal activity removes some ions (e.g. mg2 ) and adds some other (e.g. ca2 ) b. volcanic gases add components such as chloride (cl-) and sulfate (so42-) c. biological activity such as formation of shells removes some ions (e.g. ca2 ) d. evaporation preferentially releases ions such as na and k into the atmosphere
The statement that is not true is: d. Evaporation preferentially releases ions such as Na and K into the atmosphere. Seawater is not simply concentrated river water because it undergoes various processes that modify its composition.
Explanation: When evaporation occurs, water molecules leave the surface and enter the atmosphere, but ions like Na and K generally do not evaporate with water. Instead, these ions remain in the seawater, making it saltier.
The other three statements are true and contribute to the differences between seawater and river water:
a. Hydrothermal activity removes some ions (e.g., [tex]Mg_2^+[/tex]) and adds others (e.g., [tex]Ca_2^+[/tex]): Hydrothermal vents at the seafloor release hot fluids, which can dissolve minerals from the Earth's crust. These fluids can remove ions like [tex]Mg_2^+[/tex] from the seawater and introduce new ions, such as [tex]Ca_2^+[/tex], altering the composition of seawater.
b. Volcanic gases add components such as chloride ([tex]Cl^-[/tex]) and sulfate ([tex]SO_{4}^{2-}[/tex]): When volcanoes erupt, they release gases that can dissolve in seawater. These gases contain components like chloride and sulfate, which contribute to the salinity of seawater.
c. Biological activity such as the formation of shells removes some ions (e.g., [tex]Ca_2^+[/tex]): Marine organisms like mollusks and corals extract ions like [tex]Ca_2^+[/tex] from seawater to build their shells and skeletons. This process helps to remove these ions from the seawater, altering its composition.
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finding the ph of a weak base solution is very similar to that for a weak acid. what is the only step that is necessary in the calculation of ph of a weak base and not a weak acid?
The only additional step required in the calculation of pH for a weak base solution is the calculation of the concentration of hydroxide ions using the Kb value.
The equilibrium expression for the dissociation of a weak base, B, can be written as:
B + H₂O ⇌ BH+ + OH-
The equilibrium constant for this reaction is called the base dissociation constant, Kb. Like the acid dissociation constant, Ka, the Kb can be used to calculate the concentration of hydroxide ions in the solution.
The relationship between the Kb and the Ka of the conjugate acid of the weak base can be expressed as:
Kw = Ka × Kb
where Kw is the ion product constant for water, which is equal to 1.0 x 10⁻¹⁴ at 25°C.
By using the Kb value and the initial concentration of the weak base, the concentration of OH- can be calculated. Then, the pH of the solution can be determined using the same equation as for a weak acid:
[tex]pH= pKa + log(\frac{[A-]}{[HA]} )[/tex]
where A- is the conjugate base of the weak acid, and HA is the weak acid itself.
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