Answer:
a.
silver iodide BC
manganese(II) hydroxide A
b.
silver iodide Ksp = S²
manganese(II) hydroxide Ksp = 4S³
Explanation:
Ksp (Solubility products) are the equilibrium constants for poorly soluble compounds. As every equilibrium constant, it is formed by the product of the products raised to their stoichiometric coefficients divided by the product of reactants raised to their stoichiometric coefficients. We only include in the constant gases and aqueous species. So, to solve this task, we need to write each reaction and its Ksp.
1. Silver Iodide
AgI(s) ⇄ Ag⁺(aq) + I⁻(aq)
When AgI is put in water, the concentration of Ag⁺ and I⁻ that actually dissolve is known as solubility (S). So the concentration of both Ag⁺ and I⁻ would be S.
AgI(s) ⇄ Ag⁺(aq) + I⁻(aq)
S S
We can replace this in the Ksp expression:
Ksp = [Ag⁺].[I⁻] = S.S = S²
We can follow the same steps to find out the relationship between Ksp and S for each compound.
2. Mn(OH)₂(s) ⇄ Mn²⁺(aq) + 2OH⁻(aq)
S 2S
In this case, the concentration of OH⁻ is 2S because 2 moles are produced along with 1 mole of Mn²⁺.
Ksp = [Mn²⁺].[OH⁻]² = S.(2S)² = 4S³
A. Fe(OH)₂(s) ⇄ Fe²⁺(aq) + 2OH⁻(aq)
S 2S
Ksp = [Fe²⁺].[OH⁻]² = S.(2S)² = 4S³
B. CaSO₃(s) ⇄ Ca²⁺(aq) + SO₃²⁻(aq)
S S
Ksp = [Ca²⁺].[SO₃²⁻] = S.S = S²
C. NiCO₃(s) ⇄ Ni²⁺(aq) + CO₃²⁻(aq)
S S
Ksp = [Ni²⁺].[CO₃²⁻] = S.S = S²
D. Ba₃(PO₄)₂(s) ⇄ 3 Ba²⁺(aq) + 2 PO₄³⁻(aq)
3S 2S
Ksp = [Ba²⁺]³.[PO₄³⁻]²= (3S)³.(2S)²= 108S⁵
a. The salts that can be compared using the same Ksp expressions are:
silver iodide BC
manganese(II) hydroxide A
b.
silver iodide Ksp = S²
manganese(II) hydroxide Ksp = 4S³
None of the listed salts can be compared to silver iodide using Ksp values. Manganese(II) hydroxide can be compared to Fe(OH)2. The Ksp expressions in terms of solubility, s, are s^2 for silver iodide and 4s^3 for manganese(II) hydroxide.
Explanation:We can directly compare salts by considering their solubility product constants, or Ksp values
. 1. Silver iodide: No salts on the right share the same ions with silver iodide, so none can be directly compared.
2. Manganese(II) hydroxide: It contains Mn2+ and OH- ions. Thus, it can be compared to the Fe(OH)2 salt which contains Fe2+ and OH- ions, making the matching answer A.
For the solubility expressions for each salt, when Multiplied we put the number first and then combine all exponents:
For silver iodide (AgI), the equilibrium is AgI ↔ Ag+ + I-, so the Ksp expression is Ksp = s x s = s^2.
For manganese(II) hydroxide (Mn(OH)2), the equilibrium is Mn(OH)2 ↔ Mn2+ + 2OH-, so the Ksp expression is Ksp = 4s^3.
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prob.: Consider the combustion of butane (C4H10):
2C4H10(g) + 13O2(g) ==> 8CO2(g) + 10 H2O(L)
IN A PARTICULAR REACTION, 5.0 MOLES OF C4H10 ARE REACTED
WITHAN EXCESS OF O2. CALCULATE THE NUMBER OF MOLES OF CO2
FORMED.
When 5.0 moles of C₄H₁₀ react with an excess of O2, 20.0 moles of CO₂ are formed.
According to the balanced chemical equation:
2C₄H₁₀(g) + 13O₂(g) ==> 8CO₂(g) + 10H₂O(L)
The stoichiometric coefficient of CO₂ is 8. This means that for every 2 moles of C₄H₁₀ reacted, 8 moles of CO₂ are formed. Therefore, when 5.0 moles of C₄H₁₀ react, the number of moles of CO₂ formed can be calculated using the stoichiometric ratio:
Number of moles of CO₂ = (5.0 moles C₄H₁₀) × (8 moles CO₂ / 2 moles C₄H₁₀ )
= 20.0 moles CO₂
So, when 5.0 moles of C₄H₁₀ react with an excess of O₂, 20.0 moles of CO₂ are formed.
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In the combustion of butane, 2 moles of C4H10 react to produce 8 moles of CO2, making a 1:4 ratio. Therefore, when 5.0 moles of butane reacts it produces 20 moles of CO2 due to this stoichiometric ratio.
Explanation:In the balanced chemical equation for the combustion of butane, we see that '2 moles of C4H10' react to produce '8 moles of CO2'. This is a ratio of 1:4. So, for each mole of butane that reacts, 4 moles of carbon dioxide are produced.
If in a particular reaction, we have '5.0 moles of C4H10', then according to the stoichiometric ratio (1:4) we can calculate the number of moles of CO2 formed. By multiplying the moles of C4H10 by 4, i.e., 5.0 x 4, we get '20 moles of CO2'. Therefore, when 5.0 moles of butane reacts with excess oxygen, 20 moles of CO2 are produced.
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Why does ammonium nitrate (NH4NO3) dissolve readily in water even though the dissolution process is endothermic by 26.4 kJ/mol? Why does ammonium nitrate (NH4NO3) dissolve readily in water even though the dissolution process is endothermic by 26.4 kJ/mol? The vapor pressure of the water decreases upon addition of the solute. The osmotic properties of the system lead to this behavior. The overall enthalpy of the system decreases upon addition of the solute. The overall entropy of the system increases upon dissolution of this strong electrolyte. The overall enthalpy of the system increases upon dissolution of this strong electrolyte.
Answer: Option (c) is the correct answer.
Explanation:
Entropy is defined as the degree of randomness that is present within the particles of a substance.
As [tex]NH_{4}NO_{3}[/tex] is ionic in nature. Hence, when it is added to water then it will readily dissociate into ammonium ions ([tex]NH^}{+}_{4}[/tex]) and nitrate ions ([tex]NO^{-}_{3}[/tex]).
Therefore, it means that ions of ammonium nitrate will be free to move from one place to another. Hence, there will occur an increase in entropy.
Thus, we can conclude that ammonium nitrate ([tex]NH_{4}NO_{3}[/tex]) dissolve readily in water even though the dissolution process is endothermic by 26.4 kJ/mol because the overall entropy of the system increases upon dissolution of this strong electrolyte.
The vapor pressure of water is 28.3 mm Hg at 28 °C. What mass of water vapor, in mg, would be present in a vapor volume of 600. mL at 28°C? Selected Answer: B. 16.3 Correct Answer B. 16.3
Explanation:
The given data is as follows.
P = 28.3 mm = [tex]\frac{28.3}{760}[/tex], V = 600 mL = [tex]600 ml \frac{0.001 L}{1 ml}[/tex] = 0.6 L
R = 0.082 L atm/mol K, T = (28 + 273) K = 301 K
Therefore, according to ideal gas law PV = nRT. Hence, putting the values into this equation calculate the number of moles as follows.
PV = nRT
[tex]\frac{28.3}{760} \times 0.6 L[/tex] = [tex]n \times 0.082 L atm/mol K \times 301 K[/tex]
n = [tex]9.03 \times 10^{-4}[/tex] mol
As it is known that number of moles equal to mass divided by molar mass. Hence, mass of water vapor present will be calculated as follows. (molar mass of water is 18 g/mol)
No. of moles = [tex]\frac{mass}{\text{molar mass}}[/tex]
[tex]9.03 \times 10^{-4}[/tex] mol = [tex]\frac{mass}{18 g/mol}[/tex]
mass = [tex]162.5 \times 10^{-4}g[/tex]
= [tex]163 \times 10^{-4}g[/tex] (approx)
Since, 1 g = 1000 mg. Therefore, [tex]163 \times 10^{-4}g[/tex] will be equal to [tex]163 \times 10^{-4}g \times \frac{10^{3}mg}{1 g}[/tex]
= 16.3 mg
Thus, we can conclude that mass of water vapor present is 16.3 mg.
To find the mass of water vapor in a given vapor volume at a certain temperature, you can use the ideal gas law. Convert the temperature from Celsius to Kelvin, calculate the number of moles using the ideal gas law equation, and then convert moles to grams using the molar mass of water. Finally, convert grams to milligrams. The mass of water vapor in a vapor volume of 600 mL at 28 °C is 5097 mg.
Explanation:To find the mass of water vapor, we can use the ideal gas law equation: PV = nRT, where P represents pressure, V represents volume, n represents the number of moles, R represents the ideal gas constant, and T represents temperature in Kelvin. First, we need to convert the temperature from Celsius to Kelvin by adding 273.15. Then, we can rearrange the equation to solve for n, the number of moles. Once we have the moles, we can use the molar mass of water to convert it to mass in grams. Finally, we can convert grams to milligrams by multiplying by 1000.
Given:
Vapor pressure of water = 28.3 mm Hg
Temperature = 28 °C
Vapor volume = 600 mL
Converting the temperature to Kelvin:
T = 28 °C + 273.15 = 301.15 K
Using the ideal gas law equation to find the number of moles (n):
n = PV / RT
Substituting the values:
n = (28.3 mm Hg * 600 mL) / (62.36 L mm/mol K * 301.15 K)
n = 0.2829 mol
Using the molar mass of water (18.015 g/mol) to find the mass:
mass = n * molar mass
mass = 0.2829 mol * 18.015 g/mol
mass = 5.097 g
Converting grams to milligrams:
mass = 5.097 g * 1000 mg/g
mass = 5097 mg
Therefore, the mass of water vapor in a vapor volume of 600 mL at 28 °C is 5097 mg.
it is not from thermodynamic energy?
a) utilization
b) kinetic
c) potential
d) stored energy
Answer:
(a) Utilization
Explanation:
Thermodynamic energy are:
(1) Kinetic energy:Kinetic energy is that type of energy of a body which occurs due to the motion of body. Kinetic energy is always positive. In a bound system, the system remains bound as long as the kinetic energy is less than the potential energy due to the interaction of the body.
[tex]K.E = \frac{1}{2}mv^{2}[/tex]
(2) Potential energy:Potential energy is defined as the energy in which the energy is possessed by a body or a system for doing some work, by virtue of its position above the ground level.
Therefore,
Potential energy = PE = mgh
This potential energy is a result of gravity pulling downwards. The gravitational constant, g, is the acceleration of an object due to gravity. This acceleration is about 9.8 m s⁻².
(3) Stored energy:Stored energy is a Potential energy.
Hence, the only energy which is not a thermodynamic energy is option (a) Utilization energy.
Be sure to answer all parts. Barium carbonate decomposes upon heating to barium oxide and carbon dioxide. Enter and balance the equation (including the physical states) Calculate the number of g of carbon dioxide produced by heating 71.0 g of barium carbonate. g CO2
Final answer:
The balanced equation for the decomposition of barium carbonate is BaCO3(s) → BaO(s) + CO2(g). Heating 71.0 g of barium carbonate will produce 16.06 g of carbon dioxide.
Explanation:
The balanced equation for the decomposition of barium carbonate (BaCO3) is:
BaCO3(s) → BaO(s) + CO2(g)
From the equation, it can be observed that one mole of barium carbonate produces one mole of carbon dioxide.
To calculate the number of grams of carbon dioxide produced by heating 71.0 g of barium carbonate, we need to use the molar mass of barium carbonate (197.34 g/mol). Since one mole of barium carbonate produces one mole of carbon dioxide, we can use the molar mass of carbon dioxide (44.01 g/mol) to calculate the mass of carbon dioxide produced.
71.0 g BaCO3 x (1 mol CO2/197.34 g BaCO3) x (44.01 g CO2/1 mol CO2) = 16.06 g CO2
Therefore, heating 71.0 g of barium carbonate will produce 16.06 g of carbon dioxide.
Two hundred kg of liquid contains 30% butane, 40% pentane, and the rest hexane (mass %) Determine: The mole fraction composition of the liquid The mass fraction composition on hexane free basis 1. 2.
Answer:
The mole fraction composition of the liquid is :
Mole fraction of butane, pentane and hexane are 0.3638,0.3908 and 0.2454 respectively.
Explanation:
Mass of the liquid mixture = 200 g
Percentage of butane = 30%
Mass of butane = [tex]\frac{30}{100}\times 200 g=60 g[/tex]
Moles of butane = [tex]n_1=\frac{60 g}{58 g/mol}=1.0345 mol[/tex]
Percentage of pentane= 40%
Mass of pentane= [tex]\frac{40}{100}\times 200 g=80 g[/tex]
Moles of pentane= [tex]n_2=\frac{80 g}{58 g/mol}=1.1111 mol[/tex]
Percentage of hexane = 100% - 30% - 40% = 30%
Mass of hexane = [tex]\frac{30}{100}\times 200 g=60 g[/tex]
Moles of hexane = [tex]n_2=\frac{60 g}{86 g/mol}=0.6977 mol[/tex]
Mole fraction of butane, pentane and hexane : [tex]\chi_1, \chi_2 \& \chi_3[/tex]
[tex]\chi_1=\frac{n_1}{n_1+n_2+n_3}=\frac{1.0345 mol}{1.0345 mol+1.1111 mol+0.6977 mol}=0.3638[/tex]
[tex]\chi_2=\frac{n_2}{n_1+n_2+n_3}=\frac{1.1111 mol}{1.0345 mol+1.1111 mol+0.6977 mol}=0.3908[/tex]
[tex]\chi_3=\frac{n_1}{n_1+n_2+n_3}=\frac{0.6977 mol}{1.0345 mol+1.1111 mol+0.6977 mol}=0.2454[/tex]
The distance from Earth to the Moon is approximately 240.000 mi Review Constants Periodic Table Part D Earth s ound the Sun at an average speed of 29.783 km/s Convert this speed to miles per hour Express your answer using live significant figures VOAEG V v * un x-100
Answer:
66622.653 mi/hr
Explanation:
The average speed at which the Earth rotates around the Sun = 29.783 km/s
Also, The conversion of km to miles is shown below:
1 km = 0.621371 miles
The conversion of s to hr is shown below:
1 s = 1 / 3600 hr
So,
[tex]29.783\ km/s=\frac {29.783\times 0.621371\ miles}{\frac {1}{3600}\ hr}[/tex]
Thus,
The average speed at which the Earth rotates around the Sun in miles per hour = 66622.653 mi/hr
Charles' law relates the way two gas properties change when another property remains the same. What are the two changing properties in Charles' law?
Pressure and temperature
Pressure and volume
Pressure, temperature, and volume
Temperature and volume
ik its not B
Answer:
option D= temperature and volume
Explanation:
Definition:
Charle's law stated that ,
" At constant pressure, the volume of given amount of gas is directly proportional to its absolute temperature"
V∝ T
V= kT
OR
V/T = k (k is proportionality constant)
if the temperature is changed from T1 to T2 then the volume of gas is also changed from V1 to V2. Then expression will be:
V1/T1= k and V2/T2=k
V1/T1=V2/T2
suppose a cylinder is filled with a gas having volume V1 at temperature T1. When the gas is heated its temperature raises from T1 to T2 and its volume also increased with increase of temperature from V1 TO V2.
In Charles' law, the two changing properties are temperature and volume, with pressure maintained constant. The law indicates a direct proportionality between temperature and volume for a given amount of gas.
Explanation:The two changing properties in Charles' law are temperature and volume. Charles' law states that for a given amount of gas at constant pressure, the volume of the gas is directly proportional to its absolute temperature. This means if the temperature of the gas increases, its volume increases as well, provided the pressure and the amount of gas remain constant. In other words, doubling the absolute temperature at constant pressure will double the volume. It is important to note that in gas laws, temperatures must always be expressed in kelvins.
in carbon tetrachloride proceeds as follows: 2N2O5→4NO2+O2. The rate law is first order in N2O5. At 64 ∘C the rate constant is 4.82 ×10−3s−1. Part A Part complete Write the rate law for the reaction. Write the rate law for the reaction. rate=2.41×10−3s−1[N2O5] rate=4.82×10−3s−1[N2O5] rate=9.64×10−3s−1[N2O5] rate=4.82×10−3s−1[N2O5]2 Previous Answers Correct Part B What is the rate of reaction when [N2O5]= 2.80×10−2 M ?
Answer:
Part A
[tex]rate= 4.82*10^{-3}s^{-1} * [N2O5][/tex]
Part B
[tex]rate= 1.35*10^{-4}Ms^{-1}[/tex]
Explanation:
Part A
The rate law is the equation that relates the rate of the reaction, the kinetic constant and the concentration of the reactant or reactants.
For the given chemical reaction we can write a general expression for the rate law as follows:
[tex]rate= k * [N2O5]^{x}[/tex]
where k is the rate constant and x is the order of the reaction with respect of N2O5 concentration. Particularly, a first order reaction kinetics indicate that the rate of the reaction is directly proportional to the concentration of only one reactant. Then x must be 1.
Replacing the value of the rate constant given in the text we can arrive to the following expression for the rate law:
[tex]rate= 4.82*10^{-3}s^{-1} * [N2O5][/tex]
Part B
Replacing the value of the concentration of N2O5 given, we can get the rate of reaction:
[tex]rate= 4.82*10^{-3}s^{-1} *2.80*10^{-2}M[/tex]
[tex]rate= 1.35*10^{-4}Ms^{-1}[/tex]
A culture of E.coli bacteria doubles every 40 minutes. If there are 50 bacteria initially, how many will there be after 12 hours? Round your answer to the nearest whole number
Answer:
There will be 13107200 number of bacteria after 12 hours
Explanation:
1 hour = 60 minutes
So, 12 hours = ([tex]12\times 60[/tex]) minutes = 720 minutes
Initially there are 50 bacteria.
As number of bacteria doubles in every 40 minutes therefore rate of increase in number of bacteria will be similar to a first order reaction.
Hence, number of bacteria after 720 minutes = [tex]50\times (2)^{\frac{720}{40}}[/tex] = 13107200
Calculate the area of a square with side length 1 = 2.2 cm. Use standard decimal notation for answer input.
Answer: The area of square is [tex]4.84cm^2[/tex]
Explanation:
To calculate the area of square, we use the formula:
[tex]A=l^2[/tex]
where,
A = area of square = ?
l = edge length of square = 2.2 cm
Putting values in above equation, we get:
[tex]\text{Area of square}=(2.2)^2=4.84cm^2[/tex]
Hence, the area of square is [tex]4.84cm^2[/tex]
how does erucamide make substances scratch resistant?
Answer:
Explained
Explanation:
Erucamide is plastic additive used as anti slip agent and used as scratch resistant. It is used as scratch resistance because
- It reduces coefficient of friction between the polymer layer.
- Slip additives in Erucamide form coalesce along the surface.
-These additives move from the bulk to the part surface to form closed pack layers.
What is the fluid pressure (in units of ܲܽPascals) a distance 3.2 meters below the surface of Lake Superior?
Answer:
fluid pressure = 132590 pascal
Explanation:
Fluid pressure can be calculated by using following relation:
[tex]P_o - P_g = g\time p\times (Z_b - Z_a )[/tex]
Where
Pb = fluid pressure at a distance of 3.2 m below from surface
Pa = fluid pressure at surface = atmospheric pressure = 101325 Pascal
g = gravitational constant = 9.8 m/sec2
[tex]\rho = density of fluid = 997 kg/m³[/tex]
Z = location depth from surface of lake
Therefore , [tex]Z_a = 0 meter[/tex]
[tex]Z_b = 3.2 meter[/tex]
[tex]P_b - P_a =g\times\rhop\times (Z_a - Z_b)[/tex]
[tex]= 9.8 \times 997\times (3.2-0)[/tex]
[tex]= 31265 kg/m-sec^2 [/tex]
1 Pascal = 1 Kg/(m.Sec)
[tex]P_b = P_a +31265[/tex]
= 101325 + 132590 Pascal
= 132590 pascal
Non-electrolyte = A, 10.6 grams, dissolved in solvent B, 740 grams, the boiling point of the solution is higher than the boiling point of the solvent
Pure dissolved in 0.284 ° C. Determine the Kb value of solvent B. Set the molecular weight of A = 106.
Answer:
2.1 °C/m
Explanation:
Hello, for this exercise, consider the formula:
[tex]T_{solution}-T{solvent}=K_bm_solute[/tex]
Considering that the difference in the temperature is 0.284°C, and the given molality by:
[tex]m_{solute}=\frac{10.6g\frac{1mol}{106g}}{740g*\frac{1kg}{1000g} } \\m_{solute}=0.135m[/tex]
Now, solving for [tex]K_b[/tex], we get:
[tex]K_b=\frac{0.284C}{0.135m}\\K_b=2.1 C/m[/tex]
Best regards.
A patient is undergoing a blood test to determine her cholesterol levels. The sample tube holds 3.0 cc (cubic centimeters). What is this volume in liters?
Answer:
The sample tube holds 3.0 cc which is equal to 0.0030 Liters.
Explanation:
Volume of the blood sample in the sample tube = 3.0 cc
cc = cubic centimeter ; A unit to measure a volume
1 cubic centimeter is equal to 0.001 Liters of volume.
[tex]1 cm^3=0.001 L[/tex]
So in 3.0 cubic centimeter there will be:
[tex]3.0 cm^3=3.0\times 0.001 L=0.0030 L[/tex]
The sample tube holds 3.0 cc which is equal to 0.0030 Liters.
Calculate the volume of 42.0 kg of a substance whose density is 8.96 g/mL. Express your answer in milliliters using the correct number of significant figures. Do not enter your answer using scientific notation.
Answer:
4687.5 mL
Explanation:
Given that the density of the substance = 8.96 g/mL
Mass = 42.0 kg
The conversion of kg into g is shown below as:
1 kg = 1000 g
So, mass = 42.0 × 1000 g = 42000 g
Volume = ?
So, volume:
[tex]Volume=\frac {{Mass}}{Density}[/tex]
[tex]Volume=\frac {42000\ g}{8.96\ g/mL}[/tex]
The volume of the 42.0 kg of the substance = 4687.5 mL
What happens to the outlet temperatures of the hot and cold fluid when the both the hot fluid is at a maximum and the cold fluid is at a minimum flowrate?
a- Remains same as that of inlet temperature
b- Hot water temperature decreases and cold water temperature increase
c- Hot water remains almost same but cold water temperature increases drastically.
Answer:
c- Hot water remains almost same but cold water temperature increases drastically.
Explanation:
In a process of heat exchange where a hot and a cold fluid are present, the amount of heat that is transfered from one to another, the heat lost by the hot fluid, is gained by the cold fluid. That can be calculated by the equation : Q = m * Cp * dT.
Where:
m= mass flowrate
Cp=specific-heat-capacity
dT= difference between the inlet and outlet temperatures
We can state the equality of this equation for both fluids:
(mass-flowrate * specific-heat-capacity * (temperature-in – temperature-out) ) for hot medium = (mass-flowrate * specific-heat-capacity * (temperature-out – temperature-in) ) for cold medium
Now if we increase the value of the mass flow rate of the hot fluid to its maximum and decrease the mass flowrate of the cold fluid to its minimum. That will mean that the difference between the inlet and outlet temperatures for the cold fluid must increase so as to compensate the increase on the other side of the equation and guarantee the equality. And taking in account that the inlet temperature of the cold fluid is known and what can change is the outlet one, the correct answer is c that says that the outlet temperature of the cold fluid increases drasically.
1 kg of Oxygen gas is present in a 500 L tank. Find the specific and molar volumes of the gas.
Answer:
specific volume O2 = 0.5 Kg/m³
molar volume O2 = 8 E-3 m³/mol
Explanation:
specific volume (Sv):
∴ Sv = 1 / ρ
∴ ρ = mass / volume
∴ V = 500 L * ( m³/1000 L) = 0.5 m³
∴ ρ = 1 Kg / 0.5m³ = 2 Kg/m³
⇒ Sv = 1 / 2 Kg/m³ = 0.5 m³/Kg
molar volume ( Vm ):
∴ Vm = volume/mol
∴ Mw O2 = 1000g O2 * ( mol/16g O2) = 62.5 mol O2
⇒ Vm = 0.5 m³ / 62.5 mol
⇒ Vm = 8 E-3 m³/mol
Hydrocyanic acid has a Ka of 4.0
x10-10. What is the percent ofionization of
a 1.0 molar solution?
Answer:
0.002 %
Explanation:
Given that:
[tex]K_{a}=4.0\times 10^{-10}[/tex]
Concentration = 1.0 M
Consider the ICE take for the dissociation of Hydrocyanic acid as:
HCN ⇄ H⁺ + CN⁻
At t=0 1.0 - -
At t =equilibrium (1.0-x) x x
The expression for dissociation constant of Hydrocyanic acid is:
[tex]K_{a}=\frac {\left [ H^{+} \right ]\left [ {CN}^- \right ]}{[HCN]}[/tex]
[tex]4.0\times 10^{-10}=\frac {x^2}{1.0-x}[/tex]
x is very small, so (1.0 - x) ≅ 1.0
Solving for x, we get:
x = 2×10⁻⁵ M
Percentage ionization = [tex]\frac {2\times 10^{-5}}{1.0}\times 100=0.002 \%[/tex]
In a particular experiment at 300 ∘C, [NO2] drops from 0.0100 to 0.00800 M in 100 s. The rate of appearance of O2 for this period is ________ M/s. In a particular experiment at 300 , drops from 0.0100 to 0.00800 in 100 . The rate of appearance of for this period is ________ . 4.0×10−3 2.0×10−3 2.0×10−5 4.0×10−5 1.0×10−5
Answer:
[tex]-r_{O_2}=1\times{10}^{-5}\frac{M}{s}[/tex]
Explanation:
The decomposition of [tex]NO_2[/tex] follows the equation
[tex]2NO_2\rightarrow2NO+O_2[/tex]
By definition, the rate of a chemical reaction can be expressed by
[tex]-r_{NO_2}=\frac{d\left[NO_2\right]}{dt}=\frac{0.010-0.008\ M}{100\ s}=2\times{10}^{-5}\frac{M}{s}[/tex]
The rate of appearance of [tex]O_2[/tex] is related to the rate of disappearance of [tex]NO_2[/tex] by the stoichiometry. This means that, for each mole of [tex]O_2[/tex] that appears 2 moles of [tex]NO_2[/tex] are consumed. So
[tex]-r_{O_2}=-r_{NO_2}\times\frac{1\ mole\ \ O_2}{2\ mole\ \ {\rm NO}_2}=1\times{10}^{-5}\frac{M}{s}[/tex]
The rate of appearance of O2 for this period is -1.0x10^-5 M/s.
Explanation:The rate of appearance of O2 for a given period can be determined using the change in concentration of NO2 over that period. In this case, the concentration of NO2 drops from 0.0100 to 0.00800 M in 100 s. First, calculate the change in concentration of NO2:
Δ[NO2] = [NO2]final - [NO2]initial = 0.00800 M - 0.0100 M = -0.00200 M
Since the reaction is 2NO2 → 2NO + O2, the stoichiometric ratio between NO2 and O2 is 2:1. Therefore, the change in concentration of O2 is half of the change in concentration of NO2:
Δ[O2] = -0.00200 M ÷ 2 = -0.00100 M
Finally, divide the change in concentration of O2 by the time period to find the rate of appearance of O2:
Rate = Δ[O2] ÷ time = -0.00100 M ÷ 100 s = -1.0x10-5 M/s
QUESTION 1 Choose the statement that best reflects the three basic steps of any recrystallization Dissolve the impure solid in a minimal amount of boiling solvent: cool the solution to form crystals, vacuum filter the solution to collect the pure crystals. Dissolve the impure solid in an excess of solvent at room temperature; cool the solution to form crystals: vacuum filter to collect the pure crystals O Dissolve the impure solid in an excess of boiling solvent: cool the solution to form crystals vacuum filter to collect the pure crystals. Dissolve the impure solid in a minimal amount of solvent at room temperature; cool the solution to form crystals, vacuum filter to collect the pure crystals.
Answer:
Dissolve the impure solid in a minimal amount of boiling solvent, cool the solution to form crystals, vacuum filter the solution to collect the pure crystals.
Explanation:
Recrystallization is a process when a solid with impurities is purified. To do this a solvent of the compound we want must be used. We need to use only the quantity necessary to dissolve the compound of interest, otherwise, the solvent will dissolve the impurities or it will interfere in the crystallization.
For most of the solids, the solubility increases with the increase of the temperature, so to speed up the process, heat must be added at the system, or the solvent must be boiling. Then, the solution will be cooled to form the crystals of the compound purified, and then it must be filtered in a vacuum because the crystals can slow down the filtration.
A citrus dealer in Florida sells boxes of 100 oranges at a roadside stand. The boxes routinely are packed with one to three extra oranges to help ensure that customers are happy with their purchases. The average weight of an orange is 7.2 ounces, and the average weight of the boxes in which the oranges are packed is 3.2 pounds. Determine the total weight of five of these 100-orange boxes.
Answer:
[tex]\large \boxed{\text{250 lb}}[/tex]
Explanation:
1. Weight of oranges
An average box contains 102 oranges, so
Five boxes contain 510 oranges
[tex]\text{Weight of oranges} = \text{510 oranges} \times \dfrac{\text{7.2 oz}}{\text{1 orange}} = \text{3672 oz}\\\\\text{Weight} = \text{3672 oz} \times \dfrac{\text{1 lb}}{\text{16 oz}} = \text{230 lb}[/tex]
2. Weight of boxes
[tex]\text{Weight} = \text{5 boxes} \times \dfrac{\text{3.2 lb}}{\text{1 box}} = \text{16 lb}[/tex]
3. Total weight
[tex]\begin{array}{rcr}\text{Oranges} & = & \text{230 lb}\\\text{Boxes} & = & \text{16 lb}\\\text{TOTAL} & = & \textbf{250 lb}\\\end{array}\\\text{On average, the total weight is $\large \boxed{\textbf{250 lb}}$}[/tex]
Note: The answer can have only two significant figures because that is all you gave for the average weight of an orange.
An FM radio transmitter broadcasts at 98.4 MHz with a power of
45 kW. How many photons does it generate per second?
To determine the number of photons emitted per second by a 45 kW FM radio transmitter at 98.4 MHz, the energy of one photon is calculated using Planck's constant and the frequency, and then the power output is divided by this energy. The result is approximately 6.90 × 1028 photons per second.
To calculate the number of photons emitted per second by an FM radio transmitter, we need to know the energy of one photon and the total energy emitted per second (power output of the transmitter).
The energy of a photon, E, can be calculated using the Planck's equation: E = h * f, where h is Planck's constant (6.626 × 10-34 J·s), and f is the frequency of the photon in hertz. In this case, the frequency (f) is 98.4 MHz, or 98.4 × 106 Hz.
The total power output in joules per second is given by the transmitter's power, which is 45 kW, or 45,000 J/s. By dividing the total energy emitted per second by the energy of one photon, we obtain the number of photons emitted per second.
Number of Photons per Second = Power Output (J/s) / Energy per Photon (J)
Now, let's perform the calculations:
Energy per Photon, E = (6.626 × 10-34 J·s) × (98.4 × 106 Hz) = 6.522 × 10-26 J
Photons per Second = 45,000 J/s / 6.522 × 10-26 J = 6.90 × 1028 photons/s
Calculate the linear momentum of photons of wavelength
(a) 600 nm,
(b) 70 pm,
(c) 200 m.
Answer:
a) p = 1.10 * 10⁻²⁷ kg·m/s
b) p = 9.46 * 10⁻²⁴ kg·m/s
c) p = 3.31 * 10⁻³⁶ kg·m/s
Explanation:
To solve this problem we use the de Broglie's equation, which describes the wavelenght of a photon with its momentum:
λ=h/p
Where λ is the wavelength, h is Planck's constant (6.626 * 10⁻³⁴ J·s), and p is the linear momentum of the photon.
Rearrange the equation in order to solve for p:
p=h/λ
And now we proceed to calculate, keeping in mind the SI units:
a) 600 nm= 600 * 10⁻⁹ m
p=(6.626 * 10⁻³⁴ J·s) / (600*10⁻⁹m) = 1.10 * 10⁻²⁷ kg·m/s
b) 70 pm= 70 * 10⁻¹² m
p=(6.626 * 10⁻³⁴ J·s) / (70*10⁻¹²m) = 9.46 * 10⁻²⁴ kg·m/s
c) 200 m
p=(6.626 * 10⁻³⁴ J·s) / (200m) = 3.31 * 10⁻³⁶ kg·m/s
You opened up a new 500. mL bottle of RobitussinTM. The dosage is 1.1 tablespoon (TBS).
How many doses are in the bottle?
1 tsp. = 4.93 mL
3 tsp. = 1 TBS.
b)What is the mass of 35.2 mL of a saline (salt water) solution that has a density of 1.12 g cm−3?
Answer:
30.73 Doses and 39.42 g
Explanation:
It is necessary to know the conversion factors in that manner change the initial 500 mL to the number of doses as follow:
[tex]500 ml * \frac{1tsp}{4.93mL} * \frac{1TBS}{3tsp} * \frac{1 Dose }{1.1 TBS} = 30.7 doses\\[/tex]
And the for b. it is such necessary to take in account that 1 mL = 1 [tex]cm^{3}[/tex]
35.2 mL * 1.12 [tex]\frac{g}{cm^{3} }[/tex] = 39.42 g
How many grams of 48.0 wt% NaOH (FM 40.00) should be diluted to 1.00 L to make 0.11 M NaOH? (Enter your answer using two digits.)
Answer:
The answer is 916.67 g
Explanation:
48.0 wt% NaOH means that there are 48 g of NaOH in 100 g of solution. With this information and the molecular weight of NaOH (40 g/mol), we can calculate the number of mol there are in 100 g of this solution:
[tex]\frac{48 g NaOH}{100 g solution}[/tex] x [tex]\frac{1 mol NaOH}{40 g}[/tex] = 0.012 mol NaOH/100 g solution
Finally, we need 0.11 mol in 1 liter of solution to obtain a 0.11 M NaOH solution.
0.012 mol NaOH ------------ 100 g solution
0.11 mol NaOH------------------------- X
X= 0.11 mol NaOH x 100 g/ 0.012 mol NaOH= 916.67 g
We have to weigh 916.67 g of 48.0%wt NaOH and dilute it in a final volume of 1 L of water to obtain a 0.11 M NaOH solution.
Recognize Physical and Chemical Properties of Alcohols Question Which of the following statements about the -OH group of alcohols is NOT true? Select the correct answer below: O The hydrogen has a slight positive charge. O The hydrogen is slightly acidic. O The hydrogen cannot participate in hydrogen bonding with other molecules. O none of the above FEEDBACK MORE INSTRUCTION SUBMIT Content attribution
Answer:
The hydrogen cannot participate in hydrogen bonding with other molecules.
Explanation:
Hydrogen bonding is a special type of the dipole-dipole interaction and it occurs between hydrogen atom that is bonded to highly electronegative atom which is either fluorine, oxygen or nitrogen atom.
Thus, hydrogen bonding is present in alcohols as the oxygen atom is linked to hydrogen
Partially positive end of the hydrogen atom is attracted to partially negative end of the oxygen atom. It is strong force of attraction between the molecules. Thus, hydrogen acquires slight positive charge and become electron deficient or acidic.
Hence, option C is incorrect.
One liter of ocean water contains 35.06 g of salt. What volume of ocean water would contain 1.00 kg of salt? Express your answer in L using the correct number of significant figures. Do not enter your answer using scientific notation.
Answer:
28.52 L
Explanation:
First, let's calculate the density of the ocean, which is the mass divided by the volume:
d = m/V
d = 35.06/1
d = 35.06 g/L
So, for a mass of 1.00 kg = 1000.00 g
d = m/V
35.06 = 1000.00/V
V = 1000.00/35.06
V = 28.52 L
How all the data are expressed with two significant figures, the volume must also be expressed with two.
A sample of the compound MSO4 weighing 0.1131 g reacts with BaCl2 and yields 0.2193 g BaSO4. What is the elemental mass of M and its identity? Hint: All the SO42- from the MSO4 appears in the BaSO4
Answer:
The atomic mass of the given metal M is 24.3 g/mol.
Therefore, the given metal M is magnesium (Mg)
Explanation:
Reaction involved: MSO₄ + BaCl₂ → BaSO₄ + MCl₂
Atomic mass (g/mol): oxygen (O)=16, sulphur (S)=32,
Molar mass of SO₄²⁻ = 96 g/mol and molar mass of BaSO₄ = 233.38 g/mol
Let the atomic mass of M be m g/mol.
Therefore, molar mass of MSO₄= (m + 96) g/mol
If 0.1131 g of MSO₄ gives 0.2193 g of BaSO₄ on reaction
Then, (m + 96) g/mol of MSO₄ gives 233.38 g/mol of BaSO₄
Therefore, (m + 96) g/mol of MSO₄ = [(233.38 g/mol) × (0.1131 g)] ÷ (0.2193 g)
⇒(m + 96) g/mol = [26.395] ÷ (0.2193)
⇒(m + 96) g/mol = 120.36 g/mol
⇒m = 120.36 g/mol - 96 g/mol = 24.36 g/mol ≈ 24.3 g/mol
Since, the atomic mass of the given metal M is 24.3 g/mol.
Therefore, the given metal M is magnesium (Mg)
Give the electron configurations for the following ions: P, P. Ar, and Te plain what interaction is in the hydrogen fluoride (HF) and hydrogen chloride (HCI. Which one do you espect to have a higher bolling emperature? Why?
Explanation:
Atomic number of P = 15
Common oxidation state of P = -3, +3 and +5
Electronic configuration of P^3+: [tex]1s^2 2s^22p^63s^2[/tex]
Electronic configuration of P^3-: [tex]1s^2 2s^22p^63s^23p^6[/tex]
Electronic configuration of P^5+: [tex]1s^2 2s^22p^6[/tex]
Atomic number of Ar = 18
Argon has stable octet, so it generally does not exist as ions.
Electronic configuration of Ar: [tex]1s^2 2s^22p^63s^23p^6[/tex]
Atomic number of Te = 52
Common oxidation states of Te = -2, +2, +4, +6
Electronic configuration of Te^2-: [tex][Kr]4d^10 5s^2 5p^6[/tex]
Electronic configuration of Te^2+: [tex][Kr]4d^10 5s^2 5p^2[/tex]
Electronic configuration of Te^4+: [tex][Kr]4d^10 5s^2[/tex]
Electronic configuration of Te^6+: [tex][Kr]4d^10[/tex]
Boiling point of HF is more as compared to HCl
Reason:
Molecular weight of HF is low, but is boiling point is high because of presence of hydrogen bonding. Whereas in case of HCl, its molecular weight is high but has only weak van der Waals intercations. As hydrogen bonding is stronger than van der Waals interactions, therefore, boiling point of HF is more.