Answer: Benzene has a boiling point of 80oC, toluene has a boiling point of 110 oC, and xylene has a boiling point of 130 oC. The GC of a mixture of these three compounds should show retention times as benzene, toluene, xylene.
The GC of a mixture of these three compounds should show retention times as. The correct answer is Option C; benzene, toluene, xylene. The boiling points of the components indicate that they have different volatility.
Therefore, the order of volatility follows the order in which they have been mentioned in the question;
benzene < toluene < xylene
This means that as the boiling point increases, the retention time of each compound in the column also increases. Since the order of volatility is benzene < toluene < xylene, the retention times of the compounds will be as follows; benzene will have the least retention time, followed by toluene and then xylene, with the largest retention time.
Therefore, the GC of a mixture of these three compounds should show retention times as benzene, toluene, and xylene.
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which of the methods below can be used to prevent the oxidation of an iron object? 1) painting the object 2) attaching a sacrificial electrode made of zinc 3) submerging the object in water
One method for preventing oxidation of the object is painting it with iron material.
How can iron objects be kept from rusting?Oiling, painting, or lubricating By applying oil, grease, or paint, the surface is provided a waterproof coating that keeps moisture and oxygen from coming into direct contact with the iron item. Hence, rusting is prevented.
What kind of paint is applied to iron?Oil-based metal paints are the best choice for outside work, according to paint manufactured with oil. Very durable and frequently easier to remove is oil paint. Primer is not necessary when using an oil-based product, although it will produce a smoother finish. Oil-based paints are often more costly.
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in the cold pack process, 27 kj are absorbed from the environment per mole of ammonium nitrate consumed. if 25.0 g of ammonium nitrate are consumed, what is the total heat absorbed?
0.34 kJ of heat are absorbed in total.
Chemically, ammonium nitrate has the following formula: [tex]NH_4NO_3[/tex]. It is a salt comprised of ammonium and nitrate ions that is white and crystalline. It is a solid that is extremely hygroscopic and highly soluble in water despite without generating hydrates.
The first step is to calculate the amount of moles of ammonium nitrate consumed. This can be done using the molar mass of ammonium nitrate:
Molar mass of ammonium nitrate = [tex](1 mol NH_4NO_3) * (80.04 g/mol NH_4NO_3) = 80.04 g/mol NH_4NO_3[/tex]
Number of moles of ammonium nitrate consumed
[tex]\frac{(25.0 g NH_4NO_3)}{ (80.04 g/mol NH_4NO_3) }\\\\= 0.3125 mol NH_4NO_3[/tex]
The sum of the heat absorbed per mole of ammonium nitrate and the moles of ammonium nitrate consumed represents the total heat absorbed.
Total heat absorbed =[tex](27 kJ/mol NH_4NO_3) * (0.3125 mol NH_4NO_3) = 0.34 kJ[/tex]
Therefore, the total heat absorbed is 0.34 kJ
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the unit cell in a certain lattice consists of a cube formed by an anion, a, at each corner, an anion in the center, and a cation,x, at the center of each face. how many anions and cations are there in the unit cell?
Answer: There are 8 anions and 6 cations in the unit cell.
There are 8 anions and 6 cations in the unit cell. The unit cell consists of a cube, with an anion, 'a', at each corner, an anion in the center, and a cation, 'x', at the center of each face.
The cube is made up of 8 cubes, each of which is made up of one anion at each corner, and one cation at the center. Therefore, there are 8 anions in the unit cell, one at each corner. In addition, there is an anion in the center of the unit cell.
The 6 cations are located in the center of each of the faces of the cube. The cations are located in the middle of each face and therefore, there are 6 cations in the unit cell.
In total, there are 8 anions and 6 cations in the unit cell.
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if the initial concentration of a is 0.0275 m and the rate constant has a value of 0.0082 s-1, what is the concentration of a after 540.0 s?
If the initial concentration of A is 0.0275 M and the rate constant has a value of 0.0082 s^-1, what is the concentration of A after 540.0 s? The rate of reaction can be expressed as follows: rate = -d[A]/dt = k [A]The integrated rate law for a first-order reaction is: ln [A]t/[A]0 = -kt Where [A]t is the concentration of the reactant at a particular time t.
[A]0 is the initial concentration of the reactant at t=0.k is the rate constant.t is the time of the reaction. As a result, we can rearrange the equation to find the concentration of the reactant at a specific time t as follows: ln[A]t = -kt + ln[A]0Given that the initial concentration of A is 0.0275 M,
the rate constant has a value of 0.0082 s^-1, and we want to find the concentration of A after 540.0 s.We will substitute the provided values into the equation as follows:
ln[A]t = -kt + ln[A]0ln[A]t = (-0.0082 s^-1) (540.0 s) + ln (0.0275 M)ln[A]t = -4.4358 + ln(0.0275)ln[A]t = -4.4358 - 3.5941ln[A]t = -8.0299[A]t = e^-8.0299[A]t = 0.000293 M Therefore, the concentration of A after 540.0 s is 0.000293 M.
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which compound in each pair below would you expect to have a greater fluorescence quantum yield? explain
The compound O,O'-dihydoxyazobenzene, have a greater fluorescence quantum yield because of the rigidity provided by the -N=N- group. Option D is correct.
Fluorescence quantum yield is a measure of the efficiency of a molecule to emit fluorescence, which is dependent on various factors, including the rigidity or flexibility of the molecule and the presence of any functional groups that can affect the electronic structure. In the given options, O,O'-dihydoxyazobenzene has a rigid structure due to the presence of the azo group (-N=N-) that is expected to restrict the molecule's vibrational freedom, thereby reducing non-radiative energy loss and enhancing fluorescence.
On the other hand, bis(o-hydroxyphenyl) hydrazine has a flexible structure due to the -NH-NH- group, which can lead to higher non-radiative energy loss, reducing the fluorescence quantum yield. Therefore, O,O'-dihydoxyazobenzene is expected to have a greater fluorescence quantum yield than bis(o-hydroxyphenyl) hydrazine.
Hence, D. O,O'-dihydoxyazobenzene, because of the rigidity provided by the -N=N- group is the correct option.
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--The given question is incomplete, the complete question is
"Which compound in each pair below would you expect to have a greater fluorescence quantum yield? A) bis(o-hydroxyphenyl) hydrazine, because of the chemical activity of the two extra H atoms. B) bis(o-hydroxyphenyl) hydrazine, because of the flexibility provided by the -NH -NH - group C) O,O'-dihydoxyazobenzene, because of the chemical activity of the -N=N- group. D) O,O'-dihydoxyazobenzene, because of the rigidity provided by the -N=N- group."--
which of the following combinations of materials would result in a buffer solution? *100. ml of 1.0 m hcl 50.0 ml of 1.0 nacl *100. ml of 1.0 m hno2 100. ml of 2.0 m nano2 *100. ml of 1.0 m ch3nh2 100. ml of 0.50 m ch3nh3 *100. ml of 1.0 m hf 50.0 ml of 1.0 m hclo
Answer: The combination of 100 mL of 1.0 M CH3NH2 and 100 mL of 0.50 M CH3NH3 would result in a buffer solution.
Explanation:
A buffer solution is a solution that can resist changes in pH upon the addition of an acid or a base. To form a buffer solution, we need a weak acid (or base) and its conjugate base (or acid) in similar concentrations.
Option 1: 100 mL of 1.0 M HCl and 50.0 mL of 1.0 M NaCl
This is not a buffer solution because HCl is a strong acid and NaCl is a neutral salt, which does not have an acidic or basic effect on the solution.
Option 2: 100 mL of 1.0 M HNO2 and 100 mL of 2.0 M NaNO2
This is not a buffer solution because HNO2 is a weak acid, but NaNO2 is not its conjugate base. Instead, NaNO2 hydrolyzes to form NaOH and HNO2, which decreases the buffer capacity.
Option 3: 100 mL of 1.0 M CH3NH2 and 100 mL of 0.50 M CH3NH3
This is a buffer solution because CH3NH2 is a weak base and CH3NH3+ is its conjugate acid. They are in similar concentrations, and therefore, can resist changes in pH upon the addition of an acid or a base.
Option 4: 100 mL of 1.0 M HF and 50.0 mL of 1.0 M HClO
This is not a buffer solution because HF is a weak acid, but HClO is not its conjugate base. Instead, HClO hydrolyzes to form H3O+ and ClO-, which decreases the buffer capacity.
How many moles are in 8.52 x 10^33 molecules of Carbonic Acid (23)?
Answer: There are approximately 141.7 moles
Explanation:
To convert the number of molecules of a substance to the number of moles, we need to divide the number of molecules by Avogadro's Number, which is approximately 6.022 x 10^23 molecules per mole.
Therefore, to calculate the number of moles in 8.52 x 10^33 molecules of carbonic acid (H2CO3), we can use the following formula:
Number of moles = Number of molecules / Avogadro's Number
Number of moles = 8.52 x 10^33 / 6.022 x 10^23
Number of moles = 141.7 mol
Therefore, there are approximately 141.7 moles of carbonic acid in 8.52 x 10^33 molecules of carbonic acid.
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adding this test solution will precipitate sulfate ions: select one: a. naoh b. bacl2 c. hno3 d. nh4cl
Answer: The solution that will precipitate sulfate ions is B. BaCl2.
How do you test for sulfate ions?
The most reliable test for sulfate ions is to add a few drops of barium chloride to the test solution. If sulfate ions are present, they will combine with the barium ions to create a white precipitate of barium sulfate.
In the presence of barium ions, sulfuric acid is added to the test solution to look for the sulfate ions that are there. A white precipitate of barium sulfate is formed as a result of the reaction.
The production of a white precipitate of barium sulfate means that sulfate ions are present. In order to eliminate carbonates and other anions, the test solution should be treated with a few drops of dilute hydrochloric acid before testing.
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why do you think this reaction only undergoes mono iodination? think about the discussion earlier about activation and deactivation of the benzene ring and the role iodine may play once it is on the ring.
The reaction only undergoes mono iodination due to the increased reactivity of the benzene ring when iodine is added.
The electron deficient nature of the benzene ring makes it easier for the reaction to occur in a single step, rather than multiple steps.
The reaction only undergoes mono iodination due to the reactivity of the benzene ring. When iodine is added to the benzene ring, it makes the ring more electron deficient.
This increases the reactivity of the benzene ring and makes it easier for the reaction to occur in a single step.
In contrast, if more iodine is added to the ring, it makes the ring less electron deficient and thus decreases its reactivity.
This makes it harder for the reaction to occur in a single step and thus causes multiple steps to occur.
The discussion earlier about activation and deactivation of the benzene ring was related to this reaction. The deactivating group like the iodine makes the ring less reactive, thus favoring single step reactions.
Meanwhile, the activating group makes the ring more reactive, favoring multiple step reactions.
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sea water contains 1.94% chlorine (by mass). how many grams of chlorine are in there in 400 ml of seawater if the density of seawater is 1.025 g/cm3.
The mass (in grams) of chlorine present in 400 mL of seawater, given that the density of seawater is 1.025 g/cm3, is 0.008 grams
How do i determine the mass of Chlorine?We'll begin by obtaining the mass of the sea water. Details below:
Volume of sea water = 400 mL = 400 / 1000 = 0.4 cm³Density of sea water = 1.025 g/cm³Mass of sea water =?Density = mass / volume
Cross multiply
Mass = Density × Volume
Mass of sea water = 1.025 × 0.4
Mass of sea water = 0.41 g
Finally, we shall determine the mass of chlorine in the sea water. Details below:
Mass of sea water = 0.41 gramsPercentage of chlorine = 1.94%Mass of chlorine = ?Mass of chlorine = Percentage × Mass of sea water
Mass of chlorine = 1.94% × 0.41
Mass of chlorine = 0.008 grams
Thus, the mass of chlorine is 0.008 grams
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how many possible orientations are there with which co and o2 can collide, and how many of those orientations can result in a successful reaction?
Possible orientations with which CO and O₂ can collide are: 8, and out of which orientations that can result in a successful reaction are: 4
CO-O2 Collision Orientations:
1. Linear - CO and O₂ are aligned in a straight line
2. Propeller - CO and O₂ are at 90° angle
3. Clapping - CO and O₂ move parallel to each other, 180° out of phase
4. Disrotatory - CO and O₂ move parallel, same phase
5. Conrotatory - CO and O₂ move parallel, opposite phase
6. Tumbling - CO and O₂ are at an angle and tumble in an elliptical path
7. Twisting - CO and O₂ at a 60° angle, move opposite to each other
8. Vibration - CO and O₂ oscillate
Successful Reactions:
1. Linear
2. Propeller
3. Clapping
4. Disrotatory
These four orientations can result in a successful reaction because the molecules are in the correct orientation for the electron orbitals to align, allowing for the electron transfer needed for the reaction to occur.
In conclusion, there are 8 possible orientations with which CO and O₂ can collide, and out of those 8, only 4 orientations result in a successful reaction.
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the second electron affinity values for both oxygen and sulfur are unfavorable (endothermic). explain.
Explanation:
If we look at the definition of the second electron affinity:
The second electron affinity is the enthalpy change when one mole of gaseous 2⁻ ions is formed from one mole of gaseous 1⁻ ions
The equations of the second electron affinity for oxygen and sulfur:
O⁻ (g) + e⁻ → O²⁻ (g)
S⁻ (g) + e⁻ → S²⁻ (g)
This process is endothermic as we are trying to combine an electron with a negative ion, and so we must overcome the repulsion. Applying energy will overcome it.
The second electron affinity is the energy change that occurs when an atom in the gaseous state gains an additional electron.
For both oxygen and sulfur, the second electron affinity values are unfavorable, meaning that the energy change that occurs is endothermic. This means that energy is being absorbed by the atom, and the atom is becoming more stable.
To understand why the second electron affinity values for oxygen and sulfur are unfavorable, it is important to look at the electron configurations of these atoms. Oxygen's electron configuration is 2s22p4, meaning it has 8 electrons in its outermost shell. Sulfur has an electron configuration of 2s22p63s2, meaning it has 16 electrons in its outer shell. Since both of these atoms have a full outer shell of electrons, they are not in need of an additional electron, and therefore do not have a strong tendency to gain one. As a result, it takes a lot of energy for the atom to gain an additional electron, meaning the second electron affinity value is unfavorable (endothermic).
In conclusion, the second electron affinity values for oxygen and sulfur are unfavorable (endothermic) because they already have full outer shells of electrons and do not have a strong tendency to gain an additional electron.
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Question at position 1
What is the pressure of gas if 2. 89-g of CO2 sublimates in a 9. 60-L container at 255. 22K
The pressure of the gas in the container if 2. 89-g of CO2 sublimates in a 9. 60-L container at 255. 22K is 0.1431 atm. This is calculated using ideal gas equation.
Mass of solid CO2 = 2.89 gm
Volume of container, V = 9.60 L
Temperature, T = 255.22 K
We can calculate the number of moles of CO2 using the expression,
No. of moles = mass / molar mass
Molar mass of CO2 is 44.01g/ mole.
No. of moles, n =2.89 g / 44.01 g/mole
= 0.0656 mole
We can use here the ideal gas equation,
PV = n RT
we have the value of the R constant which is [0.08206 L. atm. K-1 mol-1]
P = n RT / V
P = 0.0656 mole x 0.08206 L. atm. K-1 mol-1 x 255.22 K / 9.60 L
= 0.1431 atm.
So the pressure of the gas in the container is 0.1431 atm.
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which of the following molecules will not contain a multiple bond in its lewis structure? multiple choice c2h2 cs2 ncl3 co2 ch2o
The Lewis structure of the compound is used to predict its chemical behavior. In the given options, which of the following molecules will not contain a multiple bond in its Lewis structure is Carbon dioxide (CO2) will not contain a multiple bond in its Lewis structure.
Carbon dioxide (CO2) is made up of two oxygen atoms that are covalently bonded to a single carbon atom. CO2 has a linear geometry, with each O=C=O bond angle measuring 180 degrees. In its Lewis structure, CO2 contains two double bonds. The carbon atom has a total of four valence electrons, while each oxygen atom has a total of six valence electrons.
Both the O atoms and C atom share four valence electrons in this covalent compound. One of the oxygen atoms binds with carbon by a double bond, and the other oxygen atom binds with the carbon atom through a double bond. All the octets are completed in the molecule.
Each molecule is different and has different Lewis structures. The elements in the same group of the periodic table have the same valency, so they follow the same Lewis structure pattern. For example, all the halogens have a valency of 1 and follow the same pattern in the Lewis structure.
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What pressure is required to reduce 50 mL of a gas at standard conditions to 20 mL at a temperature of 23◦C?
Answer in units of atm.
The pressure required to reduce 50 mL of a gas at standard conditions to 20 mL at a temperature of 23 °C is 10.656 atm. To solve this problem, the ideal gas law is used.
What is the ideal gas law?The ideal gas law is a fundamental equation of state that relates the pressure, volume, temperature, and number of moles of an ideal gas. The ideal gas law is expressed mathematically as:
PV = nRT
At standard conditions (STP), the volume of 50 mL of a gas is equivalent to 0.050 L, and the temperature is 273 K. We can use this information to find the initial number of moles of the gas:
n₁ = P*V₁/R*T₁= P(0.050 L)/(0.08206 L·atm/mol·K)(273 K) = P/2.4844
where V₁ = 0.050 L, R = 0.08206 L·atm/mol·K, and T₁ = 273 K.
To reduce the volume to 20 mL (0.020 L) at a temperature of 23°C (296 K), we can rearrange the ideal gas law equation and solve for the required pressure:
P2 = n₁*RT₂/V₂ = (P/2.4844)(0.08206 L·atm/mol·K)(296 K)/(0.020 L) = 10.656P
where T₂ = 296 K and V₂ = 0.020 L.
Therefore, the pressure required to reduce 50 mL of a gas at standard conditions to 20 mL at a temperature of 23°C is:
P₂ = 1 atm × 10.656 = 10.656 atm
Thus, the pressure required to reduce the volume of the gas is 10.656 atm.
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if a solution is created by adding water to 2.3 x 10^-4 moles of naoh and 4.5 x 10^-6 moles of hbr until 1l, what is the ph of this solution
The pH of the solution is determined by using the equation mentioned : pH = - log[H+]Where, [H+] = 10^-pH Given the question, the solution has 2.3 x 10^-4 moles of NaOH and 4.5 x 10^-6 moles of HBr in 1 L of water. In order to find the pH of the solution, first, we need to determine the number of moles of H+ ions available in the solution.
Moles of H+ ions = Moles of HBr + Moles of NaOH - Moles of OH-Moles of H+ ions = 4.5 x 10^-6 + 2.3 x 10^-4 - (2 x 2.3 x 10^-4)Moles of H+ ions = 4.5 x 10^-6 + 2.3 x 10^-4 - 4.6 x 10^-4Moles of H+ ions = 1.85 x 10^-4 pH = -log[H+]pH = -log[1.85 x 10^-4]pH = 3.73 (approx)Therefore, the pH of the solution is 3.73 (approx).
The solution has 2.3 x 10^-4 moles of NaOH and 4.5 x 10^-6 moles of HBr in 1 L of water. In order to find the pH of the solution, first, we need to determine the number of moles of H+ ions available in the solution. Moles of H+ ions = Moles of HBr + Moles of NaOH - Moles of OH-Moles of H+ ions = 4.5 x 10^-6 + 2.3 x 10^-4 - (2 x 2.3 x 10^-4)Moles of H+ ions = 4.5 x 10^-6 + 2.3 x 10^-4 - 4.6 x 10^-4Moles of H+ ions = 1.85 x 10^-4.
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calculate the molarity of a solution made from 2.63 moles of nacl dissolved in a total volume of 500.0 ml.
The molarity of a solution made from 2.63 moles of nacl dissolved in a total volume of 500.0 ml is 5.26 M.
Molarity is the concentration of a solution in terms of moles of solute per liter of solution. The formula for calculating the molarity of a solution is as follows:
Molarity = moles of solute / volume of solution (in liters)
Given,
Moles of solute (NaCl) = 2.63 mol
Total volume of the solution = 500.0 mL = 0.5 LA
substitute the given values in the formula,
Molarity = 2.63 / 0.5
Molarity = 5.26 M
The molarity of the solution made from 2.63 moles of NaCl dissolved in a total volume of 500.0 mL is 5.26 M.
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what is the mass of sodium chloride required to create a 0.875 m solution 534 g of water. how many moles of nacl is required
The mass of sodium chloride that is required to create a 0.875 M solution 534 g of water is 27.291 g and 0.467 moles of NaCl is required.
Mass of water = 534 g
Molality of the solution = 0.875 m
Molality is the number of moles of solute per kilogram of solvent.
It is represented by the formula:
Molality = number of moles of solute / kilogram solvent
Its mathematical expression is:
m = n/kg
Now we will convert the g into kg.
Mass of water = 534 g× 1kg/1000 g = 0.534 kg
putting the values in formula:
0.875 m = n / 0.534 kg
n = 0.467 mol
Now we will calculate the mass of sodium chloride:
Mass = number of moles × molar mass
Mass = 0.467 mol × 58.44 g/mol
Mass = 27.291 g
Thus, the required mass and moles of NaCl are 27.291g and 0.467mol respectively.
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calculate the volume in ml of a 6 m solution of hcl stock solution required to make 250 ml of 50 mm hcl?
The volume in ml of a 6 m solution of hcl stock solution required to make 250 ml of 50 mm hcl is: 20.8 ml.
To calculate the volume of a 6 M HCl stock solution required to make 250 ml of 50 mM HCl, use the following equation:
volume of stock solution (ml) = (desired concentration (mM) x volume of desired solution (ml)) / stock solution concentration (M).
Therefore, in this case, volume of stock solution (ml) = (50 mM x 250 ml) / 6 M = 20.8 ml. In other words, 20.8 ml of a 6 M HCl stock solution is required to make 250 ml of 50 mM HCl. This is because the number of moles (the amount of HCl molecules) in the solution must remain constant.
Increasing the volume of the solution by dilution means that the concentration (the amount of HCl molecules per ml of solution) must be decreased, and thus the amount of HCl stock solution must be increased.
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calculate the most probable speed, average speed, and rms speed for oxygen (o2) molecules at room temperature
At ambient temperature, O₂ molecules move at speeds ranging from 484 to 517 m/s, with 482 m/s being the RMS speed. This is the speed that is most likely to occur.
To calculate the most probable speed, average speed, and root mean square (RMS) speed for oxygen (O₂) molecules at room temperature, we can use the following equations:
Most probable speed:
vp = (2kT / πm)¹/²
where vp is the most probable speed, k is Boltzmann's constant (1.38 x 10⁻²³ J/K), T is the temperature in Kelvin (298 K for room temperature), and m is the mass of a single O2 molecule (32 g/mol or 5.31 x 10⁻²⁶ kg).
Plugging in the values, we get:
vp = (2 x 1.38 x 10⁻²³ J/K x 298 K / π x 5.31 x 10⁻²⁶ kg)¹/²
vp = 484 m/s
vavg = (8kT / πm)¹/²
where vavg is the average speed.
Plugging in the values, we get:
vavg = (8 x 1.38 x 10⁻²³ J/K x 298 K / π x 5.31 x 10⁻²⁶ kg)¹/²
vavg = 517 m/s
Root mean square (RMS) speed:
vrms = (3kT / m)¹/²
where vrms is the RMS speed.
Plugging in the values, we get:
vrms = (3 x 1.38 x 10⁻²³ J/K x 298 K / 5.31 x 10⁻²⁶ kg)¹/²
vrms = 482 m/s.
Therefore, the most probable speed for O2 molecules at room temperature is approximately 484 m/s, the average speed is approximately 517 m/s, and the RMS speed is approximately 482 m/s.
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an organism that uses inorganic co2 as its carbon source is called a(n) while an organism that must obtain its carbon in an organic form is referred to as a(n)
An organism that uses inorganic CO₂ as its carbon source is called an autotroph, while an organism that must obtain its carbon in an organic form is referred to as a heterotroph.
An autotroph is able to produce its own organic molecules from inorganic sources using energy from light, inorganic chemical reactions, or both. Photosynthesis is a type of autotrophy in which energy from sunlight is used to convert carbon dioxide into carbohydrates.
On the other hand, heterotrophs are organisms that must obtain their organic molecules by consuming other organisms or their byproducts.
They do not have the ability to make their own organic molecules from inorganic sources. Examples of heterotrophic organisms include animals, fungi, and many bacteria.
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if 75.0 grams of carbonic acid are sealed in a 2.00 l soda bottle at room temperature (298.15 k) and decompose completely via the equation below, what would be the final pressure of carbon dioxide (in atm) assuming it had the full 2.00 l in which to expand?
The final pressure of carbon dioxide in the soda bottle, assuming it had the full 2.00 L in which to expand, is 1.20 atm.
The equation for the decomposition of carbonic acid is: H2CO3 → H2O + CO2.
When 75.0 g of carbonic acid is sealed in a 2.00 L soda bottle at room temperature (298.15 K), the decomposition reaction will occur and the carbon dioxide (CO2) will expand to fill the available space in the bottle.
The final pressure of carbon dioxide (in atm), 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.
Since we know the initial amount of carbonic acid (75.0 g), the number of moles present: n = (75.0 g H2CO3) / (84.01 g/mol), giving us a value of 0.894 moles.
The volume of the bottle (2.00 L) and the temperature (298.15 K). Thus, we can plug these values into the ideal gas law equation to calculate the final pressure of carbon dioxide:
P = (0.894 mol CO2) (0.08206 L*atm/K*mol) (298.15 K) / (2.00 L), which gives us a pressure of 1.20 atm.
Therefore, the final pressure of carbon dioxide in the soda bottle, assuming it had the full 2.00 L in which to expand, is 1.20 atm.
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what is the name of the material that resists oxidation at elevated temperatures so air can be used as a plasma gas?
The material that resists oxidation at elevated temperatures so air can be used as a plasma gas is stain steel.
Stаinless steels аre most commonly used for their corrosion resistаnce. The second most common reаson stаinless steels аre used is for their high temperаture properties; stаinless steels cаn be found in аpplicаtions where high temperаture oxidаtion resistаnce is necessаry, аnd in other аpplicаtions where high temperаture strength is required.
The high chromium content which is so beneficiаl to the wet corrosion resistаnce of stаinless steels is аlso highly beneficiаl to their high temperаture strength аnd resistаnce to scаling аt elevаted temperаtures.
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match the following terms with the correct definitions. - homogeneous equilibrium - heterogeneous equilibrium - le chatelier's principle - complex ion a. a metal ion bonded to lewis acids. b. an equilibrium involving a catalyst in the same phase as the other species. c. an equilibrium involving a catalyst in a different phase as the other species. d. if a chemical reaction is subjected to a change in conditions that displaces it from equilibrium, then the reaction adjusts toward a new equilibrium state. the reaction proceeds in the direction that-at least partially-offsets the change in conditions. e. an equilibrium involving reactants and products in the same phase. f. a metal ion bonded to lewis bases. g. if a chemical reaction is subjected to a change in conditions that displaces it from equilibrium, the the reaction adjusts towards a new equilibrium state. the reaction proceeds in the direction that-at least partially-increases the change in conditions. h. none of these
Homogeneous equilibrium: an equilibrium involving reactants and products in the same phase.
Heterogeneous equilibrium: an equilibrium involving a catalyst in a different phase as the other species.
Le Chatelier's Principle: if a chemical reaction is subjected to a change in conditions that displaces it from equilibrium, then the reaction adjusts toward a new equilibrium state.
The reaction proceeds in the direction that-at least partially-offsets the change in conditions. Complex ion: a metal ion bonded to Lewis acids or Lewis bases.
Homogeneous equilibrium occurs when the reactants and products of a reaction exist in the same phase, either solid, liquid, or gas. Heterogeneous equilibrium happens when the reactants and products are in different phases.
Le Chatelier's Principle states that if a chemical reaction is subjected to a change in conditions, the reaction will adjust towards a new equilibrium state in a way that offsets the change in conditions.
A complex ion is a metal ion bonded to Lewis acids or Lewis bases, which are molecules or ions with an extra pair of electrons that can be donated to other molecules or ions.
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What aldehyde is needed to prepare the carboxylic acid by an oxidation reaction?
Answer:
The oxidation of an aldehyde can be achieved using a variety of oxidizing agents, including potassium permanganate (KMnO4), chromium trioxide (CrO3), and silver oxide (Ag2O). The specific oxidizing agent used will depend on the conditions and desired yield.
For example, if we want to prepare acetic acid, we can oxidize ethanol (an alcohol) using a strong oxidizing agent like potassium permanganate. Alternatively, we can oxidize acetaldehyde (an aldehyde) using a milder oxidizing agent like silver oxide.
Therefore, any aldehyde can be used to prepare a carboxylic acid by oxidation, but the specific oxidizing agent and reaction conditions may vary depending on the aldehyde and desired yield.
The aldehyde that is need for the preparation of the acid is CH3(CH2)8CH(Cl)CHO
How do you prepare an acid from an aldehyde?It is not possible to directly prepare an acid from an aldehyde as an aldehyde is already an oxidized form of a primary alcohol, which can be further oxidized to form a carboxylic acid.
Aldehydes can be oxidized to carboxylic acids using strong oxidizing agents such as potassium permanganate (KMnO4) or chromic acid (H2CrO4). The reaction conditions need to be carefully controlled to avoid over-oxidation of the aldehyde to carbon dioxide.
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two compounds are both composed of the exact same types and number of atoms. however, the atoms are connected in different ways in each compound. these two compounds would be classified as .
Answer:
Isomers
Explanation:
Molecules with the same molecule formula but different structural formulae
a metal will be placed in fire and an electron will absorb enough energy to be promoted to a higher energy state. what do we call this higher energy state?
When a metal is placed in the fire and an electron absorbs enough energy to be promoted to a higher energy state, this higher energy state is referred to as the excited state.
An excited state is a state of a molecule or atom in which it has absorbed sufficient energy to move an electron from its current orbital to a higher orbital. This state is referred to as the excited state, and the electron that has been elevated to a higher energy level is said to be in an excited state.
The reason behind the electron's promotion to a higher energy state when a metal is placed in fire is that the heat causes the electrons to absorb energy, which causes them to move to a higher energy state. When electrons move to higher energy states, they release energy in the form of light, heat, or other radiation.
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Question: Why Are The Properties Of Diamond And Graphite Different, Even Though They Are Both Composed Of Pure Carbon? Select The Two Answers That Explain This Difference. Group Of Answer Choices The Atoms In Diamond And Graphite Have Different Hybridizations. The Bonding In Diamond Can Be Modeled With Valence Bond Theory Whereas The Bonding In Graphite Can Only Be
Why are the properties of diamond and graphite different, even though they are both composed of pure carbon? Select the two answers that explain this difference.
Group of answer choices
The atoms in diamond and graphite have different hybridizations.
The bonding in diamond can be modeled with Valence Bond Theory whereas the bonding in graphite can only be modeled with Molecular Orbital Theory.
The bonding in diamond and graphite are different.
The atoms in diamond and graphite are different isotopes of carbon.
The correct answer is option a. and option c.
The properties of diamond and graphite are different, even though they are both composed of pure carbon because the atoms in diamond and graphite have different hybridizations and the bonding in diamond and graphite is different.
In diamonds, carbon atoms are sp3 hybridized, forming a tetrahedral structure with strong covalent bonds, making it hard and rigid. In graphite, carbon atoms are sp2 hybridized, forming planar hexagonal layers with weaker van der Waals forces between the layers, making it soft and slippery.
The bonding in diamond is composed of strong covalent bonds, while in graphite, there are strong covalent bonds within the layers and weaker van der Waals forces between the layers. This difference in bonding leads to the distinct properties of each allotrope.
We can say that the properties of diamond and graphite are different because they have different hybridisation and bonding.
Therefore option a and option c are correct.
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if a reaction is 1st order, how many half-lives are required for 99.9% of the original sample to be consumed?
In a first-order reaction, time required for completion of 99.9% is 10 times of half-life (t1/2) of the reaction.
In a first-order reaction, the rate of the reaction is inversely correlated with the concentration of the reactant. In other words, if the concentration doubles, so does the pace of the reaction. The half-life of a reaction is defined as the amount of time it takes for half of the reactant to be consumed. The half-life of a first-order reaction is given by:
t1/2 = 0.693/k
where k is the rate constant of the reaction.
The chemical kinetics rate law, which connects the molar concentration of reactants to reaction rate, uses the rate constant as a proportionality factor. The letter k in an equation designates it, which is also referred to as the reaction rate constant or reaction rate coefficient.
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a desulfurization reaction involves the conversion of a thioacetal to an alkane by treating the thioacetal with raney nickel. during the reaction, the sulfur atoms of the thioacetal are replaced by hydrogen atoms. desulfurization reactions are a type of:
A desulfurization reaction is a type of hydrogenation reaction, where sulfur atoms in a compound are replaced by hydrogen atoms. In a desulfurization reaction, a thioacetal is treated with Raney nickel, resulting in the conversion of the thioacetal to an alkane.
Desulfurization reactions are a type of chemical reaction that involves the conversion of a thioacetal to an alkane by treating the thioacetal with raney nickel. During the reaction, the sulfur atoms of the thioacetal are replaced by hydrogen atoms.
Desulfurization is the process of converting sulfur-containing chemicals into non-sulfur containing substances by means of a chemical reaction. It is applied in refineries and in the petrochemical industry to lower sulfur emissions. Sulfur emissions contribute to acid rain and other environmental problems.
Therefore, desulfurization is an essential process for reducing pollution caused by sulfur dioxide emissions. In conclusion, desulfurization reactions are a type of chemical reaction that involves the replacement of sulfur atoms with hydrogen atoms. They are used in the petrochemical industry to reduce sulfur emissions and prevent environmental pollution caused by acid rain and other environmental problems.
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