prove that the ideal gas law is a version of the combined gas law at stp

Answers

Answer 1

Answer:

Because universal gas constant and number of moles remains constant.

Explanation:

The ideal gas law is [tex]PV = nRT[/tex].

The combined gas law is [tex]P_1V_1/T_1 = P_2V_2/T_2[/tex].

The difference between the two is just n and R, which stand for the number of moles and the universal gas constant.

Putting the ideal gas law into the combined gas law form, you get [tex]P_1V_1/n_1R_1T_1 = P_2V_2/n_2R_2T_2[/tex].

However, since the number of moles won't change and at STP, the universal gas constant remains constant, you can cross those values out and get the combined gas law.

Answer 2
Final answer:

The ideal gas law is derived from the combined gas law at STP. The ideal gas law equation relates the pressure, volume, and temperature of a gas. At STP, the temperature is 273.15 K (0 °C) and the pressure is 1 atmosphere (atm).

Explanation:

The ideal gas law is derived from the combined gas law at STP (standard temperature and pressure).

The combined gas law equation relates the pressure, volume, and temperature of a gas. At STP, the temperature is 273.15 K (0 °C) and the pressure is 1 atmosphere (atm). Therefore, we can substitute these values into the combined gas law equation to obtain the ideal gas law equation.

The ideal gas law equation is expressed as: PV = nRT, where P is the pressure, V is the volume, n is the number of moles, R is the gas constant, and T is the temperature in Kelvin.

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Related Questions

A separation stream off the main reactor effluent contains almost exclusively ethyl benzene, benzene, and toluene at 1 bar and 100°C. You determine that the stream flow rate is made up of 34 kg/s of benzene, 10 kg/s of toluene, and 5775 kg/s of the other component. You send this mixture into a flash distillation unit operating at 0. 6 bar and 100°C.

A. Estimate if this mixture flashes.

B. If the mixture flashes, determine the composition and amount of the equilibrium liquid and vapor.

C. You send the liquid exiting the flash distillation unit into another flash distillation unit operating at 1. 5 bar and 140°C. Determine if this mixture flashes. If so, determine the composition and amountsof the equilibrium phases.

D. What percentage of the original benzene that left the reactor is now a vapor (you have to consider both flash units)

Answers

A. If the bubble point pressure is less than the operating pressure of the flash unit (0.6 bar), the mixture will flash. B. The final composition and amount of the phases will depend on the initial vapor fraction and the operating pressure. C. We can repeat the calculation in part B to determine the composition and amount of the equilibrium liquid and vapor at the new conditions. D. If the vapor fraction is high, it may indicate that the feed is rich in the more volatile components, such as toluene.

A. To determine if the mixture will flash, we need to compare the bubble point pressure (the pressure at which the first bubble of vapor appears) with the operating pressure of the flash distillation unit. We can use a software tool or a phase equilibrium diagram to calculate the bubble point pressure for the given mixture. If the bubble point pressure is less than the operating pressure of the flash unit (0.6 bar), the mixture will flash.

B. If the mixture flashes, we can calculate the composition and amount of the equilibrium liquid and vapor using the material balance and the equilibrium relationship. We need to assume an initial vapor fraction, and then calculate the vapor and liquid flow rates, and check if the initial assumption is consistent with the equilibrium relationship.

We can repeat this process until we converge to a consistent solution. The final composition and amount of the phases will depend on the initial vapor fraction and the operating pressure.

C. To determine if the mixture will flash at 1.5 bar and 140°C, we need to repeat the same calculation as in part A, but using the liquid exiting the first flash unit as the feed. If the mixture flashes, we can repeat the calculation in part B to determine the composition and amount of the equilibrium liquid and vapor at the new conditions.

D. To calculate the percentage of the original benzene that is now a vapor, we need to add up the vapor flow rates of benzene in both flash units and divide by the total benzene flow rate in the feed. We can use the same approach to calculate the percentage of toluene that is now a vapor.

The percentage will depend on the operating conditions and the composition of the feed. If the vapor fraction is high, it may indicate that the feed is rich in the more volatile components, such as toluene.

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A bomb calorimeter with a heat capacity of 13.9 kJ °C-1 has an initial temperature of 21.9 °C. If 5.00 g of propanal (C3H6O, molar mass = 58.0791 g mol-1, ΔrU = -1822.7 kJ mol-1 for combustion) is combusted, calculate the final temperature of the calorimeter.

Answers

The final temperature of the calorimeter after the combustion of 5.00 g of propanal is 34.7 °C.

What is Heat Capacity?

Heat capacity is a physical property of a substance that describes the amount of heat energy required to raise the temperature of a given amount of the substance by one degree Celsius (or one Kelvin). In other words, heat capacity is the measure of the ability of a substance to store heat energy.

The heat released by the combustion of 5.00 g of propanal is:

q = nΔrU

where n is the number of moles of propanal and ΔrU is the molar heat of combustion. The number of moles of propanal is:

n = mass / molar mass

n = 5.00 g / 58.0791 g mol-1

n = 0.086 mol

Substituting the values:

q = 0.086 mol x (-1822.7 kJ mol-1)

q = -156.6 kJ

The calorimeter absorbs this amount of heat, so the final temperature of the calorimeter can be calculated using the equation:

q = CΔT

where C is the heat capacity of the calorimeter and ΔT is the change in temperature.

Rearranging the equation gives:

ΔT = q / C

Substituting the values:

ΔT = -156.6 kJ / 13.9 kJ °[tex]C^{-1}[/tex]

ΔT = -11.25 °C

Since the initial temperature of the calorimeter is 21.9 °C, the final temperature is:

Final temperature = initial temperature + ΔT

Final temperature = 21.9 °C + (-11.25 °C)

Final temperature = 10.65 °C

Therefore, the final temperature of the calorimeter is 34.7 °C (21.9 °C + 10.65 °C).

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a technician has the measured osmotic pressure of a solution to determine the molar mass of a covalent solute. which other information would need to be measured in order to determine the molar mass?

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In addition to the measured osmotic pressure, the technician would need to know the temperature of the solution and the concentration of the covalent solute in the solution. With this information, the technician could use the formula for osmotic pressure and the van't Hoff factor to calculate the molar mass of the covalent solute.


To determine the molar mass of a covalent solute using osmotic pressure, you'll need to know the following information:

1. Osmotic pressure (π): You've already measured this.
2. Temperature (T): The temperature at which the osmotic pressure was measured. Make sure it's in Kelvin (K).
3. Gas constant (R): Use the ideal gas constant, which is 0.0821 L atm/mol K.
4. Volume (V) and moles (n) of the solute: Measure the volume of the solution and the amount of solute in moles.

With these values, you can use the osmotic pressure equation:

π = (n/V) * R * T

Rearrange the equation to find the molar mass (M) of the covalent solute:

M = (n * R * T) / (π * V)

Now, plug in the values you've gathered to calculate the molar mass of the covalent solute.

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What is the empirical formula of a substance that is 53. 5% c, 15. 5% h, and 31. 1% n by weight?.

Answers

The empirical formula of a substance that is 53. 5% c, 15. 5% h, and 31. 1% n by weight is C₂H₇N.

To determine the empirical formula, we need to convert the percentages to moles. Assume 100 g of the substance, then we have:

53.5 g C / 12.011 g/mol = 4.46 mol C

15.5 g H / 1.008 g/mol = 15.38 mol H

31.1 g N / 14.007 g/mol = 2.22 mol N

We then divide each by the smallest number of moles to get the mole ratio:

C: 4.46 mol / 2.22 mol = 2

H: 15.38 mol / 2.22 mol = 6.92 (rounded to 7)

N: 2.22 mol / 2.22 mol = 1

So the empirical formula is C₂H₇N.

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Bubble carbon dioxide into a saturated solution of calcium oxide. What happens? (A) Nothing. (B) calcium hydroxide precipitates out. (C) calcium carbonate precipitates out. (D) the solution effervesces (i.e., lots of bubbles). (E) the pH of the solution increases. (F) the solution turns red. (G) the solution turns blue.

Answers

(B) Calcium hydroxide precipitates out.

When carbon dioxide is bubbled into a saturated solution of calcium oxide, a chemical reaction occurs, and calcium hydroxide (Ca(OH)2) precipitates out. This reaction is known as the carbonation process, which is used in various industries, such as cement production, sugar refining, and water treatment.

The reaction is as follows: CaO + CO2 + H2O → CaCO3 + H2O. The resulting product is calcium carbonate, which can be further processed to obtain calcium hydroxide.

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True or False:
Assuming argon behaves like an ideal gas, 4.00 g of argon gas was found to occupy a volume of 1.05 L at a pressure of2.80 atm. Therefore, the temperature of the gas is 84.9 ℃.

Answers

The given statement is false. The problem can be solved using the ideal gas law, which states that PV = nRT, where P is the pressure, V is the volume, n is the number of moles, R is the gas constant, and T is the temperature in kelvin. Rearranging this equation gives T = PV/nR.

In the given problem according to ideal gas law, we have P = 2.80 atm, V = 1.05 L, and n = 4.00 g / (39.95 g/mol) = 0.100 mol (using the molar mass of argon). The gas constant R is 0.08206 L·atm/(mol·K). Substituting these values into the equation for T gives:

T = (2.80 atm)(1.05 L)/(0.100 mol)(0.08206 L·atm/(mol·K)) = 334 K

Converting this temperature to degrees Celsius gives:

T = 334 K - 273.15 = 60.9 ℃

Therefore, the statement is false. The temperature of the gas is actually 60.9 ℃, not 84.9 ℃.

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for example, an environmental signal could be required to allow the activator into the nucleus, as is the case for yeast pho4. the activator binds to

Answers

Activation of yeast Pho4 transcription factor requires environmental signal for nuclear entry.

What environmental signal is required for activation of yeast Pho4 transcription factor?

In yeast, the transcription factor Pho4 serves as an activator for genes involved in phosphate metabolism. However, Pho4 requires an environmental signal, specifically low levels of extracellular phosphate, to enter the nucleus and activate gene expression. This is due to the presence of a phosphorylation site on Pho4 that prevents its nuclear localization until it is dephosphorylated by a phosphatase in response to low phosphate levels.

Once dephosphorylated, Pho4 can bind to target gene promoters and activate transcription. This mechanism ensures that genes involved in phosphate metabolism are only expressed when the cells are experiencing phosphate limitation, allowing for efficient resource utilization.

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the energy required to dislodge electrons from cesium metal via the photoelectric effect is 207 kj/mol . what wavelength (in nm ) of light has sufficient energy per photon to dislodge an electron from the surface of cesium? express your answer with the appropriate units.

Answers

The wavelength of light required to dislodge an electron from the surface of cesium is approximately 600.7 nm.

To find the wavelength, we can use the equation E = hc/λ, where E is the energy per photon, h is Planck's constant (6.626 x 10^-34 Js), c is the speed of light (3.00 x 10^8 m/s), and λ is the wavelength. First, we need to convert the given energy (207 kJ/mol) to energy per photon in Joules.

Since 1 mole of photons contains Avogadro's number (6.022 x 10^23) of photons, we can divide the energy by this number:
(207 x 10^3 J/mol) / (6.022 x 10^23 photons/mol) ≈ 3.44 x 10^-19 J/photon

Now we can use the equation:
λ = hc/E
λ = (6.626 x 10^-34 Js) * (3.00 x 10^8 m/s) / (3.44 x 10^-19 J)
λ ≈ 5.76 x 10^-7 m

To express the wavelength in nanometers, we multiply by 10^9:
λ ≈ 576 nm (rounded to three significant figures)

The wavelength of light required to dislodge an electron from the surface of cesium via the photoelectric effect is approximately 576 nm.

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Which one of the following salts produces basic solutions when it is dissolved in water?
a. NaNO3
b. NH4OCl
c. NH4Br
d. NH4I
e. KCl

Answers

The salt that produces a basic solution when dissolved in water is b. NH4OCl. NH4OCl, also known as ammonium hypochlorite, dissociates into NH4+ (ammonium) and OCl- (hypochlorite) ions in water.

The ammonium ion (NH4+) can act as a weak acid, reacting with water to produce NH3 (ammonia) and H3O+ (hydronium) ions. The hypochlorite ion (OCl-) is a weak base, reacting with water to produce OH- (hydroxide) ions and HOCl (hypochlorous acid).

In this reaction, the basicity of the hypochlorite ion (OCl-) is stronger than the acidity of the ammonium ion (NH4+). This means that the solution will have a higher concentration of OH- ions, leading to an increase in the pH and making the solution basic. The other salts mentioned either do not produce basic solutions or produce neutral solutions when dissolved in water.

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matching question match the number of outer electron groups correctly to the molecular shape observed. 4 bonding pairs 4 bonding pairs drop zone empty. 3 bonding pairs and 1 lone pair 3 bonding pairs and 1 lone pair drop zone empty. 2 bonding pairs linear 2 bonding pairs and 2 lone pairs 2 bonding pairs and 2 lone pairs drop zone empty. 3 bonding pairs

Answers

4 Bonding Pairs: The molecular shape observed for four bonding pairs is a tetrahedral shape. 3 Bonding Pairs: The molecular shape observed for three bonding pairs is a trigonal planar shape.

What is molecular shape?

Molecular shape is the three-dimensional arrangement of the atoms that make up a molecule. It is determined by the number of electrons in the outermost energy level of the molecule's atoms, which is known as the valence shell. The shape of a molecule is determined by the electron-pair repulsion theory.

2 Bonding Pairs and 2 Lone Pairs: The molecular shape observed for two bonding pairs and two lone pairs is a bent shape. This means that the molecule is shaped like a "V" with two corners. Each of the two corners is the result of a single covalent bond connecting two atoms. The two lone pairs are located on the two "arms" of the "V" shape.

3 Bonding Pairs and 1 Lone Pair: The molecular shape observed for three bonding pairs and one lone pair is a trigonal pyramidal shape. This means that the molecule is shaped like a pyramid, with three corners. Each of the three corners is the result of a single covalent bond connecting two atoms. The lone pair is located at the fourth corner of the pyramid.

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what about the molecule will make the hydrogen end of the molecule more positive, therefore giving it a greater tendency to ionize?)

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However, in general, the electronegativity of an atom in a molecule can influence the polarity of the molecule, which can affect the distribution of charge and the tendency to ionize.

Electronegativity is a measure of an atom's ability to attract electrons towards itself in a covalent bond. When two atoms with different electronegativities form a covalent bond, the electron density tends to shift towards the more electronegative atom, creating a partial negative charge on that atom and a partial positive charge on the other atom. This creates a dipole moment, which measures the separation of charge within a molecule.

If a molecule has a high degree of polarity, with a large dipole moment, the electrons are not distributed evenly throughout the molecule. The more electronegative atoms in the molecule will have a partial negative charge, and the less electronegative atoms will have a partial positive charge. This creates a molecule with a permanent dipole moment and makes it more likely to ionize.

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A student uses a TLC plate laced with fluorescent dye to spot their compounds. In order to vizualize these compounds under a UV light, the compound must

a. quench the fluorescence of the adsorbant.
b. be pigmented.
c. be non-aromatic.
d. absorb UV light.

Answers

d. absorb UV light. In order to visualize compounds on a TLC plate under UV light, the compounds must be able to absorb UV light, which causes them to fluoresce and appear as a bright spot on the plate.

UV (ultraviolet) light is a type of electromagnetic radiation that is shorter in wavelength than visible light but longer than X-rays. It has a wavelength range of 10 nanometers to 400 nanometers and is divided into three categories: UVA, UVB, and UVC. UVA has a longer wavelength and can penetrate deeper into the skin, causing skin aging and damage. UVB has a shorter wavelength and is responsible for sunburns and the development of skin cancer. UVC has the shortest wavelength and is absorbed by the Earth's atmosphere before it can reach the surface. UV light is present in sunlight, but it can also be produced artificially for various purposes, such as sterilization, water purification, and tanning. However, excessive exposure to UV light can have harmful effects on living organisms, including DNA damage, skin cancer, and eye damage. Therefore, it is important to take precautions and protect yourself from overexposure to UV light.

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2. Calculate the volume in cm³ of oxygen evolved at s.t.p. when a current of 5A is passed through acidified water for 1..(Molar volume of gas at STP =22.4DM³) A..0.056
B..0.224
C..224.000
D..56.0000

Answers

The volume in cm³ of oxygen evolved at STP is 0.056 dm³ and the correct option is option A.

STP stands for standard temperature and pressure. STP refers to a specific pressure and temperature used to report on the properties of matter.

According to IUPAC( International Union of Pure and Applied Chemistry), it is defined as -

Temperature of 0 degree celsius (273K)Pressure of 1 atm

It is generally needed to test and compare physical and chemical processes where temperature and pressure plays an important role as they keep on varying from one place to another.

Given,

Current = 5A

time = 193s

Q = current × time

= 193 × 5

= 965 C

4 × 96500 = 22.4

965 = x

x = ( 22.4 × 965) ÷ ( 4 × 96500)

x = 0.056 dm³

Thus, the ideal selection is option A.

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An automobile engine provides 551J of work to push the pistons and generates 2250J of heat that must be carried away by the cooling system. Calculate the change in internal energy of the engine.a. 551J b. 1102J c. 1699J d. 2250J e. 2801J

Answers

To calculate the change in internal energy of the engine, we need to use the First Law of Thermodynamics, which states that the change in internal energy of a system is equal to the heat added to the system minus the work done by the system.

In this case, the engine provides 551J of work to push the pistons, and generates 2250J of heat that must be carried away by the cooling system. Therefore, the change in internal energy can be calculated as:

ΔU = Q - W
ΔU = 2250J - 551J
ΔU = 1699J

Therefore, the correct answer is (c) 1699J. This means that the internal energy of the engine has increased by 1699J due to the heat generated by the engine, minus the work done by the engine. This information can be useful in designing and optimizing cooling systems for automobiles, to ensure that the excess heat generated by the engine is effectively dissipated and does not negatively impact the engine's performance or longevity.

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For a certain process at 127°C, ΔG = −16.20 kJ and ΔH = −17.0 kJ. What is the entropy change for this process at this temperature? Express your answer in the form, ΔS = ____ J/K.a. −6.3 J/Kb. +6.3 J/Kc. −2.0 J/Kd. +2.0 J/Ke. −8.1 J/K

Answers

To calculate the Entropy change (ΔS) for a certain process at 127°C, we can use the Gibbs free energy equation: ΔG = ΔH - TΔS. First, convert the temperature to Kelvin: T = 127°C + 273.15 = 400.15 K.

Given ΔG = -16.20 kJ and ΔH = -17.0 kJ, we can plug these values into the equation:

-16.20 kJ = -17.0 kJ - (400.15 K)(ΔS)

Now, solve for ΔS:

ΔS = (ΔH - ΔG) / T = (-17.0 kJ + 16.20 kJ) / 400.15 K = -0.002 kJ/K

Since 1 kJ = 1000 J, we can convert ΔS to J/K:

ΔS = -0.002 kJ/K * 1000 J/1 kJ = -2.0 J/K

Therefore, the entropy change for this process at this temperature is ΔS = -2.0 J/K.

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It is important to understand oxidation states in inorganic salts, which are often used as adjuvants in vaccines. Of the following 12 salts, identify the oxidation state on the metal in at least 6 of these salts. You can use the remaining 6 for practice later. a. Al(OH)3 g. Ca3(PO4)2 b. AIPO4 h. MgCl2 C. KAl(SO4)2 i. KC1 d. NaCl j. CaCO3 e. CaCl2 k. KOH f. Na2SO4 1. AICI

Answers

Here are the oxidation states for 6 of the 12 inorganic salts:
a. Al(OH)3: Al has an oxidation state of +3.
b. AIPO4: Al has an oxidation state of +3.
c. KAl(SO4)2: Al has an oxidation state of +3.
e. CaCl2: Ca has an oxidation state of +2.
f. Na2SO4: Na has an oxidation state of +1.
h. MgCl2: Mg has an oxidation state of +2.



The oxidation state, also known as oxidation number, represents the charge an atom would have if all its bonds were considered ionic.

In the given inorganic salts, the oxidation state of the metal is determined by balancing the charges of the other ions.


Summary: Oxidation states are important for understanding inorganic salts. In this case, 6 salts were analyzed and their metal oxidation states were determined as: Al(OH)3, AIPO4, and KAl(SO4)2 with Al having +3; CaCl2 with Ca having +2; Na2SO4 with Na having +1; and MgCl2 with Mg having +2.

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a) How many atoms of lithium are required to equalise the mass of one atom of krypton ?​

Answers

The number of atoms of lithium required to equalize the mass of one atom of krypton is 12.056 atoms

How do i determine the atoms of lithium required?

First, we shall determine the mass of 1 atom of krypton. Details below:

From Avogadro's hypothesis,

6.02×10²³ atoms = 1 mole of Kr

But

1 mole of Kr = 83.798 g

Thus, we can say that

6.02×10²³ atoms = 83.798 g of Kr

Therefore,

1 atom = 83.798 / 6.02×10²³

1 atom = 1.39×10⁻²² g of Kr

Finally, we shall determine the number of atoms of lithium equivalent to 1 atom of Krypton (i.e 1.39×10⁻²² g). Details below:

From Avogadro's hypothesis,

1 mole of Li = 6.02×10²³ atoms

But,

1 mole of Li = 6.941 g

Thus,

6.941 g of Li = 6.02×10²³ atoms

Therefore,

1.39×10⁻²² g of Li = (1.39×10⁻²² g × 6.02×10²³ atoms) / 6.941 g

1.39×10⁻²² g of Li = 12.056 atoms

Thus, from the above calculation, the number of atoms of lithium is 12.056 atoms

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what is the best leaving group in a nucleophilic acyl substitution: group of answer choices none of the above weak acid weak base strong base strong acid

Answers

The best leaving group in a nucleophilic acyl substitution reaction is a weak base.

A good leaving group is a group that can stabilize the negative charge that results from breaking the bond with the substrate. In nucleophilic acyl substitution, the leaving group is often the carboxylate ion (RCO2-). A weak base, such as a carboxylate ion, can stabilize the negative charge on the leaving group better than a strong base. A strong base, such as hydroxide (OH-), is a poor leaving group because it is a strong nucleophile that is likely to attack the electrophilic carbonyl carbon, rather than leaving the molecule. Therefore, in nucleophilic acyl substitution reactions, a weak base is the best leaving group.

what is nucleophilic?

Nucleophilic refers to the ability of a chemical species, such as an atom or a molecule, to donate a pair of electrons to form a new covalent bond with a positively charged or electrophilic species. A nucleophile is a species that donates these electron pairs and is attracted to positively charged or partially positive atoms or molecules, which are called electrophiles.

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Describe the proper use of filter paper in vacuum filtration...

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Filter paper is commonly used in vacuum filtration to separate a solid from a liquid solution. The proper use of filter paper in vacuum filtration involves the following steps:

1. Choose an appropriate filter paper: The filter paper should be of appropriate size and pore size to effectively separate the solid from the liquid solution.

2. Prepare the filtration apparatus: Assemble the filtration apparatus, which includes a filter funnel and a vacuum flask connected to a vacuum source.

3. Wet the filter paper: Wetting the filter paper helps to remove any air bubbles that may trap the solid particles and impede filtration. Place the filter paper in the filter funnel and add a small amount of the liquid solution to wet the paper.

4. Add the liquid solution: Pour the liquid solution to be filtered into the filter funnel, ensuring that it does not overflow the filter paper.

5. Apply vacuum: Turn on the vacuum source and adjust it to a suitable level. The pressure created by the vacuum will pull the liquid through the filter paper, leaving the solid particles behind.

6.Wash the solid particles: Once the filtration is complete, wash the solid particles with a small amount of solvent to remove any impurities or remaining liquid solution.

7.Collect the solid particles: Once the solid particles are washed, carefully remove the filter paper with the solid particles and place it on a watch glass or other appropriate surface to air dry.

By following these steps, the filter paper can be properly used in vacuum filtration to separate a solid from a liquid solution.

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*How should the strength of van der waal forces vary going down a group?

Answers

The strength of van der Waals forces generally increases going down a group in the periodic table, due to increasing molecular size and polarization.

Van der Waals forces are a type of weak intermolecular forces that arise between molecules. These forces can be divided into three categories: London dispersion forces, dipole-dipole interactions, and hydrogen bonding.

Going down a group in the periodic table, the size of the atoms or molecules generally increases. As a result, the strength of London dispersion forces, which are the dominant type of van der Waals forces between nonpolar molecules, increases with increasing atomic or molecular size. This is because larger atoms or molecules have more electrons, which leads to a larger electron cloud and a greater polarization, resulting in stronger London dispersion forces.

Additionally, the dipole moment of polar molecules tends to increase with size as well, due to the greater separation of charge. Therefore, dipole-dipole interactions may also increase slightly going down a group.

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Why is aromatic ring more reactive? (grignard lab)

Answers

The nucelophilicity of aromatic ring makes it more reactive in gregnard reaction.

Why is Grignard reagent more reactive?

A Grignard reagent reacts with electrophiles because the carbon atom in it mimics a carbanion and has a partial negative charge. In order to create new carbon-carbon bonds synthetically, Grignard reagents are highly reactive reactants.

The nucleophilic nature of the alkyl or aryl group determines the reactivity. The nucelophilicity of the alkyl/aryl group affects how reactive the Grignard reagent is.

If the halogen compound additionally contains acidic functional groups, Grignard reagents cannot be produced. Alcohols, phenols, carboxylic acid groups, and acidic hydrogen atoms in water all react to degrade the Grignard reagent.

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Chemical energy for respiration is stored in the bonds of.

Answers

Chemical energy for respiration is stored in the bonds of molecules such as glucose.

Respiration is a process that occurs in cells where energy is produced in the form of ATP molecules. The energy required for this process is derived from the breakdown of organic molecules such as glucose. The energy in glucose is stored in the bonds between its atoms. When glucose is broken down during respiration, these bonds are broken and the energy is released.

Chemical energy is a form of potential energy that is stored in the bonds between atoms in molecules. When these bonds are broken, the energy is released and can be used to do work. Respiration is a process that occurs in cells where energy is produced in the form of ATP molecules. The energy required for this process is derived from the breakdown of organic molecules such as glucose.

Glucose is a simple sugar that is the primary source of energy for most living organisms. The energy in glucose is stored in the bonds between its atoms. When glucose is broken down during respiration, these bonds are broken and the energy is released. This energy is then used to produce ATP, which is the primary energy source for most cellular processes.

The breakdown of glucose during respiration involves several steps. The first step is glycolysis, where glucose is converted into pyruvate. This process produces a small amount of ATP and NADH, which is a molecule that carries high-energy electrons. The pyruvate then enters the mitochondria, where it is further broken down in a process called the Krebs cycle. This process produces more ATP and NADH.

The high-energy electrons carried by NADH are then used in the electron transport chain, which is the final step in respiration. This process involves a series of reactions that release energy from the electrons carried by NADH. This energy is used to pump protons across the inner membrane of the mitochondria, creating a gradient of protons. This gradient is then used to produce ATP in a process called oxidative phosphorylation.

In conclusion, chemical energy for respiration is stored in the bonds of molecules such as glucose. When these bonds are broken down during respiration, the energy is released and used to produce ATP. The process of respiration involves several steps, including glycolysis, the Krebs cycle, and the electron transport chain. These steps work together to produce ATP and provide energy for cellular processes.

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35. In the esterification reactions to produce fragrant esters, the catalyst used was?
HNO3 c. Mg e. NaOH
b. H2SO4 d. NaHCO3

Answers

In the esterification reactions to produce fragrant esters, the catalyst used was H₂SO₄, option B.

Alcohols can be transformed into esters with this technique, but phenols—compounds in which the -OH group is directly connected to a benzene ring—cannot be. Because of how slowly phenols and carboxylic acids react, the process cannot be used for preparation.

When alcohols and carboxylic acids are heated together in the presence of an acid catalyst, esters are created. Usually, concentrated sulfuric acid serves as the catalyst. In rare circumstances, dry hydrogen chloride gas is employed, however these usually include aromatic esters (carboxylic acids with benzene rings in the carboxyl group). You won't need to be concerned about these if you are an A level student in the UK.

It is common practise to warm carboxylic acids and alcohols while adding a few drops of strong sulfuric acid to detect the aroma of the esters that result. Normally, you would use little amounts of everything heated in a test tube while it was placed in a hot water bath for a few minutes.

Not a lot of ester is formed in this period due to the sluggish and reversible reactions. The fragrance of the carboxylic acid frequently obscures or distorts the smell. Pouring the mixture into some water in a tiny beaker is an easy technique to determine the ester's aroma.

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Calculate ΔH
(in kJ/mol
NH4NO3
) for the solution process

NH4NO3(s)→NH+4(aq)+NO−3(aq)

Answers

The resulting H is +365.1 kJ/mol for the reaction of NH₄NO₃(s) → NH⁴⁺(aq) + NO₃(aq), using Hess's law equation.

Because it takes energy to dissolve NH₄NO₃(s) into NH⁴⁺(aq) and NO₃(aq) and break the bonds that bind the ions together in the solid, the process of solution is endothermic. We may figure out H for this procedure using the Hess's Law equation given below:

ΔH(solution) = H (NH⁴⁺(aq)), H (NO₃(aq), and H (NH₄NO₃(s)).

For each species participating in the process, we may look up the typical enthalpies of formation and substitute those values into the equation:

ΔH(solution) = [NH⁴⁺(aq): 0 kJ/mol + NO₃(aq): 0 kJ/mol]. NH₄NO₃(s): -365.1 kJ/mol

ΔH(solution) = 0 kJ/mol, 0 kJ/mol, and 365.1 kJ/mol.

ΔH(solution) = +365.1 kJ/mol

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In the reaction of hydrochloric acid with aluminum, what would the two products be?.

Answers

When hydrochloric acid reacts with aluminum, the two products formed are aluminum chloride and hydrogen gas. The chemical equation for this reaction is:

2HCl + 2Al → 2AlCl3 + H2

The hydrochloric acid (HCl) donates a hydrogen ion (H+) to the aluminum (Al) which then forms aluminum chloride (AlCl3). At the same time, the aluminum loses electrons to become positively charged and these electrons are used to reduce hydrogen ions to form hydrogen gas (H2). The reaction is exothermic and produces a lot of heat and gas, making it useful in various industrial applications.


In the reaction of hydrochloric acid with aluminum, the two products would be aluminum chloride and hydrogen gas. This reaction can be represented by the balanced chemical equation: 6HCl + 2Al → 2AlCl3 + 3H2. Here, hydrochloric acid (HCl) reacts with aluminum (Al) to form aluminum chloride (AlCl3) and hydrogen gas (H2) as the byproduct.

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true or false? an aquarium is divided by a membrane that is not permeable to any ion. if you add 10 mm kcl to one side and 1 mm kcl to the other, the potential difference between the two sides is 58 mv.

Answers

This is a false statement. An aquarium is not divided by a membrane that is not permeable to any ion. Such a membrane is called an ion-selective membrane.

If such a membrane were present in the aquarium, the potential difference between the two sides would indeed be 58 mV, according to the Nernst equation. However, in reality, there would be no potential difference because ions would be able to cross the membrane. In fact, many aquariums use ion-selective membranes to maintain a stable environment for their aquatic organisms. The membrane allows for the regulation of ion concentrations and pH levels in the aquarium. So, in summary, the statement is false because an aquarium is not typically divided by a membrane that is impermeable to ions.

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Which hydroxides are strong bases? Sr(OH)2
KOH NaOH Ba(OH)2 a) KOH, NaOH, Ba(OH)2 b) KOH, NaOH c) KOH, Ba(OH)2 d) Sr(OH)2, KOH, NaOH, Ba(OH)2 e) None of these is a strong base.

Answers

The hydroxides that are strong bases are; KOH, NaOH, Ba(OH)₂. Option A is correct.

Hydroxides are compounds that contain the hydroxide ion (OH⁻) as a negatively charged functional group. The hydroxide ion consists of one oxygen atom and one hydrogen atom, and it has a net charge of -1. Hydroxide ions can act as bases, as they are able to accept protons (H⁺ ions) from other molecules.

The strength of a base depends on its ability to accept protons (H⁺ ions) from water molecules. Strong bases are those that completely dissociate in water, producing high concentrations of hydroxide ions (OH⁻) and are typically group 1 or group 2 metal hydroxides.

Therefore, the hydroxides that are strong bases is; KOH, NaOH, and Ba(OH)₂.

Hence, A. is the correct option.

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What is the pH of a 0.005 M Na3PO4 solution?
(A) 10.80. (B) 9.46. (C) 12.04. (D) 13.28. (E) 11.87. (F) 8.28.

Answers

Na3PO4 is a salt of the weak acid H3PO4, which can undergo multiple deprotonation reactions in water. To determine the pH of the solution, we need to consider the relevant equilibrium reactions:

H3PO4 + H2O ⇌ H2PO4- + H3O+

H2PO4- + H2O ⇌ HPO42- + H3O+

HPO42- + H2O ⇌ PO43- + H3O+

Na3PO4 can be considered a strong electrolyte, meaning that it dissociates completely into its constituent ions in water:

Na3PO4 → 3 Na+ + PO43-

Since PO43- can act as a base, we need to determine whether it will accept or donate a proton in water. To do this, we can use the expression for the acid dissociation constant (Ka) of H3PO4:

Ka = [H2PO4-][H3O+] / [H3PO4]

At equilibrium, the concentrations of H2PO4- and H3O+ will be equal, so we can simplify this expression to:

Ka = [H3O+]^2 / [H3PO4]

Rearranging, we can solve for [H3O+]:

[H3O+] = sqrt(Ka[H3PO4])

We can use the pKa values of H3PO4 to calculate the Ka:

pKa1 = 2.14, pKa2 = 7.20, pKa3 = 12.37

For the first deprotonation, we have:

Ka1 = 10^-pKa1 = 7.5 x 10^-3

[H2PO4-] = [H3O+] = sqrt(Ka1[H3PO4]) = sqrt(7.5 x 10^-3 x 0.005) = 0.038

For the second deprotonation, we have:

Ka2 = 10^-pKa2 = 1.0 x 10^-7

[HPO42-] = [H3O+] = sqrt(Ka2[H2PO4-]) = sqrt(1.0 x 10^-7 x 0.038) = 1.9 x 10^-5

Since the third deprotonation has a very low Ka value, we can assume that PO43- is fully deprotonated in the solution:

[PO43-] = 3 x [Na3PO4] = 0.015

Now, we can use the expression for the base dissociation constant (Kb) of PO43-:

Kb = [HPO42-][OH-] / [PO43-]

At equilibrium, the concentrations of HPO42- and OH- will be equal, so we can simplify this expression to:

Kb = [OH-]^2 / [PO43-]

Rearranging, we can solve for [OH-]:

[OH-] = sqrt(Kb[PO43-])

Kb for PO43- can be calculated using the relation:

Kw = Ka x Kb

Kw is the ion product constant of water and has a value of 1.0 x 10^-14 at 25°C. Therefore:

Kb = Kw / Ka2 = 1.0 x 10^-14 / 1.0 x 10^-7 = 1.0 x 10^-7

[OH-] = sqrt(Kb[PO43-]) = sqrt(1.0 x 10^-7 x 0.015) = 3.9 x 10^-

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addition of hcl to 3-methyl-1-pentene gives two products. one of these is 2-chloro-3-methylpentane. what is the other product

Answers

The other product formed from the addition of HCl to 3-methyl-1-pentene is 1-chloro-3-methylpentane. This is because the HCl can add to the double bond in two different orientations,

leading to the formation of two possible products. The long answer would involve discussing the mechanism of the reaction and how the different orientations of HCl addition can lead to different products.when HCl is added to 3-methyl-1-pentene, it gives two products. One of them is 2-chloro-3-methylpentane,

as you mentioned. The other product is 3-chloro-3-methylpentane. This occurs due to the addition of HCl across the double bond in the alkene, leading to the formation of two different alkyl halides depending on the position of the chlorine atom.

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Classify each change as exothermic or endothermic.
a) water freezing into ice
b) natural gas burning

Answers

Exothermic and endothermic are terms used to describe two types of processes that involve energy transfer. In an exothermic process, energy is released from the system into the surroundings, resulting in a decrease in the internal energy of the system and an increase in the energy of the surroundings. This release of energy is often in the form of heat, but it can also be in the form of light or other forms of radiation. Examples of exothermic processes include combustion reactions, such as burning of fuel, and condensation of gases.

a) Water freezing into ice is an exothermic change because it releases heat to the surroundings. The water molecules lose kinetic energy and form a more ordered structure as ice crystals, which leads to a decrease in the internal energy of the system and an increase in the energy of the surroundings.

b) Natural gas burning is an exothermic change because it releases heat to the surroundings. The chemical reaction between natural gas (mainly methane) and oxygen produces carbon dioxide and water vapor, along with a release of energy in the form of heat and light. This heat can be used for various purposes, such as heating homes or generating electricity.

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