_______ WILL BOIL AT A TEMPERATURE SAME WITH 2 m sugar solution

Answers

Answer 1

The boiling point of the liquid depends upon the pressure of the surrounding. A liquid at high pressure has a higher boiling point than the boiling point at normal atmospheric pressure. Here any solution with 2m concentration will boil at a same temperature.

The temperature at which the vapor pressure of the liquid becomes equal to the atmospheric pressure of the liquids environment is the boiling point. It is at this temperature, the liquid is converted into a vapour.

Since on increasing the number of moles the molality also increases and is directly proportional to an elevation in boiling point. So any solution  with 2m concentration boil at same temperature.

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Related Questions

DUE TODAY... HELPPP
Part 1:
Make a graph of each set of data. For the first set, plot the start location data on the x-axis and the box's average slide distance on the y-axis. For the second set of data, plot the mass of the marble on the x-axis and the average distance the box slides on the y-axis.
Four start locations were chosen for this experiment. Why was the potential energy of the marble different at each location?
What happened to the potential energy as the ball rolled down the ramp?
Why did the box slide backwards when the marble hit it?
What kind of energy did the box have as it was sliding? Where did this energy come from?
What is the relationship between the marble's starting position and the distance the box slid?
Part 2:
All the marbles started at the 40-cm mark in this experiment. Were their potential energies the same? Why or why not?
Comparing the marbles, was there any difference in the average amount that the box slid after catching the marble? What is the relationship?
Do all of the marbles have the same amount of kinetic energy at the end of the ramp? How can you tell?
Write a summary paragraph discussing this experiment and the results. Use the following questions and topics to help guide the content of your paragraph.

According to your data, was your hypothesis for each experiment correct? (Be sure to refer to your data and graphs when answering this question.)
Summarize the conclusions that you can draw from this experiment. Use the questions above to guide your ideas.
Summarize any difficulties or problems you had in performing the experiment that might have affected the results. Describe how you might change the procedure to avoid these problems.
Give at least one more example from real life where the principles demonstrated in this lab are evident.

Answers

Answer:

Here is my project that I turned in for this assignment :) It has all the answers including the graph, answers to the questions, and the summary paragraph. I also labeled the parts to make it easier for you see which part is which. Lastly I'm very sorry if my handwriting is not readable for you :( but I tried my best to help.

Explanation:

a liquid is less fluid than a gas because 9 of 10. select choice attractions interfere with the ability of particles to flow past one another. T/F

Answers

The given statement "A liquid is less fluid than a gas because 9 of 10. select choice attractions interfere with the ability of particles to flow past one another" is True.

A liquid is less fluid than a gas because of the intermolecular attractions that exist between its particles. In liquids, the molecules are more closely packed and have stronger intermolecular forces compared to gases. These intermolecular attractions interfere with the ability of the particles to flow past one another, making liquids less fluid than gases.

In gases, the particles are farther apart, and the intermolecular forces are weaker. The weak intermolecular forces between gas particles allow them to move freely and quickly, resulting in high fluidity. The particles can easily slide past one another, and the gas can fill any container it is placed in.

Therefore, due to the strong intermolecular forces present in liquids, their particles cannot flow past each other as easily as gas particles can. This results in liquids being less fluid than gases, and they take the shape of the container in which they are placed. In summary, the statement "a liquid is less fluid than a gas because 9 of 10 select choice attractions interfere with the ability of particles to flow past one another" is true.

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The H20 ion concentration of a solution is 1 x 10-4 mole per liter. This solution is

A) acidic and has a pH of 4

C) acidic and has a pH of 10

B) basic and has a pH of 10

D) basic and has a pH of 4

Answers

The H₂0 ion concentration of a solution is (1 x 10⁻⁴) mole per liter. To determine the pH of the solution, we can use the equation pH = -log[H+], where [H+] represents the hydrogen ion concentration. The correct answer is A) acidic and has a pH of 4.

In this case, the hydrogen ion concentration is (1 x 10⁻⁴) mole per liter. Taking the negative logarithm of this concentration, we have:

pH = -log((1 x 10⁻⁴)) = -(-4) = 4

Therefore, the solution is acidic and has a pH of 4.

The correct answer is A) acidic and has a pH of 4.

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The lost isle of change escape room answers

Answers

Whereas physical changes entail a change in a substance's physical attributes without the creation of new substances, chemical changes involve the rearranging of atoms and the creation of new substances.

According to the concept of "The Lost Isle of Change," once a material experiences a chemical shift, it is difficult to restore it to its previous condition, much like an island that vanishes after it has sunk. Nonetheless, substances that are changing physically are frequently simple to reverse, much like an island that may reemerge as the sea recedes. In conclusion, physical changes frequently entail a change in physical attributes, whereas chemical changes involve the synthesis of new substances and are reversible. The irreversibility of chemical changes is symbolised by "The Lost Island of Change."

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Full Question

What is the difference between chemical and physical changes, and how do they relate to the concept of "The Lost Isle of change"?

True or false: Based on the balanced equation N2 (g) + 3H2 (g) â 2NH3 (g), the rate law is given by rate = k[N2][H2]3

Answers

True because the rate law is determined experimentally and is based on the stoichiometry of the balanced chemical equation. In this case, the balanced equation N2 (g) + 3H2 (g) -> 2NH3 (g) shows that the reaction rate is proportional to the concentrations of N2 and H2. The exponents in the rate law are determined experimentally through the method of initial rates.

Answer:

true

Explanation:

What mass of Fe2O3 must be reacted to generate 324 grams of Al2O3? Fe2O3 + 2Al → 2Fe + Al2O3

Answers

The stoichiometric concept is used here to determine the mass of Fe₂O₃. The term chemical stoichiometry is the quantitative study of the reactants and products involved in a chemical reaction. Here the mass of Fe₂O₃ is 507 g.

Stoichiometry is an important concept in chemistry which helps us to use the balanced chemical equations to find out the mass of products and reactants. Here we make use of the ratios from the balanced equation.

The molar masses of Fe₂O₃ and Al₂O₃ are 159.687 g and 101.961 g, respectively.

Mass of Fe₂O₃ = 324 g Al₂O₃ × 1 mol Al₂O₃ / 101.961 g Al₂O₃ × 1 mol Fe₂O₃/ 1 mol Al₂O₃ × 159.687 g Fe₂O₃ / 1 mol Fe₂O₃ = 507 g

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does a mixture of water (1) and 1-butanol (2) form a miscibility gap at 928c? if it does, what is the range of compositions over which this miscibility gap exists? note: you know that the van laar parameters for this system are as follows: l12

Answers

Yes, a miscibility gap exists for a mixture of water and 1-butanol at 928C. The range of compositions over which this gap exists is between the eutectic point and the upper cloud point.

The eutectic point is the composition where the two components form two liquid phases, and the upper cloud point is the composition where the two components form a single liquid phase.

The van Laar parameters for this system (L12) indicate the degree to which changes in temperature, pressure, and composition affect the relative solubility of the two components.

For a mixture of 1-butanol and water at 928C, the relative solubility of the two components decreases as the composition deviates from the eutectic point, resulting in a miscibility gap. The range of compositions over which this gap exists is determined by the van Laar parameters.

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list the acid, base, conjugate acid, and conjugate base, in that order, for the following reaction: hoci(aq) h20(1)

Answers

In the reaction: HOCl(aq) + H₂O(l), the acid, base, conjugate acid, and conjugate base are as follows:

1. Acid: HOCl(aq) - This is the acid because it donates a proton (H⁺) in the reaction.
2. Base: H₂O(l) - This is the base because it accepts a proton (H⁺) from the acid.
3. Conjugate Acid: H₃O⁺(aq) - After H₂O accepts a proton from HOCl, it forms the conjugate acid H₃O⁺.
4. Conjugate Base: OCl⁻(aq) - After HOCl donates a proton, it forms the conjugate base OCl⁻.

So, in the end the reaction can be written as: HOCl(aq) + H₂O(l) ⇌ H₃O⁺(aq) + OCl⁻(aq).

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Determine the pH (a) before any base has been added, (b) at the half-equivalence point, and (c) at the equivalence point for the titration of 0.5 L of 0.1 M naproxen (pKa = 4.2) solution. Assume the buret holds 0.01 M NaOH solution.

Answers

Before any base is added, the pH of the naproxen solution is 2.60. At the half-equivalence point, the pH of the naproxen solution is 3.10. At the equivalence point, the pH of the naproxen solution is not provided in the given information.

Naproxen is a weak acid, and its dissociation reaction can be written as follows:

Naproxen (HA) ⇌ Naproxen⁻ (A⁻) + H⁺

The equilibrium constant expression for this reaction can be written as:

Ka = [A⁻][H⁺]/[HA]

where Ka is the acid dissociation constant, [A⁻] is the concentration of the conjugate base, [H⁺] is the concentration of hydrogen ions, and [HA] is the concentration of the weak acid.

The pKa of naproxen is given as 4.2, which means that:

pKa = -log Ka

4.2 = -log Ka

Ka = 10^(-4.2)

Ka = 6.31 x 10⁻⁵

(a) Before any base has been added, the concentration of H⁺ ions can be calculated using the expression:

Ka = [A⁻][H⁺]/[HA]

At the start of the titration, the concentration of the weak acid HA is 0.1 M, and the concentration of its conjugate base A^- is zero. Therefore, we can write:

Ka = [H⁺][A⁻]/[HA]

[H^+] = sqrt(Ka x [HA])

[H^+] = sqrt(6.31 x 10^(-5) x 0.1) = 2.52 x 10⁻³M

pH = -log[H⁺] = -log(2.52 x 10⁻³) = 2.60

Therefore, the pH before any base has been added is 2.60.

(b) At the half-equivalence point, half of the weak acid has been neutralized by the added base. At this point, the moles of weak acid and the moles of added base are equal. Therefore, the concentration of the weak acid and the conjugate base are equal.

At the half-equivalence point, the number of moles of NaOH added is:

0.5 L x 0.01 M = 0.005 moles

Since naproxen is a monoprotic acid, the number of moles of weak acid at the half-equivalence point is also 0.005 moles. Therefore, the concentration of weak acid is:

[HA] = 0.005 moles / 0.5 L = 0.01 M

At the half-equivalence point, the concentration of the conjugate base is also 0.01 M.

The equilibrium constant expression can be written as:

Ka = [A⁻][H⁺]/[HA]

At the half-equivalence point, [A⁻] = [HA] = 0.01 M. Therefore,

Ka = [H⁺]² / 0.01

[H^+] = sqrt(Ka x 0.01) = sqrt(6.31 x 10⁻⁵ x 0.01) = 7.94 x 10⁻⁴ M

pH = -log[H⁺] = -log(7.94 x 10⁻⁴) = 3.10

Therefore, the pH at the half-equivalence point is 3.10.

(c) At the equivalence point, all of the weak acid has been neutralized by the added base. Therefore, the concentration of the weak acid is zero, and the concentration of the conjugate base is equal to the initial concentration of the weak acid.

The number of moles of NaOH added at the equivalence point is:

0.5 L x 0.01 M = 0.005 moles

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The main hazard associated with using centrifuges is
- Broken tubes
- Aerosol formation from spinning the sample too rapidly
- Unbalanced samples leading to excessive vibration and rotor destruction
- Spilling samples since centrifuge tubes have round bottoms

Answers

The main hazards associated with using centrifuges include broken tubes, aerosol formation, unbalanced samples, and spilling samples.

Broken tubes can occur when the centrifuge tubes are damaged or overfilled, leading to leakage or breakage during operation. This can result in sample loss, contamination, and damage to the centrifuge rotor and other tubes.
The aerosol formation is another hazard, that occurs when the sample is spun too rapidly. High-speed centrifugation can cause the release of tiny liquid droplets, forming an aerosol. This can lead to the spread of hazardous materials or infectious agents, posing a risk to the user and environment.
Unbalanced samples pose a significant hazard as they can cause excessive vibration during centrifugation. This imbalance can lead to rotor destruction, which may damage the centrifuge and result in costly repairs or replacement. To prevent this, ensure equal sample volumes and masses are loaded symmetrically across the rotor.
Lastly, spilling samples is a risk since centrifuge tubes have round bottoms. Spilt samples can contaminate other samples, the rotor, and the centrifuge chamber, affecting the integrity of the experiment. To minimize this risk, securely cap the tubes and handle them with care when loading and unloading the centrifuge.
In conclusion, to ensure safety and accurate results when using a centrifuge, be mindful of potential hazards such as broken tubes, aerosol formation, unbalanced samples, and spilling samples. By taking necessary precautions and following proper procedures, these risks can be mitigated.

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5. Calculate the pH of the solution at the endpoint Ks=2. 2 x 10-10 OH (aq) + HT (aq) T2-(aq) +H2O (1) pt--1109EH,0

6. Compare the ph of the endpoint recorded in your data sheet to that calculated in q5. Comment on its similarity or difference

Answers

The pH at the endpoint recorded in the datasheet should be compared to this calculated pH value. If they are similar, it indicates that the endpoint of the titration was reached accurately and precisely.

OH- (aq) + HT (aq) ⇌ T2- (aq) + H2O (l)

I 0.1 M 0 0

C -x -x +x

E 0.1-x -x +x

Ks = [T2-][H+]/[HT][OH-] = 2.2 x 10^-10

Substituting the concentrations into the expression:

2.2 x [tex]10^{-10}[/tex] = x²/(0.1-x)²

x = 1.48 x [tex]10^{-6}[/tex]

Since [OH-] = 1.48 x [tex]10^{-6}[/tex]M and [H+] = [OH-], the pH of the solution at the endpoint is:

pH = -log[H+] = -log[OH-] = -log(1.48 x [tex]10^{-6}[/tex]) = 5.83

pH is a measure of the acidity or basicity of a solution, with pH values ranging from 0 to 14. It is defined as the negative logarithm of the concentration of hydrogen ions in the solution. A solution with a pH of 7 is considered neutral, indicating an equal concentration of hydrogen ions and hydroxide ions.

Solutions with a pH less than 7 are considered acidic, indicating a higher concentration of hydrogen ions, while solutions with a pH greater than 7 are considered basic or alkaline, indicating a higher concentration of hydroxide ions. The pH scale is logarithmic, meaning that a change in one pH unit represents a tenfold change in the concentration of hydrogen ions. For example, a solution with a pH of 4 is ten times more acidic than a solution with a pH of 5.

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Complete the following neutralization reaction between an acid and a base. Do not include the states of matter in the equation, and do not write coefficients of "1. ". H_2 CO_3+. KOH----->

Answers

The neutralization reaction between an acid and base is given as,

"H₂CO₃ + KOH → K₂CO₃ + H₂O"

Generally a neutralization reaction is usually described as a chemical reaction which involves reaction of an acid and a base and they react quantitatively together in order to form a salt and water as by-products. Basically in a neutralization reaction, a combination of H⁺ ions and OH⁻ ions is present which effectively forms water.

So, the products formed from neutralization reactions are salt and water. Generally the pH of the salt and water solution is always neutral (pH =7).

Hence, the neutralization reaction is given as,

"H₂CO₃ + KOH → K₂CO₃ + H₂O"

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According to newtons second law of motion, if a force remains the same but mass increases, then acceleration will

Answers

According to Newton's second law of motion, if force remains the same but mass increases, then acceleration will decrease.  Therefore, option (c) decrease is the correct answer.

This can be represented by the equation F=ma, where F is the force applied, m is the mass of the object, and a is the resulting acceleration. If the force is constant and the mass increases, the acceleration must decrease in order to maintain the equation's balance.   As the mass increases, it becomes more difficult for the force to accelerate the object at the same rate. The increased mass creates greater inertia, resisting changes in motion and resulting in a decrease in acceleration.

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Full Question ;

According to newton's second law of motion, if force remains the same but mass increases, then acceleration will ______

a. increase

b. stay the same

c. decrease

d. not be measurable

General anode efficiency rating of magnesium?
A) 20%
B) 60%
C) 80%
D) 90%
E) 50%

Answers

The efficiency rating of a general anode made from magnesium is typically around 50%. This means that roughly half of the anode material will be consumed during the process of protecting the metal structure from corrosion. However, the actual efficiency of a magnesium anode can vary depending on a number of factors.

The composition of the surrounding electrolyte, the size and shape of the anode, and the current density applied to the system. Despite its relatively low efficiency rating, magnesium is a popular choice for general anodes because it is lightweight, cost-effective, and highly effective at preventing corrosion in many different environments. Magnesium anodes are commonly used in marine applications, as well as in the oil and gas industry, where they are used to protect pipelines and other metal structures from corrosion caused by exposure to saltwater or other harsh conditions. In order to ensure the most effective protection against corrosion, it is important to carefully select and properly install the appropriate anode for a given application. This may involve consulting with an expert in corrosion prevention or conducting testing to determine the optimal anode material and configuration for a particular system.

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Arrange the following samples in order of increasing number of oxygen atoms:
1 mol H (lower) 2 then O
1 mol CO (lower)2
3x10^23 molecules O (lower)

Answers

To determine the number of oxygen atoms in each sample, we can use the chemical formulas and Avogadro's number.

- 1 mol H2O: 2 atoms of hydrogen and 1 atom of oxygen per molecule, so 1 mol contains 2 mol of hydrogen atoms and 1 mol of oxygen atoms, or 1 x 6.022 x 10^23 atoms = 6.022 x 10^23 atoms of oxygen
- 1 mol CO2: 1 atom of carbon and 2 atoms of oxygen per molecule, so 1 mol contains 2 mol of oxygen atoms, or 2 x 6.022 x 10^23 atoms = 1.2044 x 10^24 atoms of oxygen
- 3x10^23 molecules O2: 2 atoms of oxygen per molecule, so 3x10^23 molecules contain 2 x 3 x 10^23 atoms = 6 x 10^23 atoms of oxygen

Therefore, the samples in order of increasing number of oxygen atoms are:
1 mol H2O < 3x10^23 molecules O2 < 1 mol CO2

Calculate the molar solubility and the solubility in g/L of each salt at 25 degreeC: (a) PbF2 Ksp = 4. 0 x 10^-8 ______ x 10^___ M ______ g/L (b) Ag2C03 Ksp = 8. 1 x 10^-12 ____ x 10^____ M ______ x 10^_____ g/L (c) Bi2S3 Ksp = 1. 6 x 10-72 ______ x 10^____ M _____ x 10^_____ g/L Enter all of your answers in scientific notation except the solubility of (a)

Answers

The Molar solubility and the solubility of each salt at 25°C.

(a) PbF₂ Ksp = 4.0 x 10⁻⁸ ,  1.8 x 10⁻⁷ M, 4.41 x 10⁻⁵  g/L

(b) Ag₂CO₃ Ksp = 8.1 x 10⁻¹²,  1.2 x 10⁻⁴ M,  0.0398 g/L

(c) Bi₂S₃ Ksp = 1.6 x 10⁻⁷² , 3.2 x 10⁻¹⁶M,  1.65 x 10⁻¹³ g/L

(a) PbF₂:

Ksp = [Pb₂+][F-]²

Let x be the molar solubility of PbF₂. Then, [Pb2+] = x and [F-] = 2x. Substituting into the Ksp expression and solving for x:

4.0 x 10⁻⁸ = x*(2x)²

x = 1.8 x 10⁻⁷ M

To convert to g/L, we need to multiply by the molar mass of PbF₂ (245.2 g/mol):

solubility = 1.8 x 10^-7 * 245.2 = 4.41 x 10⁻⁵ g/L

(b) Ag₂CO₃:

Ksp = [Ag+]²[CO₃²⁻]

Let x be the molar solubility of Ag₂CO₃. Then, [Ag+] = 2x and [CO₃²⁻] = x. Substituting into the Ksp expression and solving for x:

8.1 x 10⁻¹² = (2x)² * x

x = 1.2 x 10⁻⁴ M

To convert to g/L, we need to multiply by the molar mass of Ag2CO3 (331.8 g/mol):

solubility = 1.2 x 10⁻⁴ * 331.8 = 0.0398 g/L

(c) Bi₂S₃:

Ksp = [Bi³⁺]²[S²⁻]³

Let x be the molar solubility of Bi₂S₃. Then, [Bi3+] = 2x and [S2-] = 3x. Substituting into the Ksp expression and solving for x:

1.6 x 10⁻⁷² = (2x)²*(3x)³

x = 3.2 x 10⁻¹⁶

To convert to g/L, we need to multiply by the molar mass of Bi₂S₃ (514.2 g/mol):

solubility = 3.2 x 10⁻¹⁶ * 514.2 = 1.65 x 10⁻¹³ g/L

In summary, using the suitable Ksp formula and solving for the unknown variable, we can compute the molar solubility and solubility in g/L of salt at a particular temperature. The molar solubility is represented in M units, but the solubility in g/L is calculated by multiplying the molar solubility by the salt's molar mass. The Ksp value indicates the salt's dissolving equilibrium constant and gives information on the relative solubility of various salts under the same circumstances.

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Use the table to answer the question.
Reaction
Bonds Present
CH4 +4Cl2 CCl4 +4HCI
Reactants
4 H-C
4 CI-CI
Energy of Bonds Broken (Reactants) / Formed (Products) 4 x 411 kJ/mol
4 x 242 kJ/mol
Which statement about the change in bond energy of this reaction is correct?
Products
4 C-CI
4 H-CI
4x327 kJ/mol
4x427 kJ/mol

Answers

The enthlpy of the reaction can be calculated as 720 kJ/mol.

What is the enthalpy of the reaction?

Enthalpy is a thermodynamic property that is related to the internal energy and the work done by or on a system. If the enthalpy change is positive, it means that the reaction is endothermic and absorbs heat from the surroundings.

We know that reaction enthalpy = Bonds broken - Bonds formed

Thus we have that;

[4(413) + 4(240)] - [4(416) + 4(432)]

(1652 + 960) - (1664 + 1728)

2612 - 1892

= 720 kJ/mol

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How many grams of LiCI (Lithium chloride) (molar mass = 42.0 g/mol) would be
needed to prepare 350 ml of 0.630 M LiBr solution?

I need the steps…

Answers

9.21g is the mass in gram of LiCI (Lithium chloride) (molar mass = 42.0 g/mol) would be needed to prepare 350 ml of 0.630 M LiBr solution.

A body's mass is an inherent quality. Prior to the discoveries of the atom as well as particle physics, it was widely considered to be tied to the amount of matter within a physical body.

It was discovered that, despite having the same quantity of matter in theory, different atoms and elementary particles have varied masses. There are various conceptions of mass in contemporary physics that are theoretically different but physically equivalent.

Molarity = number of moles/ volume of solution in liter

volume = 350/1000=0.35L

0.630 = number of moles/ 0.35

number of moles= 0.22

mass = 0.22× 42.0

         =9.21g

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For each of the following pairs, predict which substance possesses the larger entropy per mole.

PART A:

Compare 1 mol of NO(g) at 300 ∘C, 0. 01 atm and 1 mol of NO2(g) at 300 ∘C, 0. 01 atm.

When comparing NO(g)and NO2(g), one mole of________ at 300 ∘Cand 0. 01 atm possesses the larger entropy per mole.

at 300 ∘C and 0. 01 atm possesses the larger entropy per mole.

This is best explained because it _______________

choices: NO(g), occupies a larger volume, NO2(g), has more freedom of movement in aq solution & is more complex molecule with more vibrational degrees of freedom

PART B:

Compare 1 mol of H2O(g) at 100 ∘C, 1 atm and 1 mol of H2O(l) at 100 ∘C, 1 atm.

PART C:

Compare 0. 5 mol of O2(g) at 298 K, 20-L volume and 0. 5 CH4(g) at 298 K, 20-L volume.

PART D

Compare 100 g Na2CO3(s) at 30 ∘C and 100 g Na2CO3(aq) at 30 ∘C

Answers

When comparing NO(g) and NO₂(g) at 300 ∘C and 0.01 atm, one mole of NO₂(g) possesses the larger entropy per mole. When comparing H₂O(g) and H₂O(l) at 100 ∘C and 1 atm, one mole of H₂O(g) possesses the larger entropy per mole. When comparing O₂(g) and CH₄(g) at 298 K and 20-L volume, one mole of O₂(g) possesses the larger entropy per mole. When comparing Na₂CO₃(s) and Na₂CO₃(aq) at 30 ∘C, they have the same entropy per mole .

PART A: When comparing NO(g) and NO₂(g) at 300 ∘C and 0.01 atm, one mole of NO₂(g) possesses the larger entropy per mole.

This is best explained because NO₂(g) is a more complex molecule than NO(g) with more vibrational degrees of freedom. This means that NO₂(g) has more ways in which it can store energy, leading to a higher entropy.

PART B: When comparing H₂O(g) and H₂O(l) at 100 ∘C and 1 atm, one mole of H₂O(g) possesses the larger entropy per mole.

This is because in the gaseous state, H₂O molecules have more freedom of movement and can occupy a larger volume, leading to a higher entropy.

PART C: When comparing O₂(g) and CH₄(g) at 298 K and 20-L volume, one mole of O₂(g) possesses the larger entropy per mole. This is because O₂(g) is a diatomic molecule with more degrees of freedom than CH₄(g), which has a more complex structure with fewer degrees of freedom.

PART D: When comparing Na₂CO₃(s) and Na₂CO₃(aq) at 30 ∘C, they have the same entropy per mole since the state of matter (solid or aqueous) does not affect the entropy of a substance.

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You have 700,000 atoms of a radioactive substance. After 4 half-lives have past, how many atoms remain?

Remember that you cannot have a fraction of an atom, so round the answer to the nearest whole number

Answers

Atoms in radioactive materials naturally decay. They are capable of emitting gamma radiation, beta radiation, and alpha radiation.

Thus, They cannot be turned off, so controlling them is more challenging than controlling X-ray sources. Gamma radiation emitters that can be utilized for industrial radiography, like iridium 192, can be used to radiograph thick portions of steel and other metals.

These are also utilized within shielded enclosures, however because the sources cannot be electrically shut off, they are kept inside protected containers.

The source is projected from the container through a guide tube to the area of use, then retracted.

Thus, Atoms in radioactive materials naturally decay. They are capable of emitting gamma radiation, beta radiation, and alpha radiation.

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When you look at the structure of DNA, what are the reasons DNA can be collected at the interface of both solutions? Draw a picture if that helps you explain your answer

Answers

When DNA is placed between the interface of both solutions, it goes through electrostatic interaction or electrostatic attraction.

As DNA is a negatively charged molecule DNA is placed between the interface of both solutions, it undergoes the electrostatic interaction. It interacts with the charged species present in the solution, such as cations (positively charged ions) and anions (negatively charged ions).

It interacts with both solutions and forms a layer of ions between the interface of the two solutions. It helps in the stabilization of the DNA in the interface layer.

In the case of water and ethanol solution, ethanol molecules interact with the hydrophobic bases of DNA, while the water molecules interact with the hydrophilic sugar-phosphate backbone. This stabilizes the DNA molecule at the interface of the two solutions.

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choose the bond below that is least polar. choose the bond below that is least polar. c-o c-as c-h p-f c-f

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The least polar bond among the given options is C-H.

When the atoms in a covalent connection have various electronegativities—the capacity of an atom to draw electrons toward it—the result is polarity. The bond becomes more polar as the difference in electronegativity between the two atoms increases.

Carbon (C) and hydrogen (H) are the two alternatives that have the smallest electronegativity differences, with C having an electronegativity of 2.55 and H having an electronegativity of 2.20 on the Pauling scale. The C-H bond is therefore the least polar bond available among the choices.

The remaining bonds on the list, in comparison, have bigger disparities in electronegativity, which increases bond polarity. For instance, the C-O bond is a polar bond because of the higher electronegativity gap between C and O. The P-F and C-F bonds, which are the most polar of the available possibilities, also have the highest electronegativity discrepancies.

In conclusion, the C-H bond is the least polar bond among the available possibilities because of the minimal difference in electronegativity between the two atoms.

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1.9329 of copper was obtained when 2.418g of cupric oxide was reduced and 2.806g of copper was obtained when 3.159 g of cupric oxide was reduced. How are these in agreement with the law of multiple proportons?

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The results of the experiments can be said to be in line with the law of multiple proportions.

What is the law of multiple proportions?

The law of multiple proportions states that when two elements combine to form two or more compounds, the ratio of the masses of one element that mix with a fixed mass of the other element can be expressed in whole numbers.

In the two experiments, it is obvious that the ratio of the copper to the oxygen in the compounds are almost the same and this is in line with the statement of the law of multiple proportions.

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a heating curve illustrates select one: a. what a substance looks like as it is heated. b. what happens to the particles of a substance as it is heated. c. what happens to the heat applied as the temperature is increased. d. the changes in the temperature and physical state of a substance as it is heated. e. the chemical changes that occur as the substance is heated.

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A heating curve illustrates the changes in the temperature and physical state of a substance as it is heated (Option D).

The changes in the temperature and physical state shows how the substance absorbs heat and undergoes changes in its physical state, such as melting or boiling, as its temperature increases. It does not illustrate chemical changes that may occur. It also indicates phase transitions, such as melting and boiling points, where the substance changes its physical state.

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Consider a disordered crystal of monodeuteriomethane in which each tetrahedral CH3D molecule is oriented randomly in one of four possible ways.
14 molecules: S=2.68x10^-22 J/K
A.) Use Boltzmann's formula to calculate the entropy of the disordered state of a crystal if the crystal contains 140 molecules.
B.) Use Boltzmann's formula to calculate the entropy of the disordered state of the crystal if a crystal contains 1 mol of molecules
C.) What is the entropy of the crystal if C--D bond of each of the CH3D molecules points in the same direction? Crystal contains 14 molecules.
D.) What is the entropy of the crystal if C--D bond of each of the CH3D molecules point in same direction? Crystal contains 140 molecules.
E.) What is the entropy of the crystal if C--D bond of each of the CH3D molecules points in the same direction? Crystal contains 1 mol of molecules.

Answers

Monodeuteriomethane is a type of molecule that contains one deuterium atom and three hydrogen atoms. In a disordered crystal of monodeuteriomethane, each tetrahedral CH3D molecule can be oriented randomly in one of four possible ways.

A) Using Boltzmann's formula, the entropy of the disordered state of a crystal containing 140 molecules can be calculated as S = klnW, where k is Boltzmann's constant and W is the number of microstates. The number of microstates for a crystal containing 140 molecules can be calculated as W = 4^140. Thus, S = kln(4^140) = 140kln4 + ln(140!) ≈ 1.69 × 10^25 J/K. B) To calculate the entropy of the disordered state of a crystal containing 1 mol of molecules, we need to know the Avogadro's number, which is approximately 6.022 × 10^23 molecules/mol. Thus, the number of molecules in 1 mol of monodeuteriomethane is 4 × 6.022 × 10^23 = 2.409 × 10^24 molecules. Using Boltzmann's formula, the entropy can be calculated as S = klnW, where W = 4^(2.409 × 10^24). Therefore, S ≈ 4.58 × 10^51 J/K. C) If the C-D bond of each of the CH3D molecules points in the same direction in a crystal containing 14 molecules, then there are only two possible orientations for each molecule. Thus, the number of microstates is W = 2^14, and the entropy can be calculated as S = kln(2^14) = 14kln2 ≈ 9.09 × 10^-22 J/K. D) If the C-D bond of each of the CH3D molecules points in the same direction in a crystal containing 140 molecules, then the number of microstates is W = 2^140, and the entropy can be calculated as S = kln(2^140) = 140kln2 ≈ 9.09 × 10^-20 J/K. E) To calculate the entropy of the crystal if the C-D bond of each of the CH3D molecules points in the same direction in a crystal containing 1 mol of molecules, we need to know the Avogadro's number. Thus, the number of molecules in 1 mol of monodeuteriomethane is 4 × 6.022 × 10^23 = 2.409 × 10^24 molecules. The number of microstates for 1 mol of monodeuteriomethane is W = 2^(2.409 × 10^24), and the entropy can be calculated as S = klnW. Therefore, S ≈ 4.54 × 10^50 J/K. In summary, the entropy of a crystal of monodeuteriomethane depends on the number of molecules in the crystal, the number of possible orientations for each molecule, and the direction of the C-D bond of each molecule. The more disordered the crystal, the higher the entropy, and the more ordered the crystal, the lower the entropy.

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Which ions are isoelectronic with Ar?
Ba2+
I-
S2-
Al3+
K+

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I- and Cl- are isoelectronic with Ar, as they both have the same number of electrons as the noble gas.

"Isoelectronic" means having the same number of electrons. Ar has 18 electrons, so we need to find ions that also have 18 electrons. Ba2+ has 56 electrons, so it's not isoelectronic. S2- has 18 electrons, so it is isoelectronic. Al3+ has 13 electrons, so it's not isoelectronic. K+ has 19 electrons, so it's not isoelectronic. Finally, I- and Cl- both have 18 electrons, so they are both isoelectronic with Ar.

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Draw the major product(s) of the following reactions including stereochemistry when it is appropriate. Ch3ch2 1 br2

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The major product of [tex]CH_{3} CH_{2}[/tex] and [tex]Br_{2}[/tex] reaction is 1,2-dibromoethane, with anti-stereochemistry, and optically inactive stereoisomers.

The response somewhere in the range of [tex]CH_{3} CH_{2}[/tex] and [tex]Br_{2}[/tex] will go through a halogenation response, where the bromine molecules will be added across the twofold bond. The significant result of this response is 1,2-dibromoethane.

The component of this response includes the development of a bromonium particle halfway, where the bromine atom is captivated by the twofold obligation of the alkene. The bromine particle will then, at that point, assault one of the carbons of the twofold bond, framing a bromonium particle halfway.

The bromine particle will then go after the other carbon of the twofold bond, breaking the bromonium particle middle and framing the item.The option of the bromine particles to the twofold bond happens with against stereochemistry, implying that the two bromine molecules will be added to inverse countenances of the twofold bond.

This outcomes in the development of a meso compound with two stereoisomers. Be that as it may, since both stereoisomers have an inward plane of balance, they are optically latent.

In this way, the significant result of the response somewhere in the range of [tex]CH_{3} CH_{2}[/tex] and [tex]Br_{2}[/tex] is 1,2-dibromoethane, with two stereoisomers that are optically dormant because of their inward plane of evenness.

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If only reactants are initially added to a reaction flask, which species decrease in concentration during the course of the reaction N2 (g) + 3H2 (g) â 2NH3 (g)? Select all that apply.

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In the given reaction N2 (g) + 3H2 (g) â 2NH3 (g), the reactants are N2 and H2, and the product is NH3.

During the course of the reaction, the reactants will decrease in concentration as they are being consumed to form the product. Therefore, both N2 and H2 will decrease in concentration. At the same time, the concentration of the product NH3 will increase.

The reaction stoichiometry tells us that one molecule of N2 reacts with three molecules of H2 to produce two molecules of NH3. This means that the decrease in concentration of N2 will be twice as much as the decrease in concentration of H2.

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The following question may be like this:

If only reactants are initially added to a reaction flask, which species decrease in concentration during the course of the reaction N2 (g) + 3H2 (g) â 2NH3 (g)? Select all that apply.

H2N2H3Are both H2 and N2.

when the following equation is balanced using the smallest possible integers, what is the coefficient for water? ch4 o2 --> co2 h2o

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The equation ch4 + o2 --> co2 + h2o is balanced using the smallest possible integers, the coefficient for water is 2. To balance the equation, we need to make sure that the number of atoms of each element is the same on both sides of the equation. On the left side of the equation, we have one carbon atom, four hydrogen atoms, and two oxygen atoms.

The right side, we have one carbon atom, two hydrogen atoms, and two oxygen atoms from the carbon dioxide and water molecules. To balance the hydrogen atoms, we need to put a coefficient of 2 in front of the water molecule, which gives us 2H2O. This gives us a total of four hydrogen atoms on both sides of the equation. Now, we have two oxygen atoms on the left side and four on the right side. To balance the oxygen atoms, we need to put a coefficient of 2 in front of the oxygen molecule, which gives us 2O2. This gives us a total of four oxygen atoms on both sides of the equation. Finally, we have one carbon atom on both sides of the equation, which means that all the elements are balanced. Therefore, the coefficient for water is 2.

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Find the pH of the equivalence points when 28.9 mL of 0.0850 M H2SO3 is titrated with0.0392 M NaOH.pH1st =pH2nd =

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pH 1st = [tex][H+] = sqrt(Ka*[HA]) = sqrt(1.5 * 10^{-2} * 0.000565) = 0.00576 M[/tex]. The pH at the equivalence point of the second stage will be higher than that of the first stage due to the excess of NaOH.

The titration of a weak acid with a strong base such as H2SO3 with NaOH involves a neutralization reaction, in which the base reacts with the acidic hydrogen ions of the acid to form water and a salt. In the first stage of the titration, the H2SO3 reacts with the NaOH in a 1:2 stoichiometric ratio, which means that twice as much NaOH is needed to completely neutralize the H2SO3.The balanced chemical equation for the titration reaction is:[tex]H2SO3(aq) + 2NaOH(aq) → Na2SO3(aq) + 2H2O(l)[/tex]To calculate the pH at the equivalence point of the first stage, we can use the equation for the concentration of H+ in a weak acid solution:[H+] = sqrt(Ka*[HA])where Ka is the acid dissociation constant for H2SO3, [HA] is the initial concentration of the acid, and [H+] is the hydrogen ion concentration at the equivalence point.The acid dissociation constant of H2SO3 is [tex]Ka = 1.5 * 10^{-2}[/tex], and the initial concentration of the acid is [HA] = 0.0850 M.At the equivalence point of the first stage, all the H2SO3 will be neutralized by half the amount of NaOH added. The amount of NaOH added can be calculated from the volume and molarity of NaOH:moles of NaOH = volume of NaOH x molarity of NaOH = 0.0392 M x 28.9 mL / 1000 mL = 0.00113 molSince two moles of NaOH are required to neutralize one mole of H2SO3, the amount of H2SO3 at the equivalence point will be:moles of H2SO3 = 0.00113 mol / 2 = 0.000565 molUsing the equation above, we can calculate the hydrogen ion concentration at the equivalence point of the first stage:[tex][H+] = sqrt(Ka*[HA]) = sqrt(1.5 * 10^{-2} * 0.000565) = 0.00576 M[/tex]The pH at the equivalence point can be calculated using the equation:pH = -log[H+] = -log(0.00576) ≈ 2.24For the second stage of the titration, the remaining H2SO3 will react with the remaining NaOH in a 1:1 stoichiometric ratio to form NaHSO3. At the equivalence point of the second stage, the solution will be basic due to the excess of NaOH. The pH at the equivalence point of the second stage can be calculated using a similar approach, but with different stoichiometric ratios and initial concentrations. Since the volume of NaOH added and the concentration of H2SO3 are known, the amount of NaOH remaining after the first stage can be calculated and used to determine the concentration of NaOH at the equivalence point of the second stage. The pH at the equivalence point of the second stage will be higher than that of the first stage due to the excess of NaOH.

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