What is the ph of a solution of 0.20 m hno2 containing 0.10 m nano2 at 25°c, given k a of hno2 is 4.5 × 10–4?

Answers

Answer 1

The pH of the given solution is 2.74 at 25°C. The pH of a solution of 0.20 M HNO2 containing 0.10 M NaNO2 at 25°C can be calculated using the Ka value of HNO2. HNO2 is a weak acid and dissociates in water to form H+ and NO2-.

The Ka expression for this reaction is Ka = [H+][NO2-]/[HNO2]. Since the concentration of NaNO2 is much larger than that of HNO2, we can assume that the concentration of HNO2 does not change significantly due to the dissociation. Therefore, we can use the initial concentration of HNO2 in the Ka expression. Substituting the given values into the expression and solving for [H+], we get [H+] = 1.8 × 10^-3 M. Taking the negative logarithm of this value gives the pH of the solution, which is approximately 2.74.

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Related Questions

Write a conclusion for Lisa's experiment ​

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From Lisa's experiment, it can be concluded that Tablet C was the best antacid among the four types tested, as it required the least amount of HCl to change the color of the indicator.

How does indigestion tablets work?

Indigestion tablets, also known as antacids, work by neutralizing excess stomach acid. Stomach acid is produced by the body to help digest food, but when there is an excess of acid, it can lead to indigestion, heartburn, and other uncomfortable symptoms.

This indicates that Tablet C was able to neutralize the acid effectively and had the highest buffering capacity compared to the other three tablets. Therefore, it can be recommended as the most effective antacid for treating indigestion.

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3. Lisa was investigating which of four different types of indigestion tablet neutralised most acid and was therefore the best 'antacid' of the four. She crushed each tablet to a fine powder, and added the powder to 20 mL of water mixed with two drops of universal indicator solution. Then she added 1 mL of dilute hydrochloric acid at a time until the indicator changed colour.

Lisa's results were:

Tablet A-16 mL

a. Put Lisa's results in a suitable table.

Tablet B-15 mL

Tablet C-8 mL

Tablet D-12 mL

this portion of the titration curve of a strong acid with a strong base is the same as this region for a weak acid titrated with a strong base.
a. The portion after all of the base has been neutralized
b. The endpoint pH
c. The portion before the endpoint is reached
d. The buffer region

Answers

The portion of the titration curve of a strong acid with a strong base that is the same as the region for a weak acid titrated with a strong base is the buffer region. The correct answer is option: d.

In this region, the pH of the solution changes very slowly as small amounts of base are added to the acid. The buffer region occurs when the amount of base added is roughly equal to the amount of acid in the solution. The other options mentioned, including the portion after all of the base has been neutralized, the endpoint pH are specific to either strong acid or weak acid titration curves and do not apply to both.

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. based on the gc data, what is the ratio of products formed from the reaction with koh in 1-propanol? what are the specific yields of the 2 alkenes? explain what would happen if the solvent is substituted for 2-methyl-2-butanol instead?

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When 1-propanol is used as the solvent instead of 2-methyl-2-butanol, the ratio of the products and the precise yields may vary.

The reaction of KOH with 1-propanol typically results in the formation of two alkenes: propene and 2-propen-1-ol. The ratio of these two products will depend on the reaction conditions, such as temperature, concentration of KOH, and reaction time.

The specific yields of the two alkenes will depend on the efficiency of the reaction, as well as the selectivity of the reaction towards each product. In general, propene is expected to be the major product due to its thermodynamic stability. However, if the reaction conditions favor the formation of 2-propen-1-ol, then the specific yield of this product may be higher.

If the solvent is substituted for 2-methyl-2-butanol, the reaction conditions may be affected due to the differences in physical and chemical properties of the solvent. For example, 2-methyl-2-butanol has a higher boiling point and lower polarity than 1-propanol, which may result in different reaction rates and selectivities. The reaction may also be affected by the steric hindrance of the solvent, which can affect the accessibility of the KOH to the reactant.

Therefore, the ratio of products and specific yields may be different when using 2-methyl-2-butanol as the solvent compared to 1-propanol.

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Make the indicated corrections in the following gas volumes.(show work)

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The required gas volumes obtained at different pressures is a. [tex]279.825cm^3[/tex], b. [tex]0.804m^3[/tex], c. [tex]37.43cm^3[/tex], d. [tex]551.5cm^3[/tex] and e. [tex]200cm^3[/tex].

The ideal gas equation is a mathematical equation used to relate the four main properties of an ideal gas: pressure (P), volume (V), temperature (T), and moles of gas (n). It is expressed as PV = nRT, where R is the ideal gas constant. This equation is used to calculate the pressure, volume, and temperature of an ideal gas given any two of these properties.

a. Given [tex]338cm^3[/tex] at 86.1kPa to 104.0kPa

We can calculate this using the ideal gas law:

P1V1 = P2V2

86.1 * 338 = 104.0 * V2

V2 =[tex]279.825cm^3[/tex]

b. Given [tex]0.873m^3[/tex] at 94.3kPa to 102.3kPa

P1V1 = P2V2

(94.3) * (0.873) = (102.3) * V2

V2 = [tex]0.804m^3[/tex]

c. Given [tex]31.5cm^3[/tex] at 97.8kPa to 82.3kPa

P1V1 = P2V2

(97.8) * 31.5 = 82.3 * V2

V2 = [tex]37.43cm^3[/tex]

d. [tex]524cm^3[/tex] at 110.0kPa to 104.5kPa

P1V1 = P2V2

110.0 * 524 = 104.5 * V2

V2 = [tex]551.5cm^3[/tex]

e. [tex]171cm^3[/tex] at 122.5kPa to 104.3kPa

P1V1 = P2V2

122.5 * 171 = 104.3 * V2

V2 = [tex]200cm^3[/tex]

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potassium hydrogen phthalate (khc8h4o4) is a weak acid whose ka is 3.91 x 10-6. what will the ph be at the half-equivalence point?

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pH is 5.41 at equivalence point of equivalence point.

Potassium hydrogen phthalate (KHC₈H₄O₄) is a weak acid that has a dissociation constant (Ka) of 3.91 x 10^-6.

To determine the pH at the half-equivalence point of potassium hydrogen phthalate we need to know what is equivalence point is-

The half-equivalence point (pH = pKa) refers to the stage at which half the acid has been converted to the conjugate base, and the pH equals the pKa of the acid. At the half-equivalence point, the number of moles of acid that has been consumed is equal to the number of moles of base that has been consumed.

The formula for the calculation of pH at the half-equivalence point is given below:

pH = pKa + log (cB / cA)

Where,cB is the concentration of the conjugate base, and cA is the concentration of the weak acid.

Since the volume of the titrant is the same at the half-equivalence point, the concentration of the conjugate base and the weak acid will be the same.

So, pH = pKa = -log (3.91 x 10^-6) = 5.41

Therefore, the pH of potassium hydrogen phthalate (KHC₈H₄O₄) at the half-equivalence point is 5.41.

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What happens over time as sediments settle on land or water?

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When sediments settle on land or water, they can undergo a process known as sedimentation, which can have various effects depending on the type and quantity of sediment involved. Here are some general things that can happen over time as sediments settle:

Deposition: Sediments can accumulate and settle on the bottom of a water body or on land, resulting in the formation of layers of sediment. This process can take thousands or even millions of years, and the resulting sedimentary layers can provide important information about the history of the area.
Compaction: As sediment accumulates, it can become compacted due to the weight of the layers above it. This can result in the compression of the sediment, causing it to become denser and harder over time.
Cementation: Sediments can also become cemented together over time, as minerals in the sediment dissolve and precipitate out, filling the spaces between the grains of sediment and binding them together. This process can result in the formation of sedimentary rocks.
Erosion: Sediments can be eroded away by the action of wind or water, or by human activities such as mining or construction. This can result in the loss of soil and changes to the landscape.
Overall, the process of sedimentation can have a significant impact on the environment over time, as sediments accumulate and are transformed into new forms.

Which best explains why sawdust burns more quickly than a block of wood of equal mass under the same conditions?
O The molecules move more quickly in the sawdust than in the block of wood.
O The pressure of oxygen is greater on the sawdust.
O More molecules in the sawdust can collide with oxygen molecules.
O Oxygen is more concentrated near the sawdust than the block of wood.
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On the sawdust, the oxygen pressure is higher. Due to this, pieces of wood burn more quickly than logs of the same mass. A. A log of wood has a larger surface area and requires longer time to burn.

What does sawdust burn more quickly than a chunk of wood?

The surface area of the substance affects how quickly combustion reactions take place. The rate of the combustion reaction increases with surface area. This is due to the large surface area material's frequent exposure to oxygen.

Why burns sawdust more quickly than it should?

The more oxygen molecules that collide per second with the fuel, the faster the combustion reaction is.

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Which of the following statements is true?

(a) An exothermic reaction will slow down when heated.

(b) The rates of all chemical reactions increase with temperature.

(c) Heating the reactants in an exothermic reaction causes the system to attain a state of equilibrium.

(d) Only exothermic reactions proceed spontaneously at room temperature.

Answers

Answer: A

Explanation: An exothermic reaction generates heat. Unless the reaction is cooled in some way, its temperature increases. If you increase the temperature with an external heater, it slows the reaction down or reverse its direction.

calculate the ph of a solution that results from mixing 22.6 ml of 0.23 m dimethylamine ((ch3)2nh) with 17.1 ml of 0.16 m (ch3)2nh2cl. the kb value for (ch3)2nh is 5.4 x 10-4.

Answers

To calculate the pH of a solution that results from mixing 22.6 mL of 0.23 M dimethylamine ((CH3)2NH) with 17.1 mL of 0.16 M (CH3)2NH2Cl, first we need to calculate the initial concentration of dimethylamine and the hydrogen ion. Then, the pH of the solution can be found from the hydrogen ion concentration.

To find the initial concentration of dimethylamine, use the following equation:

CDMA = (22.6 mL x 0.23 M) + (17.1 mL x 0.16 M)

CDMA = 7.868 M

To find the initial concentration of hydrogen ion, use the following equation:

CH+ = CDMA x Kb

CH+ = 7.868 M x 5.4 x 10-4

CH+ = 4.2632 x 10-3 M

To find the pH of the solution, use the following equation:

pH = -log [CH+]

pH = -log (4.2632 x 10-3)

pH = 2.37

Therefore, the pH of the solution that results from mixing 22.6 mL of 0.23 M dimethylamine ((CH3)2NH) with 17.1 mL of 0.16 M (CH3)2NH2Cl is 2.37.

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enough of a monoprotic weak acid is dissolved in water to produce a 0.0102 m solution. the ph of the resulting solution is 2.68 . calculate the ka for the acid.

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The Ka for the weak acid is 2.45 x 10^-6 of concentration 0.0102m .

To calculate Ka, first, we need to calculate the concentration of H+ and the initial concentration of acid. The weak acid is monoprotic, meaning it can donate only one hydrogen ion (H+) to water.Therefore, it will dissociate as follows: HA + H2O ⇔ A- + H3O+where HA is the acid molecule, and A- is its corresponding conjugate base.

The H3O+ is also known as a hydronium ion. The first step is to calculate the concentration of H3O+.The pH of the solution is 2.68.Hence, pH = -log[H3O+]2.68 = -log[H3O+][H3O+] = 1.58 x 10^-3The concentration of H3O+ is 1.58 x 10^-3 M. Since the weak acid is monoprotic, the initial concentration of acid is equal to the concentration of the conjugate base of the weak acid, which we get from the dissociation equilibrium.

The equilibrium expression for the dissociation of a weak acid is given as follows: Ka = [A-][H3O+]/[HA]We need to find the value of Ka. We have already calculated the value of [H3O+].So, Ka = [A-][1.58 x 10^-3 M]/0.0102 MWe need to calculate the value of [A-].

From the equilibrium equation for weak acid: HA + H2O ⇔ A- + H3O+0.0102 M x1.58 x 10^-3 M Here, x is the concentration of A-.So, 1.58 x 10^-3 M = x, which is also the concentration of the conjugate base of the weak acid. So, Ka = [A-][H3O+]/[HA] = (1.58 x 10^-3 M)^2/0.0102 M= 2.45 x 10^-6Therefore, Ka for the weak acid is 2.45 x 10^-6.

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which best describes the reaction, if any, that occurs when aqueous solutions of silver nitrate and sodium phosphate are combined?

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Silver phosphate is created as a precipitate sodium nitrate is formed as a precipitate there is no reaction silver is oxidised silver is reduced.

Does mixing silver I nitrate and sodium chloride aqueous solutions result in a reaction?

The ions of both compounds interchange when silver nitrate (AgNO3) and sodium chloride (NaCl) solution are combined. As a result, white precipitates of silver chloride (AgCl) and sodium nitrate solution (NaNO3) are produced.

What precipitate will result from the reaction between aqueous sodium phosphate and aqueous silver nitrate?

Silver phosphate and sodium nitrate are produced as a result of the interaction between silver nitrate and sodium phosphate. Due to its insoluble in water nature, silver phosphate precipitates out of the solution.

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Under which set of conditions would H₂ (g) be the most dissolved in H₂O(l)?

101.3 kPa and 75°C
120 kPa and 25°C
101.3 kPa and 25°C
120 kPa and 75°C

Answers

The most dissolved H₂ (g) in H₂O (l) would occur under 101.3 kPa and 75°C.

The attraction between an electronegative atom serving as the hydrogen bond acceptor and a hydrogen atom covalently bonded to a more electronegative "donor" atom or group (Dn) is known as a hydrogen bond, or H-bond (Ac).Under 101.3 kPa and 75 °C, the maximum dissolved H2 (g) in H2O (l) would be present.At higher temperatures, the solvent molecules will have higher kinetic energy, allowing them to break the hydrogen bonds between the molecules and dissolve H₂ (g) more easily. At higher pressures, there will be more molecules of H₂ (g) in a given volume, increasing the chances of it dissolving into the solvent.

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Infant Tylenol contains 0.16 g of acetaminophen (C8H9NO2) in every 5 mL of medicine. What is the Molarity of Tylenol?

Question 6 options:

32 M


0.21 M


0.0002 M


0.32 M

Answers

The molarity of Tylenol is 0.21 M, rounded to two significant figures. Hence, the correct option is (B) i.e. 0.21 M.

To find the molarity of Tylenol, we need to know the number of moles of acetaminophen present in 5 mL of medicine.

First, let's calculate the molecular weight of acetaminophen:

C = 12.011 g/mol x 8 = 96.088 g/mol

H = 1.008 g/mol x 9 = 9.072 g/mol

N = 14.007 g/mol x 1 = 14.007 g/mol

O = 15.999 g/mol x 2 = 31.998 g/mol

Total molecular weight = 96.088 g/mol + 9.072 g/mol + 14.007 g/mol + 31.998 g/mol = 151.165 g/mol

Next, we can use the given mass of acetaminophen in 5 mL of medicine to calculate the number of moles:

0.16 g acetaminophen x (1 mol / 151.165 g) = 0.001058 mol

Finally, we can use the definition of molarity to calculate the molarity of Tylenol:

Molarity = moles of solute / volume of solution in liters

Since we have 0.001058 moles of acetaminophen in 5 mL of medicine, which is equivalent to 0.005 L of solution, we can calculate the molarity as:

Molarity = 0.001058 mol / 0.005 L = 0.2116 M

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Metallic behavior correlates with large atomic size and low ionization energy. Thus, metallic behavior increases down a group and decreases from left to right across a period.true or false

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The statement "Metallic behavior correlates with large atomic size and low ionization energy. Thus, metallic behavior increases down a group and decreases from left to right across a period" is true.

The statement is true because metallic behavior correlates with large atomic size and low ionization energy. So, as you go down a group, the atomic size and ionization energy decrease, resulting in increased metallic behavior. As a result, when going from left to right across a period, the atomic size decreases, and the ionization energy increases, resulting in a decrease in metallic behavior.

As a result, the metallic behavior increases down a group and decreases from left to right across a period.

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radioactive decay is a first order kinetic process. radioactive decay is a first order kinetic process. true false g

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The given statement "radioactive decay is a first-order kinetic process" is true because the number of radioactive nuclei that decay per unit time is proportional to the number of radioactive nuclei present.  

Radioactive decay

Radioactive decay is a natural process by which the unstable atomic nucleus loses energy by emitting radiation. This results in a change in the composition of the atomic nucleus, which is accompanied by a release of energy. The three types of radiation that can be emitted during radioactive decay are alpha particles, beta particles, and gamma rays.

Alpha particles are positively charged particles consisting of two protons and two neutrons, beta particles are negatively charged particles emitted by certain radioactive isotopes, and gamma rays are high-energy photons emitted by atomic nuclei during radioactive decay.

First-order kinetics is a type of chemical reaction in which the rate of reaction depends only on the concentration of one reactant. In other words, a first-order reaction is one in which the rate of reaction is proportional to the concentration of the reactant raised to the power of one. This means that the rate of reaction increases linearly with the concentration of the reactant. First-order kinetics is commonly observed in chemical and biochemical systems, as well as in radioactive decay.

In radioactive decay, the number of radioactive nuclei that decay per unit time is proportional to the number of radioactive nuclei present. This property of radioactive decay is called first-order kinetics.

Therefore, the given statement is true.

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how will the volume of a gas change if the number of moles of gas is quadrupled at constant pressure and temperature?

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The volume of a gas will increase if the number of moles of gas is quadrupled at constant pressure and temperature: the volume of the gas will also increase four times its original volume.

This can be explained using the Ideal Gas Law, which states that the volume of a gas is proportional to the number of moles of gas when pressure and temperature remain constant. Therefore, if the number of moles of gas is increased by a factor of four, the volume of the gas will also increase by a factor of four.

To understand this concept better, let us consider the following example. Let us assume that there is a certain amount of gas, A, which contains one mole of gas at a constant pressure and temperature. This gas will occupy a certain volume, V1.

If the number of moles of gas is quadrupled to four moles, the volume of the gas will become four times the original volume, V2. Therefore, the volume of the gas, V2, is four times the original volume, V1.

This example demonstrates that if the number of moles of gas is increased at constant pressure and temperature, the volume of the gas will also increase proportionately. Therefore, if the number of moles of gas is quadrupled at constant pressure and temperature, the volume of the gas will also increase four times its original volume.

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According to Avogadro's Law, at constant temperature and pressure, the volume of a gas is directly proportional to the number of moles of gas. Therefore, if the number of moles of gas is quadrupled while keeping the temperature and pressure constant, the volume of the gas will also quadruple.

Mathematically, we can express this relationship as:

V ∝ n

where V is the volume of the gas, n is the number of moles of the gas, and the symbol ∝ means "is proportional to".

If we quadruple the number of moles of gas, then we have:

n' = 4n

where n' is the new number of moles of gas, and n is the original number of moles of gas.

Using the relationship between volume and number of moles, we can write:

V' ∝ n'

Substituting n' = 4n, we get:

V' ∝ 4n

Simplifying, we get:

V' = 4V

Therefore, if the number of moles of gas is quadrupled at constant pressure and temperature, the volume of the gas will also quadruple.

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When 1 mole of methane (CH4) is burned it releaes 461.9 KJ of heat.
Calculate ΔH for a process in which 8.0 g of methane is burned.

Answers

1 mole of methane (CH₄) is burned it releases 461.9 KJ of heat then the ΔH for the combustion of 8.0 g of methane is 230.1 kJ.

To calculate the ΔH for the combustion of 8.0 g of methane, we need to first convert the mass of methane to moles.

The molar mass of methane (CH₄) is:

C: 12.01 g/mol

H: 1.01 g/mol

4 x H: 4.04 g/mol

Molar mass of CH₄ = 12.01 + 4.04 = 16.05 g/mol

So, 8.0 g of CH₄ is equal to:

n = m/M = 8.0 g / 16.05 g/mol = 0.498 moles of CH₄

Now, we can use the molar heat of combustion to calculate ΔH:

ΔH = n x ΔHcomb

ΔHcomb is the molar heat of combustion, which is given as 461.9 kJ/mol.

ΔH = 0.498 moles x 461.9 kJ/mol = 230.1 kJ

Methane is a chemical compound with the formula CH₄. It is a colorless, odorless, and flammable gas that is the primary component of natural gas. Methane is the simplest hydrocarbon and the main component of biogas and landfill gas. It is also a potent greenhouse gas and a major contributor to climate change. Methane is used as a fuel for heating, cooking, and electricity generation, as well as in industrial processes such as chemical synthesis and metal production.

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0.84g of aluminium reacted completely with chlorine gas. Calculate the volume of chlorine gas used (Molar gas volume is 24dm³, Al=27)​

Answers

First, we need to calculate the number of moles of aluminum that reacted:

Molar mass of aluminum = 27 g/mol

Number of moles of aluminum = 0.84 g / 27 g/mol = 0.031 mol

According to the balanced chemical equation, 2 moles of aluminum react with 3 moles of chlorine gas to produce 2 moles of aluminum chloride. So, 0.031 moles of aluminum will react with:

0.031 mol Al x (3 mol Cl2 / 2 mol Al) = 0.0465 mol Cl2

Now, we can use the molar gas volume to calculate the volume of chlorine gas used:

Volume of Cl2 = (0.0465 mol Cl2) x (24 dm³/mol) = 1.116 dm³ or 1116 mL (rounded to 3 significant figures)

Therefore, the volume of chlorine gas used in the reaction is 1.116 dm³ or 1116 mL.

Don't mind the highlighted answer

Answers

The mass of [tex]SO_3[/tex] produced by reacting 6.3g of [tex]SO_2[/tex] with oxygen in the synthesis reaction is 7.875g.

Given the mass of [tex]SO_2[/tex] reacted = 6.3g

[tex]2SO_2(g) + O_2(g) -- > 2SO_3(g)[/tex]

We can see that 2 moles of [tex]SO_2[/tex] produce 2 moles of [tex]SO_3[/tex].

The mole ratio of [tex]SO_2[/tex] : [tex]SO_3[/tex] = 1 : 1

The molar mass of Sulfur dioxide = 64g/mol.

The number of moles of Sulfur dioxide reacted = 6.3/64 = 0.098mol

Since the mole ratio is 1 the moles of [tex]SO_3[/tex] produced = 0.098

The molar mass of Sulfur trioxide = 80g/mol

The mass of [tex]SO_3[/tex] produced = 0.098 * 80 = 7.875g

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How is potassium-argon dating useful to a paleoanthropologist?

Answers

Answer:

it can be used to date the sedimentary rock where the fossils of ancient humans or their hominid ancestors are found.

Explanation:

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What change in volume results if 40 mL of gas is cooled from 33 °C to 5 °C?

Answers

Charles's Law-

[tex]\:\:\:\:\:\: \:\:\:\:\:\:\star\longrightarrow\sf \underline{\dfrac{V_1}{T_1}=\dfrac{V_2}{T_2}}\\[/tex]

Where:-

V₁ = Initial volumeT₁ = Initial temperatureV₂ = Final volumeT₂ = Final temperature

As per question, we are given that -

V₁=40 mLT₁ = 33°CT₂ =5°C

We are given the initial temperature and the final temperature in °C.So, we first have to convert those temperatures in Celsius to kelvin by adding 273-

[tex]\:\:\:\:\:\:\star\sf T_1[/tex] = 33+ 273 = 306K

[tex]\:\:\:\:\:\:\star\sf T_2[/tex] =5+273 = 278K

Now that we have obtained all the required values, so we can put them into the formula and solve for V₂ :-

[tex]\:\:\:\:\:\: \:\:\:\:\:\:\star\longrightarrow\sf \underline{\dfrac{V_1}{T_1}=\dfrac{V_2}{T_2}}\\[/tex]

[tex] \:\:\:\:\:\:\:\:\:\:\:\:\longrightarrow \sf V_2= \dfrac{V_1}{T_1}\times T_2\\[/tex]

[tex] \:\:\:\:\:\:\:\:\:\:\:\:\longrightarrow \sf V_2= \dfrac{40}{306}\times 278\\[/tex]

[tex] \:\:\:\:\:\:\:\:\:\:\:\:\longrightarrow \sf V_2= 0.13071...........\times 278\\[/tex]

[tex]\:\:\:\:\:\: \:\:\:\:\:\:\longrightarrow \sf V_2 = 36.33892...........\\[/tex]

[tex] \:\:\:\:\:\:\:\:\:\:\:\:\longrightarrow \sf\underline{ V_2 = 36.34 \:mL}\\[/tex]

Therefore, the volume will become 36.34 mL if 40 mL of gas is cooled from 33 °C to 5 °C.

given that the specific rotation of (r)-2-methoxypentane is −29.6, what is the specific rotation of (s)-2-methoxypentane?

Answers

The specific rotation of (S)-2-methoxypentane is +29.6.

To determine the specific rotation of (S)-2-methoxypentane, given that the specific rotation of (R)-2-methoxypentane is -29.6, follow these steps:

1. Identify the enantiomers: (R)-2-methoxypentane and (S)-2-methoxypentane are enantiomers, which are non-superimposable mirror images of each other.

2. Understand specific rotation: Specific rotation is a property of chiral molecules, and the specific rotation of one enantiomer has the same magnitude but opposite sign as its mirror image enantiomer.

3. Calculate the specific rotation of (S)-2-methoxypentane: Since the specific rotation of (R)-2-methoxypentane is -29.6, the specific rotation of (S)-2-methoxypentane will be the opposite sign with the same magnitude means +29.6.

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if a air mass is rising it must be

Answers

If an air mass is rising, it must be less dense than the surrounding air.

What happens when air mass is rising?

If air mass is rising, it must be less dense than the surrounding air.

This is because when air rises, it is moving into an area of lower pressure than its initial location, which implies that there must be less air above it. Less air above means less weight above, hence resulting in lower density.

The less dense air mass will continue to rise until it reaches an altitude where it is equal in density to that of the surrounding air. This rising motion can lead to cloud formation and potentially precipitation, all depending on the moisture content of the air mass.

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a 64.0 ml portion of a 1.70 m solution is diluted to a total volume of 268 ml. a 134 ml portion of that solution is diluted by adding 149 ml of water. what is the final concentration? assume the volumes are additive.

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The final concentration can be calculated from the dilutions mentioned and it is found to be 0.384 M.

To calculate the final concentration, we need to consider the dilution formula, which states that the initial concentration multiplied by the initial volume is equal to the final concentration multiplied by the final volume.

The first dilution can be calculated as:

C1 × V1 = C2 × V2

1.70 M × 64.0 mL = C2 × 268 mL

108.8 = 268 × C2

C2 = 108.8 ÷ 268

C2 = 0.406 M

This solution has again been diluted. Thus, now the final concentration will be calculated as:

C2 × V2 = C3 × V3

0.406 M × 268 mL = C3 × 283 mL

108.808 = 283 × C3

C3 = 108.808 ÷ 283

C3 = 0.384 M

Therefore, the final concentration of the solution is 0.384 M.

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in general, which reaction is favored (forward, reverse, or neither) if the value of keq at a specified temperature is

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When the value of K_eq at a specified temperature is in general, which reaction is favored (forward, reverse, or neither)?When the value of K_eq at a given temperature is greater than 1,

the forward reaction is favored. Conversely, when K_eq is less than 1, the reverse reaction is favored. At equilibrium, when K_eq is equal to 1, the reaction is neither forward nor reverse but is instead stable. Furthermore, it implies that both the forward and reverse reactions occur at the same rate.Thus, in general, the reaction that is favored depends on the value of K_eq. When the value of K_eq is greater than 1, the forward reaction is favored. Conversely, when K_eq is less than 1, the reverse reaction is favored. When K_eq equals 1, the reaction is neither forward nor reverse but is instead at equilibrium.

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determine the solubility of kcl at 60 °c in 100g of h2o?

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The solubility of KCl at 60 °C in 100 g of water (H2O) can be determined using experimental data or by using a solubility table. The solubility of a substance refers to the maximum amount of that substance that can dissolve in a given amount of solvent at a particular temperature and pressure.

One possible way to determine the solubility of KCl at 60 °C in 100 g of water is to consult a solubility table, which lists the solubility of various substances in water at different temperatures. According to one such table, the solubility of KCl in water at 60 °C is approximately 47 g per 100 g of water.

This means that 100 g of water at 60 °C can dissolve up to 47 g of KCl before becoming saturated, i.e., no more KCl will dissolve in the water at this temperature.

It is important to note that the solubility of KCl (or any substance) in water can be affected by various factors, such as temperature, pressure, and the presence of other solutes. Therefore, the solubility value obtained from a solubility table is only an approximation and may not be accurate for all conditions.

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Ascorbic acid (vitamin C, C6H8O6) is a diprotic acid (K1 =8.0x10^-5 and K2=1.6x10^-12). What is the pH of a 0.270 M solution of ascorbic acid?

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If Ascorbic acid (vitamin C, C6H8O6) is a diprotic acid (K1 =8.0x10^-5 and K2=1.6x10^-12). The pH of a 0.270 M solution of ascorbic acid is 4.10.

What is the pH of a 0.270 M solution of ascorbic acid?

The two dissociation reactions for ascorbic acid are:

H2C6H6O6 ⇌ H+ + HC6H6O6- (K1 = 8.0x10^-5)

HC6H6O6- ⇌ H+ + C6H6O6 2- (K2 = 1.6x10^-12)

To solve the problem, we need to consider the ionization of both H+ ions from ascorbic acid. Let's call the concentration of H+ from the first ionization [H+]1, and the concentration of H+ from the second ionization [H+]2.

K1 = [H+]1 [HC6H6O6-] / [H2C6H6O6]

K2 = [H+]2 [C6H6O6 2-] / [HC6H6O6-]

Since ascorbic acid is a diprotic acid, we need to use the equilibrium expressions for both ionization reactions to determine the concentrations of H+ and the ascorbic acid species.

[H+]1 [HC6H6O6-] / [H2C6H6O6] = 8.0x10^-5

[H+]2 [C6H6O6 2-] / [HC6H6O6-] = 1.6x10^-12

We can assume that the concentration of ascorbic acid that dissociates is much larger than the concentration of H+ formed, so we can use the approximation [H+] << [H2C6H6O6] to simplify the calculations.

[H+]1 = K1 [H2C6H6O6] / [HC6H6O6-] ≈ K1 [H2C6H6O6] / [H2C6H6O6]

[H+]1 ≈ K1 = 8.0x10^-5

[H+]2 = K2 [HC6H6O6-] / [C6H6O6 2-] ≈ K2 [H+]1 [HC6H6O6-] / [C6H6O6 2-]

[H+]2 ≈ K2 [H+]1 = (1.6x10^-12) (8.0x10^-5) = 1.28x10^-16

The total concentration of H+ in the solution is [H+]1 + [H+]2, so the pH of the solution is:

pH = -log([H+]1 + [H+]2)

pH = -log(8.0x10^-5 + 1.28x10^-16)

pH = 4.10

Therefore, the pH of a 0.270 M solution of ascorbic acid is 4.10.

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Fill in the table. If you could help that would be appreciated.

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Modeling DNA Mutations Key involves:

e) A-T-T-G-T-A-G-A-C-G-C-T-T-A-T-G-A-C.

f) The protein produced from the mutated strand is Protein B.

g) The effect of this mutation on the organism is beneficial.

What are mutation keys?

Mutation keys are a set of rules or guidelines used to represent changes in DNA sequences. They are commonly used in genetics to represent the effects of mutations on the amino acid sequence of a protein.

A mutation key can be a table or a chart that lists the different types of mutations, such as substitution, insertion, or deletion, and the resulting changes in the DNA sequence, the amino acid sequence, and the functional consequences of the mutation.

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Image transcribed:

Modeling DNA Mutations Key

Base Sequence--|--Protein Produced--|--Effect of Mutation

T-T-C-G-T-AGACGCT-T-A-T-GA-C--|--Protein A--|--Neutral

ACC-GT-A-GA-C-G-C-T-T-A-T-G-A-C--|--Protein A--|--Neutral

A-T-GG-T-A-GACGCT-T-A-T-G-A-C--|--Protein A--|--Neutral

GT-CGT-A-GACGCTT-A-T-G-A-C--|--Protein B--|--Beneficial

AAC-GTAGACGC-T-T-A-T-G-A-C--|--Protein B--|--Beneficial

A-T-T-G-T-A-GACGCT-T-A-T-G-A-C--|--Protein B--|--Beneficial

C-T-C-G-T-A-GAC-GC-T-T-A-T-G-A-C--|--Protein C--|--Harmful

AGCGTAGACGCT-TAT-GAC--|--Protein C--|--Harmful

A-T-A-G-T-A-GACGCT-T-A-T-G-A-C--|--Protein C--|--Harmful

e) Find the base sequence from the key that matches the base sequence of the second mutated DNA strand from row C of Table 2.

f) Note the protein produced from this mutated strand and record it in row D of Table 2.

g) Note the effect of this mutation on the organism and record it in row E of Table 2.

Row--|--Description--|--Answers

A--|--Base sequence of original strand--|--A-T-C-G-T-A-G-A-C-G-C-T-T-A-T-G-A-C

B--|--Protein produced from original strand--|--Protein A

C--|--Base sequence of mutated strand--|--________

D--|--Protein produced from mutated strand--|--_______

E--|--Effect of mutation--|--______

any compound that increases the number of hydronium ions when dissolved in water, is called ?

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A compound that increases the number of hydronium ions (H₃O⁺) when dissolved in water is called an acid. Acids are characterized by their ability to donate protons (H⁺) to water molecules, resulting in the formation of hydronium ions. This process is known as acid dissociation.

The strength of an acid is determined by its ability to donate protons. Strong acids, such as hydrochloric acid (HCl) or sulfuric acid (H₂SO₄), completely dissociate in water, resulting in a high concentration of hydronium ions. Weak acids, such as acetic acid (CH₃COOH), only partially dissociate in water, resulting in a lower concentration of hydronium ions.

Acids can have a wide range of applications in industry and everyday life, from the production of fertilizers and cleaning products to the preservation of food and the regulation of pH in the human body.

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describe the procedure for the preparation you chose for each ester. make sure the procedure matches the method you selected above and that you include all reagents.

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The procedure for the preparation you chose for each ester are: heat the reagents, add aqueous solution, heat and stir the mixture, cool it down, add sodium bicarbonate, the ester is separated by filtration and lastly crude ester can be purified by recrystallization.

The procedure for the preparation of an ester involves several steps which are in detail below:.

First, the reagents, which can include an acid, an alcohol, and a catalyst, must be combined in a round-bottom flask. Heat is then applied and the mixture is agitated, either manually or with a stirrer.

After the reaction is complete, the mixture is cooled, and an aqueous solution of a base, such as sodium bicarbonate, is added. This causes the ester to precipitate out and is separated from the aqueous layer by filtration.

The crude ester can then be purified, typically by recrystallization. The reagents used will depend on the ester to be prepared. For example, for the preparation of ethyl acetate, acetic acid, ethanol, and sulfuric acid can be used as the reagents.

To complete the reaction, the acid, alcohol, and catalyst are combined in the round-bottom flask, heated and stirred, and cooled. Then, the aqueous solution of sodium bicarbonate is added and the ester is separated by filtration. Finally, the crude ester can be purified by recrystallization.

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