If you forgot to label your sample vials of salicylic acid and acetylsalicylic acid, how could you use 1H NMR to differentiate them?Identify key specific peaks (include approximate δ, relative ratio, splitting pattern) that would allow quick distinction between the two compounds.Note:You do not need to identify all peaks.

The mechanical stop is released from the horizontal cylinder containing an ideal gas at 1 bar pressure to the left and a vacuum to the right, the frictionless piston will begin to move to the right due to the pressure exerted by the gas.

The expansion is adiabatic, there is no heat transfer q between the system and its surroundings. Therefore, q = 0.
As the gas expands and does work on the piston, the internal energy of the gas decreases. This work done by the gas w is positive because the system is expanding. When the piston has moved to its final position and all the kinetic energy has dispersed, the gas will have expanded into the entire cylinder, and the pressure and temperature of the gas will have decreased. To summarize - w Positive work done by the gas during expansion - q Zero adiabatic process, no heat transfer - ΔU change in internal energy Negative due to work done on the piston. I hope this helps Let me know if you have any other questions.

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Considering the Gay-Lussac's law, the pressure at 104 K is 139.86 kPa.

Gay-Lussac's law establishes the relationship between the temperature and the pressure of a gas when the volume is constant through a proportionality relationship: If the temperature increases, the pressure will increase, while if the temperature decreases, the pressure will decrease.

Mathematically, this law establishes that the ratio between pressure and temperature is constant:

P ÷T= k

where

Analyzing an initial state 1 and a final state 2, it is fulfilled:

P₁ ÷T₁= P₂ ÷T₂

In this case, you know:

Replacing in Gay-Lussac's law:

78 kPa ÷58 K= P₂ ÷104 K

Solving:

(78 kPa ÷58 K)× 104 K= P₂

139.86 kPa= P₂

Finally, the pressure is 139.86 kPa.

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Inductively coupled plasmas (ICP) is the most expensive of the three methods of atomization in atomic spectroscopy.

This method consists of a high-frequency power source that creates a plasma from a sample of gas, producing intense radiation from the excited atoms. The ICP method is often used in combination with mass spectrometry to analyze trace elements in complex matrices, such as environmental samples.

The cost associated with this method is due to the high-frequency power source, which is expensive to purchase and maintain, as well as the maintenance of the plasma source. Additionally, the plasma source requires a skilled operator to monitor the plasma and adjust parameters as needed. Therefore, the ICP method is the most expensive of the three methods of atomization in atomic spectroscopy.

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When an element forms an ion with more than a 1- charge, the values of its electron configuration will be used.

The electron configuration of an element refers to the arrangement of electrons in the atom's energy levels. When an element forms an ion, it gains or loses electrons, which changes its electron configuration. If an element gains electrons and forms an ion with a charge greater than 1-, the electron configuration will be used to determine the number of electrons gained and the energy level they are located in. The charge of the ion can be calculated by subtracting the number of electrons gained from the number of protons in the atom's nucleus. If an element loses electrons and forms an ion with a charge greater than 1-, the electron configuration will be used to determine the number of electrons lost and the energy level they were located in. The charge of the ion can be calculated by subtracting the number of electrons lost from the number of protons in the atom's nucleus.

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Answer:

Explanation:

good

pH at the start of the titration  of barbituric acid is 4.58.

To calculate the pH at different points in a titration of barbituric acid, you need to know the dissociation constant (Ka) of the acid and the volume and concentration of the acid and base being used.

Barbituric acid has a Ka value of 2.6 x 10^-5.

Let's assume you are titrating the barbituric acid with 0.100 M sodium hydroxide (NaOH). The balanced chemical equation for this reaction is:

H2C4H2N2O3 + NaOH → NaC4H2N2O3 + H2O

At the start of the titration, the pH of the solution is determined by the concentration of the barbituric acid. Since it is a weak acid, you can use the Ka value to calculate the pH using the equation:

pH = pKa + log([A-]/[HA])

Where pKa is the negative logarithm of the dissociation constant, [A-] is the concentration of the conjugate base (in this case, NaC4H2N2O3), and [HA] is the concentration of the acid (in this case, H2C4H2N2O3).

Plugging in the values, you get:

pH = 4.58 + log([NaC4H2N2O3]/[H2C4H2N2O3])

pH = 4.58 + log(0/[H2C4H2N2O3])

pH = 4.58

So the pH at the start of the titration is 4.58.

As you add the NaOH solution to the barbituric acid, the pH will increase. At the halfway point of the titration, known as the equivalence point, the number of moles of NaOH added is equal to the number of moles of barbituric acid present. At this point, the pH will be determined by the concentration of the salt (NaC4H2N2O3) that has formed.

After the equivalence point, the pH will be determined by the excess concentration of NaOH that has been added. The pH will be calculated using the same equation as before, but with [A-] being the concentration of NaOH and [HA] being the concentration of the remaining barbituric acid

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Zoapatanol is a compound isolated from the leaves of a Mexican plant. There are four oxygen atoms present in zoapatanol, and each oxygen atom belongs to a specific functional group. The classification of each oxygen atom is as follows:

1. The first oxygen atom belongs to a ketone functional group.
2. The second oxygen atom belongs to a primary alcohol functional group.
3. The third oxygen atom belongs to a secondary alcohol functional group.
4. The fourth oxygen atom belongs to an ether functional group.

Therefore, the functional group 1 is a ketone, functional group 2 is a primary alcohol, functional group 3 is a secondary alcohol, and functional group 4 is an ether.

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The relationship between pressure and volume of a gas is known as Boyle's law. According to Boyle's law, the pressure of a gas is inversely proportional to its volume at a constant temperature. This means that as the volume of the gas decreases, the pressure increases proportionally.

The scenario, we know that the gas occupies a volume of 20 L at a of 10 atm. To find the pressure when the volume is 5.0 L, we can use the following equation. P1V1 = P2V2 Where P1 is the initial pressure (10 atm), V1 is the initial volume (20 L), P2 is the final pressure (unknown), and V2 is the final volume (5.0 L). Solving for P2, we get P2 = (P1V1)/V2 P2 = (10 atm x 20 L)/5.0 L P2 = 40 atm Therefore, the pressure when the gas occupies a volume of 5.0 L is 40 atm. It is important to express the answer to two significant figures, which in this case is 40, and include the appropriate units, which are atm atmospheres.

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The Calvin cycle, also known as the light-independent reactions or dark reactions, is the process by which carbon dioxide is converted into sugar (glucose) in plants, algae, and some bacteria. Unlike the light-dependent reactions of photosynthesis, which occur rapidly and require light energy, the Calvin cycle occurs more slowly and does not require light energy.

During the Calvin cycle, carbon dioxide is fixed into organic molecules through a series of enzyme-catalyzed reactions. This process uses the energy from ATP and NADPH, which are produced by the light-dependent reactions, to power the conversion of carbon dioxide into organic compounds such as glucose. The Calvin cycle is essential for the production of the organic molecules that plants use as a source of energy and building blocks for growth and development.

Overall, the Calvin cycle is an important part of the process of photosynthesis, and it plays a crucial role in the carbon cycle, as it is responsible for removing carbon dioxide from the atmosphere and converting it into organic molecules that support life on Earth.

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The term climate sensitivity refers to how much hotter the earth will get for each doubling of CO₂ concentrations.  It helps us understand the potential impact of increasing greenhouse gas emissions.

It is a measure of the responsiveness of the climate system to changes in greenhouse gas concentrations. This parameter is used in climate modeling to predict future global temperature increases and assess the potential impacts of climate change on various regions and populations. While extreme weather events and temperature fluctuations may be affected by climate sensitivity, they are not the primary focus of this term. Similarly, increased aerosols in the atmosphere can impact weather systems, but this is not the definition of climate sensitivity.

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It will take approximately 3 days until only 12.5% of the initial concentration remains.

After two half-lives (24 hours or 1 day), the concentration of the drug will be reduced to one-quarter of its initial value. After three half-lives (36 hours or 1.5 days), the concentration will be reduced to one-eighth of its initial value. Finally, after four half-lives (48 hours or 2 days), the concentration will be reduced to one-sixteenth of its initial value.

Therefore, it will take approximately three half-lives or three days until only 12.5% of the initial concentration remains. This is because after three half-lives, the concentration of the drug will be reduced to one-eighth of its initial value, which is equivalent to 12.5% of the initial concentration.

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The order of increasing ionic radius for the given ions is: Br- < Se2- < Te2- < Rb+ < Sr2+.

The ionic radius is defined as the size of the ion when it is in a crystal lattice or in an ionic compound. The size of an ion depends on the number of electrons in the outermost shell and the effective nuclear charge experienced by the electrons.

Among the given ions, the anions have larger radii than cations due to the additional electrons in their outermost shell. Therefore, Br- has the smallest ionic radius, followed by Se2- and Te2-.

In contrast, the cations have smaller radii than their neutral atoms because they have lost electrons. Therefore, Rb+ has a larger radius than Sr2+.

Overall, the trend in ionic radius across the given ions can be attributed to the periodic trend of increasing atomic size from right to left and from top to bottom in the periodic table.

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Baking a loaf of bread and cooking an egg are only physical changes. Therefore, the correct option is option A.

A physical change gets a sort of change whereby the composition of matter is changed but not transformed. Although matter's size or shape may change, no chemical reaction takes place. Usually, physical changes are reversible. It should be noted that reversibility is not necessarily a need for a process to qualify as a physical change. Baking a loaf of bread and cooking an egg are only physical changes.

Therefore, the correct option is option A.

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When a mass of solid KOH is added to an aqueous solution of Cu(NO₃)₂, a precipitate of Cu(OH)₂ will form in the solution.

To determine if a precipitate forms when a mass of solid KOH is added to an aqueous solution of Cu(NO₃)₂, you will need to follow these steps:

1. Write down the balanced chemical equation for the reaction between KOH and Cu(NO₃)₂.
  KOH(aq) + Cu(NO₃)₂(aq) → KNO₃(aq) + Cu(OH)₂(s)

2. Identify the possible precipitate formed in the reaction.
  In this case, the possible precipitate is Cu(OH)₂, which is a solid.

3. Check the solubility rules to confirm if the possible precipitate is insoluble or not.
  According to solubility rules, hydroxides (OH-) are generally insoluble, with a few exceptions like alkali metal hydroxides (e.g., KOH). Cu(OH)₂ is insoluble in water.

Based on these steps, a precipitate of Cu(OH)₂ will form in the solution.

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Under acidic conditions, the first step of nucleophilic addition to an aldehyde is proton transfer to carbonyl oxygen. This results in the formation of a resonance-stabilized intermediate known as the protonated hemiacetal.

Subsequently, the nucleophile can attack the carbonyl carbon, leading to the formation of a new carbon-oxygen bond and the elimination of the protonated leaving group. Option b, nucleophilic attack of the carbonyl carbon, is the second step of the reaction. Option c, formation of an enolate ion, occurs under basic conditions, while option d, formation of a hydrazone, involves the reaction of the aldehyde with hydrazine and is not typically the first step in a nucleophilic addition reaction.
Under acidic conditions, the first step of nucleophilic addition to an aldehyde is: a. Proton transfer to carbonyl oxygen.

In this step, the acidic conditions provide a proton (H+) that is transferred to the carbonyl oxygen, which has a partial negative charge due to its electronegativity. This protonation of the carbonyl oxygen makes the carbonyl carbon more electrophilic, allowing the subsequent nucleophilic attack to occur more easily.

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A proton is approximately 1,836 times more massive than an electron.

A proton is approximately 1,836 times more massive than an electron. The mass of a proton is approximately 1.007276 amu (atomic mass units), while the mass of an electron is only about 0.00054858 amu.This difference in mass between the two particles is significant because it plays a crucial role in determining the behavior of matter at the atomic and subatomic level. For example, the difference in mass between protons and electrons leads to the electrostatic attraction that holds atoms together in molecules. Furthermore, the mass difference also plays a role in determining the stability of atomic nuclei. The strong nuclear force holds the protons and neutrons together in the nucleus, but the electrostatic repulsion between the positively charged protons tends to push them apart. The balance between these two forces depends on the number of protons and neutrons in the nucleus, which determines the stability of the atom.

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The "hydrogen bond." A hydrogen bond is an attraction between a hydrogen atom bonded to a highly electronegative atom, such as oxygen O, nitrogen N, or fluorine F, and a nonbonding electron pair on a highly electronegative atom in another molecule.

The hydrogen bonding A hydrogen atom is bonded to a highly electronegative atom O, N, or F within a molecule. This creates a polar covalent bond, with the electronegative atom having a partial negative charge and the hydrogen atom having a partial positive charge. The partial positive charge on the hydrogen atom is attracted to a nonbonding electron pair on a highly electronegative atom in another molecule. This attraction forms a hydrogen bond between the two molecules, which is weaker than a covalent bond but still significant. Hydrogen bonding plays a crucial role in many biological processes and the properties of various substances, such as water. It is essential for the structure and function of proteins and nucleic acids and contributes to the unique properties of water, like its high boiling point and surface tension.

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The substance that is polar is CH2Cl2. Polar substances have an unequal distribution of electrons, resulting in a partial positive and partial negative charge. CH2Cl2 has polar bonds due to the electronegativity difference between carbon and chlorine atoms, resulting in a polar molecule. b. CH2Cl2 Dichloromethane.

The Polar substances have an uneven distribution of electron density, leading to the formation of partial positive and negative charges. CO2 Carbon dioxide is a linear molecule with symmetrical distribution of electron density, so it is non-polar. CH2Cl2 Dichloromethane has a tetrahedral structure with polar C-Cl bonds, resulting in an overall polar molecule due to the dipole moments not cancelling out. BF3 Boron trifluoride has a trigonal planar structure with symmetrical distribution of electron density, so it is non-polar. O2 Oxygen is a homonuclear diatomic molecule with no difference in electronegativity, so it is non-polar. So, the polar substance in the list is CH2Cl2.

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To complete and balance the molecular equation for the reaction of aqueous chromium(II) bromide (CrBr₂) and aqueous sodium carbonate (Na₂CO₃). Here is the step-by-step explanation:

1. Write the unbalanced molecular equation, including the physical states:
CrBr₂(aq) + Na₂CO₃(aq) → ?

2. Determine the products of the reaction. Chromium(II) bromide will react with sodium carbonate to form chromium(II) carbonate (CrCO₃) and sodium bromide (NaBr):
CrBr₂(aq) + Na₂CO₃(aq) → CrCO₃(s) + NaBr(aq)

3. Balance the equation:
CrBr₂(aq) + Na₂CO₃(aq) → CrCO₃(s) + 2 NaBr(aq)

So, the balanced molecular equation for the reaction of aqueous chromium(II) bromide and aqueous sodium carbonate is:
CrBr₂(aq) + Na₂CO₃(aq) → CrCO₃(s) + 2 NaBr(aq)

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It is necessary to use at least two analytical techniques when identifying an unknown compound because different analytical techniques may provide different types of information about the compound.

It is necessary to use at least two analytical techniques when identifying an unknown compound to ensure accuracy and reliability of the results. Using multiple techniques helps to confirm the compound's identity by providing complementary information about its chemical and physical properties. This approach minimizes the chances of misidentification and reduces the likelihood of errors that may occur with any single technique. In summary, employing multiple analytical techniques improves the confidence in the identification process of an unknown compound.

For example, one technique may provide information about the compound's molecular weight while another may provide information about its chemical structure. By using multiple techniques, scientists can cross-reference and confirm their findings, which increases the accuracy and reliability of the identification process. Additionally, using multiple techniques allows for a more comprehensive analysis of the unknown compound, which can lead to a better understanding of its properties and potential applications.

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To synthesize isopropyl azide from isopropyl alcohol, you first convert the alcohol to isopropyl chloride using a chlorinating agent. Then, you perform a nucleophilic substitution reaction with sodium azide to obtain the final product, isopropyl azide.

To synthesize isopropyl azide from isopropyl alcohol, you can follow these steps:
Step:1. Start with isopropyl alcohol (C3H8O), which will serve as your starting material.
Step:2. Convert isopropyl alcohol to isopropyl chloride (C3H7Cl) through a substitution reaction. You can achieve this by treating isopropyl alcohol with a suitable chlorinating agent, such as thionyl chloride (SOCl2) or phosphorus trichloride (PCl3). The reaction will produce isopropyl chloride and the corresponding acid.
Step:3. Prepare sodium azide (NaN3), which is necessary for the nucleophilic substitution reaction. Sodium azide can be obtained through the reaction of sodium nitrite (NaNO2) and hydrochloric acid (HCl) followed by treatment with sodium amide (NaNH2).
Step:4. Perform a nucleophilic substitution reaction between isopropyl chloride and sodium azide. This reaction will replace the chlorine atom in isopropyl chloride with an azide group (N3) to form isopropyl azide (C3H7N3). The byproduct of this reaction is sodium chloride (NaCl).

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The We are given a hypothetical elementary reaction 2A + B → C, with a rate constant (k) of 0.049 M^-1 s^-1, and the concentration of A as 42 mm We will determine the reaction velocity (v) when the concentration of A is 42 mm.

The Convert the concentration of A from mM to M. Since 1 M = 1000 mM, we have 42 mM = 42 / 1000 = 0.042 M
Write down the rate law for the elementary reaction. For the given elementary reaction, the rate law is v = k[A]^2[B]
Solve for the reaction velocity (v) We have the rate constant (k) and the concentration of A, but we don't have the concentration of B. Without the concentration of B, we cannot calculate the exact value of v. However, we can express v in terms of [B]. Substitute the given values for k and [A] v = (0.049 M^-1 s^-1) (0.042 M) ^2[B] v = (0.001764) [B]
v ≈ 8.64 x 10^-5 M^-1 s^-1[B] So, the reaction velocity (v) is approximately 8.64 x 10^-5 M^-1 s^-1 times the concentration of B ([B]).

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The two physical reasons for the especially large increase in density of transition metals between the fifth and sixth period are the increase in the number of electrons, which leads to an increase in atomic radius and a decrease in metallic bonding, and the increase in the number of partially filled d-orbitals, which results in an increase in metallic bonding.

Firstly, as you move from the fifth to the sixth period, the transition metals have an increasing number of electrons. This increase in electrons results in an increase in the number of protons in the nucleus, which in turn increases the atomic radius. The increase in atomic radius means that the metallic bonding between the atoms becomes weaker, which leads to a decrease in density.

However, the effect of the increase in the number of electrons is greater than the effect of the weakening metallic bonding. This results in an overall increase in density.

Secondly, as you move from the fifth to the sixth period, the transition metals have an increasing number of partially filled d-orbitals.

These orbitals are responsible for the metallic bonding in the transition metals.

The more partially filled d-orbitals there are, the more electrons there are available for metallic bonding. This increase in metallic bonding results in an increase in density.

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The IR spectroscopy This technique measures the absorption of infrared light by a molecule, which causes vibrational transitions in its chemical bonds. Different functional groups absorb specific wavelengths of light, producing unique peaks in the IR spectrum. For aldehydes, you can expect a strong and sharp peak around 1700-1740 cm-1 due to the C=O (carbonyl) stretching vibration.

The peak can help you confirm the presence of an aldehyde functional group and potentially differentiate it from other similar compounds. NMR Nuclear Magnetic Resonance spectroscopy NMR provides information on the chemical environment of specific atoms within a molecule, particularly hydrogen and carbon atoms. By analyzing the chemical shifts, peak multiplicity, and coupling constants in an NMR spectrum, you can deduce the structure of the compound. For aldehydes, the characteristic signals in proton (1H) NMR include a singlet peak around 9-10 ppm for the aldehyde proton (CHO) and a deshelled peak for the adjacent methylene (CH2) group, if present. In carbon (13C) NMR, a peak around 190-200 ppm corresponds to the carbonyl carbon. By comparing the IR and NMR spectra of your unknown aldehyde with those of known aldehydes, you can identify the specific compound even if its physical properties (appearance, melting point, boiling point, etc.) are similar to other aldehydes.

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0.0019 moles of KMnO4 is used in the 19 mL solution with a concentration of 0.100 M.

To find the number of moles of KMnO4 used in a 19 mL solution with a concentration of 0.100 M, you can follow these steps:

1. Convert the volume of the solution to liters: 19 mL = 0.019 L
2. Use the formula: concentration or molarity = number of moles / volume of solution (in litres)

number of moles = concentration × volume
3. Plug in the values: number of moles = 0.100 M × 0.019 L

You have used 0.0019 moles of KMnO4 in the 19 mL solution with a concentration of 0.100 M.

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The key components of this procedure are the TLC chamber and the solvent mixture, which work together to separate the components of your samples based on their polarity and affinity for the stationary phase.

To set up your TLC chamber with a solvent mixture, follow these steps:

1. Choose an appropriate TLC plate, and mark the baseline for spotting the samples.
2. Spot your samples onto the baseline, allowing them to dry between each application.
3. Prepare the solvent mixture according to the specific proportions required for your experiment.
4. Pour the solvent mixture into the TLC chamber until it reaches a depth of 2.5 cm. Ensure that the solvent level is below the baseline where samples are spotted to prevent them from dissolving directly into the solvent.
5. Carefully place the spotted TLC plate into the chamber, making sure the plate is standing vertically and not touching the chamber's walls.
6. Seal the chamber with a lid or plastic wrap to maintain the solvent atmosphere and minimize evaporation.
7. Allow the TLC plate to develop as the solvent moves up the plate through capillary action. The solvent front should not reach the top edge of the plate.
8. Remove the TLC plate from the chamber once the development is complete, and mark the solvent front before it evaporates.
9. Analyze your results by visualizing the spots under UV light or other detection methods, and calculate the Rf values for each spot.

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The Group II carbonate thermal stability pattern refers to the trend in which the carbonates of Group II elements (Be, Mg, Ca, Sr, Ba) become less stable as you move down the group. This is due to the increasing size of the cation, which leads to weaker bonding with the carbonate anion.

This means that heavier Group II metal carbonates require higher temperatures to decompose compared to lighter ones. This trend is due to the decrease in charge density as the cation size increases down the group, which results in weaker electrostatic attraction between the cation and anion, making it harder for the carbonate to decompose.
To explain in more detail, as the temperature is increased, the carbonates of Group II elements decompose into their corresponding oxide and carbon dioxide gas. For example, calcium carbonate (CaCO3) decomposes to form calcium oxide (CaO) and carbon dioxide (CO2) gas:

CaCO3(s) → CaO(s) + CO2(g)

The decomposition reaction is endothermic, meaning it requires energy input to proceed. Therefore, the thermal stability of the carbonates decreases as you move down the group because larger cations have weaker bonds with the carbonate anion and require less energy to decompose.

The same trend applies to Group II nitrates, but different products are formed upon decomposition. For example, calcium nitrate (Ca(NO3)2) decomposes to form calcium oxide (CaO), nitrogen dioxide (NO2) gas, and oxygen (O2) gas:

Ca(NO3)2(s) → CaO(s) + 2NO2(g) + 1/2O2(g)

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1550 torr is equal to 2.04 atm, which is the standard unit of pressure and is used as an abbreviation for 'atmosphere'.

One atmosphere is the standard atmospheric pressure at sea level, and one atmosphere is used to indicate the pressure of gases or liquids in a system. In other words, a pressure of 1 atm refers to the pressure that the Earth's atmosphere exerts at sea level on the planet's surface.

To convert torr to atm, we can use the following conversion factor:

1 atm = 760 torr

Dividing both sides by 760, we get:

1 torr = 1/760 atm

Multiplying both sides by 1550, we get:

1550 torr = (1550/760) atm

1550 torr = 2.04 atm (rounded to the hundredths place)

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The determine the amount of manganese that may be formed by the passage of 5098 c through an electrolytic cell containing an aqueous Mn (II) salt, we need to use Faraday's law of electrolysis.

The Faraday's law states that the amount of a substance produced or consumed during electrolysis is directly proportional to the quantity of electricity passed through the electrolytic cell. The relationship between the amount of substance produced m, the charge passed Q, the molar mass of the substance M, and the Faraday constant F is given by the formula. m = (Q x M) / (n x F) where n is the number of electrons transferred in the reaction. For the reduction of Mn (II) ions to Mn metal, the balanced equation is Mn (II) + 2e- → Mn. In this reaction, 2 electrons are transferred, so n = 2. The molar mass of Mn is 54.94 g/mol. The Faraday constant is 96,485 C/mol. Plugging in the values, we get. m = 5098 C x 54.94 g/mol / 2 x 96,485 C/mol = 1.47 g Therefore, the amount of manganese that may be formed by the passage of 5098 C through an electrolytic cell containing an aqueous Mn (II) salt is 1.47 grams.

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