A 2.07-g sample of an iron–aluminum alloy (ferroaluminum) is dissolved in excess HCl(aq) to produce 0.100 g H2(g).

Fe(s)+2HCl(aq)→FeCl2(aq)+H2(g)
2Al(s)+6HCl(aq)→2AlCl3(aq)+3H2(g).

What is the percent composition, by mass, of the ferroaluminum?

Answers

Answer 1

Final answer:

The percent composition of Fe in the ferroaluminum alloy is approximately 33.82%.

Explanation:

To find the percent composition of the ferroaluminum, we need to determine the mass of iron and aluminum in the alloy. Based on the balanced chemical equations given, 1 mole of Fe is produced for every 2.07 g of the alloy, and 3 moles of H2 are produced for every 2.07 g of the alloy. From the molar mass of Fe (55.85 g/mol) and H2 (2.02 g/mol), we can calculate the mass of Fe and H2 produced. So, the percent composition of Fe in the alloy is:


mass of Fe / mass of ferroaluminum × 100%


= (0.70 g / 2.07 g) × 100%


= 33.82%


Therefore, the percent composition of Fe in the ferroaluminum is approximately 33.82%.


Related Questions

Ca(OH)2 + H3PO4 = Ca3(PO4)2 + H2O

Answers

Final answer:

The balanced chemical equation 3Ca(OH)2 + 2H3PO4 → Ca3(PO4)2 + 6H2O indicates that 2.04 moles of calcium hydroxide are needed to react with 1.36 moles of phosphoric acid to produce calcium phosphate and water.

Explanation:

The question pertains to a balanced chemical reaction where calcium hydroxide (Ca(OH)2) reacts with phosphoric acid (H3PO4) to produce calcium phosphate (Ca3(PO4)2) and water (H2O). The reaction is a typical acid-base reaction that results in the formation of a salt and water. In this case, the equation given is 3Ca(OH)2 + 2H3PO4 → Ca3(PO4)2 + 6H2O. To determine the amount of Ca(OH)2 needed to react with 1.36 mol of H3PO4, we can observe from the balanced equation that 3 moles of Ca(OH)2 are required for every 2 moles of H3PO4. Therefore, to react with 1.36 mol of H3PO4, we need (1.36 mol of H3PO4) × (3 mol Ca(OH)2 / 2 mol H3PO4) = 2.04 mol of Ca(OH)2.

The value of ksp for srso4 is 2.8x10-7. what is the solubility of srso4 in moles per liter? 7.6 x 10-7 1.4 x 10-7 5.3 x 10-4 2.8 x 10-7

Answers

Answer : The correct answer is [tex]5.3\times 10^{-4}moles/L[/tex].

Solution : Given,

[tex]K_{sp}=2.8\times 10^{-7}[/tex]

The balanced equilibrium reaction is,

                            [tex]SrSO_4\rightleftharpoons Sr^{2+}+SO^{2-}_4[/tex]

At equilibrium                         s       s

The expression for solubility constant is,

[tex]K_{sp}=[Sr^{2+}][SO^{2-}_4][/tex]

Now put the given values in this expression, we get

[tex]2.8\times 10^{-7}=(s)(s)\\2.8\times 10^{-7}=s^2\\s=5.29\times 10^{-4}=5.3\times 10^{-4}moles/L[/tex]

Therefore, the solubility of [tex]SrSO_4[/tex] in moles/L is [tex]5.3\times 10^{-4}[/tex].

Answer: The solubility of [tex]SrSO_4[/tex] is [tex]5.3\times 10^{-4}mol/L[/tex]

Explanation:

It is given that [tex]K_{sp}[/tex] of strontium sulfate is [tex]2.8\times 10^{-7}  [/tex]

The balanced equilibrium reaction for ionization of [tex]SrSO_4[/tex] is given by:

                         [tex]SrSO_4\rightleftharpoons Sr^{2+}+SO^{2-}_4[/tex]

At equilibrium:                    s       s

The equation to calculate solubility constant is given as:

[tex]K_{sp}=[Sr^{2+}][SO^{2-}_4][/tex]

Now put the given values in above equation, we get:

[tex]2.8\times 10^{-7}=(s)(s)\\2.8\times 10^{-7}=s^2\\s=5.29\times 10^{-4}\approx 5.3\times 10^{-4}moles/L[/tex]

Therefore, the solubility of [tex]SrSO_4[/tex] is [tex]5.3\times 10^{-4}mol/L[/tex]

What causes a substance to change states of matter?

Answers

Salutations!

What causes a substance to change states of matter?

Energy causes a substance to change states of matter. A matter needs energy to melt, evaporate, boil. Remember: Energy has a sudden change, but the temperature remains absolutely the same. An example of a change in energy is when ice is melting.

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Have a great day!

If we had 11.3 g of nitrogen and 2 g of hydrogen, how much nitrogen would remain if all the hydrogen was consumed? g

Answers

Hydrogen reacts with nitrogen to produce ammonia based on the following equation:

3H2 + N2 ........> 2NH3

This means that each 6 grams of hydrogen react with 28 grams of nitrogen. To know how many grams of nitrogen are required to react with 2 grams of hydrogen, we will simply do cross multiplication as follows:

mass of nitrogen = (2 x 28) / 6 = 9.334 grams

Therefore, if we have 11.3 grams of nitrogen, 9.334 grams would react with 2 grams of hydrogen.

remaining mass of nitrogen = 11.3 - 9.334 = 1.966 grams


How many neutrons do (k) potassium-39 and potassium-40 have, respectively?

Answers

Potassium’s atomic number in periodic table is 19, Potassium can only have a mass numbers of 41, 40 and 39. Potassium 39, 40, and 41 are all different isotopes of the element potassium. Each of the isotopes has 19 electrons and 19 protons but the number of neutrons vary. So, in your question Potassium-39 has twenty (20) neutrons, and potassium-40 has 21 neutrons.

Which of the following is a heterogeneous mixture

Answers

A heterogeneous mixture is one where the different components, or parts, can be easily identified and possibly separated back out. An example would be oil and water. When mixing those to ingredients, it would be easy to look and see the separation of the oil and water.

the degree to which two separate structures that are close together can be distinguished in an image is called__________.       (science)

Answers

The answer to this is: resolution

The degree to which two separate structures that are close together can be distinguished in an image is called resolution.

What is image?

A visual depiction of anything is what an image is. It may be this double, three-dimensional, or feed into to the visual system in another way to provide information.

To be a graphic illustration, a picture does not need to utilise the complete visual system. A common example is a greyscale picture, which use the visual system's responsiveness to brightness throughout all wavelengths without accounting for differing colors. The degree to which two separate structures that are close together can be distinguished in an image is called resolution.

Therefore, the degree to which two separate structures that are close together can be distinguished in an image is called resolution.

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A 5.0 gram sample of lead and a 3.2 gram sample of iron are placed into 367 mL of water. What will be the new volume level of water in units of mL?

Answers

367.8 mL The density of both lead and iron is greater than the density of water, so they'll both sink. When they sink, the volume of the water plus metals will increase by the volume of the metals. So let's see what those volumes are. Lead has a density of 11.34 g/cm3 Since we have 5.0 grams of lead, the volume will be 5.0 g / 11.34 g/cm3 = 0.440917 cm3 Iron has a density of 7.87 g/cm3 Since we have 3.2 grams of iron, the volume will be 3.2 g / 7.87 g/cm3 = 0.406607 cm3 The total volume will be the sum of the volumes of water, lead, and iron. Giving 367 cm3 + 0.440917 cm3 + 0.406607 cm3 = 367.8475 cm3 Rounding to tenths gives 367.8 cm3 or 367.8 mL

in the early studies of chemistry, scientists used properties and changed to help identify compounds. this is still done today. if you were given the following observation about salt water, how would you classify it? “when electricity flows through a flask of salt water, bubbles form in the water. these bubbles, when collected, will burn.”

Answers

The salt water is a mixture because the salt and the water can be separated from each other. The dissolution of salt inside water is a physical change.  At the same time, the salt water is an electrolyte, because it conducts electricity. The electricity that was pass through the water led to the decomposition of the water; those bubbles that form inside the water represent oxygen gas which is a product of decomposition of water, therefore the electricity that was passed through the salt water has caused chemical change to occur inside the salt water.

Sodium carbonate (na2co3) is used to neutralize the sulfuric acid spill. how many kilograms of sodium carbonate must be added to neutralize 5.04Ã103 kg of sulfuric acid solution? express your answer with the appropriate units.

Answers

5.45 x 10^3 kg of sodium carbonate is needed to neutralize 5.04 kg of sulfuric acid. For this, I will assume you have pure H2SO4. So first, you need to calculate the molar mass of H2SO4 and Na2CO3. Lookup the atomic weights of all the elements involved. Atomic weight of Sodium = 22.989769 Atomic weight of Sulfur = 32.065 Atomic weight of Carbon = 12.0107 Atomic weight of Oxygen = 15.999 Atomic weight of Hydrogen = 1.00794 Molar mass of H2SO4 = 2 * 1.00794 + 32.065 + 4 * 15.999 = 98.07688 g/mol Molar mass of Na2CO3 = 2 * 22.989769 + 12.0107 + 3 * 15.999 = 105.987238 g/mol The balanced equation for the reaction of Na2CO3 with H2SO4 is Na2CO3 + H2SO4 => Na2SO4 + CO2 + H2O so for every mole of sulfuric acid to be neutralized, you need 1 mole of sodium carbonate. You can determine the number of moles of sulfuric acid you have and then calculate the mass of that many moles of sodium carbonate. But, there's an easier way. Just use the relative mass differences between sodium carbonate and sulfuric acid. So 105.987238 g/mol / 98.07688 g/mol = 1.080655 So that means for every kg of sulfuric acid, you need 1.080655 kg of sodium carbonate. Now do the multiplication. 5.04 x 10^3 kg * 1.080655 = 5.4465 x 10^3 kg. Since you only have 3 significant figures for your data, round the result to 3 significant figures, giving 5.45 x 10^3 kg

Which of the following is an example of a vertical merger?

Answers

a merger between two companies that produce separate services or components along the value chain for some final product

1- A __________ is a raised, flat-surfaced area bound on one or more sides by cliffs or steep slopes. A: hill B: plain C: plateau D: river ________________________________________________________________ 2- A __________ is the boundary between the land and an ocean or a lake. A: coastline B: dune C: glacier D: hill ________________________________________________________________ 3- A __________ is an area of land that rises very high above the land around it. A: lake B: mountain C: plain D: river

Answers

1. C. A plateau
2. A. A coastline
3. B. A mountain

A Plateau is a raised, flat-surfaced area bound on one or more sides by cliffs or steep slopes.

A Coastline is the boundary between the land and an ocean or a lake.

A Mountain is an area of land that rises very high above the land around it.

What is Plateau , Coastline and Mountain ?

A plateau is a flat, elevated landform that rises sharply above the surrounding area on at least one side

The boundary of a coast, where land meets water, is called the coastline. Waves, tides, and currents help create coastlines

Mountain is landform that rises prominently above its surroundings, generally exhibiting steep slopes, a relatively confined summit area, and considerable local relief.

Answer ;

A Plateau is a raised, flat-surfaced area bound on one or more sides by cliffs or steep slopes.

A Coastline is the boundary between the land and an ocean or a lake.

A Mountain is an area of land that rises very high above the land around it.

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Which phrase best defines erosion? A. physically breaking rocks apart B. cementing bits of rock together C. chemically breaking rocks apart D. Moving bits of rock from place to place

Answers

The answer is D. Moving bits of rock from place to place. 
BLACKBEAR301    is correct. The answer is D

When comparing elements in the same column of the periodic table, which factor- distance or the number of protons seems to be the dominant factor?

Answers

Final answer:

In the periodic table, elements in the same column share similar properties due to the same number of protons or atomic number, not their distance from each other.

Explanation:

When comparing elements in the same column of the periodic table, the dominant factor is the number of protons, which is associated with the atomic number of the element, not the distance.

The periodic table is designed in such a way that it arranges elements in increasing order of their atomic numbers, from top to bottom and left to right. The atomic number is essentially the number of protons in an element's nucleus. Furthermore, in electrically neutral atoms, the atomic number also equates to the number of electrons which determine the chemical behaviour of an element.

Elements that belong in the same column or group in the periodic table have the same electron configuration in their outer shells, which means they possess the same number of valence electrons. This, not the distance among them, accounts for the shared chemical characteristics among elements in the same group. For instance, both Lithium (Li) and Sodium (Na), which belong to the same column, both have one valence electron in their outermost shell.

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Final answer:

The number of protons, or the atomic number, is the primary factor when comparing elements in the same column of the periodic table. The number of protons directly influences the properties of elements, including how they bond with other elements, as these properties are a periodic function of their atomic numbers.

Explanation:

When comparing elements in the same column of the periodic table, the dominant factor is the number of protons, also known as the atomic number. The periodic table is arranged in increasing order of atomic numbers and atoms with similar properties are grouped in the same column. This is because the properties of the elements are periodic functions of their atomic numbers.

All electrically neutral atoms, the number of protons is equal to the number of electrons. Thus, each element, when electrically neutral, has a unique number of electrons equivalent to its atomic number. For instance, Li and Na atoms bond similarly to other atoms because they belong to the same column and have the same number of valence electrons. So, the number of protons is the primary factor for the properties of elements in the same column of the periodic table, not the distance.

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If a drop of blood is 0.05 mL, how many drops of blood are in a blood collection tube that holds 2 mL ?

Answers

Just divide the two (2 / 0.05) and you will get your answer; there are 40 drops of bloodin the collection tube.

Final answer:

To find out how many 0.05 mL drops of blood are in a 2 mL blood collection tube, divide the total volume by the volume of one drop. The calculation shows that there are 40 drops in a 2 mL tube.

Explanation:

To determine how many drops of blood are in a blood collection tube that holds 2 mL, we need to understand the relationship between the volume of the drops and the total volume that the tube can hold. Given that each drop of blood is 0.05 mL, we can calculate the number of drops in 2 mL by dividing the total volume by the volume of a single drop.

Here is the step-by-step calculation:

Determine the volume of one drop: 0.05 mL.

Determine the total volume of the collection tube: 2 mL.

Divide the total volume by the volume of one drop: 2 mL / 0.05 mL per drop.

Calculate the number of drops: 40 drops.

If 0.250 g of a gas sample represents 1.05x10–2 mol, what is the molar mass of the gas?

Answers

23.8 g/mol Since the definition of molar mass is mass per mole, just divide the mass of the sample by the number of moles you have. So 0.250 g / 1.05x10^-2 mol = 23.8095 g/mol Since our input data only has 3 significant figures, you need to round the result to 3 significant figures. 23.8095 g/mol rounds to 23.8 g/mol

Compare the ways in which atoms combine to form molecules and compounds

Answers

Compounds consist of molecules. Molecules consist of more than one type ofatoms bonded to each other. These bonds are created in a variety of ways but they all form when they share or give/take electrons. Electrons that take part in the bonds are in the outer part of the atom.

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Which statement is an opinion? Different varieties of fruit can have the same color. All raspberries are the same color. Fruit is good for breakfast. Fruit is a good source of nutrition.

Answers

fruit is good for breakfast
I believe it is c because fruit is good nutrition.

What are the necessary steps to prevent oxidation during high temperature

Answers

CZTS film remains stoichiometric up to 400C.However, the composition of the thin film becomes Zn-poor above 450 C because Zn vaporizes at the elevated temperatures.This leads to the loss of zinc.It can be compensated by spraying Zn and S vapors. But then the sulphur vapours may oxidize.In order to avoid it, CZTS films are taken out of the deposition chamber and are exposed to the atmosphere before sulphurization is performed to grow thin CZTS polycrystalline thin films. Moisture gets adsorbed on the surface and prohibits oxidation of S. The adsorbed moisture later leaves during annealing.This, IN LINE, sulphurization prevents oxidation.JIMBO ET AL employed this method with sputtered CZTS precursor films to prevent oxidation.

Describe the four main spheres of Earth. 1. lithosphere: 2. hydrosphere: 3. atmosphere: 4. biosphere:

Answers

HYDROSPHERE: It is the liquid water component of the Earth. It contain seas, lakes, ponds, etc., It covers 70% of the Earth. ATMOSPHERE: It is another outer part of the earth. It contain nitrogen, oxygen, argon and other gases. BIOSPHERE: It is the region of the surface and atmosphere of the earth.

What type of microscope is used to show the fine detail of cell organelles, as well as the spindle fibers and chromosomes as seen during anaphase? A) compound light microscope B) binocular stereomicroscope C) scanning electron microscope D) transmission electron microscope

Answers

D) Transmission electron microscope

Transmission electron microscopes view cross-sections of organelles and produce large images of them. During this method, a beam of electrons is sent through the specimen. The use of electrons allows very fine details due to the greater resolution power they offer. Moreover, the microscope is able to see within the specimen, unlike the scanning electron microscope.

Hiya there friend!!



Your answer is D) Transmission Electron Microscope.




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If you were asked to convert 25 mg to the unit hg, which of the following would be the first fraction used in the conversion? ten to the negative third power hg over one g ten to the negative third power mg over one hg ten to the negative third power mg over one g ten to the negative third power g over one mg

Answers

The conversion factor is added to the original given unit so that you can end up with the final unit. Basically, the conversion unit does not change the value because the factor is just equal to 1. You just manipulate the units by cancelling them.

Among the given choices, the fraction which is equal to 1 is 10⁻³ g/ 1 mg, because there are 1,000 mg per 1 g. In reverse, that would be 10⁻³ of a gram.

A 0.1510 gram sample of a hydrocarbon produces 0.5008 gram CO2 and 0.1282 gram H2O in combustion analysis. Its
molecular weight is found to be 106. For this hydrocarbon, determine (a) it‟s percent composition; (b) its empirical
formula; (c) its molecular formula.

Answers

Final answer:

To determine the percent composition of the hydrocarbon, we first need to calculate the mass of carbon and hydrogen in the sample. From the combustion analysis, we can obtain the masses of CO2 and H2O produced. By comparing the moles of carbon and hydrogen, we can determine the empirical formula. The molecular formula is found by comparing the empirical formula mass with the given molar mass. Hence the correct answer is option B

Explanation:

To determine the percent composition of the hydrocarbon, we first need to calculate the mass of carbon and hydrogen in the sample. From the combustion analysis, we know that 0.5008 grams of CO2 is produced. Since the molar mass of CO2 is 44.01 g/mol, this corresponds to 0.0114 moles of CO2. Similarly, we know that 0.1282 grams of H2O is produced. With the molar mass of H2O being 18.02 g/mol, this corresponds to 0.00713 moles of H2O. From these values, we can calculate the moles of carbon and hydrogen:

Moles of carbon = 0.0114 moles CO2 * 1 mole C / 1 mole CO2 = 0.0114 moles C

Moles of hydrogen = 0.00713 moles H2O * 2 moles H / 1 mole H2O = 0.01426 moles H

Now we divide both values by the smallest number of moles, which is 0.0114 moles:

Moles of carbon = 0.0114 moles C / 0.0114 moles C = 1 mole C

Moles of hydrogen = 0.01426 moles H / 0.0114 moles C = 1.25 moles H

The empirical formula therefore is CH. To find the molecular formula, we need to compare the empirical formula mass (14.03 g/mol) with the given molar mass (106 g/mol). The ratio is 106 g/mol / 14.03 g/mol = 7.56. This means that the molecular formula is 7.56 times the empirical formula, giving us C7.56H7.56. To simplify, we round this to C8H8. Therefore, the molecular formula of the hydrocarbon is C8H8.

Hence the correct answer is option B

Use the mass spectrum of rubidium to determine the atomic mass of rubidium.

Answers

The mass spectrum is a visual graph that shows a Intensity vs Mass plot, like that shown in the picture. This is an actual mass spectrometer diagram for Rubidium. The mass of the isotopes of the Rb element is along the x-axis, while the y-axis is the relative abundance. The atomic mass is determined to be:

∑(Mass×Intensity) = 85(1-0.38) + 87(0.38) = 85.76 amu
Final answer:

The atomic mass of rubidium can be determined using the mass spectrum of rubidium obtained from a mass spectrometer.

Explanation:

The atomic mass of rubidium can be determined using the mass spectrum of rubidium obtained from a mass spectrometer. In a mass spectrometer, a sample of rubidium is vaporized and exposed to high-energy electrons, causing the rubidium atoms to become charged ions. These ions are then accelerated into a magnetic field, and the extent to which they are deflected depends on their mass-to-charge ratios. By measuring the relative deflections of the ions and analyzing the mass spectrum, chemists can determine the mass of rubidium.

blank is defined as the distance something travels divided by the time it takes

Answers

Your answer is speed.

The student's question asks about the definition of average speed, which is the distance traveled divided by the time it takes, and when direction is considered, this measure is referred to as average velocity.

The term the student is asking to define is average speed, which is a fundamental concept in physics. Average speed is calculated by dividing the total distance traveled by the total time it took to travel that distance. When the direction of travel is also taken into account, we refer to this as average velocity, which means that velocity equals displacement (change of position) divided by time.

In practice, if you were traveling in a car and you wanted to figure out your average speed, you would look at the odometer to see the distance covered and then divide by the number of hours or minutes it took to cover that distance.

To put it into symbols, for average speed s, if the total distance traveled is d and the total time taken is t, the average speed is expressed as:

s = d / t

Conversely, average velocity includes direction and is defined by the formula:

v = Δd / Δt

where Δd represents displacement and Δt represents the travel time.

A compound has a molar mass of 44.01 g/mol. What is its identity?

Answers

Final answer:

The substance with a molar mass of 44.01 g/mol is carbon dioxide (CO2), which can be deduced by calculating the combined molar masses of one carbon atom and two oxygen atoms.

Explanation:

The question concerns the identification of a compound with a molar mass of 44.01 g/mol. One well-known substance with this molar mass is carbon dioxide (CO2). To arrive at this conclusion, one can examine the atomic masses of carbon and oxygen. Carbon has a molar mass of about 12.01 g/mol, while oxygen has a molar mass of about 16.00 g/mol. Given that carbon dioxide is composed of one carbon atom and two oxygen atoms, the total molar mass can be calculated as follows: 12.01 amu (for carbon) + 2 × 16.00 amu (for each oxygen) = 44.01 amu, which corresponds to g/mol when talking about molar mass. Hence, the molecular mass of carbon dioxide is 44.01 g/mol.

Draw structures for all constitutional isomers with the molecular formula c2h5cl

Answers

Constitutional isomers are compounds that have the same molecular formula but different connectivity.

To determine whether two molecules are constitutional isomers, just count the number of each atom in both molecules and see how the atoms are arranged.
If both molecules have the same count for all of the different atoms, and the atoms are arranged in different ways (i.e. their connectivity is different), then they will be constitutional isomers.

In this case C2H5Cl will not have any constitutional isomer. Because you can attach the Cl on first carbon or second carbon, both structure will be same. There will only exist one structure. Figure is attached
Final answer:

Two constitutional isomers exist for C2H5Cl: 1-chloroethane (ethyl chloride) and 2-chloroethane (chloroethane), with chlorine bonded to different carbon atoms in each isomer.

Explanation:

The student has asked to draw structures for all constitutional isomers with the molecular formula C2H5Cl, which is a chemical exercise focusing on understanding the different ways in which atoms can be rearranged in space to create molecules with the same molecular formula but different structures.

There are actually only two constitutional isomers with the formula C2H5Cl. These isomers are:

1-chloroethane (ethyl chloride): CH3CH2Cl2-chloroethane (chloroethane): CH3ClCH3

In these structures, the chlorine atom is bonded to different carbon atoms, resulting in molecules that have different physical and chemical properties.

According to the bohr model of the atom, which electron transition would correspond to the shortest wavelength line in the visible emission spectra for hydrogen? hints

Answers

n = 6 to n = 2

Further explanation  

From several sources, we have prepared the following answer choices:

A. n = 2 to n = 5  

B. n = 6 to n = 4  

C. n = 3 to n = 2  

D. n = 6 to n = 2  

We will determine which electron transition would correspond to the shortest wavelength line in the visible emission spectra for hydrogen.  

The amount of energy released or absorbed by electrons when moving from n₁ level to n₂ level is equal to  

[tex]\boxed{ \ \Delta E = -13.6 \Big( \frac{1}{n_2^2} - \frac{1}{n_1^2} \Big) \ }[/tex]  in eV.

This energy difference is equal to [tex]\boxed{ \ hf = \frac{hc}{\lambda} \ }[/tex], where f and λ are the frequency and wavelength of the radiation emitted or absorbed.

Thus, the wavelength is inversely proportional to the energy difference from the electron transition. To get the shortest wavelength, it is determined by the largest ΔE.  

From the formula above, we practically only need to calculate part [tex]\boxed{ \ \Big( \frac{1}{n_2^2} - \frac{1}{n_1^2} \Big) \ }[/tex] which is directly proportional to ΔE.  Then from the results of the calculation of this section, we will get the shortest wavelength from the largest result..

A. n₁ = 2 to n₂ = 5  

[tex]\boxed{ \ \Big( \frac{1}{5^2} - \frac{1}{2^2} \Big) \ }[/tex]  

[tex]\boxed{ \ -\frac{21}{100} \ }[/tex]

By taking the absolute value, we get [tex]\boxed{ \ 0.210 \ }[/tex]

B. n₁ = 6 to n₂ = 4  

[tex]\boxed{ \ \Big( \frac{1}{4^2} - \frac{1}{6^2} \Big) \ }[/tex]  

[tex]\boxed{ \ \frac{5}{144} \ }[/tex]

We get [tex]\boxed{ \ 0.0347 \ }[/tex]

C. n₁ = 3 to n₂ = 2  

[tex]\boxed{ \ \Big( \frac{1}{2^2} - \frac{1}{3^2} \Big) \ }[/tex]  

[tex]\boxed{ \ \frac{5}{36} \ }[/tex]

We get [tex]\boxed{ \ 0.1389 \ }[/tex]

D. n₁ = 6 to n₂ = 2  

[tex]\boxed{ \ \Big( \frac{1}{2^2} - \frac{1}{6^2} \Big) \ }[/tex]  

[tex]\boxed{ \ \frac{2}{9} \ }[/tex]

We get [tex]\boxed{ \ 0.222 \ }[/tex]

The last calculation above shows the greatest results so that the shortest wavelength is undoubtedly gained from the electron transition n = 6 to n = 2.

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Keywords: according to the Bohr model of the atom, which electron transition would correspond, to the shortest wavelength, the visible emission spectra for hydrogen, energy, inversely proportional

The electronic transition from [tex]\boxed{{\text{D}}{\text{. n}} = {\text{6 to n}} = {\text{2}}}[/tex] corresponds to the shortest wavelength.

Further explanation:

Rydberg equation describes the relation of wavelength of spectral line with the transition values. The expression for Rydberg equation is as follows:

[tex]\dfrac{1}{\lambda } = \left( {{{\text{R}}_{\text{H}}}} \right)\left( {\dfrac{1}{{{{\left( {{{\text{n}}_{\text{1}}}} \right)}^2}}} - \dfrac{1}{{{{\left( {{{\text{n}}_{\text{2}}}} \right)}^2}}}} \right)[/tex]  …… (1)                                                  

Here,

[tex]\lambda[/tex] is the wavelength of spectral line

[tex]{{\text{R}}_{\text{H}}}[/tex] is Rydberg constant that has the value  

[tex]{{\text{n}}_{\text{1}}}[/tex] and [tex]{{\text{n}}_{\text{2}}}[/tex] are the two positive integers, where  .

Rearrange equation (1) to calculate  .

[tex]\lambda = \dfrac{1}{{\left( {1.097 \times {{10}^7}{\text{ }}{{\text{m}}^{ - 1}}} \right)\left( {\dfrac{1}{{{{\left( {{{\text{n}}_1}} \right)}^2}}} - \dfrac{1}{{{{\left( {{{\text{n}}_{\text{2}}}} \right)}^2}}}} \right)}}[/tex]                                        …… (2)

A. n = 2 to n = 5

Substitute 2 for [tex]{{\text{n}}_{\text{1}}}[/tex] and 5 for [tex]{{\text{n}}_{\text{2}}}[/tex] in equation (2).

 [tex]\begin{aligned}\lambda&= \frac{1}{{\left( {1.097 \times {{10}^7}{\text{ }}{{\text{m}}^{ - 1}}} \right)\left( {\frac{1}{{{{\left( 2 \right)}^2}}} - \frac{1}{{{{\left( 5 \right)}^2}}}} \right)}} \\&= 4.34 \times {10^{ - 7}}{\text{ m}}\\\end{aligned}[/tex]

B. n = 6 to n = 4

Substitute 4 for [tex]{{\text{n}}_{\text{1}}}[/tex] and 6 for [tex]{{\text{n}}_{\text{2}}}[/tex] in equation (2).

 [tex]\begin{aligned}\lambda&= \frac{1}{{\left( {1.097 \times {{10}^7}{\text{ }}{{\text{m}}^{ - 1}}} \right)\left( {\frac{1}{{{{\left( 4 \right)}^2}}} - \frac{1}{{{{\left( 6 \right)}^2}}}} \right)}}\\&= 2.63 \times {10^{ - 6}}{\text{ m}}\\\end{aligned}[/tex]

C. n = 3 to n = 2

Substitute 2 for [tex]{{\text{n}}_{\text{1}}}[/tex] and 3 for [tex]{{\text{n}}_{\text{2}}}[/tex] in equation (2).

 [tex]\begin{aligned}\lambda  &= \frac{1}{{\left( {1.097 \times {{10}^7}{\text{ }}{{\text{m}}^{ - 1}}}\right)\left( {\frac{1}{{{{\left( 2 \right)}^2}}} - \frac{1}{{{{\left( 3 \right)}^2}}}} \right)}} \\ &= 6.56 \times {10^{ - 7}}{\text{ m}}\\\end{aligned}[/tex]

D. n = 6 to n = 2

Substitute 2 for [tex]{{\text{n}}_{\text{1}}}[/tex] and 6 for [tex]{{\text{n}}_{\text{2}}}[/tex] in equation (2).

 [tex]\begin{aligned}\lambda&= \frac{1}{{\left( {1.097 \times {{10}^7}{\text{ }}{{\text{m}}^{ - 1}}} \right)\left({\frac{1}{{{{\left( 2 \right)}^2}}} - \frac{1}{{{{\left( 6 \right)}^2}}}}\right)}} \\&= 4.10 \times {10^{ - 7}}{\text{ m}}\\\end{aligned}[/tex]

The value of [tex]\lambda[/tex] for transition from n = 6 to n = 2 is the least and therefore this transition corresponds to the shortest wavelength.

Learn more:

Ranking of elements according to their first ionization energy: https://brainly.com/question/1550767 Chemical equation representing the first ionization energy for lithium: https://brainly.com/question/5880605

Answer details:

Grade: Senior School

Subject: Chemistry

Chapter: Atomic structure

Keywords: Rydberg constant, wavelength, n1, n2, positive integers, transition, 2, 6, 3, 5, transition, Rh, spectral line, shortest wavelength.

Calculate the coulombic force of attraction between ca2+ and o2− in cao, which has the nacl-type structure

Answers

We determine the Coulombic force using the Coulomb's Law:

F = kQ₁Q₂/d²
where
k is equal to 9×10⁹ N·m²/C²
Q₁ and Q₂ are the charges of the two particles
d is the distance between them

For this problem, Q₁ = +2(0.16×10⁻¹⁸ C) and Q₂ = -2(0.16×10⁻¹⁸ C), because a single electron or proton has a charge of 0.16×10⁻¹⁸ C. The distance between the two ions is the sum of their radii.
d = radius of Ca²⁺ + radius of O²⁻
d = 0.106×10⁻⁹ m + 0.132×10⁻⁹ m
d = 0.238×10⁻⁹ m

F = (9×10⁹ N·m²/C²)(+2(0.16×10⁻¹⁸ C))(-2(0.16×10⁻¹⁸ C))/(0.238×10⁻⁹ m)²
F = 1.017×10¹¹ N

How many total atoms are in 0.250g of P2O5?

Answers

1. Calculate no. of moles by dividing  mass given/molar mass 
= 0.250 /283.8 
2. Now multiply no. of moles with avogadro's no.
3. The answer indicates no. of total atoms.. 

Explanation:

According to the mole concept, there are [tex]6.022 \times 10^{22}[/tex] atoms present.

It is given that mass is 0.250 g. And, number of moles are equal to mass divided by molar mass.

Mathematically,       No. of moles = [tex]\frac{mass}{\text{molar mass}}[/tex]

As molar mass of [tex]P_{2}O_{5}[/tex] is 283.88 g/mol. Therefore, putting given values into the above formula as follows.

                 No. of moles = [tex]\frac{mass}{\text{molar mass}}[/tex]

                                       = [tex]\frac{0.250 g}{283.88 g/mol}[/tex]

                                       = 0.0008 mol

Hence, number of atoms present in 0.0008 mol are as follows.

                      [tex]0.0008 mol \times 6.022 \times 10^{22} atoms/mol[/tex]

                     = 0.0048 atoms

Thus, we can conclude that there are 0.0048 atoms in 0.250 g of [tex]P_{2}O_{5}[/tex].

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