When 33.6 g of NO and 26.9 g of O, reacted together, the actual NO, product obtained was 20.2g, What was
the percent yield for the reaction?
2 NO (g) + O2 (g) -> 2 NO2 (g)

Answers

Answer 1

The percent yield for the reaction is 13.1%. it is the weight of the product that was obtained to the theoretical yield as a percentage.

What is revealed by the yield percentage?

The percentage yield is the figure computed to represent the discrepancy between the theoretical yield and the actual yield of an experiment. Both the desired products and the by-products are produced when experimenting with various solutions or when preparing chemical solutions.

We must convert the amounts of NO and O2 to moles since 1 mol of NO reacts with 1/2 mol of O2:

moles of NO = 33.6 g / 30.01 g/mol = 1.12 mol

moles of O2 = 26.9 g / 32.00 g/mol = 0.84 mol

Since O2 is limiting, Our calculations will be based on the amount of oxygen present.

moles of NO2 = 0.84 mol O2 × (2 mol NO2 / 1 mol O2) × (2 mol NO / 1 mol NO2)

                       = 3.36 mol NO2

The molar mass of NO2 is 46.01 g/mol,

the theoretical yield in grams is:

mass of NO2 = 3.36 mol × 46.01 g/mol = 154.34 g

percent yield = (20.2 g / 154.34 g) × 100% = 13.1%

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Related Questions

Consider the data table as well as the experimental design. Which of the four cans should have the greatest change in temperature after five minutes?

Answers

Answer: air

Explanation:would be the most likely candidate for the cans

7. Starting with the following equation,
BaCk(ag) + Na;POA(ag) -> Bas (PO.)(s) + NaC|(aq)
calculate the mass in grams of BaCl2 (formula mass = 208.23 amu) that will be required to produce 41.5
grams of Ba (PO.)2 (formula mass = 601.92 amu)

Answers

The mass in grams of BaCl₂ (formula mass = 208.23 amu) that will be required to produce 41.5 grams of Ba (PO₄)₂ is 18.48 g. This is using the stoichiometric ratio.

What is stoichiometric ratio?

The relationship between the quantities of reactants and products prior to, during, and after chemical reactions is known as stoichiometry.

Stoichiometry is based on the law of conservation of mass, which states that the sum of the masses of the reactants and products must equal one another. This realization led scientists to conclude that the ratio of positive integers is typically formed by the relationships between the quantities of the reactants and products. This means that the amount of the product may be determined if the amounts of the individual reactants are known. On the other hand, if the amount of one reactant is known and the amount of the products can be computed using empirical data, the amount of the other reactants can likewise be calculated.

Using the stoichiometric ratio of the equation and the molar masses of the reactants, we can calculate the mass of BaCl₂ required to produce 41.5 grams of Ba (PO₄)₂.

Molar mass of BaCl₂ = 208.23 g/mol

Molar mass of Ba (PO₄)₂ = 601.92 g/mol

According to the equation, the stoichiometric ratio between BaCl₂ and the product (Ba (PO₄)₂ is 1 : 3.

Therefore, we will need 1 mol of BaCl₂ to produce 3 moles of Ba (PO₄)₂

Therefore, the mass of BaCl2 required to produce 41.5 grams of Ba (PO₄)₂ is:

Mass of BaCl₂ = 41.5 g/601.92 g/mol x 208.23 g/mol

Mass of BaCl₂ = 18.48 g

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A new band sensation is playing a concert and recording it for a live album to be released this summer. Select all the statements that are true for when the audience hears the sound.

a. The frequency or amplitude of the sound waves will not change.


b. Sound waves that the audience hears are electromagnetic waves.


c. Hearing the sound does not change the wave type.


d. The frequency or amplitude of the sound waves could change as the song plays.


e. Hearing the sound waves changes the wave from mechanical wave to an electromagnetic wave.


f. Hearing the sound waves changes the wave from an electromagnetic wave to a mechanical wave.


g. Sound waves that the audience hears are mechanical waves.

Answers

Answer:

a. The frequency or amplitude of the sound waves will not change.

d. The frequency or amplitude of the sound waves could change as the song plays.

g. Sound waves that the audience hears are mechanical waves.

These are the true statements.

others are false.

b. Sound waves that the audience hears are not electromagnetic waves. Sound waves are a type of mechanical wave, which means that they require a medium to travel through, and in this case, the medium is air.

c. Hearing the sound does not change the wave type. The wave type remains a mechanical wave, even after it reaches the audience's ears.

e. and f. are also not true, as the process of hearing sound does not change the wave type from mechanical to electromagnetic or vice versa.

What mass, in grams, of Co(NO) (formular mass 244.96 amu) is present in 1.15 L of a 0.452 M solution?
127 g
21.2 g
2.54 g
623

Answers

The mass, in grams, of Co(NO) (formula mass 244.96 amu) present in 1.15 L of a 0.452 M solution is 127.76 g. This is using molarity.

What is molarity?

The term "molar concentration" refers to the amount of a substance in a solution represented as a percentage of its volume. It is also used to refer to molarity, quantity concentration, or substance concentration. The most common unit used in chemistry to express molarity is the number of moles per liter, represented by the unit sign mol/L or mol/dm3 in SI units. One molar, or 1 M, of a solution's concentration is defined as one mol/L.

Using molar concentration in thermodynamics is typically impractical since the volume of most solutions changes very little with temperature as a result of thermal expansion.

The mass of Co(NO) present in 1.15 L of a 0.452 M solution would be:

Mass =Volume x Concentration x Formula mass

=1.15L x 0.452 M x 244.96 g/mol

= 127.76 g

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127g is mass of Co(NO)  present in 1.15 L of a 0.452 M solution

What does the word "molarity" mean?

Molarity is the ratio of the moles of a solvent to the total volume of the solution. The solution contains both the solute and the solvent. The ratio of the solute moles to the solvent kilograms is known as molality, on the other hand.

The number of moles of dissolved solute per liter of solution is the definition of molarity, a unit of concentration. Molarity is defined as the number of millimoles per milliliter of solution by dividing the number of moles and the volume by 1000.

The mass of Co(NO) present :

Mass =Volume x Concentration x Formula mass

=1.15 x 0.452 x 244.96

= 127.76 g

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A mixture consisting of 1 mol of H2O(g) and
1 mol CO(g) is placed in a 13 L reaction vessel
at 800 K. At equilibrium, 0.692 mol CO2(g)
is present as a result of the reaction
CO(g) + H2O(g) ⇀↽ CO2(g) + H2(g).
What is Kc at 800 K?

Answers

The Kc of the system is  8.9.

What is the Kc of the system?

The equilibrium constant of a chemical reaction in terms of concentrations is referred to as Kc in chemistry. The equilibrium constant, or Kc, is a gauge of how far a chemical reaction has advanced toward equilibrium.

We have that from the information in the question;

[CO] = 1 mole/13 L = 0.077 M

[H2O] = 1 mole/13 L = 0.077 M

[CO2 ] = 0.692 mol/13 L = 0.053 M

[H2] = 1 M

Then we would have that;

[CO2 ] [H2] /[CO][H2O]

Kc =  0.053/( 0.077 )^2

= 8.9

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Convert 3.20 bar to atm

Answers

divid 3.20/1.013 that would be 3.158 atm

Give at least 1 important aldehyde or ketone compound and describe its significant uses.

Answers

One important aldehyde is formaldehyde (HCHO), which has many significant uses. It is used as a preservative in medical laboratories and mortuaries, as well as in the manufacture of disinfectants, cosmetics, and fertilizers.

What are the significance of formaldehyde?

Formaldehyde is a crucial component in the production of urea-formaldehyde resins, which are widely used in the manufacture of particleboard and other composite wood products. These resins are also used as adhesives in the production of plywood, medium-density fiberboard (MDF), and oriented strand board (OSB).

Formaldehyde has a variety of medical applications. It is used in the preparation of vaccines, as well as in the production of surgical implants and other medical devices. Formaldehyde is also used in the production of some medications, including certain types of antibiotics.

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If 64.0% of a Ga67 sample remains in the patient 2.33 days after injection, what is the half‑life of Ga67?

Answers

The half‑life of Ga67 is 3.67 days.

The half-life of a chemical reaction can be defined as the time taken for the concentration of a given reactant to reach 50% of its initial concentration (i.e. the time taken for the reactant concentration to reach half of its initial value). It is usually expressed in seconds.

Half-lives are characteristic properties of the various unstable atomic nuclei and the particular way in which they decay.

Given,

Let the initial amount be 100, so final amount will be 100 - 64 = 36

time = 2.33 days

= 2.33 × 24 × 60 × 60

= 201312 seconds

k = ( 1÷ t) log ( initial ÷ final)

k = 0.189 s⁻¹

half life = 0.693 ÷ k

= 315286.62 seconds

= 3.67 days

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What are the polar ice caps and how do you think they help the world؟

Answers

The polar ice caps are large areas of ice that cover the Earth's polar regions, specifically the North Pole (Arctic) and the South Pole (Antarctica). These ice caps consist mainly of ice sheets, glaciers, icebergs, and sea ice, which have significant impacts on the global climate, ecosystems, and sea levels. Here's how they help the world:

1. Climate regulation: The polar ice caps play a crucial role in maintaining the Earth's temperature by reflecting sunlight back into space. The bright, reflective surface of the ice (called albedo) helps to cool the planet and counteract the greenhouse effect. When the ice caps melt, the darker ocean or land underneath absorbs more sunlight, leading to higher temperatures and further ice melting – a process known as the ice-albedo feedback loop.

2. Ocean circulation: The polar ice caps influence global ocean circulation patterns. Cold, dense water sinks near the polar regions, driving the thermohaline circulation (also known as the global ocean conveyor belt). This circulation helps to distribute heat and nutrients around the world, impacting weather patterns and supporting marine ecosystems.

3. Sea level regulation: The ice caps store a vast amount of freshwater in the form of ice. If all the ice in Antarctica and Greenland were to melt, global sea levels would rise by around 65 meters (213 feet), with devastating consequences for coastal communities and ecosystems. By keeping this water locked in ice, the polar ice caps help to regulate sea levels and protect coastal areas from flooding.

4. Ecosystem support: The polar ice caps support unique and fragile ecosystems that are home to a wide variety of plants and animals. Some of these species, such as Arctic foxes, polar bears, and emperor penguins, are specifically adapted to life in the harsh polar environments. The ice caps are also critical to the survival of many marine species, including fish, seals, and whales, which rely on the ice for breeding grounds, shelter, and hunting.

5. Scientific research: The polar regions offer valuable opportunities for scientific research, particularly in the fields of climate science, glaciology, and paleoclimatology. Ice cores taken from the ice caps provide a historical record of Earth's climate, allowing scientists to understand past climate changes and make more informed predictions about the future.

In conclusion, the polar ice caps play a vital role in regulating Earth's climate, maintaining ocean circulation, controlling sea levels, supporting unique ecosystems, and providing valuable scientific data. However, the ice caps are under threat from global warming, which has led to increased melting and a decline in ice extent. It is essential to address climate change and its impacts on the polar regions to preserve these important natural features and the benefits they provide to the world.

The density of helium in a balloon is 1.18 g/L. If a balloon holds 2.93 L of He, how many atoms of He are in
the balloon?

Answers

Answer: (a) 8.33x10^24.

Explanation: In the realm of gas thermodynamics, the variables P, V, n, R, and T denote pressure, volume, number of moles of gas, gas constant, and temperature in Kelvin, respectively.

It is feasible to manipulate this equation for the purpose of deducing n, which denotes the quantity of moles of gas.

The equation n = (PV) / (RT) represents the number of moles present in a gas system, where P, V, R, and T denote the pressure, volume, ideal gas constant, and temperature, respectively. This formula serves as a fundamental expression in thermodynamics and is employed in various fields of science, notably chemistry and physics, as a means of determining the amount of substance in a gaseous system. Its rigorous derivation and application have been extensively studied in the academic realm, and it remains a pivotal concept in modern scientific research.

Ascertaining the quantity of helium atoms contained within the balloon necessitates the conversion of the amount of helium moles into a corresponding number of helium atoms. The quantity of atoms in a single mole of any given substance, as denoted by Avogadro's number, is 6.022 x 10^23.

Initially, it is necessary to determine the quantity of moles of helium present within the spherical object.

The quantity n is expressed as the ratio of the product of the pressure and volume, PV, to the product of the universal gas constant, R, the temperature, T, and is mathematically represented as n = (PV) / (RT). Upon substituting the relevant values in this equation, where the pressure is not explicitly given, n may be calculated as (1.18 g/L x 2.93 L) / (0.0821 L-atm/mol-K x 273 K).

The quantity of substance present is 0.1386 mol.

Subsequently, the subsequent step would be to transform the aforementioned measurement into the numerical value representing the quantity of helium atoms present.

The numerical value of helium atoms can be expressed as the product of a constant factor 'n' and the Avogadro constant. That is, the number of atoms of helium is determined by multiplying 'n' with Avogadro's number.

The quantity of helium atoms is equivalent to 0.1386 moles, multiplied by the constant Avogadro's number of 6.022 x 10^23 atoms per mole.

The quantity of helium atoms is 8.33 x 10^23.

Final answer:

To calculate the number of atoms of helium in the balloon, we can use Avogadro's number and the molar mass of helium.

Explanation:

The number of atoms of helium in the balloon can be calculated using the Avogadro's number and the molar mass of helium. The molar mass of helium is 4.0026 g/mol. First, we need to calculate the number of moles of helium in the balloon by dividing the mass of helium by its molar mass:

Number of moles of helium = Mass of helium / Molar mass of helium

Once we have the number of moles, we can use Avogadro's number to calculate the number of atoms:

Number of atoms of helium = Number of moles of helium * Avogadro's number

Let's substitute the values into the formula to find the number of atoms of helium in the balloon:

Number of atoms of helium = (1.18 g/L * 2.93 L) / (4.0026 g/mol) * (6.022 x 10^23 atoms/mol)

Solving this equation will give us the number of atoms of helium in the balloon.

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I WILL GIVE 35 POINTS TO THOSE WHO ANSWER THIS QUESTION RIGHT NOOOO SCAMS PLEASE

Answers

The molarity of the solution is 0.0156 M (or mol/L).

Does Iron(III) nitrate precipitate out as a solid?

More precisely, a solution of iron(III) nitrate, will react with a solution of sodium hydroxide, to generate iron(III) hydroxide, which precipitates out of solution. The insoluble solid is not shown as ions, as you will see.

The molar mass of Iron(III) nitrate is:

Iron: 1 atom x 55.85 g/mol = 55.85 g/mol

Nitrogen: 3 atoms x 14.01 g/mol = 42.03 g/mol

Oxygen: 9 atoms x 16.00 g/mol = 144.00 g/mol

Total molar mass is equal to 241.88 g/mol (55.85 + 42.03 + 144.00).

So, the number of moles of Iron(III) nitrate in 8.55 g is:

moles = mass/molar mass = 8.55 g/241.88 g/mol = 0.0353 mol

The solution's volume in litres must then be determined. 2.26 L is listed as the volume.

The unit of measurement for molarity is moles of solute per litre of solution.

Molarity = 0.0353 mol / 2.26 L = 0.0156 M

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Aniyah has a special type of paper that can permanently change color, she wonders whether light can cause the paper”s color to change. The table below shows what happens when different types of light hit the paper

Answers

The color of the paper may change as a result of the UV light.

Yes, that is conceivable if the table you are referring to shows that ultraviolet (UV) radiation can cause the paper to change colour.

Compared to visible light, UV light is more energetic and has shorter wavelengths. The molecules of the paper may experience a chemical reaction as a result of this high-energy radiation, changing the colour of the paper.

The term "photochemical reaction" or "photochemistry" refers to this process. The molecules of the paper are affected by UV radiation, which can result in chemical reactions that create new compounds with various colours.

For instance, some dyes have chemical connections that are UV-sensitive. These connections may rupture in the presence of UV radiation, changing the dye's colour.

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A phosphoric acid (H3PO4) solution is 14.8 M with a density of 1.71 g/mL.
a) Determine the molality of the solution.
b) Determine the percent by mass of H3PO4 in the solution.

Answers

Answer:

a) Molarity = 57.0 mol/kg

b) Mass percentage = 84.8%

Explanation:

a) To find the molality, we need to first convert the density of the solution into its mass percent concentration. The mass percent concentration is the mass of the solute divided by the total mass of the solution, expressed as a percentage.

Mass of solution = density x volume
Mass of solution = 1.71 g/mL x 1000 mL = 1710 g

Mass percent concentration of H3PO4 = (mass of H3PO4 / mass of solution) x 100%
We can find the mass of H3PO4 by multiplying its molarity by its molar mass and then converting to grams.

Molar mass of H3PO4 = 3(1.01 g/mol) + 1(30.97 g/mol) + 4(16.00 g/mol) = 98.00 g/mol

Mass of H3PO4 = 14.8 mol/L x 98.00 g/mol = 1450.4 g

Mass percent concentration of H3PO4 = (1450.4 g / 1710 g) x 100% = 84.8%

Now that we have the mass percent concentration, we can use it to find the molality. Molality is defined as the number of moles of solute per kilogram of solvent.

Mass of solvent = mass of solution - mass of solute
Mass of solvent = 1710 g - 1450.4 g = 259.6 g

Molality = moles of solute / kilograms of solvent
We can find the moles of solute by dividing the mass of solute by its molar mass.

Moles of H3PO4 = 1450.4 g / 98.00 g/mol = 14.80 mol

Molality = 14.80 mol / 0.2596 kg = 57.0 mol/kg

b) The percent by mass of H3PO4 in the solution is 84.8%, as we found in part a).

Which of the following is a way that animals can help the environment? (2 points)

a
Overpopulating

b
Producing oxygen

c
Spreading disease

d
Spreading seeds

Answers

The correct answer is d) Spreading seeds.
Answer is C. Spreading seeds

Explanation

Animals eat vegetation and when they poop the seeds are dropped into the ground to reseed.

How many liters of a 0.200 M sodium cyanide solution would be needed to react with 45.0kg of rocks that contain 2.00% by mass of gold?

Answers

There are 91.84L of a 0.200 M sodium cyanide solution would be needed to react with 45.0kg of rocks that contain 2.00% by mass of gold

Percentage weight by weight

The formula for % w/w is mass of solute /mass of solution*100

Substituting the values in the equation

2%= mass of solute/45000 *100

mass of solute= 2*45000/100

mass of solute = 900 gram

Now, to calculate the volume we use the molarity given

molecular weight of sodium cyanide is 49 g/mol

Molarity= mass of solute/molecular mass *volume

0.2=900/49* volume

volume= 900/49*0.2

volume= 91.84 liter

The mass percentage of a solute in solution is the percent concentration of a substance (solute) in solution when it is stated as 'w/w'. This phrase is frequently used when the solute and solution are weighted.

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Write word equations for the following skeleton equations. 1. AI (s) + O2(g) AI2O3 (s)

Answers

Answer:

Aluminum reacts with oxygen gas to produce aluminum oxide.

A new band sensation is playing a concert and recording it for a live album to be released this summer. Create a sequence chain showing the flow of energy changes that occur from the time the sound is created until the audience hears the sound.

Answers

Answer:

Sound is Produced → Speaker → Wave Display → Microphone → Wave Display → Audience Hears Sound

Explanation:

Here is a more detailed explanation of each step in the sequence chain:

Sound is Produced: The sound is initially created by the band on stage. The sound is produced through the vibrations of musical instruments or the vocal cords of the singer.Speaker: The sound waves produced by the band travel through the air as mechanical waves until they reach the speakers on the stage.Wave Display: The sound waves are displayed on a wave display, which is a device that shows the shape, frequency, and amplitude of the waves. This display helps the sound engineers to monitor and adjust the sound to ensure that it is of high quality.Microphone: The sound waves then pass through the microphone, which converts the mechanical waves into electrical signals. These signals are then transmitted to the mixing console.Wave Display: The electrical signals are displayed again on the wave display at the mixing console, allowing the sound engineers to make further adjustments to the sound quality, such as adjusting the levels and frequencies.Audience Hears Sound: Finally, the electrical signals are transmitted to the amplifiers, which amplify the electrical signals and transmit them to the speakers located throughout the venue. The sound waves produced by the speakers propagate through the air and reach the audience, who hears the sound.

Determine the mass in grams of 7.55 × 1021 molecules of water H2O.
a.
7.14 × 10-4 g
d.
22.6 g
b.
2.59 x 102 g
e.
2.59 g
C.
0.226 g

Answers

The mass in grams of 7.55 × 10²¹ molecules of water H₂O is 1.25 × 10⁻² g.

This is using mole concept.

What is mole?

The International System of Units (SI) uses the mole (symbol mol) as the unit of material amount. How many elementary entities of a particular substance are present in an object or sample is determined by the quantity of that material.

Exact 6.02214076 × 10²³ basic entities make up the mole. An elementary entity can be an atom, a molecule, an ion, an ion pair, or a subatomic particle like a proton depending on the makeup of the substance. For instance, although having differing volumes and masses, 10 moles of water (a chemical compound) and 10 moles of mercury (a chemical element) both have the same quantity of substance, and the mercury has exactly one atom for each molecule of the water.

The mass in grams of 7.55 x 10²¹ molecules of water H₂O can be calculated using Avogadro's number. Avogadro's number is 6.02 x 10²³molecules/gram-mole.

Mass (grams) = (7.55 x 10²¹ molecules) (1 Gram/6.02 x 10²³ molecules)

Mass (grams) =  1.25 x 10⁻² grams

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PLEASE HELP!!!!!!!!!!!!!!!!!! Oxygen is in the 16th period, and should therefore have a 2- charge. peroxide also has a charge of 2-. Are they supposed to have the same charge? If so in nomenclature, how do I choose which one to use?

Answers

Each oxygen atom in peroxide compounds like hydrogen peroxide (H2O2) has an additional electron that it shares with the other oxygen atom in the compound, giving the oxygen a charge of -1.

What is a compound?

Any substance comprised of two or more elements that are chemically linked together is known as a compound. A compound's constituent parts are always present in a specific ratio. As an illustration, the substance water (H2O) consists of two hydrogen atoms that are chemically bound to one oxygen atom.

Actually, oxygen belongs to the second period of the periodic table. It can create two covalent bonds with other elements to complete its octet and has six valence electrons.

Each oxygen atom in peroxide molecules like hydrogen peroxide (H2O2) has a charge of -1. This is due to the fact that each oxygen atom in the molecule has an additional electron that it shares with another oxygen atom.

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How to solve question 2A and 2B

Answers

2A. The mole of HCl used is 3.2 moles

2B. The moles of each product produced as:

3.2 moles of NaCl3.2 moles of CO₂3.2 moles of H₂O

A. How do i determine the mole of HCl used?

The mole of HCl used can be obtained as follow:

NaHCO₃ + HCl -> NaCl + CO₂ + H₂O

From the balanced equation above,

1 mole of NaHCO₃ reacted with 1 mole of HCl

Therefore,

3.2 moles of NaHCO₃ will also react to 3.2 moles of HCl

Thus, the number of mole of HCl used is 3.2 moles

2B. How do i determine the mole of each product?

The mole of each product produced can be obtain as shown:

For NaCl

NaHCO₃ + HCl -> NaCl + CO₂ + H₂O

From the balanced equation above,

1 mole of NaHCO₃ reacted to produce 1 mole of NaCl

Therefore,

3.2 moles of NaHCO₃ will also react to produce 3.2 moles of NaCl

Thus, the mole of NaCl produced is 3.2 moles

For CO₂

NaHCO₃ + HCl -> NaCl + CO₂ + H₂O

From the balanced equation above,

1 mole of NaHCO₃ reacted to produce 1 mole of CO₂

Therefore,

3.2 moles of NaHCO₃ will also react to produce 3.2 moles of CO₂

Thus, the mole of CO₂ produced is 3.2 moles

For H₂O

NaHCO₃ + HCl -> NaCl + CO₂ + H₂O

From the balanced equation above,

1 mole of NaHCO₃ reacted to produce 1 mole of H₂O

Therefore,

3.2 moles of NaHCO₃ will also react to produce 3.2 moles of H₂O

Thus, the mole of H₂O produced is 3.2 moles

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Use the periodic table to classify each of the elements below:
Calcium:
Vanadium:
Xenon:
Idoine:
Potassium:
Strontium:

Classify them out of the categories: alkali metal, alkaline earth metal, transitional metal, inner transition metal, halogen, noble gas.

Answers

Answer: Calcium: Alkaline earth metal

Vanadium: Transitional metal

Xenon: Noble gas

Iodine: Halogen

Potassium: Alkali metal

Strontium: Alkaline earth metal

Explanation:

Calcium: alkaline earth metal

Vanadium: transition metal

Xenon: noble gas

Iodine: Halogen

Potassium: Alkali metal

Strontium: alkaline earth metal

In the alkene, when treated with HCl, it shows an increase in weight of 52.14%. what is the molecular formula of alkene?​

Answers

Answer:

CnH2n

Explanation:

Alkenes are either branched or unbranched hydrocarbons with at least one carbon–carbon double bond (CC) and have a general formula of CnH2n.

If 355 mL of 0.325 M Pb(NO;)2 (molar mass 331.2 g/mol) is added to 255 mL of 0.225 M K,POA, (molar
mass 212.27 g/m), how many grams of Pb, (PO4)2 (molar mass 811.54 g/mol) precipitate will be formed? The
balanced equation is
3 Pb(NO;) (ag) + 2 K,PO, (ag) -> Pb, (POA)2 (S) + 6 KNO; (ag)
0.0385 mol
0.0287 mol
31.2 g
23.3 g
46.6 g

Answers

If 355 mL of 0.325 M Pb(NO)₂ (molar mass 331.2 g/mol) is added to 255 mL of 0.225 M K₃PO₄, (molar mass 212.27 g/m), 2.57 grams of Pb(PO₄)₂ (molar mass 811.54 g/mol) precipitate will be formed.[tex]\frac{355ml * 0.325M}{331.2 g/ml}[/tex]

What is precipitation reaction?

The word "precipitation reaction" refers to a "chemical reaction occurring in an aqueous solution where two ionic bonds combine, yielding the formation of an insoluble salt." The insoluble salts produced by precipitation reactions are known as precipitates. The precipitate, a solid type of residue, is formed during precipitation reactions, which are frequently double displacement processes. When two or more solutions with different salt concentrations are combined, these reactions lead to the formation of insoluble salts that precipitate out of the solution.

One of the best examples of a precipitation reaction is the chemical interaction between potassium chloride and silver nitrate, which results in the precipitation of solid silver chloride. The insoluble salt is a result of the precipitation reaction.

The number of grams of Pb(PO4)2 precipitate that is formed can be calculated using the following equation:

Moles Pb(NO₃)₂ x Molar Mass Pb(PO₄)₂ / Moles K₃PO₄ = Grams of Pb(PO₄)₂

So the calculation is:

[tex]\frac{355ml * 0.325M}{331.2 g/ml}[/tex] x [tex]\frac{811.54g/mol}{255ml * 212.27g/mol}[/tex]) = 2.57 g Pb(PO₄)₂

Therefore, 2.57 g of Pb(PO₄)₂will be formed when 355 mL of 0.325 M Pb(NO₃)₂ and 255 mL of 0.225 M K₃PO₄ is mixed.

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A snorkeler takes a syringe filled with 17 mL of air from the surface, where the pressure is 1.0 atm, to an unknown depth. The volume of the air in the syringe at this depth is 7.9 mL. What is the pressure at this depth?
Express your answer to two significant figures.

Answers

Originally there were 17 mL of air at a pressure of 1.0 atm At the unknown depth, the volume decreased to 7.9 mLUsing Boyle's Law (Pressure x Volume = Constant), we can calculate the new pressureP1 x V1 = P2 x V2Where P1 = 1.0 atm, V1 = 17 mL, V2 = 7.9 mL So we solve for P2:P2 = (P1 x V1) / V2P2 = (1.0 atm x 17 mL) / 7.9 mLP2 = 2.2 atm

_______________________________

So in short:. Original pressure (at surface) = 1.0 atm Original volume = 17 mLNew volume (at depth) = 7.9 mLUsing Boyle's Law, calculate new pressure:New pressure = (1.0 atm x 17 mL) / 7.9 mL = 2.2 atm two significant figures = 220 kPa

is a pH an atom, ion, molecule, macromolecule, or a cell?

Answers

Although there is some variation amongst tissues, the physiologically typical intracellular pH ranges from 7.0 to 7.4. Skeletal muscle in mammals typically has a pHi of 6.8 to 7.1.

A cell is it an atom?

A cell is the basic membrane-bound living thing and can either have one or more cells. All the molecules required for an organism to function are found in cells. An atomic is 10-10m in size. In contrast, a cellular is 10-6 metres in size. Because all cells are composed of atoms, they are therefore bigger than atoms.

What keeps a cell's pH stable?

Acid excretion, efflux through plasma membranes, and buffering mechanisms all work together to precisely preserve the pH of body fluids. Protons are extruded from the cytosol into the extracellular space through the organic cation transporter (MCT) and the Na+/H+ exchanger (NHE).

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How many moles of KBr are dissolved in 60.2 mL of a 3.50 M solution?

Answers

There are 0.2107 moles of KBr are dissolved in 60.2 mL of a 3.50 M solution.

The molarity of a substance is defined as the number of moles of solute present in 1 litre of a solution.

According to the given data, the molarity of the solution tells us that there are 3.50 moles of KBr in 1000mL of solution. But we only have 60.2mL of solution, so with a mathematical rule of three we can calculate the amount of moles in 60.2mL:

1000 ml - 3.50 moles

60.2 ml -x = 60.2 ml× 3.50 moles/1000 ml

x= 60.2 ml -0.2107 moles

So, there are 0.2107 moles of KBr.

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How much of the reagent is left over?

Answers

31.5 g of Sulfuric acid can be produced from the given amounts of Sulfur trioxide and Water.

Why does Sulfur trioxide not dissolve in water but does in Sulfuric acid?

Option 'c' is the right response to this question because sulphur trioxide cannot be directly dissolved in water to create sulphuric acid because doing so produces a thick fog of the acid that is difficult to condense.

Sulfur trioxide + Water → Sulfuric acid

moles of Sulfur trioxide = mass/molar mass = 25.7 g / 80.06 g/mol = 0.321 mol

moles of Water = volume x density/molar mass = 12.7 mL x 1.00 g/mL / 18.02 g/mol = 0.705 mol

The amount of Sulfuric acid that can be produced is equal to the number of moles of Sulfur trioxide, which is 0.321 mol. To convert this to grams, we multiply by the molar mass of Sulfuric acid:

mass of Sulfuric acid = moles of Sulfuric acid x molar mass = 0.321 mol x 98.08 g/mol = 31.5 g

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We wish to determine the mass of Mg required to react completely with 250mL of 1.0 M HCI. HCI reacts with Mg according to the
equation below.

2HCl(aq) + Mg(s) → MgCl₂(aq) + H₂(g)

How many moles of HCI are present in 250. mL of 1.0 M HCl?

Answers

The number of moles of HCl present in 250. mL of 1.0 M HCl is 0.250 moles.

How to calculate number of moles?

The number of moles of a substance can be calculated using the following expression;

Molarity = no of moles ÷ volume

According to this question, we were given 250. mL of 1.0 M HCl. The number of moles can be calculated as follows;

no of moles of HCl = 0.250L × 1.0M

no of moles of HCl = 0.250 moles

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Answer: .25

Explanation:

the H2 produced in a chemical reaction is collected through water in a eudiometer. If the pressure in the eudiometer is 760.0 torr and the vapor pressure of water under the experimetal conditions is 20.9 torr what is the pressure (torr) of the H2 gas?

Answers

The pressure of the H2 gas is 739.1 torr.

What is Pressure?

The SI unit of pressure is Pascal (Pa), which is defined as one Newton per square meter (N/m^2). Other common units of pressure include atmospheres (atm), millimeters of mercury (mmHg), torr, and pounds per square inch (psi). Pressure is a fundamental concept in physics, chemistry, and engineering, and it plays a crucial role in various natural and man-made processes, such as fluid mechanics, thermodynamics, and weather patterns.

To find the pressure of the H2 gas, we need to subtract the vapor pressure of water from the total pressure inside the eudiometer.

Given:

Pressure of eudiometer (total pressure) = 760.0 torr

Vapor pressure of water = 20.9 torr

Pressure of H2 gas = Pressure of eudiometer - Vapor pressure of water

Pressure of H2 gas = 760.0 torr - 20.9 torr

Pressure of H2 gas = 739.1 torr

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The substances in the table are combined, and Substance 1 loses 40 calories of heat. How many calories of heat will Substance 2
eventually gain?
A 0
B 20
C 40
D 80

Answers

Answer:

C: 40.

Explanation:

To answer this question, we need to use the concept of heat transfer and the law of conservation of energy, which states that energy cannot be created or destroyed, only transferred or transformed from one form to another.

When two substances are in contact, heat can flow from one substance to another until they reach thermal equilibrium (i.e., they have the same temperature). In this case, Substance 1 loses 40 calories of heat, which means it gives off 40 calories of heat to Substance 2. Therefore, Substance 2 will gain 40 calories of heat to reach thermal equilibrium.

Therefore, the correct answer is option C: 40.

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