How much energy will a photon with a frequency of 6.8 x 104 Hz emit?

Answers

Answer 1

Answer:

Energy emitted by photon = 45.06 × 10−32 J

Explanation:

Energy of photon is given by  E = hf

where

h is the Planck's constant whose value is 6.626×10−34J⋅s

f is the frequency of photon

________________________________________

given that

f = 6.8 x 104 Hz

1 HZ = 1 s^-1

E =  6.626×10−34J⋅s * 6.8 x 10^4 Hz

E = 45.06 × 10−32 J

Thus,

Energy emitted by photon is 45.06 × 10−32 J


Related Questions

Research Question: Does the type of gasoline put in a car effect how fast the car can drive?
What is the independent variable in this experiment?
O how much gas is put into the car
which car the gas is put into
O how fast the car can drive
o type of gasoline

Answers

Answer:

type of gasoline

Explanation:

Independent variable in an experiment is the variable that the experimenter changes or manipulates in order to bring out a measurable outcome or response.

In this experiment involving how the type of gasoline put in a car affect how fast the car can drive, the independent variable is the TYPE OF GASOLINE because it is what the experimenter changes in order to see it's effect on the speed of the car (dependent variable).

What best explains why sodium is more likely to react with another element than an element such as neon

Answers

Answer: Neon is not reactive (full valence shell)

Explanation:

Neon is a noble gas and has a stable structure (8 valence electrons) -therefore, is not very reactive.

the acetamide group of 4-acetamidobenzenesulfonamide can be hydrolyzed under acidic conditions without affecting the sulfonamide group, which hydrolyzes much more slowly. as a final step, the acidic hydrolysis solution is neutralized with sodium carbonate to isolate sulfanilamide:

Answers

The process of hydrolyzing the acetamide group of 4-acetamidobenzenesulfonamide can be carried out under acidic conditions without affecting the sulfonamide group, which hydrolyzes much more slowly. Sodium carbonate is used in the final step to isolate sulfanilamide from the acidic hydrolysis solution

The hydrolysis of an amide group in the presence of an acidic environment is a straightforward approach for the synthesis of carboxylic acids and amines. In general, the amide bond is hydrolyzed under acidic conditions, resulting in the breakdown of the molecule into its parent acid and amine. As a result, it is a commonly used process in organic synthesis.For the given compound, 4-acetamidobenzenesulfonamide, the acetamide group is more susceptible to hydrolysis under acidic conditions than the sulfonamide group. This is due to the resonance stabilization of the sulfonamide group.

As a result, under acidic conditions, the acetamide group is hydrolyzed much faster than the sulfonamide group. This is done in order to create the free sulfanilamide.To achieve the free sulfanilamide, the acidic hydrolysis solution is neutralized with sodium carbonate. This is the final step in the process of obtaining sulfanilamide from 4-acetamidobenzenesulfonamide. The acidic hydrolysis solution can be neutralized with any base that is strong enough to deprotonate the acid. Sodium carbonate is a strong enough base to neutralize the solution and isolate the sulfanilamide.The acidic hydrolysis of the acetamide group and the isolation of the sulfanilamide from 4-acetamidobenzenesulfonamide is a useful process in organic synthesis.The acetamide group of 4-acetamidobenzenesulfonamide can be hydrolyzed under acidic conditions without affecting the sulfonamide group, which hydrolyzes much more slowly. Sodium carbonate is used in the final step to isolate sulfanilamide from the acidic hydrolysis solution.

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Calculate the pH of a solution formed by mixing 100. 0 mL of 0. 100 M NaF and 100. 0 mL of 0. 060 M HCl. Ka of HF = 7. 24 x 10-4

Answers

The given question requires us to calculate the pH of a solution formed by mixing 100.0 mL of 0.100 M NaF and 100.0 mL of 0.060 M HCl. The Ka of HF is given as 7.24 × 10-4. The following is the step-by-step explanation of how to calculate the pH of the given solution.

Mixing 100.0 mL of 0.100 M NaF and 100.0 mL of 0.060 M HCl we get:0.100 M × 100.0 mL = 10.0 mmol NaF0.060 M × 100.0 mL = 6.00 mmol HCl. We need to find the final concentration of NaF and HCl and determine if a buffer is formed or not. Initially, we have: NaF → Na+ + F-HCl → H+ + Cl-Therefore, in the final solution, we have: Na+ + H+ + F- + Cl- → Na+ + Cl- + HF. The final concentration of NaF is given by: Concentration = moles/volume= (10.0 mmol)/(200.0 mL)= 0.050 M. Similarly, the final concentration of HCl can be determined to be 0.030 M.

Consequently, the final concentration of HF is:6.00 mmol – 10.0 mmol = –4.00 mmol The negative value implies that all of the NaF has reacted with the HCl and that there is no NaF left over to react with water. This indicates that there is no buffer formed, and the solution will be acidic. We can write the following equilibrium equation for HF:HF (aq) + H2O (l) ⇌ H3O+ (aq) + F- (aq). The Ka for HF is 7.24 × 10-4.Ka = [H3O+][F-]/[HF]We can assume that [H3O+] ≈ [F-]. Hence, we can write the expression as follows: Ka = [H3O+]2/[HF]= (7.24 × 10-4) = [H3O+]2/(0.050)Therefore,[H3O+] = √(7.24 × 10-4 × 0.050) = 1.08 × 10-3 pH = –log[H3O+]= –log(1.08 × 10-3) = 2.97Hence, the pH of the given solution is 2.97.

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Will the same solute dissolve differently in different solvents
plz plz plz answer this

Answers

Answer:

It does not matter what the solute is, but Yes, the same solute will dissolve differently in different solvents.

So sorry if it’s wrong but I hope this helps

the energy required to break one mole of hydrogen-hydrogen bonds in h2 is 436 kj. what is the longest wavelength of light with sufficient energy to break a single hydrogen-hydrogen bond.

Answers

The energy required to break one mole of hydrogen-hydrogen bonds in H2 is 436 kJ/mol divided by Avogadro's number, which is equal to 7.246 x 10-19 J/bond. To calculate the longest wavelength of light, we substitute the values in the formula as given below:  = (6.626 x 10-34 J.s) x (2.998 x 108 m/s) / (7.246 x 10-19 J/bond).The longest wavelength of light with sufficient energy to break a single hydrogen-hydrogen bond is 2.742 x 10-7 m.

To calculate the longest wavelength of light, we will use the formula: Energy of a photon (E) = Planck's constant (h) x speed of light (c) / wavelength (λ)Rearranging the above formula we can get,

λ = hc/E where λ is the wavelength, h is Planck's constant, c is the speed of light, and E is the energy of the photon.

The energy required to break one mole of hydrogen-hydrogen bonds in H2 is 436 kJ/mol.

The energy required to break one bond in H2 is 436 kJ/mol divided by Avogadro's number (6.022 x 1023), which is equal to 7.246 x 10-19 J/bond.

So the energy of the photon required to break a single hydrogen-hydrogen bond is 7.246 x 10-19 J/bond.To calculate the wavelength of this photon, we need to substitute the values in the formula as given below:

λ = (6.626 x 10-34 J.s) x (2.998 x 108 m/s) / (7.246 x 10-19 J/bond)λ

= 2.742 x 10-7 m

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a 0.1 m aqueous solution of nh4i will be: a 0.1 m aqueous solution of nh4i will be: acidic basic neutral

Answers

A 0.1-m aqueous solution of NH4I will be an acidic solution. NH4I is an acidic salt, as it is the result of the reaction between a strong acid (HI) and a weak base (NH3).

This acid-salt mixture is only partially dissociated into its corresponding cations and anions in water. NH4+ is the cation, which is a weak acid, and I- is the anion, which is a strong base.

As a result, NH4+ is more likely to combine with water to create hydronium ions (H3O+), making the solution acidic.As a result, a 0.1-m aqueous solution of NH4I will have a pH of less than 7 and will be an acidic solution.

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If the net force acting on an object doubles, how will the object’s acceleration be affected?

Answers

It will double as well.

This is seen in the equation F=ma. If f (the net force) is doubled the a has to double to keep the equation the same on both sides. It becomes 2F = 2ma

to what volume should you dilute 0.400 l of a 13.0 mnaoh solution to obtain a 3.00 mnaoh solution? express your answer with the appropriate units.

Answers

We can use the M1V1 = M2V2 equation to calculate the volume required to dilute 0.400 L of a 13.0 M NaOH solution to obtain a 3.00 M NaOH solution.M1V1 = M2V2 equation,M1V1 = M2V2V1 = (M2 × V2)/M1

In this scenario:M1 = 13.0 M, V1 = 0.400 L, M2 = 3.00 M. We can put these values into the M1V1 = M2V2 equation and solve for

V2:V2 = (M1 × V1)/M2V2 = (13.0 M × 0.400 L)/3.00 MV2 = 1.73 L

To determine the volume required to dilute 0.400 L of a 13.0 M NaOH solution to a 3.00 M NaOH solution, we can use the M1V1 = M2V2 equation. The formula tells us that the initial concentration and volume, as well as the final concentration and volume, are proportional.If we look at the equation, we can observe that the final volume (V2) is proportional to the initial volume (V1) and the ratio of the initial and final concentrations (M1/M2). We substitute the values given in the problem into the equation and solve for V2:V2 = (M1 × V1)/M2V2 = (13.0 M × 0.400 L)/3.00 MV2 = 1.73 L Therefore, to dilute 0.400 L of a 13.0 M NaOH solution to a 3.00 M NaOH solution, 1.73 L of water must be added to the solution.

We can conclude that to prepare a 3.00 M NaOH solution from a 13.0 M NaOH solution, 1.73 L of water should be added to 0.400 L of 13.0 M NaOH solution.

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Which answer is NOT one of the four sublevels that electrons can be
placed in?
S
P
B
F

Answers

Answer:

B

Explanation:

The electrons are placed in 4 sublevels: s, p, d, and f. The sublevels contain orbitals and each orbital can carry maximum 2 electrons.

s is the lowest sublevel having only one orbital and can hold a maximum of 2 electrons; p has 3 orbitals and can carry a maximum of 6 electrons, d has 5 orbitals and can carry a maximum of 10 electrons; and f is the highest orbital having 7 orbitals and can hold maximum 14 electrons.

Hence, B is not one of the four sublevels that electrons can be placed in.

how much energy is needed to raise 70 g of paper 40 degrees celsius?

Answers

Explanation:      Heat capacity is the amount of heat required to change the temperature of a ... Therefore, specific heat is measured in Joules per g times degree Celsius








What is te commond that alcws moung a fle from one rlase to ancherr?

Answers

The command that allows moving a file from one location to another is the "mv command".

The mv command renames or transfers files and folders from one directory to another. A file or directory keeps its base file name when moved to a new directory. All links to other files are preserved when you transfer a file, with the exception of when you move it to a different file system. A directory and its contents are added beneath the existing directory when you transfer a directory into it.

The TargetDirectory option of the mv command allows you to provide a new file name or a new directory path name when renaming a file or directory.

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.Experiment 4: Synthesis and Analysis of an Iron(III)-Oxalate Complex
_______ is ligand to coordinate anionic compound of oxalate

Answers

the ligand to coordinate anionic compound of oxalate is known as oxalate. Let's take a closer look at the process of synthesis and analysis of an Iron(III)-Oxalate Complex in Experiment 4.What is Experiment 4?The synthesis and analysis of an Iron(III)-Oxalate Complex is referred to as Experiment 4. This experiment involves the conversion of Fe(III) salt into an Iron(III)-Oxalate complex by a complexation reaction of Fe(III) and Oxalate.

The resulting Iron(III)-Oxalate complex is yellow-green in color. The reaction can be represented by the following chemical equation:Fe+3 + 3C2O4−2 → Fe(C2O4)33−This reaction is an example of a complexation reaction, which involves the formation of coordination compounds from metal ions and complexing agents known as ligands. In this case, the ligand is Oxalate, a bidentate ligand with two binding sites to coordinate to the metal ion. This results in the formation of a stable complex with Fe(III).ConclusionIn summary, the ligand to coordinate anionic compound of oxalate in Experiment 4 is oxalate.

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An ethylene glycol solution contains 30.8 g of ethylene glycol (C2H6O2) in 96.6 mL of water. (Assume a density of 1.00 g/mL for water.) Determine the freezing point of the solution. Determine the boiling point of the solution

Answers

The freezing point of the solution is -11.8 °C.

The boiling point of the solution is 103.31 °C.

To determine the freezing point of the solution, we can use the equation:

ΔTf = Kf * m

where:

ΔTf is the freezing point depression,

Kf is the cryoscopic constant (for water, Kf = 1.86 °C/m),

m is the molality of the solution (moles of solute per kilogram of solvent).

First, let's calculate the molality (m) of the solution:

Molar mass of ethylene glycol (C2H6O2):

C = 12.01 g/mol

H = 1.01 g/mol (x 6) = 6.06 g/mol

O = 16.00 g/mol (x 2) = 32.00 g/mol

Total molar mass = 12.01 g/mol + 6.06 g/mol + 32.00 g/mol = 50.07 g/mol

Number of moles of ethylene glycol (C2H6O2) = mass / molar mass

Number of moles = 30.8 g / 50.07 g/mol = 0.615 mol

Mass of water = volume x density = 96.6 mL x 1.00 g/mL = 96.6 g

Now, let's calculate the molality:

Molality (m) = moles of solute / mass of solvent (in kg)

Molality = 0.615 mol / 0.0966 kg = 6.36 mol/kg

Now we can calculate the freezing point depression (ΔTf):

ΔTf = Kf * m

ΔTf = 1.86 °C/m * 6.36 mol/kg = 11.8 °C

To find the freezing point of the solution, subtract the freezing point depression from the freezing point of pure water (0 °C):

Freezing point = 0 °C - 11.8 °C = -11.8 °C

To determine the boiling point of the solution, we can use the equation:

ΔTb = Kb * m

where:

ΔTb is the boiling point elevation,

Kb is the ebullioscopic constant (for water, Kb = 0.52 °C/m),

m is the molality of the solution (same value as calculated before: 6.36 mol/kg).

ΔTb = 0.52 °C/m * 6.36 mol/kg = 3.31 °C

To find the boiling point of the solution, add the boiling point elevation to the boiling point of pure water (100 °C):

Boiling point = 100 °C + 3.31 °C = 103.31 °C

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are cis-acting proteins must be transported in to the nucleus after translation are proteins that control gene expression trans-acting sequences that interact with rna polymerase are dna elements where transcription factors bind

Answers

Cis-acting proteins directly interact with DNA elements, controlling gene expression without the need for nuclear transport. They bind to specific DNA sequences and regulate transcription factors.

Cis-acting elements are DNA sequences that are located near the genes they regulate. These elements contain binding sites for transcription factors, which are proteins that control the transcription of genes. Cis-acting proteins are proteins that bind to these DNA elements and regulate the expression of nearby genes. They can enhance or repress gene expression by influencing the binding of transcription factors and the recruitment of RNA polymerase to the promoter region of a gene.

In contrast, trans-acting factors are proteins or other molecules that are not directly bound to the DNA sequence they regulate. They can diffuse within the cell and interact with cis-acting elements on different DNA molecules. Trans-acting factors include transcription factors, which can bind to specific DNA sequences and regulate gene expression by interacting with the RNA polymerase complex.

Therefore, the correct statement is that cis-acting proteins are DNA elements where transcription factors bind. They act directly on the DNA sequence to regulate gene expression.

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write a balanced reaction equation for the dehydration of cyclohexanol

Answers

Dehydration is the process of eliminating water from the given compound. When cyclohexanol dehydrates, it forms cyclohexene as written here:

C₆H₁₁OH ⇒[tex]C_6H_{10} + H_2O\\[/tex]

What is cyclohexanol?

Cyclohexanol is an alcohol formed from the cyclic alkane cyclohexane and water or other hydroxyl groups. The chemical formula of this compound is

C₆H₁₁OH.

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you have 900 ml of a stock solution of cacl2 that is 3.2 m. calculate and describe how you would make a 1m solution of cacl2?

Answers

Answer:

To make a 1 M solution of CaCl2, you need to dilute the stock solution of 3.2 M CaCl2. The equation to use is:

C1V1 = C2V2

where C1 is the concentration of the stock solution (3.2 M), V1 is the volume of the stock solution used, C2 is the concentration of the desired solution (1 M), and V2 is the final volume of the desired solution.

To calculate how much of the stock solution you need to use, you rearrange the equation to get:

V1 = (C2 x V2) / C1

Substituting the values given, we get:

V1 = (1 M x 900 ml) / 3.2 M

V1 = 253.125 ml

Therefore, to make a 1 M solution of CaCl2, you need to measure 253.125 ml of the 3.2 M stock solution and add enough water to make the final volume up to 900 ml.

clean rooms used for sterile biological research are sealed and operate at slightly above

Answers

Clean rooms used for sterile biological research are sealed and operate at slightly above atmospheric pressure is a crucial measure to maintain the sterility and integrity of the environment.

Clean rooms in sterile biological research facilities are designed to maintain a controlled and clean environment, free from contaminants that could compromise experiments or the integrity of biological samples. One important aspect of clean rooms is their positive pressure. Operating clean rooms at slightly above atmospheric pressure helps to prevent the ingress of contaminants from the surrounding environment. When a clean room has positive pressure, it means that the air inside the room is at a slightly higher pressure than the air outside. This pressure differential helps to keep the clean air inside the room and creates a barrier that prevents particles and contaminants from infiltrating the space.

By maintaining positive pressure, any leaks or openings in the clean room system will cause air to flow outward rather than inward. This outward flow of air helps to ensure that the clean room remains a controlled environment with filtered and purified air. It reduces the chances of airborne contaminants, such as dust, pollen, microorganisms, or chemicals, from entering the clean room and potentially contaminating sensitive experiments or samples. Positive pressure in clean rooms is achieved by employing specialized ventilation systems, including high-efficiency particulate air (HEPA) filters. These filters remove particles as small as 0.3 micrometers in size, ensuring the cleanliness of the air within the clean room. The positive pressure is maintained by adjusting the airflow and controlling the exhaust systems to balance the air pressure and prevent any unwanted pressure differentials.

Overall, operating clean rooms at slightly above atmospheric pressure is a crucial measure to maintain the sterility and integrity of the environment. It helps to minimize the risk of contamination and ensures that sterile biological research can be conducted under controlled conditions, providing accurate and reliable results.

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What volume of 0.415 M silver nitrate will be required to precipitate as silver bromide all the bromide ion in 35.0 mL of 0.128 M calcium bromide? 2 AgNOsaq} CaBrzlaq) Ca(NOs)zlaq) 2 AgBris) Answer: 21.6 mL What volume of 0.496 M HCI is required to neutralize 20.0 mL of 0.809 M sodium hydroxide? (write reaction)

Answers

To precipitate all the bromide ions in 35.0 mL of 0.128 M calcium bromide as silver bromide, approximately 21.6 mL of 0.415 M silver nitrate is required.

The balanced chemical equation for the precipitation reaction between silver nitrate (AgNO3) and calcium bromide (CaBr2) is:

2 AgNO3 (aq) + CaBr2 (aq) -> Ca(NO3)2 (aq) + 2 AgBr (s)

According to the stoichiometry of the reaction, 2 moles of silver nitrate react with 1 mole of calcium bromide to form 2 moles of silver bromide. This means that the ratio of silver nitrate to calcium bromide is 2:1.

To determine the volume of silver nitrate required, we can set up a proportion using the molarity and volume of the calcium bromide and silver nitrate solutions:

(0.128 M CaBr2) / (35.0 mL CaBr2) = (0.415 M AgNO3) / (x mL AgNO3)

Solving for x, the volume of silver nitrate, we find that x is approximately 21.6 mL.

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Please help me answer this it’s due today. I will give brainliest

Answers

Answer: X should represent H, hydrogen.

Explanation:

The H is the only one that hasnt been stated in the left side of the formula. H has three atoms as well.

The partial pressure of oxygen (O2) in your lungs varies from 25 mmHg to 40 mmHg. What mass of oxygen can dissolve in 1.0 L of water at 25°C at 40 mmHg? (Koxygen = 1.3 x 10-3 mol/L atm). (your answer will be express in "g" units)

Answers

Given that Koxygen (Henry's Law constant) is 1.3 x 10^-3 mol/L atm, we can calculate the mass of oxygen dissolved in grams.

Henry's Law states that the concentration of a gas dissolved in a liquid is directly proportional to the partial pressure of the gas above the liquid. The equation for Henry's Law is C = K * P, where C is the concentration of the gas, K is the Henry's Law constant, and P is the partial pressure of the gas.

First, let's convert the given partial pressures to atm:

Partial pressure of O2 in lungs (P) = 25 mmHg to 40 mmHg

P = 25 mmHg * (1 atm / 760 mmHg) = 0.0329 atm

P = 40 mmHg * (1 atm / 760 mmHg) = 0.0526 atm

Now, we can calculate the concentration of oxygen using Henry's Law:

C = K * P

Concentration of O2 at 25 mmHg:

C1 = (1.3 x 10^-3 mol/L atm) * (0.0329 atm) = 4.267 x 10^-5 mol/L

Concentration of O2 at 40 mmHg:

C2 = (1.3 x 10^-3 mol/L atm) * (0.0526 atm) = 6.838 x 10^-5 mol/L

To calculate the mass of oxygen dissolved, we need to multiply the concentration by the molar mass of oxygen (32 g/mol) and the volume of water (1.0 L):

Mass of oxygen dissolved at 25 mmHg = (4.267 x 10^-5 mol/L) * (32 g/mol) * (1.0 L) = 0.001366 g

Mass of oxygen dissolved at 40 mmHg = (6.838 x 10^-5 mol/L) * (32 g/mol) * (1.0 L) = 0.002188 g

Therefore, the mass of oxygen that can dissolve in 1.0 L of water at 25°C at a partial pressure ranging from 25 mmHg to 40 mmHg is approximately 0.001366 g to 0.002188 g.

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How many atoms of chromium, cr, are in 125. 8 g? the molar mass of chromium is 51. 966 gmol

Answers

The molar mass of chromium is 51. 966 gmol , the number of atoms of chromium in 125.8 g is 1.46 × 10²⁴ atoms.

Step 1: Find the number of moles of chromium using the formula:

n = m/M. Where,

m = mass of chromium = 125.8 g

M = molar mass of chromium = 51.966 g/mol

n = 125.8 g/51.966 g/mol = 2.42 mol

Step 2: Find the number of atoms of chromium using Avogadro's number (6.022 × 10²³ atoms/mol).

The formula is: Number of atoms = n × N where N is Avogadro's number. Number of atoms of chromium = 2.42 mol × 6.022 × 10²³ atoms/mol = 1.46 × 10²⁴ atoms (Answer).Therefore, the number of atoms of chromium in 125.8 g is 1.46 × 10²⁴ atoms.

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in the second half of the sulfate test (test 3b), the precipitate is washed before the next reagent is added. specifically, what ion is removed in the rinse and why is it important that it is removed?

Answers

The sulfate test requires the addition of barium chloride to the unknown solution to precipitate sulfate ions. The supernatant is then tested for chloride ions using silver nitrate, but if chloride ions remain, the next reagent will react with them and give false results.

In the sulfate test (test 3b), the first step is the addition of the barium chloride solution to the unknown solution to precipitate the sulfate ions. The precipitation reaction of sulfate ions and barium chloride solution is:BaCl2 (aq) + SO4^2- (aq) → BaSO4 (s) + 2Cl^-(aq)After the precipitation of sulfate ions, the mixture is centrifuged to separate the precipitate (BaSO4) and supernatant (containing chloride ions). The supernatant is then tested for chloride ions using the silver nitrate solution.The silver nitrate reacts with the chloride ions in the supernatant to form a white precipitate of silver chloride.AgNO3 (aq) + Cl^-(aq) → AgCl (s) + NO3^-(aq)

if chloride ions are still present in the precipitate, the next reagent (silver nitrate) will react with them and give a false-positive result for the presence of sulfate ions. Therefore, it is essential to eliminate chloride ions by washing the precipitate to get accurate results.

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Help pls...THANK YOU!!!

Answers

Answer:

cell has vast number of constituents in it various scientist proved different theories and discovered different little constituents like mitochondria, DNA etc

The cell theory was a big impact in science. Scientists realized the basic functional unit of living organisms and all cells come from other cells.

What is the molarity of a sodium chloride solution that has 2.3 moles of NaCl in a volume of 350 mL?

Answers

Answer:

[tex]6.5714\text{M}[/tex]

Explanation:

Number of moles of NaCl = 2.3 moles

Volume = 350 mL = [tex]350\times 10^{-3}\ \text{L}=0.35\ \text{L}[/tex]

Molarity is given by

[tex]M=\dfrac{\text{Number of moles of NaCl}}{\text{Volume}}[/tex]

[tex]\Rightarrow M=\dfrac{2.3}{0.35}[/tex]

[tex]\Rightarrow M=6.5714\text{M}[/tex]

Molarity of the solution is [tex]6.5714\text{M}[/tex]

how many calories are in a food that contains 30 grams of carbohydrate, 10 grams of protein and 5 grams of fat?

Answers

The food containing 30 grams of carbohydrates, 10 grams of protein, and 5 grams of fat has a total of 205 calories.

To determine the number of calories in a food containing carbohydrates, proteins, and fats, we need to know the caloric values per gram for each macronutrient. The standard values are:

Carbohydrates: 4 calories per gram

Protein: 4 calories per gram

Fat: 9 calories per gram

Given that the food contains 30 grams of carbohydrates, 10 grams of protein, and 5 grams of fat, we can calculate the total calories from each macronutrient and sum them to find the total caloric content of the food.

Calories from carbohydrates = 30 grams × 4 calories/gram = 120 calories

Calories from protein = 10 grams × 4 calories/gram = 40 calories

Calories from fat = 5 grams × 9 calories/gram = 45 calories

Therefore, the total caloric content of the food is:

Total calories = Calories from carbohydrates + Calories from protein + Calories from fat

Total calories = 120 calories + 40 calories + 45 calories = 205 calories

It's important to note that this calculation assumes the food is pure carbohydrates, protein, and fat, and does not take into account the calories from other components such as fiber or alcohol if present. Additionally, individual foods may have slightly different caloric values depending on their specific composition and processing. Therefore, it's always a good idea to consult nutrition labels or reliable sources for accurate caloric information about specific food products.

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Definition of Magnetism

Answers

Answer:

Magnetism is the force of attraction on a magnetic substance by a magnet.

Explanation:

Please mark as brainliest.

Which of the following sciences contribute to the field of environmental
science?
a. physics and chemistry
c. social sciences
OS
b. biology and earth science d. all of the above

Answers

Answer:

d

Explanation:

The correct answer is option D: all of the above.

Environmental science is a multidisciplinary field of study that encompasses; physical science, biological sciences, social sciences and even aspects of the humanities.

Social sciences like anthropology have a lot of bearing on environmental science.

Physics, chemistry, biology and earth sciences play a key role in understanding important aspects of the natural environment.

Therefore; Physics, chemistry, biology and earth sciences and social sciences are all relevant in environmental science.

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regarding the use of the ammonia/ammonium chloride buffer in this experiment, why is it important to add enough buffer (to reach ph 10)?

Answers

In the experiment, the use of the ammonia/ammonium chloride buffer is crucial. It is important to add enough buffer to reach pH 10 because the buffer will stabilize the pH of the solution.

In this experiment, the ammonia/ammonium chloride buffer is utilized to maintain the pH level of the solution when a base, such as NaOH, is added. The buffer is able to do this because it contains both a weak acid (ammonium ion, NH4+) and its conjugate base (ammonia, NH3).

When a base is added to the solution, it will react with the ammonium ions present in the buffer to produce ammonia, which will then react with any excess base added. By doing so, the buffer can help keep the pH of the solution from becoming too basic. When the pH is too low, the solution can become too acidic, which can have a negative impact on the results of the experiment. Conversely, if the pH is too high, the solution can become too basic, which can also impact the experiment's results. Thus, it is important to add enough ammonia or ammonium chloride buffer to maintain a pH of 10 throughout the experiment.

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how many moles of fe are produced when 1.8 moles of fe2o3 react with co

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When 1.8 moles of Fe₂O₃ react with CO, it will produce 3.6 moles of Fe.

The balanced chemical equation for the reaction between Fe₂O₃ and CO is:

Fe₂O₂ + 3CO → 2Fe + 3CO₂

From the balanced equation, we can see that 1 mole of Fe₂O₃ reacts with 3 moles of CO to produce 2 moles of Fe.

Therefore, if 1.8 moles of Fe₂O₃ react, we can determine the number of moles of Fe produced by setting up a ratio:

(1.8 moles Fe₂O₃) x (2 moles Fe / 1 mole Fe₂O₃) = 3.6 moles of Fe

Hence, when 1.8 moles of Fe₂O₃ react with CO, it will produce 3.6 moles of Fe.

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