What best explains why sodium is more likely to react with another element than an element such as neon?
a.) Sodium has one fewer proton than neon.
b.) Sodium has fewer electron than neon.
c.) Sodium has one more electron than neon.
d.) Sodium has one more neutron than neon.

Answers

Answer 1

BAnswer:

Explanation:

N


Related Questions

treatment of gold metal with brf3 and kf produces br2 andkauf4, a salt of gold. identify the oxidizing agent and the reducingagent in this reaction. what mass of the gold salt forms when a73.5-g mixture of equal masses of all three reactants is prepared?

Answers

According to the given question  : The mass of the gold salt (KAuF4) formed = moles × molar mass= 0.248 × 442.08=109.6 g Therefore, 109.6 g of the gold salt (KAuF4) are formed.

The reaction of gold with BrF3 and KF produces a gold salt (KAuF4) as well as Br2. The oxidizing and reducing agents are easily identifiable. BrF3 is the oxidizing agent and gold is the reducing agent

.The reaction is as follows:2Au + 3BrF3 + 6KF → 2KAuF4 + 3Br2Gold is oxidized from 0 to +3, and fluoride is reduced from +3 to 0, with BrF3 being the oxidizing agent. The gold metal acts as the reducing agent since it gains an electron. The balanced chemical reaction for the reaction is given as follows

:2Au + 3BrF3 + 6KF → 2KAuF4 + 3Br2

To find the mass of the gold salt formed, we have to first calculate the number of moles of each reactant. 73.5 g of mixture contains equal masses of all three reactants; therefore, the mass of each reactant is 73.5/3 = 24.5 g.

Molar mass of KF = 58.1 g/mol

Moles of KF = mass/molar mass

= 24.5/58.1

= 0.421mol

Molar mass of BrF3 = 136.9 g/mol

Moles of BrF3 = mass/molar mass

= 24.5/136.9

= 0.179mol

Molar mass of Au = 196.97 g/mol

Moles of Au = mass/molar mass

= 24.5/196.97

= 0.124mol

According to the stoichiometry of the reaction, the moles of gold reacting are 2 x 0.124 = 0.248 mol.

Molar mass of KAuF4 = 442.08 g/mol

The mass of the gold salt (KAuF4) formed = moles × molar mass= 0.248 × 442.08=109.6 g

Therefore, 109.6 g of the gold salt (KAuF4) are formed.

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Assuming ideal solution behavior, what is the molar mass of a solution of 5.00 g of a compound in 25.00 g of carbon tetrachloride (bp 76.8 °C; Kb - 5.02 °C/m) that boils at 81.5 °C at 1 atm?

Answers

Assuming ideal solution behavior, the molar mass of the compound in the solution is approximately 0.214 kg/mol, based on the boiling point elevation method.

To find the molar mass of the compound dissolved in carbon tetrachloride, we can use the concept of boiling point elevation. The equation used to calculate the boiling point elevation is:

ΔTb = Kb * m

where ΔTb is the boiling point elevation, Kb is the molal boiling point constant of the solvent, and m is the molality of the solute.

First, we need to calculate the molality of the solute in the solution:

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

Given that the mass of the compound is 5.00 g and the mass of carbon tetrachloride is 25.00 g, we need to convert the masses to kg:

mass of compound (in kg) = 5.00 g / 1000 = 0.005 kg

mass of carbon tetrachloride (in kg) = 25.00 g / 1000 = 0.025 kg

Next, we calculate the moles of solute:

moles of solute = mass of solute / molar mass of solute

Let's assume the molar mass of the compound is M.

moles of solute = 0.005 kg / M

Now, we can calculate the molality:

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

m = (0.005 kg / M) / 0.025 kg

m = 0.2 / M

Next, we calculate the boiling point elevation (ΔTb):

ΔTb = Kb * m

ΔTb = 5.02 °C/m * (0.2 / M)

ΔTb = 1.004 / M °C

Finally, we can calculate the change in boiling point (ΔTb) using the equation:

ΔTb = Tb - Tb°

where Tb is the boiling point of the solution (81.5 °C) and Tb° is the boiling point of the pure solvent (76.8 °C).

ΔTb = 81.5 °C - 76.8 °C

ΔTb = 4.7 °C

Now we can set up an equation to solve for the molar mass (M):

1.004 / M = 4.7 °C

Solving for M:

M = 1.004 / 4.7

M ≈ 0.214 mol/kg

Therefore, the molar mass of the compound in the solution is approximately 0.214 kg/mol.

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Suppose you have three identical drinking cups: one made of plastic, one foam, and one paper. You want to find out which cup will keep your hot cocoa hot for the longest time. a Phrase a formal question for this experiment. B. What is your hypothesis? c. What is the experimental variable? d. What are three important control variables? e. What type of evidence will you collect to test your hypothesis? F Challenge: Conduct your experiment and summarize your findings

Answers

Explanation:

Remember, a hypothesis is an assumption that may only be accepted after been tested.

a. A formal question using chemistry language for this experiment could be;

Among plastic, foam, and paper, which has a better thermal insulating capacity?

b. Hypothesis: Plastic has a better thermal insulating capacity.

c. The Experimental variable is all the different kinds of materials used in cup production.

d. Three important control variables include;

amount of cocoa in the cup,size of the cup,cup's texture

e. Note in other to test your hypothesis, we need to measure the initial and final temperatures in all three kinds of cups.

Classify as physical property or chemical property: Length of metal objects

A. Physical Property
B. Chemical Property

Answers

Answer:

A.Physical property

Explanation:

Physical properties such as mass,volume,density and colour can be observed without changing the identity of that matter.Examples of extensive properties include mass,volume and length.

A 4 g sugar cube (Sucrose: C12H22O11) is dissolved in a 350 ml teacup of 80 °C water. What is the percent composition by mass of the sugar solution? Density of water at 80 °C = 0.975 g/ml a. 1.96% b. 1.16 % c. 0.63 % d. 1.63 % e. 1.36 %

Answers

The percent composition by mass of the sugar solution is 1.16%. The correct answer is option b.

To calculate the percent composition by mass, we need to determine the mass of the sugar in the solution and divide it by the total mass of the solution, then multiply by 100 to get the percentage.

Given:

Mass of sugar (C12H22O11) = 4 g

Volume of water = 350 ml

Density of water at 80 °C = 0.975 g/ml

First, we need to calculate the mass of the water in the solution:

Mass of water = Volume of water x Density of water = 350 ml x 0.975 g/ml = 341.25 g

Next, we can calculate the total mass of the solution:

Total mass of solution = Mass of sugar + Mass of water = 4 g + 341.25 g = 345.25 g

Finally, we can calculate the percent composition by mass of the sugar solution:

Percent composition by mass of sugar = (Mass of sugar / Total mass of solution) x 100

                               = (4 g / 345.25 g) x 100

                               ≈ 1.16%

Therefore, the percent composition by mass of the sugar solution is approximately 1.16%, which corresponds to option b.

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The half-life of strontium-90 is 28. 1 years. How long will it take a 10. 0-g sample of strontium-90 to decompose to 0. 69 g? a) 217 years. B) 108 years. C) 163 years. D) 73 years

Answers

The half-life of strontium-90 is 28.1 years. To calculate the time it takes for a substance to decay, use the formula A=A0*(1/2)(t/T1/2) where A0 is the initial amount, A is the amount remaining after a period of time, and T1/2 is the half-life. The correct answer is D).

The half-life of strontium-90 is 28.1 years. The amount of strontium-90 remaining after a specific amount of time is equal to the initial amount multiplied by 1/2 raised to the number of half-lives that have occurred. To calculate the time it takes for a substance to decay, use the following formula:

[tex]A=A0*(1/2)^(t/T1/2)[/tex]where:A0 is the initial amount of the substance A is the amount of substance remaining after a period of time t is the elapsed timeT1/2 is the half-life of the substance In this question,

A0 = 10.0 g (the initial mass of strontium-90), A = 0.69 g (the final mass of strontium-90), and T1/2 = 28.1 years (the half-life of strontium-90).We'll start with the following formula: [tex]A=A0*(1/2)^(t/T1/2)[/tex]

Here, we'll replace A0 with 10.0 g, A with 0.69 g, and T1/2 with 28.1 years.

[tex]0.69 g = 10.0 g * (1/2)^(t/28.1)[/tex]

Let's divide both sides by 10.0 g:[tex]0.069 = (1/2)^(t/28.1)[/tex]

Next, we'll use logarithms to solve for t. [tex]log 0.069 = log[(1/2)^(t/28.1)][/tex]

Use the exponent rule for logarithms: log [tex]0.069 = (t/28.1) * log (1/2)[/tex]

Solve for t by dividing both sides by [tex]log (1/2):t = [log 0.069] / [log (1/2)]t = 72.9[/tex] years Therefore, the correct answer is D) 73 years.The content loaded is explained above with the calculation and explanation of the correct option (D).

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Based on the imformation presented in the passage, what is the limiting reagent for the preparation of hydroxuapatite

Answers

According to the information presented in the passage, calcium chloride (CaCl2) is the limiting reagent for the preparation of hydroxyapatite. The preparation of hydroxyapatite (HAp) nanoparticles has been the subject of a number of studies in recent years.

The aim of this research is to investigate the preparation of HAp nanoparticles from calcium chloride and diammonium hydrogen phosphate by the chemical precipitation method, which is a simple and cost-effective method for synthesizing HAp nanoparticles. To prepare HAp nanoparticles, diammonium hydrogen phosphate is used as a phosphate source, and calcium chloride is used as a calcium source. Because the synthesis of HAp nanoparticles is dependent on the stoichiometric amount of calcium ions and phosphate ions, the limiting reagent must be determined to produce HAp nanoparticles with a high degree of purity.

According to the information presented in the passage, calcium chloride (CaCl2) is the limiting reagent for the preparation of hydroxyapatite. As a result, if the quantity of calcium chloride is insufficient, the amount of hydroxyapatite that can be prepared will be limited. Thus, in order to obtain a good yield of HAp nanoparticles, it is critical to use an appropriate amount of calcium chloride.

Calcium chloride (CaCl2) is the limiting reagent for the preparation of hydroxyapatite, according to the information presented in the passage. To produce HAp nanoparticles with a high degree of purity, the stoichiometric amount of calcium ions and phosphate ions must be determined. The amount of hydroxyapatite that can be prepared is limited if the quantity of calcium chloride is insufficient. Therefore, an appropriate amount of calcium chloride should be used to obtain a good yield of HAp nanoparticles.

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Which one is it, will mark brainlist if it correct

Answers

Answer:

Kilograms

Explanation:

Answer:

B) Kilograms is the answer

Mass is:

How fast an object moves.


The shape of an object.


How much an object weighs.


The color of an object.

Answers

Answer:

How much an object weighs is the answer

How much the object weighs.

How did the data from the class barometer compare to the air pressure shown in the weather report?

How did the data from the class barometer compare to the air pressure shown in the weather report?

Answers

The comparison between the class barometer data and the air pressure shown in the weather report serves as a means to evaluate the accuracy and effectiveness of the barometer's measurements.

The comparison between the data from the class barometer and the air pressure shown in the weather report revealed a correlation between the two measurements. The class barometer readings were likely taken at the same time as the weather report's air pressure measurement to ensure accurate comparison.

If the class barometer readings closely matched the air pressure indicated in the weather report, it would suggest that the barometer was functioning correctly and providing reliable measurements. This would indicate that the class barometer could be used as a reliable tool for monitoring air pressure changes.

However, if there were significant discrepancies between the class barometer readings and the air pressure reported in the weather report, it could indicate a calibration issue with the barometer or potential inaccuracies in its measurements. In such a case, it would be necessary to investigate the reasons behind the discrepancies and determine the reliability of the class barometer for future use. It helps to determine the barometer's reliability as a tool for monitoring air pressure changes in the local environment.

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37) Calculate the volume of a 125.66 g solid cylinder with a density of 2.60 g/cm?.

Answers

Answer:

The answer is 48.33 mL

Explanation:

The volume of a substance when given the density and mass can be found by using the formula

[tex]volume = \frac{mass}{density} \\[/tex]

From the question

mass = 125.66 g

density of cylinder = 2.60 g/cm³

We have

[tex]volume = \frac{125.66}{2.6} \\ = 48.3307692...[/tex]

We have the final answer as

48.33 mL

Hope this helps you

The periodic table provides information about the atoms of different elements. Which is a characteristic of an atonu determineś what element it is?​

Answers

Answer: The protons determine what type of element it is, they cannot change and remain the same element.

Why is controlling water flow considered POOR practice?

Answers

Answer:I guessed water scarcity and fresh water stress

Explanation:

Please help ASAP 100 points put a little tiny explation just so I know you not cappin

Answers

Im pretty sure it’s sharing electrons because it has 1 unpaired electron and if it reacts with another f2 then they share the electron to bond together

Which solution should she put in the What should Maria do to keep safe as she carries out her experiment?​

Answers

To ensure safety while carrying out her experiment, Maria should follow proper laboratory protocols and take necessary precautions like handle equipment and glassware carefully,wear appropriate personal protective equipment (PPE),read safety data sheets (SDS) to understand the proper handling,never work alone in the laboratory,etc.

Here are some recommendations:

1.Wear appropriate personal protective equipment (PPE), including safety goggles, lab coat, and gloves, to protect her eyes, body, and hands from potential hazards.

2.Familiarize herself with the properties and potential risks associated with the chemicals she will be working with. Read safety data sheets (SDS) to understand the proper handling, storage, and disposal procedures.

3.Work in a well-ventilated area or use a fume hood to minimize exposure to any fumes or gases that may be generated during the experiment.

4.Handle equipment and glassware carefully to prevent accidents or breakages. Ensure that all equipment is in good condition and appropriate for the experiment.

5.Follow proper techniques for measuring, mixing, and transferring chemicals to prevent spills or splashes. Use appropriate containers and labels to clearly identify and store chemicals.

6.Be aware of emergency procedures, including the location of safety equipment such as fire extinguishers, eyewash stations, and emergency showers.

7.Never work alone in the laboratory. Inform a supervisor or lab mate about the experiment and maintain communication throughout the process.

By following these safety measures, Maria can minimize risks and ensure a safe working environment during her experiment.

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HURRRY IM BEING TIMED

Answers

Answer:

C) 4s2

Explanation:

Answer:

C is the right answer

Explanation:

If a photon has a wavelength of 6.83 x 10-12 m, what is its frequency?

Answers

Nu = c/lambda
Nu being the frequency
Lambda being the wavelength
C being the speed of light

Divide the speed of light by the wavelength:
3/6.83 = 0.439
10^8/10^-12 = 20

So you have 0.439 x 10^20
or
4.39 x 10^19 s^-1

A) Why is an Erlenmeyer flask preferred over a beaker for the collection of the organic layer during an extraction?
B) When performing a simple distillation, what is the proper position of the thermometer bulb to assure an accurate boiling point reading? Draw a picture to illustrate the positioning?

Answers

An Erlenmeyer flask is preferred over a beaker for the collection of the organic layer during an extraction due to its tapered shape and narrower neck.

This design minimizes the risk of splashing and facilitates the use of a stopper or separatory funnel, allowing for better separation of the organic and aqueous layers.

During an extraction, organic compounds are often separated from an aqueous solution. An Erlenmeyer flask is a more suitable choice for collecting the organic layer for several reasons:

1. Tapered shape: The tapered shape of an Erlenmeyer flask reduces the risk of splashing and allows for more controlled pouring of the organic layer.

2. Narrow neck: The narrower neck of the Erlenmeyer flask helps prevent the loss of volatile organic compounds and minimizes exposure to air, reducing the chances of evaporation and contamination.

3. Use of stopper or separatory funnel: The Erlenmeyer flask can accommodate a stopper or be connected to a separatory funnel, allowing for easier separation of the organic and aqueous layers. This enables efficient transfer of the desired organic layer while leaving behind the aqueous layer.

Overall, the design features of an Erlenmeyer flask make it a preferred choice for collecting the organic layer during an extraction, ensuring better separation and minimizing loss or contamination of the organic compound.

B) In a simple distillation setup, the thermometer bulb should be positioned at the same height as the sidearm or slightly below it. This allows for an accurate boiling point reading by measuring the temperature of the vapor being produced.

In a simple distillation setup, the thermometer is used to monitor the boiling point of the liquid being distilled. To obtain an accurate boiling point reading, it is essential to position the thermometer bulb correctly.

The proper position of the thermometer bulb is at the same height as the sidearm of the distillation apparatus or slightly below it. This ensures that the thermometer is immersed in the vapor phase where the temperature corresponds to the boiling point of the liquid. Placing the bulb too high or too low in the apparatus can result in inaccurate temperature readings.

Here is a simple illustration to depict the positioning of the thermometer bulb in a distillation setup:

```

    <- Sidearm

   |

 __|__

|     |

|_____| <- Thermometer bulb

   |

   |

```

By positioning the thermometer bulb at the appropriate height, it will accurately measure the temperature of the vapor, providing a reliable indication of the boiling point of the liquid being distilled.

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How many days would it take for three-fourths of the sample to decay? days ______ time:

Answers

It would take approximately 0.415 half-lives for three-fourths of the sample to decay.

To determine the number of days it would take for three-fourths of a sample to decay, we need to consider the concept of half-life.

The half-life is the time it takes for half of a radioactive sample to decay. In this case, since we want to know when three-fourths (or 75%) of the sample decays, we can use the concept of half-life to calculate the time required.

Let's assume the half-life of the radioactive substance in the sample is t. After one half-life (t), the sample will have decayed to 50%. After two half-lives (2t), the sample will have decayed to 25%. After three half-lives (3t), the sample will have decayed to 12.5%. And after four half-lives (4t), the sample will have decayed to 6.25%.

Since we want to know when three-fourths (75%) of the sample decays, we need to find the number of half-lives required to reach that point. We can set up the following equation:

(1/2)^(n) = 3/4

Where n is the number of half-lives. Solving this equation, we find:

n = log(3/4) / log(1/2)

Using logarithms, we can calculate:

n ≈ 0.415

Since we know the half-life is denoted as t, we can calculate the time required as:

Time required = 0.415 * t

However, without specific information about the half-life of the radioactive substance, we cannot provide an exact value in days or any specific time unit. The half-life can vary greatly depending on the specific substance, ranging from fractions of seconds to billions of years.

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What is a hypothesis in a controlled experiment?

Answers

Theory as to what will happen in the experiment. It is essentially an educated guess about what you expect the outcome of the experiment to be.
A hypothesis is a tentative, testable statement based on inferences. A controlled experiment is used to test hypothesis. It is designed such that the independent (or manipulated) variable is changed in order to observe its effects on the dependent(or responding) variable.

When a metal such as copper is heated it expands. Explain
what happens to the metal particles as the solid metal expands.​

Answers

Explanation:

When a metal is heated the kinetic energy in the particles increases and hence the force of attraction decreases amongst the particles - as electrons try to escape due to kinetic energy. This causes the metal to expand.

what does love feel like to others comment or answer this but i know as i have met my love scarlet i love you luv our future also can not just dream but see it

Answers

Answer:

this isn't really a answer but that really nice you found someone u love

whenever I look at him, time stops. whenever I can make him smile or laugh, my heart melts. whenever he looks at me or stares at me, I blush. love to me is being in love with the person who makes your the happiest and being in love with the person who you want to spend the rest of your life with. being in love means doing anything that'll make them happy. I would do anything for just his smile. seeing him be happy is good enough for me.

which is not part of the photochemical smog reactions? group of answer choices aldehydes vocs ozone nox carbon monoxide

Answers

Photochemical smog is a type of air pollution that is caused by the presence of sunlight in the atmosphere. It is mainly composed of a mixture of various pollutants like volatile organic compounds (VOCs), nitrogen oxides (NOx), ozone, and some organic compounds such as aldehydes.

Carbon monoxide (CO) is not part of the photochemical smog reactions. Here is a brief explanation of each pollutant present in photochemical smog:Aldehydes: They are a type of organic compound that is produced by the incomplete combustion of fuels. It is considered a precursor to photochemical smog.VOCs: VOCs are a type of organic compound that can be found in various materials like paints, adhesives, cleaning supplies, and gasoline.

It can cause respiratory problems, eye irritation, and other health issues.NOx: NOx is a group of pollutants that are produced by the burning of fossil fuels. They can react with VOCs to form photochemical smog.CO: CO is produced by the incomplete combustion of fuels and can cause headaches, dizziness, and nausea in humans.Thus, carbon monoxide (CO) is not part of the photochemical smog reactions.

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Write the concentration equilibrium constant expression for this reaction. Cr2O_7^2 + (aq)+ 6I^- (aq)+ 14H^+ (aq) rightarrow 3 I_2(s)+ 2Cr^3 +(aq)+ 7H_2 O (I)

Answers

The concentration equilibrium constant expression for the given reaction can be written as follows: Kc = ([I2]^3 [Cr^3+]^2) / ([Cr2O7^2-] [H+]^14 [I^-]^6)

In this expression, the square brackets represent the concentration of each species involved in the reaction. The coefficients in front of the species indicate their stoichiometric coefficients. The equilibrium constant, Kc, represents the ratio of the concentrations of the products raised to their respective stoichiometric coefficients divided by the ratio of the concentrations of the reactants raised to their respective stoichiometric coefficients. It is a measure of the extent of the reaction at equilibrium and provides information about the relative concentrations of the reactants and products.

In the given reaction, the concentrations of I2 and Cr^3+ are raised to the power of 3 and 2, respectively, because they appear as products with stoichiometric coefficients of 3 and 2. The concentrations of Cr2O7^2-, H+, and I^- are raised to the power of 1, 14, and 6, respectively, because they appear as reactants with stoichiometric coefficients of 1, 14, and 6.

The equilibrium constant expression allows us to quantitatively analyze the reaction and determine the equilibrium concentrations of the species involved based on their initial concentrations and the stoichiometry of the reaction. It also helps predict the direction in which the reaction will proceed to reach equilibrium, based on the relative magnitudes of the concentrations of the reactants and products.

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if 51.6 g s is allowed to react as completely as possible with 104.0 g f2(g) , what mass of the excess reactant is left? if 51.6 is allowed to react as completely as possible with 104.0 , what mass of the excess reactant is left?42.8 g f2 37.0 g s 16.9 g s 22.4 g s

Answers

The balanced equation for the reaction is:S (s) + 2F4+ (g) → SF4 (s)

The first thing to do is to determine the limiting reactant, which is the reactant that will be entirely consumed, limiting the amount of product that can be formed. We can do that by calculating the amount of product that can be formed from each reactant assuming they are the limiting reactant:

104.0 g F2 x (1 mol F2 / 38.00 g F2) x (1 mol SF4 / 2 mol F2) x (108.07 g SF4 / 1 mol SF4) = 150.7 g SF4 51.6 g S x (1 mol S / 32.07 g S) x (1 mol SF4 / 1 mol S) x (108.07 g SF4 / 1 mol SF4) = 179.4 g SF4

Therefore, the limiting reactant is F2, which means that S is in excess. To determine the mass of excess reactant left, we need to calculate the amount of F2 that reacted:

104.0 g F2 x (1 mol F2 / 38.00 g F2) = 2.737 mol F2The amount of SF4 produced is:2.737 mol F2 x (1 mol SF4 / 2 mol F2) x (108.07 g SF4 / 1 mol SF4) = 147.3 g SF4

The amount of S that reacted is:147.3 g SF4 x (1 mol S / 1 mol SF4) x (32.07 g S / 1 mol S) = 4720 g S

The mass of excess S left is the initial mass of S minus the mass of S that reacted:51.6 g S - 47.20 g S = 4.40 g S

Since F2 is the limiting reactant, all of the S will not be consumed. The mass of excess S left is 4.40 g.

From the balanced equation,S (s) + 2F2 (g) → SF4 (s)It can be deduced that the stoichiometry between S and F2 is 1:2. The ratio of S to F2 is 1:2 in the reaction. The ratio of 51.6 g S and 104.0 g F2, calculated as moles, is S:

F2= 1.605:5.474, or approximately 1:3.4. In order for all the S to react completely, 154.8 g of F2 will be required.

However, we only have 104.0 g of F2. Therefore, F2 is the limiting reactant and S is in excess.The mass of F2 that reacted can be determined using the amount of SF4 produced from the limiting reactant,F2:

104.0 g F2 x (1 mol F2 / 38.00 g F2) x (1 mol SF4 / 2 mol F2) x (108.07 g SF4 / 1 mol SF4) = 150.7 g SF4

The amount of S that reacted can be determined from the amount of SF4 produced:150.7 g SF4 x (1 mol S / 1 mol SF4) x (32.07 g S / 1 mol S) = 4832 g S

Therefore, the mass of excess S left is:51.6 g S - 48.32 g S = 3.28 g STherefore, the answer is 3.28 g S. 3.28 g of excess S is left after 51.6 g of S and 104.0 g of F2 react as completely as possible in the formation of SF4.

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the half-life of carbon -11 is 20 min. How much of a 100 mg sample remains after 1.33 hours?

Answers

After 1.33 hours, approximately 3.125 mg of a 100 mg sample of carbon-11 remains.

The half-life of a radioactive substance is the time it takes for half of the sample to decay. In this case, the half-life of carbon-11 is 20 minutes. To determine the amount of carbon-11 remaining after 1.33 hours, we need to calculate the number of half-lives that have passed and the corresponding amount of remaining substance.

First, let's convert the given time of 1.33 hours to minutes:

1.33 hours * 60 minutes/hour = 79.8 minutes.

Next, we calculate the number of half-lives that have passed by dividing the total time by the half-life:

Number of half-lives = 79.8 minutes / 20 minutes = 3.99.

Since we cannot have a fraction of a half-life, we round down to the nearest whole number, which is 3.

Now, we can calculate the amount of remaining carbon-11 using the formula:

Amount remaining = Initial amount * (1/2)^(number of half-lives).

Amount remaining = 100 mg * (1/2)^3 = 100 mg * (1/8) = 12.5 mg.

Therefore, approximately 3.125 mg (1/8 of 12.5 mg) of the 100 mg sample of carbon-11 remains after 1.33 hours.

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I need help please it is my last question and ill give brainy and all the points!

Answers

Answer:

its B

Explanation:

this is pretty obvious since I know about this and did it already.

I Hope this helps!

GOODLUCK!!!!!!!

name the following compound ch3 -ch2-ch2-ch3

Answers

Answer:

Butane

Explanation:

the name is butane and if u need longterm help in Organic Chemistry u can add me

Key ConceptsNaming and drawing organic moleculesOrganic nomenclatureFunctional groups

Solution

CH3–CH2–CH2–CH3

It can help us identify a molecule based on its formula to draw it out. (See the image below.)

Now, we can identify any functional groups present in the molecule. As you can see, there are no outstanding features in this molecule. It is comprise of 4 carbons single bonded to each other and also bonded to hydrogen atoms.

This type of organic molecule is called an alkane. They end in the suffix -ane.

The root of the word can be determined based on the number of carbons in the carbon chain: 4 in this case. It would be "but".

Therefore, this compound is called butane.

Which process would most likely be employed to separate a mixture of sand and water?
a.) osmosis
b.) filtration
c.) fractionation
d.) chromatography

Answers

Answer:

b

Explanation:

filtration can seperate solid and liquids

What is the mass number of a carbon atom which has 7 neutrons?

Answers

Answer:

Carbon-13

Explanation:

Carbon have three isotopes. Isotopes are the atoms of the same element which has a different number of neutrons. Carbon has 3 isotopes.

Carbon-12 : 6 electrons I 6 protons I 6 neutrons

Carbon-13 : 6 electrons I 6 protons I 7 neutrons

Carbon-14 : 6 electrons I 6 protons I 8 neutrons

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