Question 1 how much water would you add to 175 ml of 6.00 m hydrochloric acid to prepare a 2.00 m solution of this acid? 350 ml 700. ml 58.3 ml 525 ml none of the above

Answers

Answer 1
we can use the following dilution equation 
c1v1 = c2v2
where c1 is concentration and v1 is the volume of the concentrated solution 
c2 is concentration and v2 is final volume of the diluted solution 
substituting the values 
6.00 M x 175 mL = 2.00 M x V 
V = 525 mL
final volume of the diluted solution is 525 mL
since there's already 175 mL of acid ,
volume of water to be added - 525 - 175 = 350 mL 
350 mL of water should be added 
Answer 2

Answer:

350 mL

Explanation:

Given:

concentration of stock solution of HCl =6.00 M

Volume of stock solution of HCl = 175 mL

concentration of required solution = 2.00 M

total volume of required solution = to be determined

This is problem of dilution. We have to determine the total volume of required solution to be made, from the given stock solution.

We will use

M₁V₁=M₂V₂

Where

M₁=concentration of stock solution

V₁= volume of stock solution

M₂=concentration of required solution

V₂=volume of required solution

Putting values

6X175=2XV₂

V₂=525 mL

so total volume of required solution formed will be 525 mL

We have already 175 mL of solution in it. The water need is difference of these two volume.

water added = 525-175= 350 mL


Related Questions

What is a disproportionation reaction?

Answers

what is a disproportionation reaction.

What type of reaction is shown below?
2Na + 2H2O ?2NaOH + H2 + heat
A. nuclear
B. exothermic
C. endothermic
D. spontaneous

Answers

An exothermic reaction is a type of chemical reaction in which energy is released to the environment in form of heat or light. Endothermic reaction in the other hand is a chemical reaction where energy is taken from the surroundings and thus the surroundings end up with less energy than they started with. In this case; the above reaction is an Exothermic reaction (heat is being released to the surroundings).

what is the predicted change in the boiling point of water when 4.00 g of barium chloride is dissolved in 2.00 kg of water

Answers

Answer: The predicted change in the boiling point of water is Δt = 0.0148 °C
Solution:
We will use the equation for boiling point elevation Δt
     Δt = i Kb m 
where the van't Hoff Factor i is equal to 3 since one molecule of barium chloride in aqueous solution will produce one Ba2+ ion and  two Cl- ions. The molality m of the solution of 4.00 g of barium chloride dissolved in 2.00 kg of water can be calculated using the molar mass of barium chloride: 
     m = [4.00g BaCl2 * (1 mol BaCl2 / 208.233g BaCl2)] / 2.00kg H2O
         = 0.009605 mol/kg

Therefore, the amount Δt the boiling point increases is 
     Δt = i Kb m 
          = (3) (0.512 °C·kg/mol) (0.009605 mol/kg)
          = 0.0148 °C
We can also find the new boiling point T for the solution since we know that pure water boils at 100 °C:
     Δt = T - 100°C T = Δt + 100°C = 0.0148 °C + 100°C = 100.0148°C 

Answer:

0.015 for APEX

Explanation:

A bottle of the antiseptic hydrogen peroxide is labeled 3.0% (v/v). How many mL of hydrogen peroxide are in a 400 mL bottle of this solution

Answers

There are several ways of expressing concentration of solution. Few of them are listed below
1) mass percentage
2) volume percentage
3) Molarity
4) Normality
5) Molality

In most of the drugs, concentration is expressed either in terms of mass percentage or volume percentage. For, solid in liquid type systems, mass percentage is convenient way of expressing concentration, while for liquid in liquid type solutions, expressing concentration in terms of volume percentage is preferred. Present system is an example of liquid in liquid type solution 


Here, concentration of H2O2 is given antiseptic = 3.0 % v/v

It implies that, 3ml  H2O2 is present in 100 ml of solution

Thus, 400 ml of solution would contain 4 X 3 = 12 ml H2O2
Final answer:

The 3.0% (v/v) label indicates that for every 100 mL of solution, there are 3.0 mL of hydrogen peroxide. Thus, in a 400 mL bottle, there would be 12 mL of hydrogen peroxide.

Explanation:

The percentage given here is a volume/volume percentage, meaning that for every 100 mL of solution, there are 3.0 mL of hydrogen peroxide. To find out how much hydrogen peroxide is in a 400 mL bottle, you just need to scale this proportion up.

Set up an equation like this:

3.0 mL H₂O₂ / 100 mL solution = x mL H₂O₂ / 400 mL solution. Solving for x gives you:
x = (3.0 mL H₂O₂ / 100 mL solution) * 400 mL solution

So, there are 12 mL of hydrogen peroxide in the 400 mL bottle of solution.

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How many grams of barium sulfate, baso4, are produced if 25.34 ml of 0.113 m bacl2 completely react given the reaction: bacl2 + na2so4 → baso4 + 2 nacl?

Answers

Answer is: mass of barium sulfate is 0.668 grams.
Chemical reaction: BaCl₂ + Na₂SO₄ → BaSO₄ + 2NaCl.
V(BaCl₂) = 25.34 mL ÷ 1000 mL/L = 0.02534 L.
c(BaCl₂) = 0.113 mol/L.
n(BaCl₂) = V(BaCl₂) · c(BaCl₂).
n(BaCl₂) = 0.02534 L · 0.113 mol/L.
n(BaCl₂) = 0.00286 mol.
From chemical reaction: n(BaCl₂) : n(BaSO₄) = 1 : 1.
n(BaSO₄) = 0.00286 mol.
m(BaSO₄) = n(BaSO₄) · M(BaSO₄).
m(BaSO₄) = 0.00286 mol · 233.4 g/mol.
m(BaSO₄) = 0.668 g.

Answer:

0.668 g of barium sulfate

Explanation:

Given,

Balanced chemical equation: BaCl₂ + Na₂SO₄ → BaSO₄ + 2NaCl.

Volume of BaCl₂ = 25.34 mL x [tex]\frac{1L}{1000 ml }[/tex]= 0.02534 L.

Molarity of BaCl₂ = 0.113 M

Molarilty = [tex]\frac{moles of solute}{L of the solution }[/tex]

Moles of solute = Molarilty x L of the solution

Moles of BaCl₂ = 0.113 M x 0.02534 L = 0.00286 mol.

From the balanced chemical equation there is a 1:1 molar ratio between BaCl₂ and BaSO₄

Therefore, moles of BaCl₂ = moles of BaSO₄

Moles of BaSO₄ = 0.00286 mol.

Mass of BaSO₄ = moles of BaSO₄ x Molar mass of BaSO₄

Mass of BaSO₄ = 0.00286 mol x 233.4 g/mol.

Mass of BaSO₄ = 0.668 g.

What do we call the mass of an element in a compond compared to the entire mass of the compound?

Answers

molar mass is the mass of a given substance divided by the amount of that substance, measured in g/mol.

A 40.00 ml sample of 0.10 m weak acid with ka of 1.8×10−5 is titrated with a 0.10 m strong base. what is the ph after 20.00 ml of base has been added?

Answers

The answer is 4.74.
Solution:
The product of the volume and concentration of each solution gives the number of moles of the acid HA and the base OH- present before the neutralization:
     0.0400L (0.10mol/L HA) = 0.00400 moles HA
     0.0200L (0.10mol/L OH-) = 0.00200 moles OH-

We can see that the 0.00200 moles of the strong base OH- consumes 0.00200 moles of the weak acid HA: 
                                  HA + OH- → A- + H2O
     initial            0.00400    0.00200    0
     change       -0.00200   -0.00200  +0.00200
     equilibrium   0.00200    0               0.00200

The concentration of HA is equal to the concentration of A- after the reaction:
     [HA] = [A-] = 0.00200mol / 0.0400L+0.0200L = 0.03333 M

The equilibrium-constant expression for HA is 
     Ka = [H+][A-] / [HA]
     Ka = [H+] = 1.8x10^-5

We can now solve for pH:
     pH = -log [H+] = -log(1.8x10^-5) = 4.74
Final answer:

In the titration of a weak acid with a strong base, the pH after adding 20.00 mL of base can be determined by considering the concentration of the weak acid and the remaining base after the reaction.

Explanation:

To determine the pH after adding 20.00 mL of a 0.10 M strong base to a 40.00 mL sample of a 0.10 M weak acid with a Ka value of 1.8×10−5, we need to consider the reaction between the acid and the base.

Since the acid is weak, it does not dissociate completely. As a result, the pH can be calculated by considering the concentration of the weak acid and the remaining base after the reaction.

Using the titration curve as a reference, you can find the pH value corresponding to 20.00 mL of added base.

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Which electrolyte is used in an alkali fuel cell?
a high-temperature carbonate salt mixture
a solid polymer
a solid ceramic metal oxide compound
an aqueous potassium hydroxide solution

Answers

Answer:  an aqueous potassium hydroxide solution

An alkaline fuel cell is a zero-emission device whose one major component is the electrolyte. An electrolyte, on the other hand,  is a solution that is able to conduct electricity. In an alkaline fuel cell. The electrolyte is an alkaline liquid, and potassium hydroxide also known as KOH is the only alkaline liquid among the choices. 

Given the balanced ionic equation representing a reaction: 2al(s) + 3cu2+(aq) → 2al3+(aq) + 3cu(s)which half-reaction represents the reduction that occurs?al → al3+ +3eal3+ +3e → alcu→ cu2+ +2ecu2+ + 2e → cu

Answers

Option D : [tex]Cu^{2+}(aq)+2 e^{-}\rightarrow Cu(s)[/tex]

Reduction take place when oxidation state of atom of an element decrease. Here, addition of electron/s takes place. Opposite to that in oxidation, oxidation state increases and here, loss of electron/s take place.

The balanced chemical equation is as follows:

[tex]2Al(s)+3Cu^{2+}(aq)\rightarrow 2Al^{3+}(aq)+3Cu(s)[/tex]

Here, oxidation state of Al changes from zero to +3 thus, it undergoes oxidation and oxidation state of Cu changes from +2 to zero thus, it undergoes reduction.

The half reactions will be:

Oxidation: [tex]Al(s)\rightarrow Al^{3+}(aq)+3e^{-}[/tex]

Reduction: [tex]Cu^{2+}(aq)+2 e^{-}\rightarrow Cu(s)[/tex]

Therefore, option D is correct.


The ionic equation represents the electrolytes in the dissociated ion form in the aqueous solution. Half-reaction which represents the reduction is the increased number of electrons in the copper atom.

What is reduction?

Reduction in the chemical reaction is the increase in the number of electrons in the atoms, while oxidation is the decrease in the number of electrons from an atom.

The balanced chemical reaction is shown as:

[tex]\rm 2Al + 3Cu^{2+} \rightarrow 2Al^{3+} + 3Cu[/tex]

Reduction occurs when the oxidation number of the atom decreases and electrons are added to it. In the reaction the oxidation number of copper changes from +2 to 0 hence, undergoes reduction.

The half-reaction of the equation is written as,

Oxidation: [tex]\rm Al \rightarrow Al^{3+} + 3e^{-}[/tex]

Reduction: [tex]\rm Cu^{2+} + 2e^{-} \rightarrow Cu[/tex]

Therefore, reduction takes place at option D. [tex]\rm Cu^{2+} + 2e^{-} \rightarrow Cu.[/tex]

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Uric acid is found in sweat released from the pores in skin. What could be an explanation for this?
A) Sweat glands in the skin produce uric acid on very hot days.
B) The secretion of uric acid prevents water loss from the body.
C) Skin is also an excretory organ, which removes wastes through sweat.
D) The secretion of uric acid helps to maintain the temperature of the body.

Answers

I'm pretty sure it's B

An aqueous solution is made up of
A. colloids
B. pure water molecules
C. ions dissociated in solution
D. covalent molecules in a water solution.

Answers

I believe an aqueous solution is made up of ions dissociated in solution. An aqueous solution is a solution in which water acts as a solvent. For example a solution sodium chloride in water is shown as Na+(aq) + Cl-(aq). Most acids and bases exists in aqueous solution form. 

How many protons are in an atom represented by 22088ra88220ra?

Answers

Answer is: there are eighty-eight (88) protons in an atom.
The atomic number (Z) determines total number of protons and uniquely identifies a chemical element, also the atomic number is equal to the number of electrons.
The atomic number (Z) for this atom (radium) is eighty-eight.
The mass number (A) is total number of protons and neutrons in a nucleus, in this example A = 220.

What is the name for a substance formed in a chemical reaction?


A_reactant


B_catalyst


C_enzyme


D_product


Answers

Answer is A. reactant

These starting substances of a chemical reaction are called the reactants, and the new substances that result are called the products.
Hello there, and thank you for asking your question here on brainly.

Answer: Reactant. Chemical reactions are usually affected by a chemical change, and they stop one or more other things, which often have properties different from the other reactants.

Hope this helped you! ♥

what is the empirical formula for a compound that is 83.7% carbon and 16.3% hydrogen?

Answers

Hello!

We use the amount in grams (mass ratio) based on the composition of the elements, see: (in 100 g solution)

C: 83.7% = 83,7 g 
H: 16.3% = 16.3 g 

Let us use the above mentioned data (in g) and values will be ​​converted to amount of substance (number of moles) by dividing by molecular mass (g / mol) each of the values, lets see:

[tex]C: \dfrac{83.7\:\diagup\!\!\!\!\!g}{12\:\diagup\!\!\!\!\!g/mol} \approx 6.975\:mol[/tex]

[tex]H: \dfrac{16.3\:\diagup\!\!\!\!\!g}{1\:\diagup\!\!\!\!\!g/mol} = 16.3\:mol[/tex]

We note that the values ​​found above are not integers, so let's divide these values ​​by the smallest of them, so that the proportion is not changed, let's see:

[tex]C: \dfrac{6.975}{6.975} = 1[/tex]

[tex]H: \dfrac{16.3}{6.975} \approx 2.3[/tex]

Note: So the ratio in the smallest whole numbers of carbon to hydrogen is 3:7, thus, the minimum or empirical formula found for the compound will be:

[tex]\boxed{\boxed{C_3H_7}}\end{array}}\qquad\checkmark[/tex]

I hope this helps. =)

The empirical formula should be [tex]C_3H_7[/tex]

The calculation is as follows:

C: 83.7% = 83,7 g

H: 16.3% = 16.3 g

Now

[tex]C = 83.7 \div 12 = 6.975 mol\\\\H = 16.3 \div 1 = 16.3 mol[/tex]

The above does not represent the integers

So,

[tex]C = 6.975 \div 6.975 = 1\\\\H = 16.3 \div 6.975 = 2.3[/tex]

Therefore the above empirical formula should be used.

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The site for all chemical reactions that take place in the cell is the

Answers

I believe the cytoplasm is the site of all chemical reactions that take place in a cell. Chemical reactions occur in the cytoplasm of a cell, inside the it there are enzymes which speed up these reactions. Cytoplasm is made up of mainly water, but also contain enzymes, salts, organelles such as mitochondria and various organic molecules.

What is the electron configuration of a chlorine ion in a compound of BeCl2

Answers

The electronic configuration of a chloride ion in a compound of BeCl2  is

2.8.8

This is because   chlorine atom   which electronic configuration 2.8.7  gain one electron  form Be to  form chloride ion with 2.8.8 electronic configuration.  BeCl2 is an ionic bond which is formed by a metal and a non metal.metal (Be)loses electron  and become positively charged while  non metal (Cl2) gain electron  and become negative charged.

Answer:

The electron configuration of a chlorine ion in a compound of BeCl2 is

1s²2s²2p⁶3s²3p⁶

Explanation:

Beryllium chloride (BeCl2) is an ionic compound where Be is an alkaline earth metal (group 2) and Cl is a halogen atom (group 17).

Alkaline earth metals have a charge of +2 while halogens exhibit a -1 charge. Hence in BeCl2 each Be atom exists as Be2+ cation and Cl exists as Cl- anion.

The atomic number of Cl = 17. The valence electron configuration for the neutral atom is:

Cl(Z=17) = 1s²2s²2p⁶3s²3p⁵

The chloride ion has an addition electron, therefore

Cl⁻(Z = 17+1 = 18) = 1s²2s²2p⁶3s²3p⁶

A gas occupies 2.0 m3 at 100.0k and exerts a pressure of 100.0kPa. What volume will the gas occupy if the temperature is increased to 400.0 K and the pressure is increased to 200.0kPa

Answers

According to ideal gas equation, we know for 1 mole of gas: PV=RT
where P = pressure,  T = temperature, R = gas constant, V= volume
If '1' and '2' indicates initial and final experimental conditions, we have
[tex] \frac{P1V1}{P2V2} = \frac{T1}{T2} [/tex]

Given that: V1 = 100.0 kPa, T1 = 100.0 K, V1 = 2.0 m3, T2 = 400 K, P2 = 200.0 kPa

∴ on rearranging above eq., we get V2 = [tex] \frac{P1V1T2}{T1} = \frac{100 X 2 X 400}{200X100} [/tex]
∴ V2 = 4 m3 

The ideal equation relates the temperature with the pressure and the volume of the gas. When the temperature is increased then the volume will be 4 cubic meters.

What is an ideal gas equation?

An ideal gas equation depicts the relation between the temperature to that of the volume and the pressure of the gas.

The formula is given as,

[tex]\rm \dfrac{P_{1}V_{1}}{P_{2}V_{2}} = \rm \dfrac{T_{1}}{T_{2}}[/tex]

Given,

Initial pressure = 100 kPa

Initial volume = 2 cubic meter

Initial temperature = 100 K

Final pressure = 200 kPa

Final volume = ?

Final temperature = 400 K

The final volume is calculated as:

[tex]\begin{aligned} \rm V_{2} &= \rm \dfrac{P_{1}V_{1}T_{2}}{T_{1}}\\\\&= \dfrac{100\times 2 \times 400}{200 \times 100}\\\\&= 4 \;\rm m^{3}\end{aligned}[/tex]

Therefore, 4 cubic meters is the volume of the final gas.

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At what core temperature does hydrogen begin to fuse to helium? at what core temperature does hydrogen begin to fuse to helium? 3,000 k 100 million k 1 million k 5,800 k 10 million k

Answers

The process of hydrogen fusing into helium is called nuclear fusion. With this fusion, 10 million k of temperature is required for the fusion to occur. So, the correct answer is your last option, 10 million K. 

Let me know if you need further info. :)

                  - Dotz

A beaker contains 0.50 mol of potassium bromide in 600 ml of water. an additional 600 ml of water is added. the number of moles of potassium bromide in the beaker is

Answers

The answer is 0.50 mol. The number of moles of potassium bromide in the beaker will not change since there is no additional potassium bromide introduced to the solution. The molarity of potassium bromide, the number of moles of water, the volume of the water solvent and the volume of the solution will all change if water is added.
Final answer:

To find the number of moles of potassium bromide in the beaker after adding additional water, calculate the new concentration and multiply it by the new volume.

Explanation:

To find the number of moles of potassium bromide in the beaker, we can use the formula:

Moles = Concentration x Volume

Initially, the beaker contains 0.50 mol of potassium bromide in 600 ml of water. When an additional 600 ml of water is added, the total volume becomes 1200 ml. To find the new concentration, we divide the number of moles (0.50 mol) by the new volume (1200 ml):

Concentration = Moles / Volume = 0.50 mol / 1200 ml = 0.00042 mol/ml

The new number of moles of potassium bromide in the beaker is:

New Moles = Concentration x Volume = 0.00042 mol/ml x 1200 ml = 0.50 mol

What is the oxidation state of an individual phosphorus atom in P O 3 3−?

Answers

-3 - 3(-2) = +3
___________________

What is the purpose of mixing salt with the ice in a homemade ice cream maker?

Answers

I makes it ridiculously cold, if I'm not mistaken.

What is the actual name of compound-s that is used to treat arthritis?

Answers

Reichsteins substance if I remember correctly.

Hope this helped! :)

- Juju

Naomi is investigating the properties of a solid material. It takes 120 joules to raise the temperature of 10 grams of the material by 5 degrees. What is the specific heat of the material?

Answers

when heat energy is supplied to a material it can raise the temperature of mass of the material.
Specific heat is the amount of energy required by 1 g of material to raise the temperature by 1 °C.
equation is 
H = mcΔt
H - heat energy 
m - mass of material 
c - specific heat of the material 
Δt - change in temperature
substituting the values in the equation 
120 J = 10 g x c x 5 °C
c = 2.4 Jg⁻¹°C⁻¹

which pair of elements has the most similar properties?
a. K and He
b. Li and B
c. I and Ca
d. N and P

Answers

d. N and P Because they are from the same group. Elements from the same group have similar properties.

Option d: N and P

In a periodic table, elements within the same group have similar properties.

(a) K and He: Here, K (potassium) belongs to group 1 , alkali metals and He belongs to group 18, noble gas thus, they cannot have similar properties.

(b) Li and B: Here, Li (lithium) belongs to group 1, alkali metals and B (boron) belongs to group 13, it is the only non-metal in group 13. Thus, they cannot have similar properties.

(c) I and Ca: Here, I (iodine) belongs to group 17, halogen, they electronegative in nature and Ca (calcium) belongs to group 2, alkaline earth metal, they are electropositive in nature. Thus, they cannot have similar properties.

(d) N and P: Here, both N (nitrogen) and P (phosphorus) belongs to group 15, they both are non metals and have 5 electrons in their outermost shell thus, they both have similar properties.

Therefore, option (d) is correct.

How many atoms are in a sulfur molecule that has the elemental formula s8?

Answers

[tex]S_{8} 8 atoms of S in the molecule S_{8} Subscript shows number of atoms in the molecule. For example, O_{3} - 3 atoms of oxygen in the molecule of ozone.[/tex]

Which of these formulas is the expanded structural formula for an alkane with three carbon atoms? which of these formulas is the expanded structural formula for an alkane with three carbon atoms? c– c– c ch3–ch2–ch3 c3h6 c3h8?

Answers

An organic compound which contains only carbon and hydrogen atoms is called the hydrocarbon. The expanded structural formula for an alkane with three carbon atoms (Propane) is CH₃–CH₂–CH₃. The correct option is B.

What are alkanes?

The saturated hydrocarbons which consists of only single bonded carbon and hydrogen atoms without any other functional groups are known as alkanes. Their general formula is CₙH₂ₙ ₊ ₂ where 'n' represents the number of carbon atoms.

A formula which denotes all the atoms and bonds present in a compound is defined as the expanded structural formula. But a condensed structural formula omits most of the bonds.

The formula of propane is C₃H₈ and it is a colourless gas.  Its expanded structural formula is CH₃–CH₂–CH₃ which contains three single bonds, 8 'H' atoms and 3 'C' atoms.

Thus the correct option is B.

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The expanded structural formula for an alkane with three carbon atoms is CH₃-CH₂-CH₃, which represents propane with the molecular formula C₃H₈.

The expanded structural formula for an alkane with three carbon atoms is CH₃-CH₂-CH₃. This compound is known as propane, which follows the general alkane formula CₙH₂ₙ+2. In this case, with three carbon atoms (n=3), the molecular formula becomes C₃H(₂x₃)₊₂, which simplifies to C₃H₈. Therefore, C₃H₈ is the correct molecular formula for propane, whereas C₃H₆ would be an alkene with a double bond between carbon atoms, not an alkane.

How many milliliters of 0.20 molar koh solution are needed to exactly neutralize 20. milliliters of 0.50 molar hcl?

Answers

the balanced equation for the neutralisation reaction between KOH and HCl is as follows
KOH + HCl --> KCl + H₂O
stoichiometry of KOH to HCl is 1:1
the number of HCl moles reacted = HCl concentration x volume 
number of HCl moles = 0.50 mol/L x 0.020 L = 0.01 mol
according to molar ratio of 1:1
number of KOH moles required to neutralise 0.01 mol of HCl = 0.01 mol of KOH
molarity of KOH = 0.20 M
there are 0.20 mol in 1 L Then 0.01 mol are - 0.01 mol / 0.20 mol/L = 50 mL 
50 mL of 0.20 M KOH required 

How many grams of kbr are required to make 350. ml of a 0.115 m kbr solution? 3.04 g 4.79 g 40.3 g 0.338 g?

Answers

the answer is 4.79g also add me on snap:at jessea7772

 

[tex]\boxed{\text{4.79 g}}[/tex] of KBr is required to make 350 mL of 0.115 M KBr solution.

Further Explanation:

Concentration is defined as the amount or quantity of solute present in specific amount of solution. In order to evaluate concentration of various solutions, different concentration terms are used. Some of these are mentioned below.

1. Molarity (M)

2. Molality (m)  

3. Mole fraction (X)  

4. Parts per million (ppm)  

5. Mass percent ((w/w) %)  

6. Volume percent ((v/v) %)  

Molarity is defined as the number of moles of solute that can be dissolved in one litre of the solution. It is denoted by M and its unit is mol/L.

The formula to calculate molarity of KBr solution is as follows:

  [tex]\text{Molarity of KBr solution}=\dfrac{\text{Moles of KBr}}{\text{Volume (L) of KBr solution}}[/tex]  ...... (1)

Rearrange equation (1) to calculate moles of KBr.

[tex]\begin{aligned}{\text{Moles of KBr}&=\left[{(\text{Molarity of KBr solution})\\&\text{ }\text{ }\text{ }(\text{Volume (L) of KBr solution})]\right]\end{aligned}}[/tex]        ...... (2)

Substitute 0.115 M for molarity of KBr solution and 350 mL for volume of KBr  solution in equation (2).

[tex]\begin{aligned}\text{Moles of KBr}&=(\text{0.115 M})(\text{350 mL)}\left(\dfrac{\text{10}^{-3}\text{ L}}{\text{1 mL}}\right)\\&=\text{0.04025 mol}\end{aligned}[/tex]

The formula to calculate moles of KBr is as follows:

[tex]\text{Moles of KBr}=\dfrac{\text{Mass of KBr}}{\text{Molar mass of KBr}}[/tex]                                       ...... (3)

Rearrange equation (3) for mass of KBr.

[tex]\text{Mass of KBr}=(\text{Moles of KBr})(\text{Molar mass of KBr})[/tex]               ...... (4)

Substitute 0.04025 mol for moles of KBr and 119.002 g/mol for molar mass of KBr in equation (4).

[tex]\begin{aligned}{\text{Mass of KBr}&=(\text{0.004025 mol})(\text{119.002 g/mol})\\&=\text{4.79 g}}\end{aligned}[/tex]

Therefore 4.79 g of KBr is required to make 350 mL of a 0.115 M KBr solution.

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Answer details:

Grade: Senior School

Subject: Chemistry

Chapter: Concentration terms

Keywords: molarity, KBr, 350 mL, 0.115 M, 4.79 g, mass, molar mass, concentration terms, concentration, solute, moles of solute, volume.

A gas occupies 2240.0 l at 373 k. what are the volumes at standard temperature answers

Answers

Answer is: the volumes at standard temperature is 1639.46 L.
V₁(gas) = 2240.0 L.
T₁(gas) = 373 K.
T₂(gas) = 273 K, standard temperature.
V₂(gas) = ?
Charles' Law:  The Temperature-Volume Law - the volume of a given amount of gas held at constant pressure is directly proportional to the Kelvin temperature:
V₁/T₁ = V₂/T₂.
2240 L/373 K = V₂/273 K.
V₂ = 1639.46 L.

What volume will 50.2 grams of co2 (g) occupy at stp?

Answers

Final answer:

The volume at STP that 50.2 grams of CO2 will occupy is found by converting the mass to moles and then multiplying by the molar volume of a gas at STP, which is 22.4 liters per mole.

Explanation:

To find the volume at STP that 50.2 grams of CO2 (g) will occupy, we first need to convert the mass of CO2 to moles using the molar mass of CO2, which is approximately 44.01 g/mol. Next, we apply the concept that one mole of any gas at STP will occupy 22.4 liters. The calculation involves dividing the mass of CO2 by its molar mass to get the moles, and then multiplying the number of moles by 22.4 L/mol to find the volume.The steps are as follows:Calculate the number of moles: number of moles = mass (g) / molar mass (g/mol)

Calculate the volume at STP: volume (L) = number of moles x 22.4 L/mol

By following these steps, we can determine the volume of CO2 gas at STP conditions.

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