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erica [24]
2 years ago
15

How many atoms of Bi are there in a 41.8 g sample?

Chemistry
1 answer:
Alekssandra [29.7K]2 years ago
3 0

Answer:

The number of particles in the 41.8g sample of Bismuth is 12.044 × 10²³

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Calculate the number of molecules in 46.0 grams of water
Natalka [10]

Answer:

Explanation:

Since water has a chemical formula of H2O , there will be 2 moles of hydrogen in every mole of water. In one mole of water, there will exist approximately 6.02⋅1023 water molecules.

4 0
2 years ago
The diagram below shows the different phase transitions that occur in matter. Which arrow represents the transition in which dew
oksian1 [2.3K]

Answer:

  • <u>The arrow labeled 4: from gas to liquid.</u>

Explanation:

<em>Dew</em> is a manifestation of water condensation.

The air that surrounds us contains water vapor (humidity) from the evaporatoin of the water in the rivers, lakes, and the water with which you water the plants of your garden.

During the night, and specially in the early morning, before dawn, the temperature of the air descends, and part of the vapor in the air condensates in tiny droplets that accumulate over the surface of the plant's leaves, and other solid surfaces like the winshields and hoods of the cars.

Then, the phase transition that occurs is from gas (vapor) to liquid, which is called condensation and represented with the arrow labeled 4 on the diagram.

3 0
2 years ago
Read 2 more answers
An electrically neutral atom of gallium has 31 electrons and 39 neutrons. What is the mass number for an atom of gallium?. A. 31
hammer [34]
If the atom is neutral (meaning, not charged) the number of electron is equal to the number of protons. The mass number of an atom is the sum of the number of proton and the number of neutrons. From the given above, the mass number of gallium is 31 + 39. The answer is letter D. 70.
4 0
2 years ago
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A student performs an experiment to determine the volume of hydrogen gas produced when a given mass of magnesium reacts with exc
ira [324]

Answer:

(a) 0.0015 mol Mg

(b) 0.0030 mol HCl

(c) 728 torr

(d) 0.038 L

(e) See below

Explanation:

This problem is a calculation based on the stoichiometry for the reaction:

2 H⁺ (aq)  + 2 Cl⁻ + Mg   ⇒   Mg²⁺ (aq) + 2 Cl⁻ (aq) + H₂ (g)

Given the mass of Mg reacted, we have:

Atomic Weight Mg = 24.3 g/mol

(a) Mole Mg reacted = mass/AW = 0.0360 g/ 24.3  g/mol =  0.0015 mol

(b) Moles HCl needed:

2 mol HCl/ 1 mol Mg  x 0.0015 mol Mg = 0.0030 mol HCl

(c) Since we are collecting the Hydrogen gas produced in the reaction over water we need to substract the water vapor pressure from the pressure measured in the lab to obtain the dry pressure:

Pdry = 749 torr - 21 torr = 728 torr

(d) The volume of the Hydrogen gas is obtained from the ideal gas law since we know the temperature and the dry pressure:

PV = nRT ∴ V = nRT/ P

we would need first  to convert the pressure to atmospheres:

P= 728 torr x  1 atm/760 torr = 0.96 atm

Then,

mol H₂ gas produced:

From the balanced chemical equation,

1 mol H2/ 1 mol Mg x 0.015 mol Mg = 0.0015 mol

Now we have all we need to calculate the volume:

V = 0.0015 mol x 0.0821 Latm/Kmol x (23 + 273) K/ 0.96 atm = 0.038 L

(e ) When handling acids such as HCl it is required the use of safety goggles, acid resistant gloves and lab coat. It is also required to work under a safety hood since the vapors of HCl are toxic when inhaled.

To prepare 50.0 mL 2.0 M solution from the 12.3 M we will dilute it according to the following calculation:

V₁M₁ = V₂M₂  ⇒ V₁ = V₂M₂ /M₁

where V₁ is the volume of the 12.3 M HCl solution we are going to dilute, and V₂ is the 50.0 mL solution 2.0 M needed.

V₁ = 50.0 mL x 2.0 M / 12.3 M = 8.13 mL

Notice that in the above equation we do not need to convert the mL to L since V appears in both sides of the equation  and will give us the volume in mL.

Now 8.13 mL is difficult to measure  with a 10 ml graduated cylinder where we can read to 0.2 mL unless we accept the error.

So we need to calculate the mass of concentrated acid required by computing its density

We can calculate the density of the 12.3 M solution using a tared  10 mL graduated  by taking  say 10 mL of the the solution, weighting it, and calculating the density = mass of solution / volume.

Knowing the density we can calculate the mass of 12.3 M a volume of 8.13 mL weighs.

Place approximately 35 mL of distilled water in the volumetric flask and  tare  in the balance.

Add  say 7 mL  of 12.3 M HCl in the graduated cylinder  to the volumetric flask being careful  towards the end  to add  the last portions using the dropper to complete the required mass using   the balance.

Finally dilute to the 50 mL mark.

Again use all of the safety precautions indicated above and avoid any contact of the acid with the skin.

3 0
2 years ago
What is the pH of a solution made by mixing 15.00 mL of 0.100 M HCl with 50.00 mL of 0.100 M KOH? Assume that the volumes of the
denis23 [38]

Answer:

The correct answer is: pH = 12.73

Explanation:

The <em>neutralization reaction</em> between HCl and KOH is given by the following chemical equation:

HCl + KOH ⇒ KCl + H₂O

Since HCl is a strong acid and KOH is a strong base, HCl is completely dissociated into H⁺ and Cl⁻ ions, whereas KOH is dissociated completely into K⁺ and OH⁻ ions.

For acids, the number of equivalents is given by the moles of H⁺ ions (in this case: 1 equivalent per mol of HCl). For bases, the number of equivalents is given by the moles of OH⁻ ions (in this case: 1 equivalent per mol of KOH).

The H⁺ ions from HCl will react with OH⁻ ions of KOH to give H₂O. The pH is calculated from the difference between the equivalents of H⁺ and OH⁻:

equivalents of H⁺= volume HCl x Molarity HCl

                            = (15.0 mL x 1 L/1000 mL) x 0.100 mol/L

                            = 1.5 x 10⁻³ eq H⁺

equivalents of OH⁻= volume KOH x Molarity KOH

                               = (50.0 mL x 1 L/1000 mL) X 0.100 mol/L

                               = 5 x 10⁻³ eq OH⁻

There are more OH⁻ ions than H⁺ ions. The excess of OH⁻ (that did not react with H⁺ ions) is calculated as follows:

OH⁻ ions= (5 x 10⁻³ eq OH⁻) -  (1.5 x 10⁻³ eq H⁺) = 3.5 x 10⁻³ eq OH⁻= 3.5 x 10⁻³ moles OH⁻  

As the volumes of the solutions are additive, the total volume of the solution is:

V= 15.0 mL + 50.0 mL = 65.0 mL= 0.065 L

So, the concentration of OH⁻ ions in the solution is given by:

[OH⁻] = moles OH⁻/V= (3.5 x 10⁻³ moles OH⁻)/0.065 L = 0.054 mol/L = 0.054 M  

From  [OH⁻], we can calculate pOH:

pOH = -log [OH⁻] = -log (0.054) = 1.27

Finally, we know that pH + pOH= 14; so we calculate pH:

pH= 14 - pOH = 14 - 1,27 =  12.73                                                            

8 0
3 years ago
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