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Lynna [10]
3 years ago
7

One liter of helium gas has a mass of 2.3 grams at STP. True or false

Chemistry
1 answer:
Katen [24]3 years ago
6 0
<h3>answer:</h3>

true po

mark me if wrong

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Help me:what helium <br> and what use
Naddik [55]

Answer:

the chemical element of atomic number 2, an inert gas which is the lightest member of the noble gas series.

Explanation:

Because it is very unreactive, helium is used to provide an inert protective atmosphere for making fibre optics and semiconductors, and for arc welding. Helium is also used to detect leaks, such as in car air-conditioning systems, and because it diffuses quickly it is used to inflate car airbags after impact.

8 0
3 years ago
11. Which of the following accurately describes properties of valence? A. Nonmetallic elements tend to have a positive valence a
marin [14]
Atoms, the main constituents of matter, consist of positively charged protons and neutral neutrons within a nucleus which are surrounded by a sea of electrons that sit in distinct shells. The electrons on the outer shell are known as valence electrons. The valence can be descibed as the smaller number of electrons an atom has to borrow or to lend, the greater the activity.

The answer is B.


3 0
4 years ago
Please help! Consider the following reaction: 3H2S (g) + 3O2 (g)  2 SO2 (g) + 2H2O (g) If O2 was the excess reagent, 4.15 mol o
iren [92.7K]

Answer:

91.8 %

Explanation:

Data given:

Amount of H₂S = 4.15 mol

Amount of water (H₂O) = 68.55 g

Amount of oxygen O₂ = in excess

Percent yield of reaction water (H₂O) of water = ?

Reaction Given:

          2H₂S (g) + 3O₂ (g) ----------> 2SO₂ (g) + 2H₂O (g)

Solution:

First we look for the theoretical yield by looking in the reaction

          2H₂S (g) + 3O₂ (g) ----------> 2SO₂ (g) + 2H₂O (g)

As oxygen is in the excess so only H₂S amount act as limiting reagent.

           2H₂S (g) + 3O₂ (g) ----------> 2SO₂ (g) + 2H₂O (g)

             2 mol                                                       2 mol

to convert amount of H₂O from moles to grams

           mass in grams = no. of moles x molar mass

Molar Mass of H₂O = 2(1) + 16 = 18 g/mol

Put values in above equation

          mass in grams = 2 mol x 18 g/mol

          mass in grams = 36 g

So,

             3H₂S (g) + 3O₂ (g) ----------> 2SO₂ (g) + 2H₂O (g)

             2 mol                                                         36 g

As from the reaction it is clear that 2 mole of H₂S gives 36g H₂O then 4.15 mole will give how many grams of water

Apply unity formula

                         2 mol of H₂S ≅ 36 g of H₂O

                         4.15 mol of H₂S ≅ X g of H₂O

Do cross multiplication

                X g of H₂O =  36 g x 4.15 mol / 2 mol

                X g of H₂O =  74.7 g

So theoretical yield =  74.7 g of H₂O

Formula used for percent yield

            percent yield = actual yield / theoretical yield x 100

Put values in above equation

           percent yield = 68.55 g / 74.7 g x 100

           percent yield = 91.8 %

***Note

For SO₂ it is important to have actual yield. and implement same work.

6 0
4 years ago
PLEASE HELP ME ASAP!!!! PLEASE!!!!!!!!!! I will give brainliest and 20 points!! PLEASE!
Vika [28.1K]
#1
<span>The rate of diffusion of a gas is inversely proportional to the square root of its molecular weight. 
#2
shape, molecular weight. I don't know for sure though
#3
</span>O2, N2, Ar, H2O vapor
5 0
3 years ago
Using the van der Waals equation, calculate the pressure for a 1.25 mol sample of xenon contained in a volume of 1.000L at 75°C
alina1380 [7]

Answer:

ABC

Explanation:

hrdjyt

5 0
3 years ago
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