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Natali5045456 [20]
4 years ago
9

Can someone help me with number 2? Please and thank you

Chemistry
1 answer:
Lilit [14]4 years ago
4 0

Answer:

2Cu3(PO4) + 3H2SO4 → 3Cu2SO4 + 2H3PO4

Explanation:

2Cu3(PO4) + 3H2SO4 → 3Cu2SO4 + 2H3PO4

6 Cu            6 Cu

2 PO4         2PO4

6 H              6 H

3 SO4          3 SO4

Both sides line up

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1
Liula [17]

Answer:

2

Explanation:

Equation of reaction

BaSO₄ + H₂SO₄ → Ba(HSO₄)₂

From the above equation of reaction, it is evident that there are 2 atoms in the product side of the reaction which is only logical because every chemical reaction obey the law of conservation of mass which states that matter can neither be created nor destroyed but can changed from one form to another.

In the reactant side, we have 2 atoms of S from the two reactants coming together.

One sulfur atom from BaSO₄ and the other from H₂SO₄. So therefore, only 2 sulfur can be produced since the reaction has to observe law of conservation of matter

6 0
3 years ago
Which electron configuration is correct for a sodium ion?
jeka94

The electron configuration for sodium ion Na⁺ : <u>(2) 2-8</u>

<h3>Further explanation </h3>

In an atom there are levels of energy in the shell and sub shell

This energy level is expressed in the form of electron configurations.

Writing electron configurations starts from the lowest to the highest sub-shell energy level. There are 4 sub-shells in the shell of an atom, namely s, p, d and f. The maximum number of electrons for each sub shell is

  • s: 2 electrons
  • p: 6 electrons
  • d: 10 electrons and
  • f: 14 electrons

Charging electrons in the sub shell uses the following sequence:

<em>1s², 2s², 2p⁶, 3s², 3p⁶, 4s², 3d¹⁰, 4p⁶, 5s², 4d¹⁰, 5p⁶, 6s², etc. </em>

Determination of electron configurations based on principles:

• 1. Aufbau: Electrons occupy orbitals of the lowest energy level

• 2 Hund: electrons fill orbitals with the same energy level

• 3. Pauli: no electrons have the same 4 quantum numbers

The alkali metal Na will release electrons to form Na + so that the electron configuration is stable as the noble gas element Ne

electron configuration Ne: [He] 2s² 2p⁶

Na electron configuration: [Ne] 3s¹

electron configuration Na + = [Ne] = [He] 2s² 2p⁶

The maximum number of electrons in the shell K, L, M, N

According to Bohr, the maximum number of electrons that can occupy each atomic shell can be calculated by the formula 2n²

  • K shell (n = 1): 2.1² = 2 electrons
  • L shell (n = 2): 2. 2² = 8 electrons
  • M shell (n = 3): 2. 3² = 18 electrons
  • N shell (n = 4): 2. 4² = 32 electrons

If we look at the configuration of the Na⁺ ion:

1s² 2s² 2p⁶ then

on the shell n=1 (1s) there are 2 electrons

on the shells n=2 (2s and 2p) there are 8 electrons

So that the configuration

Na⁺ = 2-8

<h3>Learn more </h3>

element X

brainly.com/question/2572495

electrons and atomic orbitals

brainly.com/question/1832385

Identify the group number in the periodic table

brainly.com/question/2014634

5 0
3 years ago
Read 2 more answers
A gas may dissolve in a liquid. True False
mash [69]
The answer is False. Hope this helps!!!
7 0
3 years ago
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Yard converted to cm
Tomtit [17]
1 yard is 91.44 centimeters
7 0
3 years ago
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How many liters are present in 31.998 g of O2?
kap26 [50]

Answer:

Explanation:

<em>First calculate how many moles of O2 you have. O is 16g/mole, so O2 is 32g/mole. 50/32 = 1.5625 moles. 1 mole of any gas at stp is 22.4 liters.</em>

<em>1.5625 × 22.4 = 35 liters.</em>

<em>Its been 15 years since I graduated HS, and I still remember how to do this. Do your own homework next time and in 15 years you may be able to do the same.</em>

<em>PLEASE</em><em> </em><em>THANK</em><em>,</em><em> </em><em>RATE</em><em> </em><em>AND</em><em> </em><em>FOLLOW</em><em> </em><em>ME</em><em> </em>

<em>AND</em><em> </em><em>PLEASE</em><em> </em><em>MARK</em><em> </em><em>ME</em><em> </em><em>AS</em><em> </em><em>"</em><em>BRAINLIEST</em><em>"</em><em> </em><em>ANSWER</em><em> </em>

<em>HOPE</em><em> </em><em>IT</em><em> </em><em>HELPS</em><em> </em><em>YOU</em>

8 0
3 years ago
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