• Wrong document? Swap it for free
  • Written by students who passed
  • Immediately available after payment
  • Read online or as PDF
Sell
Where do you study
Your language
Document preview thumbnail
Preview 2 out of 7 pages
Summary

Summary IB CHEMISTRY - Topic 9 Redox processes Notes

Document preview thumbnail
Preview 2 out of 7 pages

Comprehensive notes on Topic 9 of IB Chem (Redox processes). Sample questions and diagrams included.

Content preview

IB CHEMISTRY:
TOPIC 9 REDOX PROCESSES NOTES

9.1 Oxidation and reduction


Oxidation and Reduction
o In oxidation and reduction reactions (also called redox reactions), electrons move
between atoms
o Oxidation involves the loss of Oxidation Reduction
electrons. The more a substance is
oxidized, the more positive it gets Loss of electrons Gain of electrons
o Reduction involves the gain of
electrons. The more a substance is Loss of hydrogen Gain of hydrogen
reduced the more negative it gets
o Remember: OIL RIG (Oxidation is Gain of hydrogen Loss of oxygen
loss, reduction is gain)



Oxidant and reductant

Definitions

Oxidant – A substance that readily oxidizes other substances
Reductant – A substance that readily reduces other substances



• An oxidizing agent makes oxidation
Oxidizing Reducing
happen. In order to make oxidation
agent/oxidant agent/reductant
happen, the agent must take the electron
from the substance
Gains electrons Loses electrons
• So, oxidizing agents are reduced
• Common oxidizing agents include Oxidizes another Reduces another reactant
halogens, ozone, maganate (VII) ions and reactant
hydrogen peroxide
• A reducing agent makes reduction Is reduced during the Is oxidized during the
happen. In order to make reduction reaction reaction
happen, the agent must give an electron
to the substance
• So, reducing agents are oxidized
• Common reducing agents include hydrogen, carbon, carbon monoxide and sulfur dioxide

, Oxidation state
• The oxidation state (also known as oxidation number) is the total number of electrons
that an atom either gains or loses to form a chemical bond with another atom – (the
charge an atom would have if the compound was composed of ions)
• Oxidation numbers are represented by a roman number. Example: Cu2O: Copper (I)
oxide, FeCl2: Iron (II) chloride
• Oxidation states can be used to identify which species have been oxidized and which
have been reduced
o An increase in oxidation number means oxidation (so reducing agent) (Loss
of electrons, becomes more positive)
o A decrease in oxidation number means reduction (so oxidizing agent) (Gain
of electrons, becomes more negative)
• Oxidation states are written as NUMBER and then SIGN
• To assign oxidation states to atoms in a molecule or compound we follow some very
specific rules:


Sum of oxidation state for a neutral Sum of oxidation state for a polyatomic ion: Ion
compound: 0 charge

Element by itself: 0 Group 1/2/3: Always +1/+2/+3

Monatomic ion: Ion charge D-Block elements have variable oxidation states

Halogens: Usually -1 (+1 with oxygen) Hydrogen: +1 (-1 with metals)

Oxygen: -2 (-1 in peroxide) Florine: Always -1




Question: Deduce the oxidation state of Cr in K2Cr2O7

𝐾: +1 (2 × +1) = +2 𝑂: −2 (7 × −2) = −14
No charge on compound so equals 0: +2 − 14 + 2𝑥 = 0 = +6
Therefore 𝐶𝑟: +6




Redox Half Equations
• In a redox reaction, one substance always becomes reduced while the other one
oxidized
• To balance redox equations, we write out the half-equations for the oxidation and
reduction reactions
• Redox reactions can take place in neutral, acidic or basic solutions
o In acidic solutions, follow the steps below
o In neutral solution, balance the reaction as if it were in acidic solution
o In basic solution, instead of adding H+ ions add OH- ions
• In order to write a balanced redox reaction we must: write the two half equations first and
then add them together to get an overall equation (OHe)

Document information

School year
2
Uploaded on
October 13, 2021
Number of pages
7
Written in
2019/2020
Type
Summary
$15.99

Wrong document? Swap it for free Within 14 days of purchase and before downloading, you can choose a different document. You can simply spend the amount again.
Written by students who passed
Immediately available after payment
Read online or as PDF

Seller avatar
Reputation scores are based on the amount of documents a seller has sold for a fee and the reviews they have received for those documents. There are three levels: Bronze, Silver and Gold. The better the reputation, the more your can rely on the quality of the sellers work.
lenacheung
4.0
(14)
Sold
14
Followers
13
Items
15
Last sold
1 year ago

Reviews from verified buyers




Why students choose Stuvia

Created by fellow students, verified by reviews

Quality you can trust: written by students who passed their tests and reviewed by others who've used these notes.

Didn't get what you expected? Choose another document

No worries! You can instantly pick a different document that better fits what you're looking for.

Pay as you like, start learning right away

No subscription, no commitments. Pay the way you're used to via credit card and download your PDF document instantly.

Student with book image

“Bought, downloaded, and aced it. It really can be that simple.”

Alisha Student

Working on your references?

Create accurate citations in APA, MLA and Harvard with our free citation generator.

Working on your references?

Frequently asked questions