Showing posts with label batteries. Show all posts
Showing posts with label batteries. Show all posts

Thursday, January 23, 2020

How to write half-equations for aqueous solutions under acidic conditions

Some batteries, like lead-acid batteries used in cars, and some fuel cells like those that use alcohols, rely on oxidation and reduction reactions that occur in aqueous solution under acidic conditions.
You will need to be able to write half-equations for these reactions.
How do you write balanced chemical half-equations for these reactions?

Go to https://www.ausetute.com.au/halfeqtn.html to find out!

AUS-e-TUTE Members should log-in to use the Members ONLY tutorial, game, test and exam (with worked solutions).

Wednesday, December 4, 2019

Lithium-ion batteries

When you walk around having a chat to your friends on your mobile phone, or watch a show on your tablet, or do your homework on your laptop in a cosy cafe, have you ever stopped to wonder about the amazing revolution in chemistry that allows you to do these "every day" things?
Batteries that are small, that can store enough electrical energy so that they can be used continuously for hours, can be quickly recharged, and can be discharged and recharged many, many times, are a very recent development. Without these batteries your life-style would be a lot less mobile!
What makes these batteries so special?
Find out in the December 2019 issue of AUS-e-NEWS




Sunday, September 30, 2012

More Electrochemistry Resources


New teaching and learning resources have been added to AUS-e-TUTE on the following topics:
  • Batteries (student learning resources)
  • Lead-Acid Battery Case Study (student learning resources) 
  • Fuel Cells (student learning resources) 
  • Electrical Energy Calculations (student learning resources)
  • Half-equations for Ions (teaching resources)
  • Redox Reaction Concepts (teaching resources)
  • Standard Electrode Potentials for Oxidation and Reduction Reactions (teaching resources)
Become an AUS-e-TUTE member and get the full benefit of using teaching and learning resources developed by experienced science teachers.
Visit http://www.ausetute.com.au.com.au to find out more.
            

Tuesday, June 7, 2011

Sodium ion Batteries

To connect solar and wind energy sources to the electrical grid, grid managers require batteries that can store large amounts of energy created at the source. Lithium ion rechargeable batteries, common in consumer electronics and electric vehicles, perform well, but are too expensive for widespread use on the grid because many batteries will be needed, and they will likely need to be large. Sodium is the next best choice, but the sodium-sulfur batteries currently in use run at temperatures above 300oC (572oF), making them less energy efficient and safe than batteries that run at ambient temperatures.

The electrodes in lithium rechargeable batteries that interest scientists are made of manganese oxide. The atoms in this metal oxide form many holes and tunnels that lithium ions travel through when batteries are being charged or are in use. The free movement of lithium ions allows the battery to hold electricity or release it in a current. But there are problems with simply replacing the lithium ions with sodium ions because sodium ions are 70 percent bigger than lithium ions and don't fit in the crevices as well. So, the scientists needed to find a way to make the holes in the manganese oxide larger. They have done this by mixing different kinds of manganese oxides at different temperatures. The manganese oxide formed after mixing at 750oC (1382oF) created a material that had the best crystals, high capacity, and held up well to cycles of charging and discharging. Unfortunately, the scientists found that the faster they charged the sodium ion batteries, the less electricity these batteries could hold, and grid batteries need fast charging so they can collect as much newly made energy coming from renewable sources as possible.

Reference
Yuliang Cao, Lifen Xiao, Wei Wang, Daiwon Choi, Zimin Nie, Jianguo Yu, Laxmikant V. Saraf, Zhenguo Yang, Jun Liu. Reversible Sodium Ion Insertion in Single Crystalline Manganese Oxide Nanowires with Long Cycle Life. Advanced Materials, 2011; DOI: 10.1002/adma.201100904


Further Reading
Oxidation and Reduction
Oxidation State (oxidation number)
Batteries and Fuel Cells
Trends in Atomic Radius

Study Questions
  1. Explain what is meant when an electrochemist refers to
    • oxidation
    • reduction
    • redox

  2. What do Chemists mean when they refer to
    • electrochemical cell
    • battery
    • primary cell
    • secondary cell

  3. Write a balanced half-equation for each of the following:
    • oxidation of sodium atoms
    • oxidation of lithium atoms

  4. The following compounds have been used as positive electrodes in lithium ion batteries:
    • LiCoO2
    • LiMn2O4
    • LiNiO2
    • LiFePO4
    • Li2FePO4F
    For each of the compounds above, determine the oxidation state (oxidation number) of the transition metal in the compound.


  5. Explain why sodium ions are larger than lithium ions.
  6. Why is the size of the metal ion important in the functioning of the rechargeable batteries being discussed?
  7. Could potassium ions be used instead of lithium ions in the rechargeable batteries under discussion? Explain your answer.
  8. Could beryllium ions be used instead of lithium ions in the rechargeable batteries under discussion? Explain your answer.
Link

Tuesday, September 14, 2010

Looking Inside Lithium Ion Batteries

Lithium-ion batteries are used to power electronic devices such as mobile phones (cell phones) and are widely used because of their low weight, high energy density and recharging ability. If scientists could see the batteries working at the nanoscale, observing the functionality of the batteries at the level of a single grain or an extended defect, they could determine what makes one battery work and another one fail.
Department of Energy's Oak Ridge National Laboratory (ORNL) scientists have developed a new type of scanning probe microscopy called electrochemical strain microscopy (ESM) to examine the movement of lithium ions through a battery's cathode material. They showed that the lithium ion flow could concentrate along grain boundaries, leading to cracking and battery failure.

Reference:
N. Balke, S. Jesse, A. N. Morozovska, E. Eliseev, D. W. Chung, Y. Kim, L. Adamczyk, R. E. García, N. Dudney, S. V. Kalinin. Nanoscale mapping of ion diffusion in a lithium-ion battery cathode. Nature Nanotechnology, 2010; DOI: 10.1038/nnano.2010.174


Further Reading:
Batteries
Galvanic Cells
Oxidation and Reduction

Study Questions
  1. What is the difference between a battery and an electrochemical (galvanic or voltaic) cell?
  2. Is the lithium-ion battery described in the article an example of a primary or secondary cell? Explain your answer.
  3. Draw a sketch of a galvanic (voltaic) cell. Label the anode, cathode, and electrolyte. Clearly show the direction of electron flow through the cell.
  4. Explain how the galvanic (voltaic) cell above could be recharged.
  5. In the lithium-ion battery in the article above, will lithium ions be produced at the anode or the cathode while the battery is being discharged?
  6. Describe the movement of lithium ions in the lithium-ion battery described above during the process of recharging the battery.