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== Age ==
{| class="wikitable" style="color:black; background-color:#ddd; margin-left: auto; float:right"
| [[Chemistry]]:
| Redox Reactions
|-
| Grade Range:
| [[Elementary School]], [[Middle School]], [[High School]]
|-
| Format:
| [[Hands-on]]
|}


Elementary School, Middle School, High School
This is a common demonstration for Reduction/Oxidation reactions. It is easy to prepare, easy to perform, and after preparation it can be used for several hours! Be careful with the indicators, since both of them will stain clothing.


== Format ==


Stage Show, Hands-on
== Materials ==


== Materials ==
* Sodium Hydroxide
* Dextrose (Sugar)
* Water
* 500 mL Erlenmeyer flask
* Stopper for flask
* Indicator: Methylene Blue or Resazurin


    Flask and stopper
    8g Potassium Hydroxide [corrosive]
    10g Glucose (AKA dextrose)
    0.05g Methylene Blue [harmful]
    50mL Water


== Safety Precautions ==
== Safety Precautions ==


Science Theatre demonstrators must keep the safety of themselves and their audience in mind at all times. All Science Theatre demonstrators must have read through the Safety Training page. The ST Safety Box with first aid kit, fire extinguisher, etc. should always be available to demonstrators. Always wear safety gloves, glasses, and a labcoat if handling chemicals; always perform potentially dangerous demonstrations at a safe distance from the audience; and always keep a very close eye on any volunteers you call from the audience. Make sure the stopper fits tightly on the flask and that kids don't drop/break the flask. It might be a good idea to use a clear plastic pop bottle with a screw on lid. Also please check how to properly dispose of the solution.
Please read the Chemical Safety section of the [[Demonstration Safety]] page before performing this demonstration.
 
[http://www.sciencelab.com/msds.php?msdsId=9926049: Methylene Blue MSDS]


[http://www.sciencelab.com/msds.php?msdsId=9927230: Potassium Hydroxide MSDS]
During preparation, wear safety goggles and gloves. During the presentation, make sure whomever is shaking the solution keeps a hand on the stopper, to prevent it from coming out.


== Preparation ==
    Make a solution of 0.05g o methylene blue in 50 mL of water
    Add 8g of potassium hydroxide into the flask
    Add 300mL water to the flask
    Add 10g glucose to the flask
    Swirl the flask until the solids are dissolved
    Add 5mL of the previously prepared methylene blue solution. The exact quantity used is not important.
The resultant blue solution should turn colorless after about a minute. Stopper the flask.


== Demonstration ==
== Demonstration ==


While holding the stopper securely in place, shake the flask so that air dissolves in the solution (you can let the kids try it out on their own, just make sure they wear goggles and are careful not to drop it). The color of the solution will change from clear to blue while shaking, then will go clear again after standing still for about 30 seconds. The more shaking, the longer the blue color will take to fade. Process can be repeated many times, after a while (several hours) the solution will turn yellow and the color changes won't happen anymore.
'''Preparation:'''
 
# In the Erlenmeyer flask, combine 300 mL of water with 8g of Sodium Hydroxide and 10g of Dextrose. Add the solids individually, and allow the first to dissolve fully before adding the next one.
== What to Say ==
#* Alternatively, if there are prepared solutions for the NaOH and sugar, mix them in the Erlenmeyer flask as according to their labels.
 
# If your indicator is not already in a water solution, then combine 0.5-1.0 g of the indicator with 50mL of water. Stir thoroughly, store in a bottle and label it. Add 8-10 drops of the indicator solution to the Erlenmeyer flask, and then stopper the flask.  
A redox reaction is one in which oxidation and reduction are taking place. Oxidation is when an atom or molecule loses electrons (or gains oxygen)
# The solution will initially be blue (Methylene blue) or purple/pink (Resazurin). After you let it sit, the solution will turn clear (Methylene) or light teal (Resazurin), and it is now ready to use.


Reduction is when an atom or molecule gains electrons (or loses oxygen)
'''Presentation:'''
# Show the solution to the students, and swirl the bottle gently. A very slight color change will happen. Let it sit, and after a few seconds the color will disappear!
# Ask a student to hold it and shake it. The solution will now turn colors dramatically! the more they shake it, the more pronounced the color will become, and the longer it will take for the color to dissipate.
# Ask the students why it changes colors. What is happening when we shake it? Is there more than one thing going on here?


A good way to remember the difference is LEO says GER where LEO stands for Losing Electrons=Oxidation and GER stands for Gaining Electrons=Reduction.
== Why This Works ==


So what happens when we shake the solution? --- We dissolve air (and therefore oxygen!) into the solution. We just learned that when a molecule gains oxygen it is oxidized. So when we shake the solution, the glucose is oxidized.
===Short Explanation===


An indicator is something that can be used to tell us what is going on in a solution. Methylene blue is a redox indicator that is colorless when under reducing conditions, and turns blue under oxidizing conditions. So when we shake the solution, we oxidize the glucose and the methylene blue turns blue!
This demonstration works because it is a ''Redox Reaction''. Redox stands for Reduction/Oxidation, which are reactions that happen due to an exchange of electrons. ''Reduction'' is when a molecule gains electrons, and ''Oxidation'' is when a molecule loses electrons. A helpful way to remember this is with this phrase: "'''LEO''' says '''GER'''". The letters in '''LEO''' stand for '''L'''oss '''E'''quals '''O'''xidation, and '''GER''' stands for '''G'''ain '''E'''quals '''R'''eduction.


What happens when we let the solution sit for a while? The solution is reduced (loses oxygen) and the methylene blue returns to a colorless state.
Remember: There is air all around us, including inside of the flask, and part of that air is oxygen. So when the flask is shaken, some of that oxygen will dissolve into the solution. The oxygen will oxidize the indicator, and removes some of the electrons. This is what makes it change colors! Then, the glucose in the solution will reduce the indicator, and give it some electrons. This is what makes it turn back. Since there is so much glucose in the solution and very little indicator, this can happen a lot, and can be repeated for several hours!


What happens if we shake the flask for a very long time? The time that the flask is shaken is directly proportional to the amount of time that it will take for the blue color to fade. So the longer you shake the flask, the longer it will take to return to it original (lack of) color. This is because the longer you shake the solution the more oxygen is dissolved, and the solution remains oxidized longer.


== Why It Is ==
===Full Explanation===


Methylene Blue is a redox indicator that is colorless under reducing conditions and blue when oxidized. The glucose in the solution causes the methylene blue to initially be colorless. When the solution is shaken, oxygen dissolves into it. This oxidizes the glucose, which gives the methylene blue its blue color, indicating the oxidative conditions. When the oxygen is no longer dissolved in the solution (after you let it sit for a while), the glucose returns to its reduced state and the solution loses its blue color. The longer you shake the solution, the longer it will take to return to its colorless state because more oxygen is initially dissolved.
Reduction-Oxidation reactions, or ''Redox Reactions'', are a type of reaction that relies on the transfer of electrons. ''Reduction'' is when electrons are gained, usually by the loss of an oxygen. ''Oxidation'' is when electrons are lost, usually by the gain of an oxygen. A helpful way to remember this is with the phrase "'''LEO''' says '''GER'''". The letters in '''LEO''' stand for '''L'''oss '''E'''quals '''O'''xidation, and '''GER''' stands for '''G'''ain '''E'''quals '''R'''eduction.


Oxidation refers to the loss of electrons/hydrogen or the gain of oxygen/increase in oxidation state by a molecule, atom, or ion.
In this experiment, we are seeing a color change when the oxidation of the indicator takes place. For this to happen, however, we need to first have our indicator be reduced. What is often missed during this demonstration is that, when we shake the solution, we are effectively ''reversing'' a step of the reaction that took place. This is why it will always go back to clear at the end, since the reaction will then go forward. There are four reaction steps to this demonstration, as listed here:


Reduction refers to the gain of electrons/hydrogen or the loss of oxygen/decrease in oxidation state by a molecule, atom, or ion.  
{| class="wikitable" style="color:black; background-color:#ddd; text-align: left; margin: auto; float: right"
|+Shaking Solution Reaction Steps
|1. Sugar Oxidation
|C<sub>6</sub>H<sub>12</sub>O<sub>6(aq)</sub> '''+''' 2NaOH<sub>(aq)</sub> '''&rArr;''' C<sub>6</sub>H<sub>12</sub>O<sub>7(aq)</sub> '''+''' 2Na<sup>+</sup><sub>(aq)</sub> '''+''' H<sub>2</sub>O<sub>(l)</sub> '''+''' 2e<sup>-</sup>
|-
|2. Gluconic Acid Ionization
|C<sub>6</sub>H<sub>12</sub>O<sub>7(aq)</sub> '''&rArr;''' C<sub>6</sub>H<sub>11</sub>O<sub>7</sub><sup>-</sup><sub>(aq)</sub> '''+''' H<sup>+</sup><sub>(aq)</sub>
|-
|3. Indicator Reduction
(via Gluconic Acid)
|'''Methylene Blue:''' C<sub>16</sub>H<sub>18</sub>N<sub>3</sub>S<sup>+</sup><sub>(aq)</sub> (Blue) '''+''' H<sup>+</sup><sub>(aq)</sub> '''+''' 2e<sup>-</sup> '''&rArr;''' C<sub>16</sub>H<sub>19</sub>N<sub>3</sub>S<sub>(aq)</sub> (Colorless)
'''Resazurin:''' C<sub>12</sub>H<sub>7</sub>NO<sub>4</sub><sup>-</sup><sub>(aq)</sub> (Purple/Pink) '''+''' 2H<sup>+</sup><sub>(aq)</sub> '''+'''e<sup>-</sup> '''&rArr;''' C<sub>12</sub>H<sub>7</sub>NO<sub>3(aq)</sub> (Teal) '''+''' H<sub>2</sub>O<sub>(l)</sub>
|-
|4. Indicator Oxidation
(via dissolved O<sub>2</sub>)
|'''Methylene Blue:''' 2C<sub>16</sub>H<sub>19</sub>N<sub>3</sub>S<sub>(aq)</sub> (Colorless) '''+''' O<sup>2-</sup><sub>(aq)</sub> '''&rArr;''' 2C<sub>16</sub>H<sub>18</sub>N<sub>3</sub>S<sup>+</sup><sub>(aq)</sub> (Blue) '''+''' H<sub>2</sub>O<sub>(l)</sub>
'''Resazurin:''' C<sub>12</sub>H<sub>7</sub>NO<sub>3(aq)</sub> (Teal) '''+''' O<sup>2-</sup><sub>(aq)</sub> '''&rArr;''' C<sub>12</sub>H<sub>7</sub>NO<sub>4</sub><sup>-</sup><sub>(aq)</sub> (Purple/Pink) '''+''' e<sup>-</sup>
|}


The reaction:
* In step one, the initial reaction is between the sodium hydroxide and dextrose turns the dextrose into gluconic acid, and frees two electrons. This means it was oxidized, since it lost electrons, and the NaOH was reduced, since it gained electrons. The gluconic acid also happened to gain an oxygen, which is another indicator for oxidation. What is important to note for this step is that it is ''catalyzed'' by the indicator; that is to say, the indicator actually plays an active role in this reaction, which is unusual. This catalysis is explained in step three.
* In step two, we see the gluconic acid being ionized into gluconate and a free hydrogen. Gluconic acid is a weak acid, so although it does react much with the solution it is in, it will act as a buffer and ionize slowly. This produces a free hydrogen, and the gluconate ion will partner with the sodium ion from the first step.
* In step three, the hydrogen, combined with the two extra electrons, changes the color of the solution. The indicators we use is either Methylene Blue or Resazurin, both of which are redox indicators, meaning that they will have a color shift when a redox reaction happens. However, in this case the indicator is playing an active role in the reaction, and causes the sugar oxidation to be catalyzed. Both of the indicators will bond with a positive ion, so they will initially try to partner with the free Na<sup>+</sup>. This causes the pH of the solution to change, which means the gluconic acid buffer will ionize faster to prevent the indicator from bonding with the free Na<sup>+</sup>. This results in the indicator bonding instead with the H<sup>+</sup> and removing electrons from the solution, which encourages the sugar oxidation to happen faster.
* Step four is after the initial reduction, and when the solutions are ready for presenting. When you shake the solution, oxygen will be dissolved into it. The dissolved Oxygen will react with the indicators, Oxidizing them and causing a color change. When this happens, the now-oxidized indicators will again try to bond with the Na<sup>+</sup> ion. This triggers another gluconic acid buffer response, and will accelerate the ionization until the solution is once again reduced. As long as there is enough gluconic acid in solution, and so long as there are some extra electrons in solution, then you will be able to shake the solution and cause the color change!


HOCH2(CHOH)4CHO + 3 OH - → HOCH2(CHOH)4CO2 + 2 H2O + 2 e –
Due to the amount of indicator being so low compared to the other reactants, This reaction is able to happen a lot, and for a long while. After a few hours, the solution will change color slightly, and then stop working. It stops working due to the lack of free electrons and H<sup>+</sup> to make the reverse reaction happen. The color change happens because, after expending all of the extra Hydrogen and electrons, the indicators will bond with some of the other ions in solution, such as the gluconate and Na<sup>+</sup>, and become unable to do their proper color changes.


== Real Life Examples ==
== Additional Information ==


In the dairy industry the dye reduction test using methylene blue is used to determine whether milk is classified as “excellent”, “good”, “fair”, or “poor” based on the rate at which the solution turns colorless. The faster the methylene returns to its colorless state, the lower the rating. This is because the bacteria that sometimes live in milk use oxygen as fuel. The more bacteria in the milk, the less oxygen there is, and so the oxidized (blue) state of the methylene blue fades more quickly.
* Redox Reactions are all around us! Combustion is a redox reaction, and rust on metals is one as well!
* Methylene Blue is used to check the quality of milk produced. After added to some milk, the rate that it turns blue determines what rating the milk gets. A slow change is good, and a fast change is poor.
* This demonstration pairs well with the [[Potassium Permanganate And Glycerin]] and [[Elephant Toothpaste]] demonstrations.
* This demonstration is a part of the [[Chemistry Show]]!

Latest revision as of 18:14, 26 September 2016

Chemistry: Redox Reactions
Grade Range: Elementary School, Middle School, High School
Format: Hands-on

This is a common demonstration for Reduction/Oxidation reactions. It is easy to prepare, easy to perform, and after preparation it can be used for several hours! Be careful with the indicators, since both of them will stain clothing.


Materials

  • Sodium Hydroxide
  • Dextrose (Sugar)
  • Water
  • 500 mL Erlenmeyer flask
  • Stopper for flask
  • Indicator: Methylene Blue or Resazurin


Safety Precautions

Please read the Chemical Safety section of the Demonstration Safety page before performing this demonstration.

During preparation, wear safety goggles and gloves. During the presentation, make sure whomever is shaking the solution keeps a hand on the stopper, to prevent it from coming out.


Demonstration

Preparation:

  1. In the Erlenmeyer flask, combine 300 mL of water with 8g of Sodium Hydroxide and 10g of Dextrose. Add the solids individually, and allow the first to dissolve fully before adding the next one.
    • Alternatively, if there are prepared solutions for the NaOH and sugar, mix them in the Erlenmeyer flask as according to their labels.
  2. If your indicator is not already in a water solution, then combine 0.5-1.0 g of the indicator with 50mL of water. Stir thoroughly, store in a bottle and label it. Add 8-10 drops of the indicator solution to the Erlenmeyer flask, and then stopper the flask.
  3. The solution will initially be blue (Methylene blue) or purple/pink (Resazurin). After you let it sit, the solution will turn clear (Methylene) or light teal (Resazurin), and it is now ready to use.

Presentation:

  1. Show the solution to the students, and swirl the bottle gently. A very slight color change will happen. Let it sit, and after a few seconds the color will disappear!
  2. Ask a student to hold it and shake it. The solution will now turn colors dramatically! the more they shake it, the more pronounced the color will become, and the longer it will take for the color to dissipate.
  3. Ask the students why it changes colors. What is happening when we shake it? Is there more than one thing going on here?

Why This Works

Short Explanation

This demonstration works because it is a Redox Reaction. Redox stands for Reduction/Oxidation, which are reactions that happen due to an exchange of electrons. Reduction is when a molecule gains electrons, and Oxidation is when a molecule loses electrons. A helpful way to remember this is with this phrase: "LEO says GER". The letters in LEO stand for Loss Equals Oxidation, and GER stands for Gain Equals Reduction.

Remember: There is air all around us, including inside of the flask, and part of that air is oxygen. So when the flask is shaken, some of that oxygen will dissolve into the solution. The oxygen will oxidize the indicator, and removes some of the electrons. This is what makes it change colors! Then, the glucose in the solution will reduce the indicator, and give it some electrons. This is what makes it turn back. Since there is so much glucose in the solution and very little indicator, this can happen a lot, and can be repeated for several hours!


Full Explanation

Reduction-Oxidation reactions, or Redox Reactions, are a type of reaction that relies on the transfer of electrons. Reduction is when electrons are gained, usually by the loss of an oxygen. Oxidation is when electrons are lost, usually by the gain of an oxygen. A helpful way to remember this is with the phrase "LEO says GER". The letters in LEO stand for Loss Equals Oxidation, and GER stands for Gain Equals Reduction.

In this experiment, we are seeing a color change when the oxidation of the indicator takes place. For this to happen, however, we need to first have our indicator be reduced. What is often missed during this demonstration is that, when we shake the solution, we are effectively reversing a step of the reaction that took place. This is why it will always go back to clear at the end, since the reaction will then go forward. There are four reaction steps to this demonstration, as listed here:

Shaking Solution Reaction Steps
1. Sugar Oxidation C6H12O6(aq) + 2NaOH(aq) C6H12O7(aq) + 2Na+(aq) + H2O(l) + 2e-
2. Gluconic Acid Ionization C6H12O7(aq) C6H11O7-(aq) + H+(aq)
3. Indicator Reduction

(via Gluconic Acid)

Methylene Blue: C16H18N3S+(aq) (Blue) + H+(aq) + 2e- C16H19N3S(aq) (Colorless)

Resazurin: C12H7NO4-(aq) (Purple/Pink) + 2H+(aq) +e- C12H7NO3(aq) (Teal) + H2O(l)

4. Indicator Oxidation

(via dissolved O2)

Methylene Blue: 2C16H19N3S(aq) (Colorless) + O2-(aq) 2C16H18N3S+(aq) (Blue) + H2O(l)

Resazurin: C12H7NO3(aq) (Teal) + O2-(aq) C12H7NO4-(aq) (Purple/Pink) + e-

  • In step one, the initial reaction is between the sodium hydroxide and dextrose turns the dextrose into gluconic acid, and frees two electrons. This means it was oxidized, since it lost electrons, and the NaOH was reduced, since it gained electrons. The gluconic acid also happened to gain an oxygen, which is another indicator for oxidation. What is important to note for this step is that it is catalyzed by the indicator; that is to say, the indicator actually plays an active role in this reaction, which is unusual. This catalysis is explained in step three.
  • In step two, we see the gluconic acid being ionized into gluconate and a free hydrogen. Gluconic acid is a weak acid, so although it does react much with the solution it is in, it will act as a buffer and ionize slowly. This produces a free hydrogen, and the gluconate ion will partner with the sodium ion from the first step.
  • In step three, the hydrogen, combined with the two extra electrons, changes the color of the solution. The indicators we use is either Methylene Blue or Resazurin, both of which are redox indicators, meaning that they will have a color shift when a redox reaction happens. However, in this case the indicator is playing an active role in the reaction, and causes the sugar oxidation to be catalyzed. Both of the indicators will bond with a positive ion, so they will initially try to partner with the free Na+. This causes the pH of the solution to change, which means the gluconic acid buffer will ionize faster to prevent the indicator from bonding with the free Na+. This results in the indicator bonding instead with the H+ and removing electrons from the solution, which encourages the sugar oxidation to happen faster.
  • Step four is after the initial reduction, and when the solutions are ready for presenting. When you shake the solution, oxygen will be dissolved into it. The dissolved Oxygen will react with the indicators, Oxidizing them and causing a color change. When this happens, the now-oxidized indicators will again try to bond with the Na+ ion. This triggers another gluconic acid buffer response, and will accelerate the ionization until the solution is once again reduced. As long as there is enough gluconic acid in solution, and so long as there are some extra electrons in solution, then you will be able to shake the solution and cause the color change!

Due to the amount of indicator being so low compared to the other reactants, This reaction is able to happen a lot, and for a long while. After a few hours, the solution will change color slightly, and then stop working. It stops working due to the lack of free electrons and H+ to make the reverse reaction happen. The color change happens because, after expending all of the extra Hydrogen and electrons, the indicators will bond with some of the other ions in solution, such as the gluconate and Na+, and become unable to do their proper color changes.

Additional Information

  • Redox Reactions are all around us! Combustion is a redox reaction, and rust on metals is one as well!
  • Methylene Blue is used to check the quality of milk produced. After added to some milk, the rate that it turns blue determines what rating the milk gets. A slow change is good, and a fast change is poor.
  • This demonstration pairs well with the Potassium Permanganate And Glycerin and Elephant Toothpaste demonstrations.
  • This demonstration is a part of the Chemistry Show!