Fruit Battery | Science project | Education.com (2024)

Science project

Fruit Battery | Science project | Education.com (1)

In this science fair project,construct batteriesfrom various fruits and testthem to see which one will producethe most electric current. Then, determine if it would be practical to use fruit as a natural source for generating electricity.

An electric current is a flow of electronsand is measured in units calledamperesor "amps."Voltageis the force that pushes the electrons through a circuit (likethe pressure on water in a pipe)and is measured involts.

Grade

Fifth Grade

When two dissimilar metals are placed in a common conducting solution,electricity will be produced. This is the basis of the electro-chemical cell, or wet cell. In the early nineteenth-century, Alessandro Volta used this fact of physics to invent the voltaic pile and discovered the first practical method of generating electricity. Constructed of alternating discs of zinc and copper metals with pieces of cardboard soaked in a salt solution between the metals, his voltaic pile produced an electrical current.Alessandro Volta's voltaic pile was the first "wet cell battery" that produced electricity.

A wet cell consists of a negative electrode,a positive electrode and an electrolyte, which conducts ions (atoms with an electric charge). In this science fair project, copper and zinc metals will be used as the electrodes and the citric acid found in fresh fruit is the electrolyte. The chemistry behind the fruit cell is that zinc is more reactive than copper which means zinc loses electrons more easily than copper. As a result, oxidation occurs inthe zinc metal strip and zinc metal loses electrons which thenbecome zinc ions. The electrons then flow from the zinc strip to the copper strip through an external circuit. Inthe copper strip, reduction occurs and the hydrogen ions in the fruit's critic acid juice accept these electrons to form hydrogen gas; this explains why the investigator may observe bubbling of gas produced at the copper strip when the two metals are connected by a wire.

In this project an LED is used to indicate if the fruit-cell is generating an electric current.A Light Emitting Diode (LED) is a semiconductor device which converts electricity into light. An electric current can flow only in one direction through LEDs, which means that they have a positive and negative terminal (also referred to as the anode and cathode). The cathode should be connected to the negative zinc metal strip, and the anode to the positive copper strip.

Safety:The fruits used in this project should not be eaten. Care should be taken when handling the metal electrodes, LED and alligator clip leads.

Materials

  • Various fruits (such as alemon, grapefruit, orange, tomato, and kiwi)
  • Multi-meter
  • LED
  • Alligator clip leads
  • Tri-fold cardboard display board
  • Copper and zinc electrodes
  • (optional) Small 1.5 volt electric hobby motor.

Research Questions

  • What is a wet cell battery?
  • Why do placing two dissimilar metals into a fruit produce an electric current?
  • Which fruit-cell produced the most electricity? Which fruit-cell produced the least?
  • Did changing how far in the electrodes were make the current increase or decrease?
  • Did putting the electrodes closer together make the current increase or decrease?
  • Did putting the electrodes farther apart make the current increase or decrease, or stay the same?
  • Did the size of fruit make a difference? If so, did the size make the current increase or decrease?
  • How long did the fruit-cell provide electricity to light the LED?
  • Citrus fruits are acidic, which helps their juice to conduct electricity. What other fruits and vegetables might work as batteries?
  • Would fruit juice minus the fruit work as an electrolyte?

Procedure

  1. Prepare the fruits for this project by squeezing them on all sides with the hands. Make sure not to squeeze too tightly and break the skin!
  2. Stick the zinc electrode all the way into the first fruit to be tested.
  3. Place the copper electrode on the opposite side.
  4. Connect the longer of the two LED leads to the copper strip and the shorter lead to the metal strip using a pair of alligator clips.
  5. Observe and record what happens.
  6. If the LED lights up, also record how long the LED stays lit.
  7. Measure the current using the multi-meter.
  8. Remove the zinc and copper electrodes and wipe off any excess juice.
  9. Repeat the same procedure using a different fruit. Record the results for each time.
  10. For a more scientifically-accurate investigation, the entire processshould be repeated twice more.
  11. Calculate the average current produced by adding the values from the three independent results and dividing the sum by three for each fruit.
  12. Record the data in a table similar to the one shown.

Current (milliamps)

Lemon

Grapefruit

Orange

Tomato

Kiwi

Trial 1

Trial 2

Trial 3

Average

  1. Using the data in the table, plot a bar graph withname of fruitalong the x-axis andcurrent along the y-axis.

​If the LED does not light up, connect several fruit cells together attaching copper to zinc on each fruit. Also if a small motor is used instead of an LED and it doesn't automatically start when attached to the fruit cell, twist the armature.

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Warning is hereby given that not all Project Ideas are appropriate for allindividuals or in all circ*mstances. Implementation of any Science Project Ideashould be undertaken only in appropriate settings and with appropriate parentalor other supervision. Reading and following the safety precautions of allmaterials used in a project is the sole responsibility of each individual. Forfurther information, consult your state's handbook of Science Safety.

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Fruit Battery | Science project | Education.com (2024)

FAQs

Which fruit makes the best battery science project? ›

Any citrus fruit such as lemons, limes, oranges and grapefruit will work because they all contain citric acid for the electrolyte.

What is the science behind the fruit battery? ›

The Science

The ions in the juices attack the zinc metal to form zinc ions which move through the lemon juice to the copper metal. But this can only be seen when the ions are converted to electrons.

What is the conclusion of the fruit battery experiment? ›

The conclusion of the lemon battery experiment is: By using acidic fruits, we can demonstrate the transformation of a chemical reaction into an electrical reaction. Using the lemon, Cu, and Zn Plates, we can observe oxidation and reduction (i.e. redox reaction) reactions, which means redox.

Do lemons or potatoes make better batteries? ›

Surprisingly a potato can produce approximately one volt while a lemon can produce approximately 0.7 volts.

Why won't my fruit battery work? ›

Troubleshooting your lemon battery:

Ensure the electrodes are not touching inside lemon. Ensure the alligator clips on the test lead wires are not touching each other where you connect them to the LED. The wires from one lemon to the other have to be connected from zinc to copper in order for the electricity to flow.

What food makes the best battery? ›

A potato delivers a higher power (more Watts) than a lemon in both parallel and series circuits. I just did an in depth project in my Biological Engineering class at the University of Arkansas on biological batteries and I tested both lemons and potatoes. The potato always produced more power than the lemon.

Can you make a battery out of any fruit? ›

Citrus fruits like lemons and oranges are popular choices, but you can also experiment with apples or even potatoes. The acidic content in these fruits allows for the chemical reactions necessary to generate electricity. Metal electrodes are crucial components of your fruit battery.

What are the best electrodes for fruit batteries? ›

Typically, for fruity batteries a zinc nail is used for the positive electrode and a copper coin is used for the negative electrode. The electrodes react with the citric acid in the electrolyte.

Why is a fruit battery bad? ›

Fruits do not make very good batteries because they generate very low power. They are not an appropriate alternative to AA Batteries. For example, 603,000 mangos, would be needed to light a 60W light bulb for approximately 4 days, this would easily fill a house.

Which fruit has the most volts? ›

Royal Society of Chemistry and Professor Saiful Islam and his team from the University of Bath used 2,923 lemons to generate as astonishing 2,307.8 volts.

Why can fruit be used as a battery? ›

You can make a battery using a piece of fruit? Yes, technically, but not a very strong one! The source of electric energy in this demonstration is the combination of copper and zinc strips in the citric acid of the lemon. The citric acid of the lemon reacts with the zinc and loosens electrons.

Which fruit conducts the most electricity? ›

The high were mandarin 2.18v, potato 1.72v, white onion 1.76v, ruby grapefruit 1.44v, avocado 2.33v, bok choy 2.03v, fuji apple 1.41v, banana 1.88v, and ginger 3.1v.

How to produce a higher voltage from a fruit battery? ›

You might want to try hooking up several fruit batteries in series, to get a higher voltage. Make another battery using the same procedure above, and connect the wire from the nail of the second battery directly to the copper penny/wire from the first battery you made.

How do you make a homemade battery science project? ›

A few pennies and nickels, small paper-towel squares, a vinegar-salt solution, and an aluminum strip is all you need to create a coin battery. Place the aluminum strip in the middle of your plate. You will build your battery on top. This strip will make it easier to connect the multimeter later.

Which fruit can produce the most electricity? ›

The highest electric current value is produced by tamarind fruit because the acid content is higher than soursop and mango. A high value of acid content can produce a high value of electric current because if a material has a high acid content, it will have a high concentration of H+.

Which fruit is best for power? ›

When looking for sustained energy levels, fruits high in fiber and antioxidants, such as bananas, apples, plums and goji berries, are the perfect choice. Additionally, eating regularly and incorporating balanced meals provides your body with continuous, long-lasting energy.

Which fruit rots the fastest experiment? ›

Method:We collected our data by observing the fruits for 21 days. We also researched to learn more about the fruit categories. Results: Our results were that the orange was still edible at 21 days and the banana rotted first. All the other fruits rotted within 4 to 15 days.

What battery lasts the longest science project? ›

Results. The Duracell battery lasts the longest, closely followed by Energizer and then Eveready. In general, the alkaline batteries are found to perform better than their non-alkaline counterparts.

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