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Chapter 22 : Electric potential โ€ข What is electric potential? โ€ข How does it relate to potential energy? โ€ข How does it relate to electric field? โ€ข Some simple applications

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Page 1: Chapter 22 : Electric potentialastronomy.swin.edu.au/~cblake/Topic5_Electricity_Part2.pdfย ยท โ€ข The electric potential difference โˆ†๐‘‰๐‘‰between two points is the work needed

Chapter 22 : Electric potential

โ€ข What is electric potential?

โ€ข How does it relate to potential energy?

โ€ข How does it relate to electric field?

โ€ข Some simple applications

Page 2: Chapter 22 : Electric potentialastronomy.swin.edu.au/~cblake/Topic5_Electricity_Part2.pdfย ยท โ€ข The electric potential difference โˆ†๐‘‰๐‘‰between two points is the work needed

Electric potential

โ€ข What does it mean when it says โ€œ1.5 Voltsโ€ on the battery?

โ€ข The electric potential difference between the ends is 1.5 Volts

Page 3: Chapter 22 : Electric potentialastronomy.swin.edu.au/~cblake/Topic5_Electricity_Part2.pdfย ยท โ€ข The electric potential difference โˆ†๐‘‰๐‘‰between two points is the work needed

Electric potential

1.5 V230 V

100,000 V

So what is a volt?

Page 4: Chapter 22 : Electric potentialastronomy.swin.edu.au/~cblake/Topic5_Electricity_Part2.pdfย ยท โ€ข The electric potential difference โˆ†๐‘‰๐‘‰between two points is the work needed

Electric potentialโ€ข The electric potential difference โˆ†๐‘‰๐‘‰ in volts

between two points is the work in Joules needed to move 1 C of charge between those points

โ€ข โˆ†๐‘‰๐‘‰ is measured in volts [V] : 1 V = 1 J/C

๐‘Š๐‘Š = ๐‘ž๐‘ž ร— โˆ†๐‘‰๐‘‰

W = work done [in J]q = charge [in C]โˆ†V = potential difference [in V]

Page 5: Chapter 22 : Electric potentialastronomy.swin.edu.au/~cblake/Topic5_Electricity_Part2.pdfย ยท โ€ข The electric potential difference โˆ†๐‘‰๐‘‰between two points is the work needed

Electric potential

The 1.5 V battery does 1.5 J of work for every 1 C of charge flowing round the circuit

๐‘Š๐‘Š = ๐‘ž๐‘ž ร— โˆ†๐‘‰๐‘‰

โ€ข The electric potential difference โˆ†๐‘‰๐‘‰ in volts between two points is the work in Joules needed to move 1 C of charge between those points

Page 6: Chapter 22 : Electric potentialastronomy.swin.edu.au/~cblake/Topic5_Electricity_Part2.pdfย ยท โ€ข The electric potential difference โˆ†๐‘‰๐‘‰between two points is the work needed

Potential energyโ€ข What is this thing called โ€œpotentialโ€?

โ€ข Potential energy crops up everywhere in physics

Page 7: Chapter 22 : Electric potentialastronomy.swin.edu.au/~cblake/Topic5_Electricity_Part2.pdfย ยท โ€ข The electric potential difference โˆ†๐‘‰๐‘‰between two points is the work needed

Potential energyโ€ข Potential energy U is the energy stored in a system

(when work is done against a force)

โ€ข e.g. force of gravity โ€ฆ๐น๐น = ๐‘š๐‘š๐‘š๐‘š

โ„Ž

๐‘Š๐‘Š = ๐น๐น ร— โ„Ž

Work = Force x Distance

= ๐‘š๐‘š๐‘š๐‘šโ„Ž

โ†’ ๐‘ˆ๐‘ˆ = ๐‘š๐‘š๐‘š๐‘šโ„Ž

๐น๐น

Page 8: Chapter 22 : Electric potentialastronomy.swin.edu.au/~cblake/Topic5_Electricity_Part2.pdfย ยท โ€ข The electric potential difference โˆ†๐‘‰๐‘‰between two points is the work needed

Potential energyโ€ข Potential energy may be released and converted

into other forms (such as kinetic energy)

Work is done, increasing the potential energy

Page 9: Chapter 22 : Electric potentialastronomy.swin.edu.au/~cblake/Topic5_Electricity_Part2.pdfย ยท โ€ข The electric potential difference โˆ†๐‘‰๐‘‰between two points is the work needed

Potential energyโ€ข Potential energy difference is the only thing that

matters โ€“ not the reference (or zero) level

โ€ข For example, applying conservation of energy to a mechanics problem:

๐พ๐พ๐พ๐พ๐‘“๐‘“๐‘“๐‘“๐‘“๐‘“๐‘“๐‘“๐‘“๐‘“ + ๐‘ƒ๐‘ƒ๐พ๐พ๐‘“๐‘“๐‘“๐‘“๐‘“๐‘“๐‘“๐‘“๐‘“๐‘“ = ๐พ๐พ๐พ๐พ๐‘“๐‘“๐‘“๐‘“๐‘“๐‘“๐‘–๐‘–๐‘“๐‘“๐‘“๐‘“๐‘“๐‘“ + ๐‘ƒ๐‘ƒ๐พ๐พ๐‘“๐‘“๐‘“๐‘“๐‘“๐‘“๐‘–๐‘–๐‘“๐‘“๐‘“๐‘“๐‘“๐‘“

Final energy = Initial energy

๐พ๐พ๐พ๐พ๐‘“๐‘“๐‘“๐‘“๐‘“๐‘“๐‘“๐‘“๐‘“๐‘“ = ๐พ๐พ๐พ๐พ๐‘“๐‘“๐‘“๐‘“๐‘“๐‘“๐‘–๐‘–๐‘“๐‘“๐‘“๐‘“๐‘“๐‘“ + (๐‘ƒ๐‘ƒ๐พ๐พ๐‘“๐‘“๐‘“๐‘“๐‘“๐‘“๐‘–๐‘–๐‘“๐‘“๐‘“๐‘“๐‘“๐‘“โˆ’๐‘ƒ๐‘ƒ๐พ๐พ๐‘“๐‘“๐‘“๐‘“๐‘“๐‘“๐‘“๐‘“๐‘“๐‘“)

Difference in potential energy

Page 10: Chapter 22 : Electric potentialastronomy.swin.edu.au/~cblake/Topic5_Electricity_Part2.pdfย ยท โ€ข The electric potential difference โˆ†๐‘‰๐‘‰between two points is the work needed

Potential energyโ€ข Potential energy difference doesnโ€™t depend on the

path โ€“ only on the two points A and B

Page 11: Chapter 22 : Electric potentialastronomy.swin.edu.au/~cblake/Topic5_Electricity_Part2.pdfย ยท โ€ข The electric potential difference โˆ†๐‘‰๐‘‰between two points is the work needed

Potential energyโ€ข Potential energy U is the energy stored in a system

โ€“ second example

โ€ข e.g. stretching a spring โ€ฆ ๐น๐น = ๐‘˜๐‘˜๐‘˜๐‘˜

๐‘˜๐‘˜

๐‘Š๐‘Š = ๏ฟฝ๐‘˜๐‘˜๐‘˜๐‘˜ ๐‘‘๐‘‘๐‘˜๐‘˜

Work = Force x Distance

= 12๐‘˜๐‘˜๐‘˜๐‘˜

2

โ†’ ๐‘ˆ๐‘ˆ = 12๐‘˜๐‘˜๐‘˜๐‘˜

2

๐น๐นForce is varying with distance!

Page 12: Chapter 22 : Electric potentialastronomy.swin.edu.au/~cblake/Topic5_Electricity_Part2.pdfย ยท โ€ข The electric potential difference โˆ†๐‘‰๐‘‰between two points is the work needed

Electric potentialโ€ข e.g. moving a charge through an electric fieldโ€ฆ

๐น๐น๐พ๐พ

๐น๐น = โˆ’๐‘ž๐‘ž๐พ๐พ

Work = Force x Distance = โˆ’๐‘ž๐‘ž๐พ๐พ โˆ†๐‘˜๐‘˜๐‘Š๐‘Š = ๐น๐น โˆ†๐‘˜๐‘˜

โ€ข Potential difference โˆ†๐‘‰๐‘‰ is work needed to move 1C of charge: ๐‘Š๐‘Š = ๐‘ž๐‘ž โˆ†๐‘‰๐‘‰

โ€ข Equate: ๐‘ž๐‘ž โˆ†๐‘‰๐‘‰ = โˆ’๐‘ž๐‘ž๐พ๐พ โˆ†๐‘˜๐‘˜

๐‘ž๐‘ž(minus sign because the force is opposite to E) โˆ†๐‘˜๐‘˜

๐พ๐พ = โˆ’โˆ†๐‘‰๐‘‰โˆ†๐‘˜๐‘˜

Page 13: Chapter 22 : Electric potentialastronomy.swin.edu.au/~cblake/Topic5_Electricity_Part2.pdfย ยท โ€ข The electric potential difference โˆ†๐‘‰๐‘‰between two points is the work needed

Electric potentialโ€ข Electric field is the gradient of potential ๐พ๐พ = โˆ’โˆ†๐‘‰๐‘‰

โˆ†๐‘ฅ๐‘ฅ

High V Low V๐พ๐พ ๐‘‰๐‘‰

๐‘˜๐‘˜

๐‘˜๐‘˜

โ€ข Positive charges feel a force from high to low potential

โ€ข Negative charges feel a force from low to high potential

Page 14: Chapter 22 : Electric potentialastronomy.swin.edu.au/~cblake/Topic5_Electricity_Part2.pdfย ยท โ€ข The electric potential difference โˆ†๐‘‰๐‘‰between two points is the work needed

Two parallel plates have equal and opposite charge. Rank the indicated positions from highest to lowest electric potential.

1 2 3 4

0% 0%0%0%

+ + + + + + + + + + + + + + + +

- - - - - - - - - - - - -โ€ขA

โ€ขB

โ€ขC

โ€ขD

1. A=C, B=D2. A, B, C, D3. C, D=B, A4. A, B=D, C

Page 15: Chapter 22 : Electric potentialastronomy.swin.edu.au/~cblake/Topic5_Electricity_Part2.pdfย ยท โ€ข The electric potential difference โˆ†๐‘‰๐‘‰between two points is the work needed

Electric potentialโ€ข Analogy with gravitational potential

๐‘‰๐‘‰

๐‘˜๐‘˜

Gravitationalpotential difference exerts force on mass

Electric potential difference exerts force on charge

๐‘ž๐‘ž

Page 16: Chapter 22 : Electric potentialastronomy.swin.edu.au/~cblake/Topic5_Electricity_Part2.pdfย ยท โ€ข The electric potential difference โˆ†๐‘‰๐‘‰between two points is the work needed

Electric potential

High V Low V๐พ๐พ

โ€ข The dashed lines are called equipotentials (lines of constant V)

โ€ข Electric field lines are perpendicular to equipotentials

โ€ข It takes no work to move a charge along an equipotential (work done = ๐‘‘๐‘‘๐‘Š๐‘Š = ๏ฟฝโƒ—๏ฟฝ๐น.๐‘‘๐‘‘๐‘˜๐‘˜ =๐‘ž๐‘ž๐พ๐พ.๐‘‘๐‘‘๐‘˜๐‘˜ = 0)

โ€ข Electric field is the gradient of potential ๐พ๐พ = โˆ’โˆ†๐‘‰๐‘‰โˆ†๐‘ฅ๐‘ฅ

Page 17: Chapter 22 : Electric potentialastronomy.swin.edu.au/~cblake/Topic5_Electricity_Part2.pdfย ยท โ€ข The electric potential difference โˆ†๐‘‰๐‘‰between two points is the work needed

โ€ข Summary for two plates at potential difference V

Electric potential

๐‘‘๐‘‘

๐พ๐พ โ€ข Electric field is the potential gradient

โ€ข Work W to move charge q from โ€“ve to +ve plate

๐พ๐พ =๐‘‰๐‘‰๐‘‘๐‘‘

๐‘Š๐‘Š = ๐‘ž๐‘ž ๐‘‰๐‘‰

Page 18: Chapter 22 : Electric potentialastronomy.swin.edu.au/~cblake/Topic5_Electricity_Part2.pdfย ยท โ€ข The electric potential difference โˆ†๐‘‰๐‘‰between two points is the work needed

โ€ข The electric potential difference โˆ†๐‘‰๐‘‰ between two points is the work needed to move 1 C of charge between those points

โ€ข This work is also equal to the potential energy difference โˆ†๐‘ˆ๐‘ˆ between those points

โ€ข Potential V = potential energy per unit charge U/q

Link to potential energy

๐‘Š๐‘Š = ๐‘ž๐‘ž ร— โˆ†๐‘‰๐‘‰

โˆ†๐‘ˆ๐‘ˆ = ๐‘ž๐‘ž ร— โˆ†๐‘‰๐‘‰

Page 19: Chapter 22 : Electric potentialastronomy.swin.edu.au/~cblake/Topic5_Electricity_Part2.pdfย ยท โ€ข The electric potential difference โˆ†๐‘‰๐‘‰between two points is the work needed

An electron is placed at โ€œXโ€ on the negative plate of a pair of charged parallel plates. For the maximum work to be done on it, which point should it be moved to?

1 2 3 4 5 6

0% 0% 0%0%0%0%

+ + + + + + + + + + + + + + + +

- - - - - - - - - - - - -โ€ขX

โ€ขA โ€ขC

โ€ขB

โ€ขD

1. A2. B3. C4. D5. A or C6. C or D

Page 20: Chapter 22 : Electric potentialastronomy.swin.edu.au/~cblake/Topic5_Electricity_Part2.pdfย ยท โ€ข The electric potential difference โˆ†๐‘‰๐‘‰between two points is the work needed

โ€ข What is the electric potential near a charge +Q?

+q

+Q

๐น๐น =๐‘˜๐‘˜ ๐‘„๐‘„ ๐‘ž๐‘ž๐‘˜๐‘˜2

๐‘˜๐‘˜

Work = Force x Distance

Force is varying with distance, need integral!

๐‘Š๐‘Š = ๏ฟฝโˆž

๐‘Ÿ๐‘Ÿ๐น๐น ๐‘‘๐‘‘๐‘˜๐‘˜ = ๏ฟฝ

โˆž

๐‘Ÿ๐‘Ÿโˆ’๐‘˜๐‘˜ ๐‘„๐‘„ ๐‘ž๐‘ž๐‘˜๐‘˜2 ๐‘‘๐‘‘๐‘˜๐‘˜ =

๐‘˜๐‘˜ ๐‘„๐‘„ ๐‘ž๐‘ž๐‘Ÿ๐‘Ÿ

Potential energy ๐‘ˆ๐‘ˆ = ๐‘˜๐‘˜ ๐‘„๐‘„ ๐‘ž๐‘ž๐‘Ÿ๐‘Ÿ

Electric potential ๐‘‰๐‘‰ = ๐‘ˆ๐‘ˆ๐‘ž๐‘ž

= ๐‘˜๐‘˜ ๐‘„๐‘„๐‘Ÿ๐‘Ÿ

Electric potential

Page 21: Chapter 22 : Electric potentialastronomy.swin.edu.au/~cblake/Topic5_Electricity_Part2.pdfย ยท โ€ข The electric potential difference โˆ†๐‘‰๐‘‰between two points is the work needed

+q

+Q๐‘Ÿ๐‘Ÿ

Electric potential ๐‘‰๐‘‰ = ๐‘˜๐‘˜ ๐‘„๐‘„๐‘Ÿ๐‘Ÿ

Electric potentialโ€ข What is the electric potential near a charge +Q?

Page 22: Chapter 22 : Electric potentialastronomy.swin.edu.au/~cblake/Topic5_Electricity_Part2.pdfย ยท โ€ข The electric potential difference โˆ†๐‘‰๐‘‰between two points is the work needed

Electric potentialExercise: a potential difference of 200 V is applied across a pair of parallel plates 0.012 m apart. (a) calculate E and draw its direction between the plates.

The electric field is the gradient in potential

๐พ๐พ =โˆ†๐‘‰๐‘‰โˆ†๐‘˜๐‘˜

=200

0.012 = 1.7 ร— 104 ๐‘‰๐‘‰ ๐‘š๐‘šโˆ’1 [๐‘œ๐‘œ๐‘Ÿ๐‘Ÿ ๐‘๐‘ ๐ถ๐ถโˆ’1]

๐พ๐พ๐‘‰๐‘‰ = 200

๐‘‰๐‘‰ = 0

+ve plate

-ve plate

Page 23: Chapter 22 : Electric potentialastronomy.swin.edu.au/~cblake/Topic5_Electricity_Part2.pdfย ยท โ€ข The electric potential difference โˆ†๐‘‰๐‘‰between two points is the work needed

Electric potentialExercise: a potential difference of 200 V is applied across a pair of parallel plates 0.012 m apart. (b) an electron is placed between the plates, next to the negative plate. Calculate the force on the electron, the acceleration of the electron, and the time it takes to reach the other plate.

e = 1.6 x 10-19 C; me = 9.1 x 10-31 kg

๐พ๐พ+ve plate

-ve plateโˆ’๐‘’๐‘’

Force ๐น๐น = ๐‘ž๐‘ž๐พ๐พ = (โˆ’1.6 ร— 10โˆ’19) ร— (1.7 ร— 104) = โˆ’2.7 ร— 10โˆ’15 ๐‘๐‘

๐น๐น = ๐‘š๐‘š๐‘š๐‘š Acceleration ๐‘š๐‘š = ๐น๐น๐‘š๐‘š

=2.7 ร— 10โˆ’15

9.1 ร— 10โˆ’31= 3.0 ร— 1015 ๐‘š๐‘š ๐‘ ๐‘ โˆ’2

๐‘‘๐‘‘ = 12๐‘š๐‘š๐‘ก๐‘ก

2 Time ๐‘ก๐‘ก = 2๐‘‘๐‘‘๐‘“๐‘“

๐‘ก๐‘ก =2 ร— 0.0123.0 ร— 1015 = 2.8 ร— 10โˆ’9 ๐‘ ๐‘ 

Page 24: Chapter 22 : Electric potentialastronomy.swin.edu.au/~cblake/Topic5_Electricity_Part2.pdfย ยท โ€ข The electric potential difference โˆ†๐‘‰๐‘‰between two points is the work needed

Electric potentialExercise: a potential difference of 200 V is applied across a pair of parallel plates 0.012 m apart. (c) calculate the work done on the electron as it travels between the plates.

e = 1.6 x 10-19 C; me = 9.1 x 10-31 kg

๐พ๐พ+ve plate

-ve plateโˆ’๐‘’๐‘’

The potential difference is the work done on 1C charge

Work ๐‘Š๐‘Š = ๐‘ž๐‘ž๐‘‰๐‘‰ = 1.6 ร— 10โˆ’19 ร— 200 = 3.2 ร— 10โˆ’17 ๐ฝ๐ฝ

Page 25: Chapter 22 : Electric potentialastronomy.swin.edu.au/~cblake/Topic5_Electricity_Part2.pdfย ยท โ€ข The electric potential difference โˆ†๐‘‰๐‘‰between two points is the work needed

Chapter 22 summary

โ€ข Electric potential difference V is the work done when moving unit charge: ๐‘Š๐‘Š = ๐‘ž๐‘ž๐‘‰๐‘‰

โ€ข The electric potential energy is therefore also given by: ๐‘ˆ๐‘ˆ = ๐‘ž๐‘ž๐‘‰๐‘‰

โ€ข The electric field is the gradient of the potential: ๐พ๐พ = โˆ’โˆ†๐‘‰๐‘‰/โˆ†๐‘˜๐‘˜

โ€ข Charges feel a force from high electric potential to low potential