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Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed
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Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

Dec 26, 2015

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Page 1: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

Principle of Photovoltaic

Energy city – Sehir University, Istanbul – September 2013Dr Mohamed Zayed

Page 2: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

Some references

• http://www.pveducation.org/• (a lot of info on photovoltaics and animations)

• MIT OpenCourseWare http://ocw.mit.edu (2.626 Fundamentals of Photovoltaics)

• http://www2.warwick.ac.uk/fac/sci/eng/staff/pad/teaching/lecture3.pdf(lecture on environment and photovoltaics)

• http://www.youtube.com/watch?v=z0mzusIoAk8(video introduction to photovoltaic)

• http://www.youtube.com/watch?v=bzcTFUcXwIY ( Martin Lorton video blog. Very instructive for house arrays application)

Page 3: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

Basic ideas

• Introduction• Properties of sun light• Solar cell material (Semiconductor)• Band gap (valence and conduction electrons) • p-n junction• (I-V curve)

Page 4: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

implementation

• Efficiency of different type of solar cells• PV arrays for houses (~ kW range)• Large production arrays (~ MW)

Page 5: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

Introduction

• Why would we need solar cells?

Page 6: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

Introduction

• Why would we need solar cells?• Local production of power (at small scale)• Need for new energy sources in the future• (end of oil, gas, nuclear)• Need for a ‘clean’ energy source

Page 7: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

Energy challenge in the future• Increase of Energy needs• (Increase of human population and industrialization)• Decrease of fossil energy ?• Abandon nuclear ?• Increase renewable energies

Page 8: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

UN report 2010

Page 9: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.
Page 10: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

Properties of sun light

• Inner part of sun (T ~ 20,000,000 K)• Outer part of sun (T ~ 6000 K)• light coming to earth like black body radiation

at ~6000K. • Missing H and He lines due to absorption in

the sun• Missing absorption from earth’s atmosphere

(O2, H2O, CO2, O3)

Page 12: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.
Page 13: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.
Page 14: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.
Page 15: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

Properties of sun light

• Total power from the sun light hitting the earth: 174,000 TW

• Total human power consumption on earth: ~ 50 TW

(concentration of energy on earth surface:sunlight ~ 200W/m2, wind ~ 2W/m2, geothermal ~ 0.5W/m2)

Page 16: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

Classification of solar cells

+ organic materialshttp://sovoxglobal.com/cell_classification.html

Page 17: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

Semiconductors (Solar cell material)

• Main technology: Si (~90% of solar cells), mono-crystalline and

poly-crystalline • Thin films: amorphous Si, CaTe, Cu In Ga Se,

GaAs• New technologies : Dye sensitized polymers,

organic materials.• Multi junction cells.

Page 18: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

Valence and conduction band

• Valence band: low energy level for electrons (not mobile: insulator) (e- in the crystal bonds)

• Conduction band: high energy level for electrons (mobile: can conduct electricity)

• Semi conductors have (at T=0K) electrons filling the valance band.

• Energy (from temperature, light, etc) can promote valance electrons to the conduction band

Page 20: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

How to use this property?

• Light can excite electrons in the valence band and bring them in the conduction band.

• Valence band is left with ‘hole’ (missing electron)

• But they will recombine quickly.• Need to separated them.

Page 21: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

How to use this property?

• Light can excite electrons in the valence band and bring them in the conduction band.

• Valence band is left with ‘hole’ (missing electron)

• But they will recombine quickly.• Need to separated them. -> Create an

electrical field• -> put a battery -> costs energy …

Page 22: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

p-n junction

• A better way is to use a p-n junction• This will create an electric field inside the

semiconductor. So we can separate electrons and holes before they recombine.

• Use the electrons to create a useful current.

Page 23: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

p-n junction

• Si has 4 valence electron (14 e- in total)

• This 4 electrons are used in the Si-Si-Si-Si crystal bonds.

• B: 3 valence electrons (5 e- total)

• P: 5 valence electrons (15 e- total)

Page 24: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

p- region• p: dope Si with B (Boron), incomplete bond.

Captures e- from neighboring valance bonds, leaving a positive hole. The hole can move around in the crystal. The B is negatively charged

Page 25: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

n- region • n: dope Si with P (Phophorus), at very low T

the extra electron stays close to the P nucleus. at room T it will move around the crystal. Leaving a positively charged P atom.

Page 26: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

p – n junction

Page 27: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

p – n junction

Page 28: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

p – n junction

Page 29: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

p – n junction

Neutral NeutralCharged Electric field

Page 30: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

p-n junction

Page 31: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

Photogeneration at p-n junction

Page 32: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

Photogeneration at p-n junction

Page 33: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

Photogeneration at p-n junction

E

Page 34: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

Photogeneration at p-n junction

E

Page 35: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

Implications of bandgap

• If photon has E< bandgap : No absorption (photon is lost)

• If photon has E> bandgap: Extra energy is lost in heat.

• Given Sunlight spectrum optimal Bandgap is ~1.4 eV

• Si has 1.1 eV (crystal)

Page 36: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

Solar cell

• Base support (metal)• p- type Si (Boron) dope material• Thin layer of n-type (Phosphorus) doped Si material• Contacts to collect current• Anti reflecting coating

Page 37: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

Picture of solar cellMono crystal Si poly crystal Si

CdTe

CIGSFlexible

Dye sensitizedTiO2 (semiconductor)

[Ru(4,40-dicarboxy-2,20-bipyridine)2(NCS)2] (N3), Dye photogenerator

Page 38: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

Multiple junction solar cellsBest efficiency~ 40%High costUsed in space industry

Page 39: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

efficiency

Page 40: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

PV arrays

• House arrays in the kW range• Production arrays in the MW range

Page 41: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

House arrays in the kW range

Page 42: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

PV module

• Mounting angle/ orientation• Electrical circuit DC- AC transformation• Costs

typically 36 connected in series

Page 43: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

PV moduleMost PV bulk silicon PV modules consist of• transparent top surface,• encapsulant• rear layer • frame around the outer edge.• In most modules, the top surface is glass, the encapsulant is EVA (ethyl

vinyl acetate) and the rear layer is Tedlar

Page 44: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

PV module• A bulk silicon PV module consists of multiple individual solar cells

connected mostly in series

• The voltage of a PV module is usually compatible with a 12V battery.

• An individual silicon solar cell has a voltage of just under 0.6V under 25 °C and AM1.5 illumination.

• 36 solar cells in series give max. 21V (open circuit), operating 18V at max power. Excess voltage is to take care of non optimal conditions.

• Current can be 3.5- 4 A per module, depending on the size of the cells.

Page 45: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

Space needs

10ft² = 0.92m²

Page 46: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

House array

• 2kW house array• (max possible 2kW x 24h =

48kWh/day)• But sun is not always there

• sunny day (spring South Africa)

• 12kWh/day

• cloudy day• 6 kWh/day

Some ‘typical’ house needs

Fridge 30/150W 2.7kwh(idle / cooling)

TV 80W 500Wh (6h)light 250W 1.8KWh (7h)Heater 3000W 12kWh (7h) pool pump 750W 5.3kWh (7h)Microwave 1200W 600Wh (0.5h)

Total 23kWh (per day)

summer (~20kWh/day)winter (~30kWh/day)

Page 47: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

Costs

Page 48: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

Production arrays

• Examples : Germany• Examples: Gulf region

Page 49: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

Germanyhttp://www.solarbusiness.de/daten-a-fakten/zahlen

Page 50: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

Waldpolenz Solar Park, Germany(thin film technology- CdTe)

Year 200840 MW40,000MWh/year600’000 modules130 M€ investment

Page 51: Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.

Gulf region

• Saudi: plans 41,000MW (16,000 PV) over next 20 years for target 2$/W

• UAE: Shams 1 100MW solar concentration, target 7% of renewable for Abu Dhabi by 2020

• Qatar: 200MW project by 2020+ polysilicon plant at Ras Laffan for PV pannels