Photovoltaic Materials and Technology Philip Griffin 3/02/10 University of Tennessee- Knoxville Department of Physics 14 MW, 70,000.

Slides:



Advertisements
Similar presentations
Solar cells Yogesh Wakchaure.
Advertisements

Solar Energy: The Ultimate Renewable Resource
Silicon Nanowire based Solar Cells
Thermal and PV System Lauren Masseria Jenny Bishop Bryan Picard.
Semiconductor Light Detectors ISAT 300 Foundations of Instrumentation and Measurement D. J. Lawrence Spring 1999.
Electronics.
Smart Grid Management CLIL4U LLP DK-KA2-KA2MP 1.
Photovoltaic Cells (Solar Panels)
Solar Cell Operation Key aim is to generate power by:
EE105 Fall 2007Lecture 1, Slide 1 Lecture 1 OUTLINE Basic Semiconductor Physics – Semiconductors – Intrinsic (undoped) silicon – Doping – Carrier concentrations.
Exam 2 Study Guide Emphasizes Homeworks 5 through 9 Exam covers assigned sections of Chps. 3,4 & 5. Exam will also assume some basic information from the.
SOLAR POWER. Potential for solar A land mass of about 100x100 miles in the Southwest U.S.-less than 0.5% of the U.S. mainland land mass, or about 25%
Jordan University of Science and Technology Department of applied Physics Solar cells [Operation principles and testing] Advisor: Dr. Adnan Shariah Ghassan.
P and n type semiconductors. Semiconductors Semiconductors are also referred to as metalloids. Metalloids occur at the division between metals and non-metals.
Cells, Modules, and Arrays
EE580 – Solar Cells Todd J. Kaiser Lecture 05 P-N Junction 1Montana State University: Solar Cells Lecture 5: P-N Junction.
PV Panels and P N Junctions How PV Panels work Or An Introduction to the World of Microelctronics.
Alternative Energy Light Waves Hydrogen. Photovoltaic Cells Made from semiconductor materials Produce useful current flow when illuminated with light.
Why Use Solar Cells? Low maintenance, long lasting sources of energy Provides cost-effective power supplies for people remote from the main electricity.
Photovoltaic - Solar Cell
Lecture 25: Semiconductors
Solar Cells 3 generations of solar cells:
1 Solar Cell Fundamentals SJSU Short Course D. W. Parent.
Principle of Photovoltaic Energy city – Sehir University, Istanbul – September 2013 Dr Mohamed Zayed.
Solar Cells Early development of solar tech. starts in the 1960s Conversion of sunlight to electricity – by photovoltaic effect In 1974 only.
Solar Energy - Photovoltaics UTI-111 Prof. Park Essex County College.
Solar Cells Rawa’a Fatayer.
1 Semiconductor Detectors  It may be that when this class is taught 10 years on, we may only study semiconductor detectors  In general, silicon provides.
Solar Cells Summer research Presented by: Peter Eseraigbo.
Interplay of polarization fields and Auger recombination in the efficiency droop of nitride light-emitting diodes APPLIED PHYSICS LETTERS 101, (2012)
Semiconductors. A semiconductor is a material whose resistance is between that of a conductor and an insulator. Eg Silicon.
PowerPoint ® Presentation Chapter 5 Cells, Modules, and Arrays Photovoltaic Cells Current–Voltage (I–V) Curves PV Device Response Modules and Arrays.
Energy diagram of a silicon solar cell Electrons and holes are pulled in opposite directions by the opposite charges of the ionized dopants at the p n-junction.
The Science of Solar Cells May 15, Announcements.
NEEP 541 Ionization in Semiconductors - II Fall 2002 Jake Blanchard.
Chapter Intrinsic: -- case for pure Si -- # electrons = # holes (n = p) Extrinsic: -- electrical behavior is determined by presence of impurities.
Solar panels A solar panel is made up of photovoltaic cells. A photovoltaic cell converts light energy into electricity. A conductor is something that.
Module 2/7: Solar PV Module Technologies. Module 1 : Solar Technology Basics Module 2: Solar Photo Voltaic Module Technologies Module 3: Designing Solar.
ELECTRONIC PROPERTIES OF MATTER - Semi-conductors and the p-n junction -
Band Theory of Solids In isolated atoms the electrons are arranged in energy levels.
Introduction to semiconductor technology. Outline –4 Excitation of semiconductors Optical absorption and excitation Luminescence Recombination Diffusion.
Conductors – many electrons free to move
Sustainable Energy Systems Engineering Peter Gevorkian Ch 1: Solar Power Technology Brevard Community College EST1830 Bruce Hesher.
Physics of Semiconductor Devices
Solar panels are pretty expensive, but they are good to save money on electricity. They take something from the sun and do something with it to make it.
Solar Energy - Photovoltaics UTI-111 Prof. Park Essex County College.
Introduction to Solar Photovoltaic (PV) Systems – Part 2
Optoelectronics.
Solar Cell Semiconductor Physics
Part V. Solar Cells Introduction Basic Operation Mechanism
Properties of metals Metals (75% of elements) Lustrous (reflect light)
Semiconductors. O A Semiconductor is a material whose resistivity is between that of a good conductor and a good insulator. O Examples of materials which.
ספרות עזר : פרופ ' אדיר בר - לב, מוליכים למחצה והתקנים אלקטרוניים, עמ ' P.A. Tipler, Modern Physics, pp Mc Kelvey, Solidstate and Semiconductor.
14-Photovoltaics Part 1 EE570 Energy Utilization & Conservation Professor Henry Louie.
NANO SCIENCE IN SOLAR ENERGY
Issued: May 5, 2010 Due: May 12, 2010 (at the start of class) Suggested reading: Kasap, Chapter 5, Sections Problems: Stanford University MatSci.
CSE251 CSE251 Lecture 2 and 5. Carrier Transport 2 The net flow of electrons and holes generate currents. The flow of ”holes” within a solid–state material.
Solar cell technology ‘ We are on the cusp of a new era of Energy Independence ‘
INTRODUCTION TO SEMICONDUCTORS
Multiple choise questions related to lecture PV2
SOLAR POWER.
SOLAR PANELS Photovoltaic cell Photovoltaic
CACTUS MOON EDUCATION, LLC
EECS143 Microfabrication Technology
Solar panels are pretty expensive, but they are good to save money on electricity. They take something from the sun and do something with it to make it.
SOLAR PANELS Photovoltaic cell Photovoltaic
Solar cells Yogesh Wakchaure.
Solar cells Yogesh Wakchaure.
First Brillouin zone of FCC lattice and the band diagram (Do you see any gaps?)
Presentation transcript:

Photovoltaic Materials and Technology Philip Griffin 3/02/10 University of Tennessee- Knoxville Department of Physics 14 MW, 70,000 panel PV installation near Las Vegas, NV

The photovoltaic effect was discovered in 1839 by Alexandre-Edmond Becquerel. In electrolytic cells made of two metal electrodes, small (measurable) amount of current flowed when the cell was illuminated. Effect only occurred for select materials. Becquerel was only 19 when he discovered the photovoltaic effect…

The first PV module was created at Bell Labs in Known as a “solar battery” Achieved an efficiency of 6% Individual cells were single crystals of doped silicon this type of solar cell was used to power communications satellites on long term space missions

In pure semiconductors, intrinsic carriers can be created by optical absorption. Photon with same energy as the band gap of the semiconductor  an electron will be excited from the valence to the conduction band Excess or lack of photon energy will excite phonons in material and create heat (wasted energy) The optimum material will have a bandgap that is close to the sun’s maximum intensity energy MaterialGap (eV)Gap (nm) Si CdTe GaAs

The modern solar cell owes its functionality to the p-n junction. n-type: free electrons leave donor atoms (+) ionized p-type: free holes leave donor atoms (-) ionized Near junction, free electrons/holes diffuse to balance ionized donor impurities On the n-side (p-side) of the junction, fixed positive (negative) charge accumulates An intrinsic electric field builds, opposing the recombination of electron hole pairs J. L. Stone, Phys. Today 46, 22 (1993)

Converting a p-n junction into a generator of electricity J. L. Stone, Phys. Today 46, 22 (1993)

Modern PV technology is based largely on bulk and thin film silicon. A. Goetzberger, C. Hebling, H. W. Schock, Mat. Sci. Eng. R 40, 1 (2003) M. Gratzel, Nature 414, 338 (2001)

Mono-crystalline silicon solar cells Manufacturing process is already well established by the microelectronics industry Large cylindrical bulk crystals grown by various techniques Bulk crystal is then sawed or cut into individual wafers On average, nearly half of the material is lost in cutting

Polycrystalline silicon solar cells Polycrystalline solar cells are cast in a mold or drawn into film-like ribbons This process creates multiple crystallites in one piece of material The boundaries between crystallites create an alternative pathway for carriers to recombine This reduces the efficiency when compared to monocrystalline silicon solar cells

U.S. PV energy production is minimal. Will its presence grow in the country’s energy profile? Industry trends seem to indicate a possibility of this!

Trends in PV research

Large scale PV energy production will become reality only when the associated cost are decreased. Average cost of fossil fuel power in US is $0.1/kWh Average cost of PV power is ≈ $0.3/kWh If costs for PV installation can be brought below $3/(peak)W, PV electricity prices will become competitive

Photovoltaic energy production is a safe, clean, and reliable way to create electricity. The main problem in the field today is to reduce the cost of cell production. Will novel technologies and materials accomplish this or will economies of scale accomplish this? A solar installation of land area ≈ 22,500 km 2 could theoretically provide for the power needs of the entire US (land area 9,826,675 km 2 ) US consumed 3.8 trillion kWh of energy in 2008