Application of Localized Surface Plasmons for the Enhancement of This-film Amorphous Silicon Solar Cells

Application of Localized Surface Plasmons for the Enhancement of This-film Amorphous Silicon Solar Cells
Author: Chanse D.. Hungerford
Publisher:
Total Pages: 160
Release: 2017
Genre:
ISBN:

"Photovoltaics (PV) is a rapidly growing electricity source and new PV technologies are continually being developed. Increasing the efficiency of PV will continue to drive down the costs of solar installations. One area of research that is necessary for increasing PV performance is light management. This is especially true for thin-film devices that are unable to maximize absorption of the solar spectrum in a single pass. Methods for light trapping include texturing, high index nanostructures, nanophotonic structures, and plasmonics. This research focus on the use of plasmonic structures, in this case metallic nanoparticles, to increase the power conversion efficiency of solar cells. Three different designs are investigated. First was an a-Si:H solar cell, approximately 300nm thick, with a rear reflector consisting of metallic nanoparticles and a mirror. This structure is referred to as a plasmonic back reflector. Simulations indicate that a maximum absorption increase of 7.2% in the 500nm to 800nm wavelength range is possible versus a flat reference. Experiments did not show enhancement, likely due to absorption in the transparent conducting oxide and the parasitic absorption in the small metallic nanoparticles. The second design was an a-Si:H solar cell with embedded metal nanoparticles. Experimental devices were successfully fabricated by breaking the i-layer deposition into two steps and introducing colloidal nanoparticles between the two depositions. These devices performed worse than the controls, but the results provide proof that fabrication of such a device is possible and may be improved in the future. Suggestions for improvements are discussed. The final device investigated was an ultra-thin, undoped solar cell. The device used an absorber layer

Plasmonics: Theory and Applications

Plasmonics: Theory and Applications
Author: Tigran V. Shahbazyan
Publisher: Springer Science & Business Media
Total Pages: 581
Release: 2014-01-09
Genre: Science
ISBN: 9400778058

This contributed volume summarizes recent theoretical developments in plasmonics and its applications in physics, chemistry, materials science, engineering, and medicine. It focuses on recent advances in several major areas of plasmonics including plasmon-enhanced spectroscopies, light scattering, many-body effects, nonlinear optics, and ultrafast dynamics. The theoretical and computational methods used in these investigations include electromagnetic calculations, density functional theory calculations, and nonequilibrium electron dynamics calculations. The book presents a comprehensive overview of these methods as well as their applications to various current problems of interest.

Solar Cells and Light Management

Solar Cells and Light Management
Author: Francesco Enrichi
Publisher: Elsevier
Total Pages: 558
Release: 2019-10-29
Genre: Technology & Engineering
ISBN: 0081028733

Solar Cells and Light Management: Materials, Strategies and Sustainability provides an extensive review on the latest advances in PV materials, along with light management strategies for better exploiting the solar spectrum. Following a brief review of the current status of solar cells, the book discusses different concepts, principles and technologies for solar devices, starting with standard silicon cells and then covering organic-hybrid, DSSC, perovskite, quantum dots and nanostructured oxide solar cells. Other sections focus on light manipulation and spectral modification, materials for spectral conversion, and environmental and sustainably considerations. An emergy analysis, which is an extension of the Life Cycle Assessment methodology, is applied to the study of solar PV systems, thus allowing for effective integrated indicators. - Provides a comprehensive picture of light management strategies - Features the most recent advances in the field, including novel materials and advanced solar cell technologies - Presents a resource that is applicable to both new or experienced researchers in the field - Contains a section on environmental and sustainability issues

Plasmonics for Improved Thin-film Photovoltaic Cells and Enhanced Light Extraction from Organic Light-emitting Diodes

Plasmonics for Improved Thin-film Photovoltaic Cells and Enhanced Light Extraction from Organic Light-emitting Diodes
Author: Chi-Sheng Chang
Publisher:
Total Pages: 143
Release: 2016
Genre:
ISBN:

"Surface plasmon resonance of metal nanoparticles has attracted much attention by creating unique interactions between light and nanoparticles. This special phenomenon can be utilized in optoelectronics applications such as photovoltaics and light emitting diodes, to improve their efficiency. This thesis focuses on the influence of gold and silver nanoparticles on the photoconductivity of amorphous silicon, the efficacy of organic solar cells, and light extraction from organic light-emitting diodes. Enhancement of photovoltaics by integrating cells with gold nanorods is of potential interest to reduce the usage of semiconductor material. Gold nanorods with the ability to control surface plasmon resonance were synthesized and their thermal stability was increased by silica-coating to enable them to withstand standard semiconductor processing. Silica-coated gold nanorods maintain rod-like shape to over 600 °C and they can increase the photoconductivity of thin film amorphous silicon by much more than a factor of 2 across the entire visible spectrum. The enhancement mechanism studies show that absorption enhancement due to strong near-field light concentration is the primary effect rather than pathlength increases due to light scattering. Bulk heterojunction polymeric solar cells have an extremely thin active layer with thickness of 100 ~ 200 nm and can take advantage of plasmonic effects on absorption to improve their efficiencies. Gold nanorods were introduced into model solar cells consisting of poly(3-hexylthiophene) (P3HT) and [6,6]-phenyl C61 butyric acid methyl ester (PCBM). No obvious improvements in short circuit currents were observed when particles were embedded in the poly(3,4-ethylenedioxythiophene)-poly(styrenesulfonate) (PEDOT:PSS) anode layer. When blending silica-coated gold nanorods into the active layer, no significant improvements were obtained but the silica shell prevented metal nanorods from quenching excitons and trapping charge carriers so that future improvements using this materials design may yet be possible. The external quantum efficiency of organic light-emitting diodes (OLEDs) is limited to ~ 20 % because of the refractive index mismatch between multiple layers in the devices. Large silver nanoparticles were synthesized and exhibited strong light scattering through the visible spectrum. These were incorporated into a layer between the indium tin oxide (ITO) anode and the glass substrate to improve light extraction from OLEDs. SiO2, TiO2 and mixed sol-gel films were developed to planarize silver nanoparticles. In spite of our hypothesis that strong scattering by large silver particles could be used to improve light extraction from OLEDs, our best results were to observe ~ 15 % decreases in light output even when the refractive index of the planarization layer was well matched to that of the ITO anode"--Pages v-vi.

Photon Management in Solar Cells

Photon Management in Solar Cells
Author: Ralf B. Wehrspohn
Publisher: John Wiley & Sons
Total Pages: 376
Release: 2016-03-09
Genre: Science
ISBN: 3527665692

Written by renowned experts in the field of photon management in solar cells, this one-stop reference gives an introduction to the physics of light management in solar cells, and discusses the different concepts and methods of applying photon management. The authors cover the physics, principles, concepts, technologies, and methods used, explaining how to increase the efficiency of solar cells by splitting or modifying the solar spectrum before they absorb the sunlight. In so doing, they present novel concepts and materials allowing for the cheaper, more flexible manufacture of solar cells and systems. For educational purposes, the authors have split the reasons for photon management into spatial and spectral light management. Bridging the gap between the photonics and the photovoltaics communities, this is an invaluable reference for materials scientists, physicists in industry, experimental physicists, lecturers in physics, Ph.D. students in physics and material sciences, engineers in power technology, applied and surface physicists.

Intelligent Computing Applications for Sustainable Real-World Systems

Intelligent Computing Applications for Sustainable Real-World Systems
Author: Manjaree Pandit
Publisher: Springer Nature
Total Pages: 584
Release: 2020-04-03
Genre: Technology & Engineering
ISBN: 3030447588

This book delves into various solution paradigms such as artificial neural network, support vector machine, wavelet transforms, evolutionary computing, swarm intelligence. During the last decade, novel solution technologies based on human and species intelligence have gained immense popularity due to their flexible and unconventional approach. New analytical tools are also being developed to handle big data processing and smart decision making. The idea behind compiling this work is to familiarize researchers, academicians, industry persons and students with various applications of intelligent techniques for producing sustainable, cost-effective and robust solutions of frequently encountered complex, real-world problems in engineering and science disciplines. The practical problems in smart grids, communication, waste management, elimination of harmful elements from nature, etc., are identified, and smart and optimal solutions are proposed.

Nanostructured Solar Cells

Nanostructured Solar Cells
Author: Narottam Das
Publisher: BoD – Books on Demand
Total Pages: 316
Release: 2017-02-22
Genre: Technology & Engineering
ISBN: 953512935X

Nanostructured solar cells are very important in renewable energy sector as well as in environmental aspects, because it is environment friendly. The nano-grating structures (such as triangular or conical shaped) have a gradual change in refractive index which acts as a multilayer antireflective coating that is leading to reduced light reflection losses over broadband ranges of wavelength and angle of incidence. There are different types of losses in solar cells that always reduce the conversion efficiency, but the light reflection loss is the most important factor that decreases the conversion efficiency of solar cells significantly. The antireflective coating is an optical coating which is applied to the surface of lenses or any optical devices to reduce the light reflection losses. This coating assists for the light trapping capturing capacity or improves the efficiency of optical devices, such as lenses or solar cells. Hence, the multilayer antireflective coatings can reduce the light reflection losses and increases the conversion efficiency of nanostructured solar cells.

Nanostructured Solar Cells

Nanostructured Solar Cells
Author: Guanying Chen
Publisher: MDPI
Total Pages: 187
Release: 2018-07-04
Genre: Science
ISBN: 303842532X

This book is a printed edition of the Special Issue "Nanostructured Solar Cells" that was published in Nanomaterials

Advanced Silicon Materials for Photovoltaic Applications

Advanced Silicon Materials for Photovoltaic Applications
Author: Sergio Pizzini
Publisher: John Wiley & Sons
Total Pages: 412
Release: 2012-06-07
Genre: Technology & Engineering
ISBN: 1118312163

Today, the silicon feedstock for photovoltaic cells comes from processes which were originally developed for the microelectronic industry. It covers almost 90% of the photovoltaic market, with mass production volume at least one order of magnitude larger than those devoted to microelectronics. However, it is hard to imagine that this kind of feedstock (extremely pure but heavily penalized by its high energy cost) could remain the only source of silicon for a photovoltaic market which is in continuous expansion, and which has a cumulative growth rate in excess of 30% in the last few years. Even though reports suggest that the silicon share will slowly decrease in the next twenty years, finding a way to manufacture a specific solar grade feedstock in large quantities, at a low cost while maintaining the quality needed, still remains a crucial issue. Thin film and quantum confinement-based silicon cells might be a complementary solution. Advanced Silicon Materials for Photovoltaic Applications has been designed to describe the full potentialities of silicon as a multipurpose material and covers: Physical, chemical and structural properties of silicon Production routes including the promise of low cost feedstock for PV applications Defect engineering and the role of impurities and defects Characterization techniques, and advanced analytical techniques for metallic and non-metallic impurities Thin film silicon and thin film solar cells Innovative quantum effects, and 3rd generation solar cells With contributions from internationally recognized authorities, this book gives a comprehensive analysis of the state-of-the-art of process technologies and material properties, essential for anyone interested in the application and development of photovoltaics.

High-Efficiency Solar Cells

High-Efficiency Solar Cells
Author: Xiaodong Wang
Publisher: Springer Science & Business Media
Total Pages: 664
Release: 2013-11-01
Genre: Technology & Engineering
ISBN: 3319019880

As part of the effort to increase the contribution of solar cells (photovoltaics) to our energy mix, this book addresses three main areas: making existing technology cheaper, promoting advanced technologies based on new architectural designs, and developing new materials to serve as light absorbers. Leading scientists throughout the world create a fundamental platform for knowledge sharing that combines the physics, materials, and device architectures of high-efficiency solar cells. While providing a comprehensive introduction to the field, the book highlights directions for further research, and is intended to stimulate readers’ interest in the development of novel materials and technologies for solar energy applications.