Light Trapping With Plasmonic Back Contacts In Thin Film Silicon Solar Cells
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Light Trapping with Plasmonic Back Contacts in Thin Film Silicon Solar Cells
Author | : Ulrich Wilhelm Paetzold |
Publsiher | : Forschungszentrum Jülich |
Total Pages | : 195 |
Release | : 2013 |
Genre | : Electronic Book |
ISBN | : 9783893368952 |
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Solar Cells and Light Management
Author | : Francesco Enrichi,Giancarlo Righini |
Publsiher | : Elsevier |
Total Pages | : 556 |
Release | : 2019-10-29 |
Genre | : Technology & Engineering |
ISBN | : 9780081028735 |
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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
Design and Development of Nanostructured Thin Films
Author | : Antonella Macagnano,Fabrizio De Cesare,Sara Cavaliere |
Publsiher | : MDPI |
Total Pages | : 386 |
Release | : 2020-05-13 |
Genre | : Technology & Engineering |
ISBN | : 9783039287383 |
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Due to their unique size-dependent physicochemical properties, nanostructured thin films are used in a wide range of applications from smart coating and drug delivery to electrocatalysis and highly-sensitive sensors. Depending on the targeted application and the deposition technique, these materials have been designed and developed by tuning their atomic-molecular 2D- and/or 3D-aggregation, thickness, crystallinity, and porosity, having effects on their optical, mechanical, catalytic, and conductive properties. Several open questions remain about the impact of nanomaterial production and use on environment and health. Many efforts are currently being made not only to prevent nanotechnologies and nanomaterials from contributing to environmental pollution but also to design nanomaterials to support, control, and protect the environment. This Special Issue aims to cover the recent advances in designing nanostructured films focusing on environmental issues related to their fabrication processes (e.g., low power and low cost technologies, the use of environmentally friendly solvents), their precursors (e.g., waste-recycled, bio-based, biodegradable, and natural materials), their applications (e.g., controlled release of chemicals, mimicking of natural processes, and clean energy conversion and storage), and their use in monitoring environment pollution (e.g., sensors optically- or electrically-sensitive to pollutants)
Photon Management in Solar Cells
Author | : Ralf B. Wehrspohn,Uwe Rau,Andreas Gombert |
Publsiher | : John Wiley & Sons |
Total Pages | : 376 |
Release | : 2016-03-09 |
Genre | : Science |
ISBN | : 9783527665693 |
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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.
Diffractive Optics for Thin Film Silicon Solar Cells
Author | : Christian Stefano Schuster |
Publsiher | : Springer |
Total Pages | : 114 |
Release | : 2016-09-26 |
Genre | : Science |
ISBN | : 9783319442785 |
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This thesis introduces a figure of merit for light trapping with photonic nanostructures and shows how different light trapping methods compare, irrespective of material, absorber thickness or type of nanostructure. It provides an overview of the essential aspects of light trapping, offering a solid basis for future designs. Light trapping with photonic nanostructures is a powerful method of increasing the absorption in thin film solar cells. Many light trapping methods have been studied, but to date there has been no comprehensive figure of merit to compare these different methods quantitatively. This comparison allows us to establish important design rules for highly performing structures; one such rule is the structuring of the absorber layer from both sides, for which the authors introduce a novel and simple layer-transfer technique. A closely related issue is the question of plasmonic vs. dielectric nanostructures; the authors present an experimental demonstration, aided by a detailed theoretical assessment, highlighting the importance of considering the multipass nature of light trapping in a thin film, which is an essential effect that has been neglected in previous work and which allows us to quantify the parasitic losses.
Light Trapping by Light Treatment
Author | : Tobias Dyck |
Publsiher | : Unknown |
Total Pages | : 135 |
Release | : 2017 |
Genre | : Electronic Book |
ISBN | : 3958062083 |
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Silicon Based Thin Film Solar Cells
Author | : Roberto Murri |
Publsiher | : Bentham Science Publishers |
Total Pages | : 524 |
Release | : 2013-03-20 |
Genre | : Technology & Engineering |
ISBN | : 9781608054565 |
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Silicon Based Thin Film Solar Cells explains concepts related to technologies for silicon (Si) based photovoltaic applications. Topics in this book focus on ‘new concept’ solar cells. These kinds of cells can make photovoltaic power production an economically viable option in comparison to the bulk crystalline semiconductor technology industry. A transition from bulk crystalline Si solar cells toward thin-film technologies reduces usage of active material and introduces new concepts based on nanotechnologies. Despite its importance, the scientific development and understanding of new solar cells is not very advanced, and educational resources for specialized engineers and scientists are required. This textbook presents the fundamental scientific aspects of Si thin films growth technology, together with a clear understanding of the properties of the material and how this is employed in new generation photovoltaic solar cells. The textbook is a valuable resource for graduate students working on their theses, young researchers and all people approaching problems and fundamental aspects of advanced photovoltaic conversion.
Introduction to Light Trapping in Solar Cell and Photo detector Devices
Author | : Stephen Fonash |
Publsiher | : Elsevier |
Total Pages | : 76 |
Release | : 2014-09-15 |
Genre | : Technology & Engineering |
ISBN | : 9780124166370 |
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New Approaches to Light Trapping in Solar Cell Devices discusses in detail the use of photonic and plasmonic effects for light trapping in solar cells. It compares and contrasts texturing, the current method of light-trapping design in solar cells, with emerging approaches employing photonic and plasmonic phenomena. These new light trapping methods reduce the amount of absorber required in a solar cell, promising significant cost reduction and efficiency. This book highlights potential advantages of photonics and plasmonics and describes design optimization using computer modeling of these approaches. Its discussion of ultimate efficiency possibilities in solar cells is grounded in a review of the Shockley-Queisser analysis; this includes an in-depth examination of recent analyses building on that seminal work.