Description

Book Synopsis
World demand for energy is rapidly increasing and finding sufficient supplies of clean energy for the future is one of the major scientific challenges of today. This book presents the latest knowledge and chemical prospects in developing hydrogen as a solar fuel. Using oxygenic photosynthesis and hydrogenase enzymes for bio-inspiration, it explores strategies for developing photocatalysts to produce a molecular solar fuel. The book begins with perspective of solar energy utilization and the role that synthetic photocatalysts can play in producing solar fuels. It then summarizes current knowledge with respect to light capture, photochemical conversion, and energy storage in chemical bonds. Following chapters on the natural systems, the book then summarizes the latest developments in synthetic chemistry of photo- and reductive catalysts. Finally, important future research goals for the practical utilization of solar energy are discussed. The book is written by experts from various fields working on the biological and synthetic chemical side of molecular solar fuels to facilitate advancement in this area of research.

Table of Contents
Part I: Perspectives on Molecular Solar Fuels; Chapter 1: Solar Energy Utilization; Chapter 2: Engineering Low-Barrier Photocatalysts; Part II: The Capture of Solar Energy; Chapter 3: Bacteriorhodopsins - The Simplest Phototransducers; Chapter 4: Photosynthetic Light-Harvesting Complexes - The Most Efficient Light Gatherers; Chapter 5: Synthetic Light-Harvesting Pigment Arrays; Part III: Photochemical Conversion of Solar Energy; Chapter 6: Natural Photosynthetic Reaction Centers - Charge Separation with High Quantum Yields; Chapter 7: Wired Reaction Centers; Chapter 8: Bioelectrodes; Chapter 9: Charge Stabilization in Polymer Films; Part IV: Storage of Solar Energy; Chapter 10: The Photosynthetic Water-Splitting Complex; Chapter 11: Biomimics of the Water-Splitting Active Site; Chapter 12: Biological H2 Generation; Chapter 13: Biomimics of the hydrogenase active site; Part V: Future Goals; Chapter 14: Photocatalysts that Split Water and Produce H2 and O2 Within the Same Molecular Assembly; Chapter 15: Light-driven water oxidation and CO2 reduction; Chapter 16: Synthetic Biology

Molecular Solar Fuels

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    A Hardback by Thomas J Wydrzynski, Warwick Hillier

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      Book details

      Published 19 December 2011
      ISBN-13 9781849730341
      978-1849730341
      ISBN-10 1849730342

      Description

      Book Synopsis
      World demand for energy is rapidly increasing and finding sufficient supplies of clean energy for the future is one of the major scientific challenges of today. This book presents the latest knowledge and chemical prospects in developing hydrogen as a solar fuel. Using oxygenic photosynthesis and hydrogenase enzymes for bio-inspiration, it explores strategies for developing photocatalysts to produce a molecular solar fuel. The book begins with perspective of solar energy utilization and the role that synthetic photocatalysts can play in producing solar fuels. It then summarizes current knowledge with respect to light capture, photochemical conversion, and energy storage in chemical bonds. Following chapters on the natural systems, the book then summarizes the latest developments in synthetic chemistry of photo- and reductive catalysts. Finally, important future research goals for the practical utilization of solar energy are discussed. The book is written by experts from various fields working on the biological and synthetic chemical side of molecular solar fuels to facilitate advancement in this area of research.

      Table of Contents
      Part I: Perspectives on Molecular Solar Fuels; Chapter 1: Solar Energy Utilization; Chapter 2: Engineering Low-Barrier Photocatalysts; Part II: The Capture of Solar Energy; Chapter 3: Bacteriorhodopsins - The Simplest Phototransducers; Chapter 4: Photosynthetic Light-Harvesting Complexes - The Most Efficient Light Gatherers; Chapter 5: Synthetic Light-Harvesting Pigment Arrays; Part III: Photochemical Conversion of Solar Energy; Chapter 6: Natural Photosynthetic Reaction Centers - Charge Separation with High Quantum Yields; Chapter 7: Wired Reaction Centers; Chapter 8: Bioelectrodes; Chapter 9: Charge Stabilization in Polymer Films; Part IV: Storage of Solar Energy; Chapter 10: The Photosynthetic Water-Splitting Complex; Chapter 11: Biomimics of the Water-Splitting Active Site; Chapter 12: Biological H2 Generation; Chapter 13: Biomimics of the hydrogenase active site; Part V: Future Goals; Chapter 14: Photocatalysts that Split Water and Produce H2 and O2 Within the Same Molecular Assembly; Chapter 15: Light-driven water oxidation and CO2 reduction; Chapter 16: Synthetic Biology

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