Produktbild: Microbial Electrochemical Technologies, 2 Volume Set
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Microbial Electrochemical Technologies, 2 Volume Set Fundamentals and Applications

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Beschreibung

Produktdetails

Einband

Gebundene Ausgabe

Erscheinungsdatum

13.12.2023

Abbildungen

138

Herausgeber

Makarand M. Ghangrekar + weitere

Verlag

Wiley-VCH

Seitenzahl

768

Maße (L/B/H)

4,9/17/24,4 cm

Gewicht

1750 g

Auflage

1. Auflage

Sprache

Englisch

ISBN

978-3-527-35073-5

Beschreibung

Portrait

Makarand Madhao Ghangrekar is a Professor and Institute Chair in the Department of Civil Engineering at the Indian Institute of Technology Kharagpur heading two academic units, the School of Environmental Science and Engineering and the PK Sinha Centre for Bioenergy and renewables.

 

Narcis Duteanu is an Associate Professor in the Department of Applied Chemistry and Inorganic Chemistry and Environmental Engineering at Timisoara Polytechnic University (Romania).

 

Rao Y. Surampalli is President and Chief Executive Officer of the Global Institute for Energy, Environment and Sustainability, having previously worked 30 years for the U.S. Environmental Protection Agency (USEPA).

 

Tian C. Zhang is Professor in the department of Civil and Environmental Engineering at the University of Nebraska-Lincoln, with academic degrees from Tsinghua University and from the University of Cincinnati.

Produktdetails

Einband

Gebundene Ausgabe

Erscheinungsdatum

13.12.2023

Abbildungen

138

Herausgeber

Verlag

Wiley-VCH

Seitenzahl

768

Maße (L/B/H)

4,9/17/24,4 cm

Gewicht

1750 g

Auflage

1. Auflage

Sprache

Englisch

ISBN

978-3-527-35073-5

Herstelleradresse

Wiley-VCH GmbH
Boschstrasse 12
69469 Weinheim
DE
product_safety@wiley.com

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  • Produktbild: Microbial Electrochemical Technologies, 2 Volume Set
  • VOLUME 1

    List of Contributors

    Preface

    Chapter 1: Fuel Cell and Bio-fuel Cell

    Chapter 2: Electrochemistry Analytical Techniques and Interpretation of the Results

    Chapter 3: Bio-electrochemical Systems: Configurations and Materials

    Chapter 4: Biotic Components of Different Types of Bio-electrochemical Systems

    Chapter 5: Role of Catalysts in Bioelectrochemical Systems

    Chapter 6: Material Characterization for Synthesized Catalysts

    Chapter 7: Material Characterization for Synthesized Catalysts Inductively coupled plasma optical spectroscopy and atomic absorption Spectroscopy

    Chapter 8: Material Characterization for Synthesized CatalystsNitrogen sorption measurements and Thermal Analysis Techniques

    Chapter 9: Material Characterization for Synthesized Catalysts Material Characterization for Synthesized Catalysts: Morphology, Microstructure, and Crystallographic Phase

    Chapter 10: Material Characterization for Synthesized Catalysts X-Ray Photoelectron Spectroscopy and X-Ray Fluorescence Spectroscopy

    Chapter 11: Material Characterization for Synthesized Catalysts Atomic Force Microscopy and Raman Spectroscopy

    Chapter 12: Different Types of Bioelectrochemical Systems

    Chapter 13: Microbial Fuel Cell

    Chapter 14: Microbial Electrolysis Cell

    Chapter 15: Microbial Electrosynthesis: A Biobased Pathway for the Production of Value-added Chemicals Through Carbon Sequestration

    VOLUME 2

    Chapter 16: Microbial Desalination Cell

    Chapter 17: Sediment MFCs, Plant MFCs and Constructed Wetland Integrated MFCs

    Chapter 18: Microbial Remediation Cell

    Chapter 19: Enzymatic Fuel Cell and Biosensors

    Chapter 20: Photosynthetic Microbial Fuel Cell, Bio-photovoltaic Cell, and Microbial Carbon-Capture Cell

    Chapter 21: Modelling of Bio-Electrochemical Systems: Bio-Physiochemical Processes and Mathematical Methods

    Chapter 22: Pilot-Scale Case Performance of Bio-electrochemical Systems

    Chapter 23: Statistical Methods for Modelling and Performance Analysis of Bio-electrochemical Systems

    Chapter 24: Performance Comparison and Integration of Bio-Electrochemical Systems with Other Wastewater Treatment Technologies

    Chapter 25: Circular Bio-economy Implementation and Life Cycle Assessment of BES

    Chapter 26: Way Forward and Conclusion