Electrochemically Enabled Sustainability: Devices, Materials and Mechanisms for Energy Conversion | Agenda Bookshop Skip to content
Please note that books with a 10-20 working days delivery time may not arrive before Christmas.
Please note that books with a 10-20 working days delivery time may not arrive before Christmas.
Age Group_Uncategorized
Age Group_Uncategorized
automatic-update
B01=Chi-Ying Vanessa Li
B01=Kwong-Yu Chan
Category1=Non-Fiction
Category=PHDY
Category=PNR
Category=PSA
Category=TH
Category=TQ
COP=United Kingdom
Delivery_Pre-order
Language_English
PA=Not yet available
Price_€50 to €100
PS=Forthcoming
softlaunch

Electrochemically Enabled Sustainability: Devices, Materials and Mechanisms for Energy Conversion

English

Electrochemically Enabled Sustainability: Devices, Materials and Mechanisms for Energy Conversion covers topics related to current research in electrochemical power sources, highlighting some of the latest concepts in electrochemical conversion for sustainability. The book examines the most recent and innovative technologies employed in battery and fuel cell technology. It introduces the fundamental concepts applied to these electrochemical power sources and provides in-depth discussion on the materials, design, and performance of these devices.

Written by internationally acclaimed experts, the chapters illustrate how key technologies for sustainability are enabled by electrochemical conversion. Topics include the reduction of carbon dioxide to resolve issues of carbon capture, energy storage, and generation of portable fuel; turning waste into energy using microbial fuel cells; the promise of vanadium redox flow batteries for massive energy storage; and improved performance of hybrid devices. The book addresses numerous aspects of lithium-type batteries for vehicle propulsion and energy storage, presenting a broad range of lithium batteries, and considering nano-structuring issues, layered-structure materials, and hierarchical structure.

This book provides timely coverage of critical issues in emerging and conventional technologies, presenting a wide range of electrochemical devices, related materials, and operation mechanisms. It stimulates an appreciation for the novelty of these electrochemical power sources and offers a projection of future integration of these devices in practice.

See more
Current price €54.14
Original price €56.99
Save 5%
Age Group_Uncategorizedautomatic-updateB01=Chi-Ying Vanessa LiB01=Kwong-Yu ChanCategory1=Non-FictionCategory=PHDYCategory=PNRCategory=PSACategory=THCategory=TQCOP=United KingdomDelivery_Pre-orderLanguage_EnglishPA=Not yet availablePrice_€50 to €100PS=Forthcomingsoftlaunch

Will deliver when available. Publication date 14 Oct 2024

Product Details
  • Weight: 960g
  • Dimensions: 156 x 234mm
  • Publication Date: 14 Oct 2024
  • Publisher: Taylor & Francis Ltd
  • Publication City/Country: United Kingdom
  • Language: English
  • ISBN13: 9781032919096

About

Kwong-Yu Chan Ph.D. joined the Department of Chemistry University of Hong Kong in 1988 and was promoted to full professor in 2002. Professor Chan has fundamental and applied research activities in molecular simulation fuel cells materials and electrochemical applications. He has published over 150 papers and is a top 1 percent cited scientist according to ISIs Essential Science Indicators. Professor Chan has five inventions on the topics of fuel cells ozone generation and batteries.Chi-Ying Vanessa Li Ph.D. joined the Department of Chemistry University of Hong Kong as a postdoctoral fellow in 2009. Dr. Lis current work focuses on electrochemistry and catalysis. Her research interests include anode materials on lithium batteries flow batteries and MOFs (metal-organic frameworks) for catalytic applications. She has published over 20 articles in various peer-reviewed journals.

Customer Reviews

Be the first to write a review
0%
(0)
0%
(0)
0%
(0)
0%
(0)
0%
(0)
We use cookies to ensure that we give you the best experience on our website. If you continue we'll assume that you are understand this. Learn more
Accept