Scanning Probe Microscopy For Energy Research: Materials, Devices, And Applications
eBook - ePub

Scanning Probe Microscopy For Energy Research: Materials, Devices, And Applications

  1. 640 pages
  2. English
  3. ePUB (mobile friendly)
  4. Available on iOS & Android
eBook - ePub

Scanning Probe Microscopy For Energy Research: Materials, Devices, And Applications

About this book

Efficiency and life time of solar cells, energy and power density of the batteries, and costs of the fuel cells alike cannot be improved unless the complex electronic, optoelectronic, and ionic mechanisms underpinning operation of these materials and devices are understood on the nanometer level of individual defects. Only by probing these phenomena locally can we hope to link materials structure and functionality, thus opening pathway for predictive modeling and synthesis. While structures of these materials are now accessible on length scales from macroscopic to atomic, their functionality has remained Terra Incognitae. In this volume, we provide a summary of recent advances in scanning probe microscopy studies of local functionality of energy materials and devices ranging from photovoltaics to batteries, fuel cells, and energy harvesting systems. Recently emergent SPM modes and combined SPM-electron microscopy approaches are also discussed. Contributions by internationally renowned leaders in the field describe the frontiers in this important field.

Contents:

  • Introduction:
    • Local Probes in the Next Decade of Energy Research: Bridging Macroscopic and Atomic Worlds (D A Bonnell and S V Kalinin)
  • Scanning Probes for Energy Harvesting Systems: Photovoltaics and Solar Cells:
    • Electrical Scanning Probe Microscopy on Solar Cell Materials (R Giridharagopal, G E Rayermann and D S Ginger)
    • Organic Solar Cell Materials and Devices Characterized by Conductive and Photoconductive Atomic Force Microscopy (X-D Dang, M Guide and T-Q Nguyen)
    • Kelvin Probe Force Microscopy for Solar Cell Applications (T Glatzel)
    • Reversible Rectification in Sub-Monolayer Molecular P-N Junctions: Towards Nanoscale Photovoltaic Studies (J A Smerdon, N C Giebink and J R Guest)
    • Study of Photoinduced Charges with Atomic Force Microscopy (M Dokukin, N Guz and I Sokolov)
    • Imaging of Nanoscale Photogenerated Charge Transport in Organic Photovoltaic Materials (B Hamadani, P M Haney and N B Zhitenev)
    • Photoassisted Kelvin Probe Force Microscopy for Characterization of Solar Cell Materials (T Takahashi)
  • Scanning Probes for Fuel Cells and Local Electrochemistry:
    • Electrochemical Strain Microscopy of Oxygen-Ion Conductors: Fuel Cells and Oxide Electronics (A Kumar, S Jesse, S V Kalinin, F Ciucci and A Morozovska)
    • Ion Dynamics in Nanoscopic Subvolumes of Solid Electrolytes Analysed by Electrostatic Force Spectroscopy (A Schirmeisen and B Roling)
    • Nanoscale Electrochemistry in Energy Related Systems Using Atomic Force Microscopy (W Lee, M H Lee, R P O'Hayre and F B Prinz)
    • Scanning Probe Microscopy of Fuel Cell Materials Under Realistic Operating Conditions (S S Nonnenmann and D A Bonnell)
  • Scanning Probe Microscopy of Energy Storage Materials and Devices:
    • In situ SPM Analysis of Interfacial Phenomena in Lithium-Ion Batteries (M Inaba, S-K Jeong and Z Ogumi)
    • Conducting-Probe Atomic Force Microscopy of Electrochemical Interfaces (P A Veneman and K J Stevenson)
    • Electrochemical Strain Microscopy of Li-ion and Li-air Battery Materials (T M Arruda, N Balke, S Jesse and S V Kalinin)
  • Emerging Scanning Probe Techniques:
    • High Sensitivity Scanning Impedance Microscopy and Spectroscopy (S S Nonnenmann, X Chen and D A Bonnell)
    • Scanning Microwave Microscopy: Advances in Quantitative Capacitance and Carrier Density Measurements at the Nanometer Scale (S Wu, F Kienberger and H Tanbakuchi)
    • Mapping Electrochemistry at the Micro and Nanoscales with Scanning Ion Conductance Microscopy (C Laslau, D E Williams and J Travas-Sejdic)
    • Force Microscopy, Nanochemistry and Nanofabrication (R Garcia, M Chiesa and Y K Ryu)
    • Studying the Mechanism of Piezoelectric Nanogenerators (J Song and Z L Wang)


Readership: Students, professionals and researchers in materials science, nanomaterials and new materials.

Frequently asked questions

Yes, you can cancel anytime from the Subscription tab in your account settings on the Perlego website. Your subscription will stay active until the end of your current billing period. Learn how to cancel your subscription.
No, books cannot be downloaded as external files, such as PDFs, for use outside of Perlego. However, you can download books within the Perlego app for offline reading on mobile or tablet. Learn more here.
Perlego offers two plans: Essential and Complete
  • Essential is ideal for learners and professionals who enjoy exploring a wide range of subjects. Access the Essential Library with 800,000+ trusted titles and best-sellers across business, personal growth, and the humanities. Includes unlimited reading time and Standard Read Aloud voice.
  • Complete: Perfect for advanced learners and researchers needing full, unrestricted access. Unlock 1.4M+ books across hundreds of subjects, including academic and specialized titles. The Complete Plan also includes advanced features like Premium Read Aloud and Research Assistant.
Both plans are available with monthly, semester, or annual billing cycles.
We are an online textbook subscription service, where you can get access to an entire online library for less than the price of a single book per month. With over 1 million books across 1000+ topics, we’ve got you covered! Learn more here.
Look out for the read-aloud symbol on your next book to see if you can listen to it. The read-aloud tool reads text aloud for you, highlighting the text as it is being read. You can pause it, speed it up and slow it down. Learn more here.
Yes! You can use the Perlego app on both iOS or Android devices to read anytime, anywhere — even offline. Perfect for commutes or when you’re on the go.
Please note we cannot support devices running on iOS 13 and Android 7 or earlier. Learn more about using the app.
Yes, you can access Scanning Probe Microscopy For Energy Research: Materials, Devices, And Applications by Dawn A Bonnell, Sergei V Kalinin in PDF and/or ePUB format, as well as other popular books in Biological Sciences & Science General. We have over one million books available in our catalogue for you to explore.

Information

Table of contents

  1. Cover
  2. Halftitle
  3. Dedication
  4. Title Page
  5. Copyright Page
  6. Preface
  7. Contents
  8. Listofcolorplates
  9. Introduction
  10. Chapter 1 Local Probes in the Next Decade of Energy Research: Bridging Macroscopic and Atomic Worlds
  11. Chapter 2 Electrical Scanning Probe Microscopy on Solar Cell Materials
  12. Chapter 3 Organic Solar Cell Materials and Devices Characterized by Conductive and Photoconductive Atomic Force Microscopy
  13. Chapter 4 Kelvin Probe Force Microscopy for Solar Cell Applications
  14. Chapter 5 Reversible Rectification in Sub-Monolayer Molecular P-N Junctions: Towards Nanoscale Photovoltaic Studies
  15. Chapter 6 Study of Photoinduced Charges with Atomic Force Microscopy
  16. Chapter 7 Imaging of Nanoscale Photogenerated Charge Transport in Organic Photovoltaic Materials
  17. Chapter 8 Photoassisted Kelvin Probe Force Microscopy for Characterization of Solar Cell Materials
  18. Chapter 9 Electrochemical Strain Microscopy of Oxygen-Ion Conductors: Fuel Cells and Oxide Electronics
  19. Chapter 10 Ion Dynamics in Nanoscopic Subvolumes of Solid Electrolytes Analysed by Electrostatic Force Spectroscopy
  20. Chapter 11 Nanoscale Electrochemistry in Energy Related Systems using Atomic Force Microscopy
  21. Chapter 12 Scanning Probe Microscopy of Fuel Cell Materials Under Realistic Operating Conditions
  22. Chapter 13 In situ SPM Analysis of Interfacial Phenomena in Lithium–Ion Batteries
  23. Chapter 14 Conducting-Probe Atomic Force Microscopy of Electrochemical Interfaces
  24. Chapter 15 Electrochemical Strain Microscopy of Li-ion and Li-air Battery Materials
  25. Chapter 16 High Sensitivity Scanning Impedance Microscopy and Spectroscopy
  26. Chapter 17 Scanning Microwave Microscopy: Advances in Quantitative Capacitance and Carrier Density Measurements at the Nanometer Scale
  27. Mapping Electrochemistry at the Micro and Nanoscales with Scanning Ion Conductance Microscopy
  28. Chapter 19 Force Microscopy, Nanochemistry and Nanofabrication
  29. Chapter 20 Studying the Mechanism of Piezoelectric Nanogenerators
  30. index