Shahabuddin / Gaur / Mukherjee | Nanomaterials for Electrochemical Sensing | Buch | 978-1-032-45888-5 | sack.de

Buch, Englisch, 374 Seiten, Format (B × H): 178 mm x 254 mm, Gewicht: 866 g

Reihe: Emerging Materials and Technologies

Shahabuddin / Gaur / Mukherjee

Nanomaterials for Electrochemical Sensing


1. Auflage 2025
ISBN: 978-1-032-45888-5
Verlag: Taylor & Francis Ltd (Sales)

Buch, Englisch, 374 Seiten, Format (B × H): 178 mm x 254 mm, Gewicht: 866 g

Reihe: Emerging Materials and Technologies

ISBN: 978-1-032-45888-5
Verlag: Taylor & Francis Ltd (Sales)


This book reviews the fundamentals of electrochemical sensors, the preparation of electrodes, potential materials for sensing applications, and different analytical methods used for electrochemical sensing applications. It further covers the designing of various electrodes and electrode materials, instruments, sensing mechanisms, advanced nanomaterials for sensing, and so forth. The scalability and commercialization of electrochemical sensors and the challenges and prospects of electrochemical sensors are also described.

Key Features:

- Provides an overview of the advances in the application of nanomaterials in sensing

- Covers basic fabrication techniques of electrodes as an important part of electrochemical sensors and analysis

- Reviews the use and analysis of different types of nanomaterials and nanocomposites used for fabrication of working electrodes

- Emphasizes carbon-based nanomaterials, 2D nanomaterials, and advanced nanocomposites comprising various matrix systems such as conducting polymers, and

- Explores electron transfer, redox behaviour, fabrication techniques, data interpretation, and advanced nanomaterials as working electrode materials

This book is aimed at researchers and graduate students in nanomaterials, electrochemistry, chemical engineering, and materials science.

Shahabuddin / Gaur / Mukherjee Nanomaterials for Electrochemical Sensing jetzt bestellen!

Zielgruppe


Academic and Postgraduate

Weitere Infos & Material


1.Introduction to Electrochemical Sensors 2. Contemporary Techniques of Fabrication of Electrochemical Sensors 3. Analytical Methods for Electrochemical Sensors 4. Carbon-Based Materials for Electrochemical Sensing 5. Metal Oxide Nanomaterials Based Materials For Electrochemical Sensing 6. Metal Nanoparticles for Electrochemical Sensing 7. Two-dimensional Materials for Electrochemical Sensing 8. Recent Advancement in Electrochemical Biosensors: The Role of Conducting Polymer Nanohybrid Materials 9. Emerging Materials for Gas Sensing 10. Mycotoxins as Food Contaminants and Their Detection Methods 11.Reviewing the Prospects of Machine Learning for High-Performance Electrochemical Sensors 12. Nanomaterials for Electrochemical Sensing of Explosive Substances 13. Fabrication of MOF-Based Electrochemical Sensor 14. Porphyrin-Functionalized Hybrid Materials for Biosensing Applications 15. Graphene-Based Metamaterial Absorbers for Electrochemical Sensing 16. Electrochemical Biosensors Based on Nanomaterial Functionality 17. Influence of Diffusion, Convection, and Reaction Time Scales on Cyclic Voltammetry Targeting Efficient Electrochemical Sensor Design 18. Advances, Opportunities, and Challenges in Development of 2-D MXene-Based Aptasensors for Early Cancer Detection19. Process Design of Electrochemical Sensors 20. Challenges and Future Prospects in Electrochemical Sensing


Syed Shahabuddin did his Ph.D. degree in Polymer Chemistry from University of Malaya, Malaysia, in September 2016. Currently, he is working as an assistant professor in Pandit Deendayal Petroleum University, Gandhinagar, and Gujrat. He has published more than 70 research articles in International journals of repute and presented 10 papers in International/National conferences. He is the member of Royal Society of Chemistry (MRSC) and reviewer of many high impact journals. His current research focus on the synthesis of Nanomaterials, 2D-MXene, Graphene, conducting polymer nanocomposites for water treatment, photocatalysis, supercapacitors, DSSCs, nanofluids for solar thermal applications, waste lubricant oil refining and phase change materials.

Rama Gaur is working as an Assistant Professor, School of Technology, PDPU Gandhinagar, Gujarat. She received her Ph.D. degree in Chemistry from IIT Roorkee in 2017. Dr. Gaur has expertise in synthesis of nanoscale materials with interesting and unique morphologies by simple and economical chemical approaches; Shape and size dependent optical, magnetic and electrochemical properties; Applications in photocatalysis, optoelectronics, electrochemical sensing, electrocatalytic reduction/oxidation, solar energy conversion, energy storage devices, supercapacitors, water splitting and environmental remediation.

Nandini Mukherjee received her Ph.D. degree in Bioinorganic and Medicinal Chemistry from Indian Institute of Science, Bangalore in 2020. Currently, she is working as an Assistant Professor in the Department of Chemistry, Pandit Deendayal Energy University (PDEU), Gandhinagar, and Gujarat. Prior to joining PDEU she has also worked as a research associate in IISc Bangalore. She has more than 5 years of research experience in organic synthesis and coordination chemistry and published her research in international peer-reviewed journals. Her current research interest focuses on the design and synthesis of molecules that have applications in the field of chemo-sensing of toxins and monitoring biological phenomena.



Ihre Fragen, Wünsche oder Anmerkungen
Vorname*
Nachname*
Ihre E-Mail-Adresse*
Kundennr.
Ihre Nachricht*
Lediglich mit * gekennzeichnete Felder sind Pflichtfelder.
Wenn Sie die im Kontaktformular eingegebenen Daten durch Klick auf den nachfolgenden Button übersenden, erklären Sie sich damit einverstanden, dass wir Ihr Angaben für die Beantwortung Ihrer Anfrage verwenden. Selbstverständlich werden Ihre Daten vertraulich behandelt und nicht an Dritte weitergegeben. Sie können der Verwendung Ihrer Daten jederzeit widersprechen. Das Datenhandling bei Sack Fachmedien erklären wir Ihnen in unserer Datenschutzerklärung.