Nanostructured Carbon Materials For Active And Durable Electrocatalysts And Supports In Fuel Cells PDF Download

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Nanostructured Carbon Materials for Active and Durable Electrocatalysts and Supports in Fuel Cells

Nanostructured Carbon Materials for Active and Durable Electrocatalysts and Supports in Fuel Cells
Author: Adam Riese
Publisher:
Total Pages: 246
Release: 2015
Genre:
ISBN:

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Meeting the energy demands of the future will require a breadth of technologies and materials for generating and converting electricity. Increasing activity and reducing costs of electrocatalysts for fuel cells is among the most important challenges for the technology. With advances in nanomaterials there has been increased interest in creating novel catalysts with both high activity and excellent long-term durability. This thesis aims to understand how modification of nanostructured carbons can be used to improve the activity and durability of catalysts and supports for the oxygen reduction reaction (ORR). Using an integrating approach to synthesis, characterization, and electrochemical testing, it is shown that modifications via heteroatom doping and surface functionalization can improve upon the catalytic properties of nanostructured carbons. This work includes successful co-doping of nitrogen and phosphorus into carbon nanotubes for metal-free catalysis, improving Pt catalyst support properties of carbon black via ozone treatment, and evaluating popular test protocols for studying carbon corrosion in fuel cells.


Nanostructured Materials Supported Oxygen Reduction Catalysts in Polymer Electrolyte Membrane Fuel Cells

Nanostructured Materials Supported Oxygen Reduction Catalysts in Polymer Electrolyte Membrane Fuel Cells
Author: Ja-Yeon Choi
Publisher:
Total Pages: 95
Release: 2013
Genre:
ISBN:

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Polymer electrolyte membrane (PEM) fuel cells have been viewed as promising power source candidates for transport, stationary, and portable applications due to their high efficiency and low emissions. The platinum is the most commonly used catalyst material for the oxygen reduction reaction (ORR) at the cathode of PEM fuel cells; however, the limited abundance and high cost of platinum hinder the large-scale commercialization of fuel cells. To overcome this limitation, it is necessary to enhance the catalyst utilization in order to improve the catalytic activity while decreasing or eliminating the use of platinum. The material on which the catalyst is supported is important for the high dispersion and narrow distribution of Pt nanoparticles as well as other non-precious metal active sites, and these characteristics are closely related to electrocatalytic activity of the catalysts. The support materials can influence the catalytic activity by interplaying with catalytic metals, and the durability of the catalyst is also greatly dependent on its support. A variety of support materials like carbons, oxides, carbides, and nitrides have been employed as supports materials for fuel cell catalysts, and much effort has been devoted to the synthesis of the novel carbon supports with large surface area and/or pore volume, including nanostructured carbons such as carbon nanotubes (CNTs), carbon nanofibers, and mesoporous carbon. These novel nanostructured carbon materials have achieved promising performance in terms of catalytic activity and durability. However, there is still enormous demand and potential for the catalysts to improve.


Nanostructured Carbon Materials for Catalysis

Nanostructured Carbon Materials for Catalysis
Author: Philippe Serp
Publisher: Royal Society of Chemistry
Total Pages: 570
Release: 2015-03-02
Genre: Science
ISBN: 1782624570

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"We heartily recommend this book to all readers who wish to gain a better understanding of nanostructured carbon materials surface properties and used in catalysis." An-Hui Lu, ChemCatChem There is great interest in using nanostructured carbon materials in catalysis, either as supports for immobilizing active species or as metal-free catalysts due to their unique structural, thermal, chemical, electronic and mechanical properties, and tailorable surface chemistry. This book looks at the structure and properties of different doped and undoped nanocarbons including graphene; fullerenes; nanodiamonds; carbon nanotubes and nanofibers; their synthesis and modification to produce catalysts. Special attention is paid to adsorption, as it impacts the application of these materials in various industrially relevant catalytic reactions discussed herein, in addition to photocatalysis and electrocatalysis. Written by leading experts in the area, this is the first book to provide a comprehensive view of the subject for the catalysis community.


Novel Three-dimensional Nanostructured Carbon Materials as Electrocatalyst Support in Low-temperature Fuel Cells

Novel Three-dimensional Nanostructured Carbon Materials as Electrocatalyst Support in Low-temperature Fuel Cells
Author: Ayyappan Elangovan
Publisher:
Total Pages:
Release: 2020
Genre:
ISBN:

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Human sustainability and fossil fuel depletion are driving the demand for alternative energy sources. Low-temperature fuel cells (LTFCs) can be an alternative sustainable energy source owing to their high energy conversion efficiency, environmental friendliness, and ability to use renewable fuels. Despite the success, the high cost, poor durability, and susceptibility to fuel poison of the Pt-based electrocatalysts limit the widespread applications of LTFCs. Therefore, numerous efforts have been devoted to developing novel nanostructured carbon materials as electrocatalyst support to address the issues faced by the commercial Pt-based catalysts. This research focuses on a unique three-dimensional carbon support in this direction. In the first approach, a systematic study has been carried out on oxygen reduction reaction (ORR) with ion-beam sputtered Pt catalyst (at Pt loadings of 6.5 - 43 [mu]g cm−2) on a vertically aligned carbon nanofiber (VACNF) array, consisting of conically stacked graphitic microstructures. Rotating disk electrode (RDE) studies reveal that thick 3D architecture of VACNFs exhibits enhanced limiting current density that deviates from the Levich equation for conventional thin-film catalysts. Nevertheless, useful information can be derived from RDE experiments with such systems. Molecular models representing VACNFs have been constructed to explore their capability as catalyst supports for ORR. Platinum atoms form strong bonds at the open graphitic edges in VACNFs, corroborating the role of VACNF in stabilizing Pt. Density Functional Theory (DFT) calculations further elucidate the two-electron and four-electron ORR pathways on the bare VACNF and Pt/VACNF catalysts, respectively. Furthermore, the Pt/VACNF catalysts show enhanced tolerance to methanol oxidation and a higher ability to recover from carbon monoxide poisoning in comparison to the benchmark Pt/C catalysts. Following the success of VACNFs for the ORR, in the second approach, the role of additional nitrogen doping into the three-dimensional VACNF array by NH3 plasma annealing in improving the durability of the Pt catalysts towards the ORR has been explored. The additional nitrogen present in N-VACNF support enhances the metal-support interaction which helps in reducing the Pt particle size from 3.1 nm to 2.3 nm. Pt/N-VACNF catalyst shows better durability when compared to the Pt/VACNF and Pt/C with similar Pt loading. DFT calculations validate the increase in stability of the Pt NPs with an increase in pyridinic N and illustrate the molecular ORR pathway for Pt/N-VACNF. Moreover, the Pt/N-VACNF catalyst is also found to have an enhanced tolerance towards the methanol crossover. In the third approach, the role of three-dimensionally architectured in-situ N-doped VACNFs as a catalyst support for methanol oxidation reaction (MOR) has been studied in acidic and alkaline media. The abundant graphitic edge sites at the sidewall of N-doped VACNF strongly anchor the deposited platinum group metal (PGM) catalysts and induce a partial electron transfer between the PGM catalysts and support. DFT calculations reveal that the strong metal-support interaction substantially increases the adsorption energy of OH, particularly near the N-doping sites, which helps to compete and remove the adsorbed intermediate species generated during MOR. The PGM catalysts on N-doped VACNF support exhibit CO stripping at lower potentials comparing to the commercial Vulcan carbon support and present an enhanced electrocatalytic performance and better durability for MOR.


Carbon Nanomaterials for Electrochemical Energy Technologies

Carbon Nanomaterials for Electrochemical Energy Technologies
Author: Shuhui Sun
Publisher: CRC Press
Total Pages: 329
Release: 2017-11-20
Genre: Science
ISBN: 1498746144

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This book offers comprehensive coverage of carbon-based nanomaterials and electrochemical energy conversion and storage technologies such as batteries, fuel cells, supercapacitors, and hydrogen generation and storage, as well as the latest material and new technology development. It addresses a variety of topics such as electrochemical processes, materials, components, assembly and manufacturing, degradation mechanisms, challenges, and strategies. With in-depth discussions ranging from electrochemistry fundamentals to engineering components and applied devices, this all-inclusive reference offers a broad view of various carbon nanomaterials and technologies for electrochemical energy conversion and storage devices.


Nanomaterials for Direct Alcohol Fuel Cells

Nanomaterials for Direct Alcohol Fuel Cells
Author: Fatih Sen
Publisher: Elsevier
Total Pages: 552
Release: 2021-08-25
Genre: Technology & Engineering
ISBN: 0128217146

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Nanomaterials for Direct Alcohol Fuel Cells explains nanomaterials and nanocomposites as well as the characterization, manufacturing, and design of alcohol fuel cell applications. The advantages of direct alcohol fuel cells (DAFCs) are significant for reliable and long-lasting portable power sources used in devices such as mobile phones and computers. Even though substantial improvements have been made in DAFC systems over the last decade, more effort is needed to commercialize DAFCs by producing durable, low-cost, and smaller-sized devices. Nanomaterials have an important role to play in achieving this aim. The use of nanotechnology in DAFCs is vital due to their role in the synthesis of nanocatalysts within the manufacturing process. Lately, nanocatalysts containing carbon such as graphene, carbon nanotubes, and carbon nanocoils have also attracted much attention. When compared to traditional materials, carbon-based materials have unique advantages, such as high corrosion resistance, better electrical conductivity, and less catalyst poisoning. This book also covers different aspects of nanocomposites fabrication, including their preparation, design, and characterization techniques for their fuel cell applications. This book is an important reference source for materials scientists, engineers, energy scientists, and electrochemists who are seeking to improve their understanding of how nanomaterials are being used to enhance the efficiency and lower the cost of DAFCs. Shows how nanomaterials are being used for the design and manufacture of DAFCs Explores how nanotechnology is being used to enhance the synthesis and catalysis processes to create the next generation of fuel cells Assesses the major challenges of producing nanomaterial-based DAFCs on an industrial scale


Nanostructured and Advanced Materials for Fuel Cells

Nanostructured and Advanced Materials for Fuel Cells
Author: San Ping Jiang
Publisher: CRC Press
Total Pages: 584
Release: 2013-12-07
Genre: Science
ISBN: 1466512539

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Boasting chapters written by leading international experts, Nanostructured and Advanced Materials for Fuel Cells provides an overview of the progress that has been made so far in the material and catalyst development for fuel cells. The book covers the most recent developments detailing all aspects of synthesis, characterization, and performance.It


Synthesis and Characterization of Nanostructured Carbon Supported Pt-based Electrocatalysts

Synthesis and Characterization of Nanostructured Carbon Supported Pt-based Electrocatalysts
Author: Geng, Xi
Publisher:
Total Pages: 238
Release: 2012
Genre:
ISBN:

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Abstract: Fuel cell, as an alternative green power source for automobiles and portable electronics, has attracted worldwide attention due to its desirable properties such as high energy density and low greenhouse gas emission. Despite great progress in the past decades, several challenges still remain as obstacles for the large-scale commercialization. Among them, the high cost of Pt-based electrode material is considered as a major barrier, while the life span or stability of electrode catalysts is another concern since the electrocatalysts can be easily poisoned during the fuel cell operation. In order to overcome these issues, nanostructured carbon materials, especially carbon nanotubes (CNTs), are studied as catalyst support. In addition, recent research also suggests that the coupling of a second metal element with Pt can effectively protect the electrocatalysts from being poisoned and thus improve their long-term durability. The objective of the present work was to demonstrate an efficient synthetic method for the preparation of CNTs supported binary PtM (M=Ru, Sn) electrocatalysts. In this project, a polymer wrapping technique along with an in-situ polyol reduction strategy was adopted to decorate well-dispersed binary PtM nanoparticles on the surface of modified-CNTs. The unique nanostructures as well as the excellent catalytic activities of the as-prepared nanohybirds were investigated through a diversity of physiochemical and electrochemical characterization techniques. This fabrication method provided a simple and convenient route to assemble Pt-based catalyst on carbon substrates, which is useful for the further development of high-performance fuel cell catalysts.


Carbon-Based Nanofillers and Their Rubber Nanocomposites

Carbon-Based Nanofillers and Their Rubber Nanocomposites
Author: Srinivasarao Yaragalla
Publisher: Elsevier
Total Pages: 496
Release: 2019-02-06
Genre: Technology & Engineering
ISBN: 0128173432

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Carbon-Based Nanofillers and their Rubber Nanocomposites: Fundamentals and Applications provides the synthetic routes, characterization, structural properties and effect of nano fillers on rubber nanocomposites. The synthesis and characterization of all carbon-based fillers is discussed, along with their morphological, thermal, mechanical, dynamic mechanical, and rheological properties. The book also covers the theory, modeling, and simulation aspects of these nanocomposites and their various applications. Users will find a valuable reference source for graduates and post graduates, engineers, research scholars, polymer engineers, polymer technologists, and those working in the biomedical field. Reviews rubber nanocomposites, specifically carbon-associated nanomaterials (nanocarbon black, graphite, graphene, carbon nanotubes, fullerenes, diamond) Presents the synthesis and characterization of carbon based nanocomposites Relates the structure of these nanocomposites to their function as rubber additives and their many applications