Synthesis and Investigation of Nanostructured Particles and Membranes for Energy-related Applications

Synthesis and Investigation of Nanostructured Particles and Membranes for Energy-related Applications PDF Author: Young Jin Kim
Publisher:
ISBN:
Category :
Languages : en
Pages : 105

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Book Description
Nanostructured materials exhibit useful properties that are not found in the same materials in bulk form. (1) Dramatically increase surface and area and roughness of nanostructured materials is advantageous for evaporative cooling, which is one of the main subjects in this dissertating, due to the strong capillary effect and high density of gas-liquid-solid triple junctions. (2) In magnetic materials, when the size of the magnetic material is decreased to submicron or nano size, magnetic coercivity increases since magnetic domains are confined by the size of the material. (3) Also, unique optical properties of materials in nano size can be utilized for thermal managing and energy saving application. In Chapter 2 of this dissertation, I described the demonstration of using nanoporous membranes in evaporative cooling. Nanoporous membranes have been proposed and theoretically shown as a promising candidate for high heat flux evaporative heat transfer. However, the experimentally demonstrated heat flux has so far been significantly lower than the theoretical prediction, which has cast doubt on the feasibility of achieving a high heat flux from nanoporous membranes. Here we carried out evaporative heat transfer experiments using isopropyl alcohol (IPA) through anodized aluminum oxide (AAO) membranes. For membranes with a 200nm average pore size on a 0.5cm2 size area, we demonstrated a high evaporative heat flux of 210W/cm2 based on the overall AAO surface area, or ~400W/cm2 if only the pore area is considered. This heat flux is close to the theoretical value of 572 W/cm^2 (based on the pore area) for IPA evaporation through nanoporous membranes. Using time synchronized high-speed images, it was verified that evaporation was the main heat transfer mode in the high heat flux regime. The demonstration of high heat flux evaporation through nanoporous membranes, close to the theoretical limit and on a relatively large area (0.5cm2), is significant for the future development of high heat flux thermal management technology for electronic devices. In chapter 3, I presented a noble technique to achieve exchange coupling of hard phase magnetic materials and soft phase magnetic materials. Exchange coupled spring magnets have been suggested as a possible replacement of rare earth contained strong magnets. We have chosen LPT-MnBi as hard phase and FeCo as soft phase magnetic material, as many early conducted theoretical modeling suggests. The optimal size of hard phase magnet for the exchange coupling (approximately twice of single magnetic domain size, ~2[mu]m for MnBi) was achieved by conventional ball milling process, and the shell layer of FeCo was deposited by a noble process called sonic agitation assisted physical vapor deposition (SAA-PVD). TEM image and EDX mapping shows uniform coating of FeCo outer shell layer on the MnBi core. The thickness of the shell layer was in the range of 10~35nm which is slightly less than twice of single domain size of FeCo. Magnetic remanence of ball milled MnBi particles was increased from Ms = 36 emu/g to 51 emu/g after SAPVD process while the coercivity was slightly decreased from 1.1T to 1.0T. (BH)max of the particles after the SAA-PVD process was about 2.5MGOe. Smooth demagnetization curve that resembles that of single magnetic materials and high increase of magnetic remanence suggest that exchange coupling was achieved. In chapter 4, a new route to synthesize thermochromic VO2 particles and properties of the film using the particles was presented. A temperature responding fully reversible metal to insulator phase transition (MIT) accompanied by a change of optical properties only found in Vanadium dioxide monoclinic phase (VO2 (M)) has potential for huge energy saving application by controlling the amount of infrared (IR) light enter into buildings. More synthetic routes are still worthy to be explored because of difficulty in mass production of VO2 (M). In this work, we demonstrated a combination of thermal decomposition method subsequent ball milling process to produce pure VO2 (M) particles. The size of the synthesized particles was between 20 and 200nm. IR modulating smart film was fabricated by blade casting mixture of synthesized VO2 (M) particles and PVP on PET film. The thickness of the film was about 300nm and particles were uniformly dispersed in the film. Despite the irregular shape of the particles and the fact that few portion of the synthesized particles exceeding suggested optimal size range, the transmittance of little less than 40% and the IR modulation of about 20% which values are practically useful was achieved.

Synthesis and Investigation of Nanostructured Particles and Membranes for Energy-related Applications

Synthesis and Investigation of Nanostructured Particles and Membranes for Energy-related Applications PDF Author: Young Jin Kim
Publisher:
ISBN:
Category :
Languages : en
Pages : 105

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Book Description
Nanostructured materials exhibit useful properties that are not found in the same materials in bulk form. (1) Dramatically increase surface and area and roughness of nanostructured materials is advantageous for evaporative cooling, which is one of the main subjects in this dissertating, due to the strong capillary effect and high density of gas-liquid-solid triple junctions. (2) In magnetic materials, when the size of the magnetic material is decreased to submicron or nano size, magnetic coercivity increases since magnetic domains are confined by the size of the material. (3) Also, unique optical properties of materials in nano size can be utilized for thermal managing and energy saving application. In Chapter 2 of this dissertation, I described the demonstration of using nanoporous membranes in evaporative cooling. Nanoporous membranes have been proposed and theoretically shown as a promising candidate for high heat flux evaporative heat transfer. However, the experimentally demonstrated heat flux has so far been significantly lower than the theoretical prediction, which has cast doubt on the feasibility of achieving a high heat flux from nanoporous membranes. Here we carried out evaporative heat transfer experiments using isopropyl alcohol (IPA) through anodized aluminum oxide (AAO) membranes. For membranes with a 200nm average pore size on a 0.5cm2 size area, we demonstrated a high evaporative heat flux of 210W/cm2 based on the overall AAO surface area, or ~400W/cm2 if only the pore area is considered. This heat flux is close to the theoretical value of 572 W/cm^2 (based on the pore area) for IPA evaporation through nanoporous membranes. Using time synchronized high-speed images, it was verified that evaporation was the main heat transfer mode in the high heat flux regime. The demonstration of high heat flux evaporation through nanoporous membranes, close to the theoretical limit and on a relatively large area (0.5cm2), is significant for the future development of high heat flux thermal management technology for electronic devices. In chapter 3, I presented a noble technique to achieve exchange coupling of hard phase magnetic materials and soft phase magnetic materials. Exchange coupled spring magnets have been suggested as a possible replacement of rare earth contained strong magnets. We have chosen LPT-MnBi as hard phase and FeCo as soft phase magnetic material, as many early conducted theoretical modeling suggests. The optimal size of hard phase magnet for the exchange coupling (approximately twice of single magnetic domain size, ~2[mu]m for MnBi) was achieved by conventional ball milling process, and the shell layer of FeCo was deposited by a noble process called sonic agitation assisted physical vapor deposition (SAA-PVD). TEM image and EDX mapping shows uniform coating of FeCo outer shell layer on the MnBi core. The thickness of the shell layer was in the range of 10~35nm which is slightly less than twice of single domain size of FeCo. Magnetic remanence of ball milled MnBi particles was increased from Ms = 36 emu/g to 51 emu/g after SAPVD process while the coercivity was slightly decreased from 1.1T to 1.0T. (BH)max of the particles after the SAA-PVD process was about 2.5MGOe. Smooth demagnetization curve that resembles that of single magnetic materials and high increase of magnetic remanence suggest that exchange coupling was achieved. In chapter 4, a new route to synthesize thermochromic VO2 particles and properties of the film using the particles was presented. A temperature responding fully reversible metal to insulator phase transition (MIT) accompanied by a change of optical properties only found in Vanadium dioxide monoclinic phase (VO2 (M)) has potential for huge energy saving application by controlling the amount of infrared (IR) light enter into buildings. More synthetic routes are still worthy to be explored because of difficulty in mass production of VO2 (M). In this work, we demonstrated a combination of thermal decomposition method subsequent ball milling process to produce pure VO2 (M) particles. The size of the synthesized particles was between 20 and 200nm. IR modulating smart film was fabricated by blade casting mixture of synthesized VO2 (M) particles and PVP on PET film. The thickness of the film was about 300nm and particles were uniformly dispersed in the film. Despite the irregular shape of the particles and the fact that few portion of the synthesized particles exceeding suggested optimal size range, the transmittance of little less than 40% and the IR modulation of about 20% which values are practically useful was achieved.

Advanced Nanomaterials for Membrane Synthesis and Its Applications

Advanced Nanomaterials for Membrane Synthesis and Its Applications PDF Author: Woei Jye Lau
Publisher: Elsevier
ISBN: 0128145048
Category : Technology & Engineering
Languages : en
Pages : 344

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Book Description
Advanced Nanomaterials for Membrane Synthesis and Its Applications provides the academic and industrial communities the most up-to-date information on the latest trends in membrane nanomaterials and membrane nanotechnology used in wastewater treatment, environmental technology and energy. The rapid advances in nanomaterials and nanotechnology development over the past decade have resulted in significant growth of the membrane business for various industrial processes, particularly in nanotechnology-based membrane processes. While membrane technology is increasingly being used for liquid and gas separations, it has great potential in a variety of additional applications. As the worldwide academic community has a strong interest in advanced membrane processes, particularly membrane nanotechnology for specific separations, this book provides a timely update on the topic. - Presents a unique focus on the use of advanced nanomaterials in membrane fabrication/modification, and in the description of membrane nanotechnologies, such as nanofiltration, thin film nanocomposites and nanofibers for various applications - Describes next generation membranes, providing first resource details on the development and commercialization stages of these new membranes - Represents the state-of-the-art on the use of nanomaterials in membrane science

Nano-Enhanced and Nanostructured Polymer-Based Membranes for Energy Applications

Nano-Enhanced and Nanostructured Polymer-Based Membranes for Energy Applications PDF Author: Maria Giovanna Buonomenna
Publisher: Woodhead Publishing
ISBN: 0081019866
Category : Technology & Engineering
Languages : en
Pages : 426

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Book Description
There is a growing need for better membranes in several emerging application fields especially those related to energy conversion and storage as well as to water treatment and recycling. Processability, is an important functional property, often ignored, especially in the early discovery phase for new materials, but it should be one of the most important properties, that needs to be considered in the development of better membrane materials. Useful membrane materials have to be capable of being formed into thin membranes, in particular for membrane gas separation, water treatment and desalination, and then packaged, into large area membrane modules. All gas separation membranes that are in current commercial use are based on polymers, which are solution-processable. This book intends to deal with composite, in most cases hybrid polymer-based membranes for three separate application fields: energy conversion, energy storage and water treatment and recovery. Each chapter will explain clearly the various membrane processes then go on to discuss in detail the corresponding advanced membranes used. The logic that lies behind this is that you have to understand the process in order to develop new high-performance membranes. By taking this approach, the author aims to overcome the disconnection that currently exists between membrane materials scientists and industrial process engineers. - Discusses interdisciplinary content by a single author, approaching synthesis and development of materials from the perspective of their processability - Describes the novel aspects of membrane science that is related to energy storage, conversion and wastewater treatment - Presents an emphasis on scientific results which have an impact on real applications in terms of renewable and clean energy challenges

Synthesis and Investigation of Nanostructured Functional Materials for Energy-related Applications

Synthesis and Investigation of Nanostructured Functional Materials for Energy-related Applications PDF Author: Jonas Scholz
Publisher:
ISBN:
Category :
Languages : en
Pages : 0

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Book Description


Nanomaterial and Polymer Membranes

Nanomaterial and Polymer Membranes PDF Author: Tawfik Abdo Saleh
Publisher: Elsevier
ISBN: 0128014407
Category : Technology & Engineering
Languages : en
Pages : 286

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Book Description
Nanomaterial and Polymer Membranes: Synthesis, Characterization, and Applications presents a unique collection of up-to-date polymeric nanomaterial membranes. The book offers a perfect source to document state-of-the-art developments and innovations in nanocomposite membranes, ranging from materials development and characterization of properties to membrane applications. The book discusses applications that encompass the enhancement of sorption and degradation processes and their usage for the removal of different pollutants, including heavy metals, dyes, pesticides, and other organic and inorganic pollutants from the industry. Presents a powerful single source for the development of new, rapid, and highly efficient membrane composites Offers a perfect source to document state-of-the-art developments and innovations in nanocomposite membranes, ranging from materials development and characterization of properties to membrane applications Covers applications in membrane science, water treatment, and the removal of pollutants from waste water Provides theoretical and practical information about the synthesis and application of polymeric nanocomposite membranes Includes instructor support material available at textbooks.elsevier.com

Semiconductor Nanomaterials

Semiconductor Nanomaterials PDF Author: Challa S. S. R. Kumar
Publisher: John Wiley & Sons
ISBN: 3527321667
Category : Technology & Engineering
Languages : en
Pages : 499

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Book Description
The book series Nanomaterials for the Life Sciences, provides an in-depth overview of all nanomaterial types and their uses in the life sciences. Each volume is dedicated to a specific material class and covers fundamentals, synthesis and characterization strategies, structure-property relationships and biomedical applications. The series brings nanomaterials to the Life Scientists and life science to the Materials Scientists so that synergies are seen and developed to the fullest. Written by international experts of various facets of this exciting field of research, the series is aimed at scientists of the following disciplines: biology, chemistry, materials science, physics, bioengineering, and medicine, together with cell biology, biomedical engineering, pharmaceutical chemistry, and toxicology, both in academia and fundamental research as well as in pharmaceutical companies. VOLUME 6 - Semiconductor Nanomaterials

Functional Nanostructured Membranes

Functional Nanostructured Membranes PDF Author: Enrico Drioli
Publisher: CRC Press
ISBN: 1351135090
Category : Science
Languages : en
Pages : 463

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Book Description
A membrane is considered the heart of every separation process because it is developed as a nanostructured/nanofunctionalized thin barrier that controls the exchange between two phases, not only by external forces and under the effect of fluid properties, but also through the intrinsic characteristics of the membrane material itself. This book compiles cutting-edge research in membrane science, nanomaterials, and nanotechnologies, mainly from interdisciplinary research groups at the Institute on Membrane Technology, National Research Council (ITM-CNR), Italy, working on membrane design, membrane process engineering, and selected materials and practices for enhanced transport mass, charge, and energy. It covers topics on the design of new nanostructured membranes with improved properties, together with the identification of efficient transport–property relationships. It shares and strengthens the knowledge of making membrane technology a much more powerful and eco-friendly route, enabling one to provide prospective solutions and benefits for numerous fields of applications where traditional separation technologies suffer from many deficiencies. It is a great reference for researchers and investigators; graduate, PhD, and postgraduate students; and end users interested in membrane science and technology, nanomaterials, eco-friendly separation, chemistry, biology, and process engineering.

Membranes with Functionalized Nanomaterials

Membranes with Functionalized Nanomaterials PDF Author: Suman Dutta
Publisher: Elsevier
ISBN: 0323859429
Category : Technology & Engineering
Languages : en
Pages : 440

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Book Description
Membranes with Functionalized Nanomaterials: Current and Emerging Research Trends in Membrane Technology provides researchers and practitioners with basic and advanced knowledge of sustainable membrane technology. The book summarizes recent progress made in novel functionalized nanomaterials (FNMs) used in modern membrane technology. It gives a comprehensive overview of state-of-the-art technologies in the field of nanomaterial-based membranes and provides in an in-depth and step-by-step way the foundational scientific knowledge on various sustainable membranes with FNMs technologies and their impact on society and in various industries. In addition, readers get a handbook in a compact form with various aspects of FNMs-based sustainable membranes. - Explores innovative strategies to fabricate functionalized nanomaterials-based membranes - Evaluates the advanced functionalized nanomaterials-based membranes and other transformational options - Offers a detailed spectrum of applications of sustainable functionalized nanomaterials-based membranes

Advanced Nanomaterials for Catalysis and Energy

Advanced Nanomaterials for Catalysis and Energy PDF Author: Vladislav A. Sadykov
Publisher: Elsevier
ISBN: 012814808X
Category : Technology & Engineering
Languages : en
Pages : 590

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Book Description
Advanced Nanomaterials for Catalysis and Energy: Synthesis, Characterization and Applications outlines new approaches to the synthesis of nanomaterials (synthesis in flow conditions, laser electrodispersion of single metals or alloys on carbon or oxide supports, mechanochemistry, sol-gel routes, etc.) to provide systems with a narrow particle size distribution, controlled metal-support interaction and nanocomposites with uniform spatial distribution of domains of different phases, even in dense sintered materials. Methods for characterization of real structure and surface properties of nanomaterials are discussed, including synchrotron radiation diffraction and X-ray photoelectron spectroscopy studies, neutronography, transmission/scanning electron microscopy with elemental analysis, and more. The book covers the effect of nanosystems' composition, bulk and surface properties, metal-support interaction, particle size and morphology, deposition density, etc. on their functional properties (transport features, catalytic activity and reaction mechanism). Finally, it includes examples of various developed nanostructured solid electrolytes and mixed ionic-electronic conductors as materials in solid oxide fuel cells and asymmetric supported membranes for oxygen and hydrogen separation. - Outlines synthetic and characterization methods for nanocatalysts - Relates nanocatalysts' properties to their specific applications - Proposes optimization methods aiming at specific applications

Nanostructured Materials Engineering and Characterization for Battery Applications

Nanostructured Materials Engineering and Characterization for Battery Applications PDF Author: Amadou Belal Gueye
Publisher: Elsevier
ISBN: 0323914217
Category : Technology & Engineering
Languages : en
Pages : 715

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Book Description
Nanostructured Materials Engineering and Characterization for Battery Applications is designed to help solve fundamental and applied problems in the field of energy storage. Broken up into four separate sections, the book begins with a discussion of the fundamental electrochemical concepts in the field of energy storage. Other sections look at battery materials engineering such as cathodes, electrolytes, separators and anodes and review various battery characterization methods and their applications. The book concludes with a review of the practical considerations and applications of batteries.This will be a valuable reference source for university professors, researchers, undergraduate and postgraduate students, as well as scientists working primarily in the field of materials science, applied chemistry, applied physics and nanotechnology. - Presents practical consideration for battery usage such as LCA, recycling and green batteries - Covers battery characterization techniques including electrochemical methods, microscopy, spectroscopy and X-ray methods - Explores battery models and computational materials design theories