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Functionalization of Semiconductor Surfaces

Functionalization of Semiconductor Surfaces
Author: Franklin Tao
Publisher: John Wiley & Sons
Total Pages: 456
Release: 2012-03-16
Genre: Technology & Engineering
ISBN: 1118199804

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This book presents both fundamental knowledge and latest achievements of this rapidly growing field in the last decade. It presents a complete and concise picture of the the state-of-the-art in the field, encompassing the most active international research groups in the world. Led by contributions from leading global research groups, the book discusses the functionalization of semiconductor surface. Dry organic reactions in vacuum and wet organic chemistry in solution are two major categories of strategies for functionalization that will be described. The growth of multilayer-molecular architectures on the formed organic monolayers will be documented. The immobilization of biomolecules such as DNA on organic layers chemically attached to semiconductor surfaces will be introduced. The patterning of complex structures of organic layers and metallic nanoclusters toward sensing techniques will be presented as well.


Functionalization of Semiconductor Surfaces

Functionalization of Semiconductor Surfaces
Author: Franklin (Feng)
Publisher:
Total Pages:
Release: 2012
Genre: Electronic books
ISBN:

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Presenting both fundamental knowledge and latest achievements of this rapidly growing field in the last decade, this book offers a complete and concise picture of the functionalization of semiconductor surfaces, describing dry organic reactions in vacuum and wet organic chemistry in solution. --


Lateral Interactions in Organic Functionalization of Semiconductor Surfaces

Lateral Interactions in Organic Functionalization of Semiconductor Surfaces
Author: Bonggeun Shong
Publisher:
Total Pages:
Release: 2014
Genre:
ISBN:

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As the size scale of current electronic devices is reaching a fundamental physical limit, new and innovative materials solutions are required for continuous progress of semiconductor technologies. Moreover, the development of nanotechnologies comprised of nanoscale materials is burgeoning in various fields. Nanomaterials often show completely different properties compared to their bulk, dominated by surfaces or interfaces. Given the importance of these interfaces, organic functionalization of semiconductor surfaces, or direct attachment of organic molecules, is a topic of increasing interest. By creating interfaces between inorganic and organic functionalities, we may be able to tune the properties of the surface with the versatility and tailorability of organic molecules. In order to utilize organic functionalization in such applications, a deep understanding of the adsorption of the molecules on the surfaces is necessary. In this work, we focus on the fundamental aspects of the adsorption chemistry of organic molecules on a semiconductor surface, and on the lateral interactions between the adsorbed molecules. We explore several molecules' adsorption chemistry on the Ge(100)-2×1 surface. Experimental techniques such as infrared spectroscopy, X-ray photoelectron spectroscopy, and temperature programmed desorption, in addition to theoretical methods including density functional theory calculations and Monte Carlo simulations, are utilized. The strongest interaction that drives the adsorption of the molecules on the surface is local bond formation between the molecules and "dimers" of the Ge(100)-2×1 surface, such as C-dative bonding of isocyanides, dissociative adsorption of phenols, and cycloaddition of nitrobenzene. However, weaker lateral interactions between the adsorbates or between adsorbates and the surface are also present, and they significantly affect the adsorption of the molecules, especially at higher coverages of the adsorbates. In studies of adsorption of small molecules that interact with one dimer, we observe a coverage-dependant spectral shift of tert-butyl isocyanide, and explain self-assembly of methanol and ethylene that had been reported in the literature. Slightly larger molecules can interact with other neighboring dimers: we show that phenol undergoes a shift in molecular orientation due to non-covalent adsorbate-surface interactions, and we determine that coverage-dependent evolution of dual and single adsorption products of benzenediols originates from inter-adsorbate interactions. Overall, this dissertation provides new insights toward the organic functionalization of semiconductor surfaces.


Functionalized Nanoscale Materials, Devices and Systems

Functionalized Nanoscale Materials, Devices and Systems
Author: Ashok K. Vaseashta
Publisher: Springer Science & Business Media
Total Pages: 486
Release: 2008-10-23
Genre: Technology & Engineering
ISBN: 1402089031

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The primary objective of the NATO Advanced Study Institute (ASI) titled “Functionalized Nanoscale Materials, Devices, and Systems for Chem. -Bio Sensors, Photonics, and Energy Generation and Storage” was to present a contemporary and comprehensive overview of the field of nanostructured materials and devices and its applications in chem. -bio sensors, nanophotonics, and energy generation and storage devices. The study has become one of the most promising disciplines in science and technology, as it aims at the fundamental understanding of new physical, che- cal, and biological properties of systems and the technological advances arising from their exploration. Such systems are intermediate in size, between the isolated atoms and molecules and bulk material, where the unique transitional characteristics between the two can be understood, controlled, and manipulated. Nanotechnologies refer to the creation and utilization of functional materials, devices, and systems with novel properties and functions that are achieved through the control of matter, atom-by-atom, molecule-by-molecule, or at a micro-mo- cular level. Advances made over the last few years provide new opportunities for scientific and technological developments in nanostructures and nanosystems with new architectures with improved functionality. The field is very actively and rapidly evolving and covers a wide range of disciplines. Recently, various nanoscale materials, devices, and systems with remarkable properties have been developed, with numerous unique applications in chemical and biological sensors, nanophotonics, nano-biotechnology, and in-vivo analysis of cellular processes at the nanoscale.


Synthesis, Functionalization and Surface Treatment of Nanoparticles

Synthesis, Functionalization and Surface Treatment of Nanoparticles
Author: Marie-Isabelle Baraton
Publisher:
Total Pages: 340
Release: 2003
Genre: Science
ISBN:

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Synthesis, Functionalization and Surface Treatment of Nanoparticles is an area of crucial importance in the emerging field of nanotechnology. Controlling the surface chemical composition and mastering its modification at the nanometer scale are critical issues for high-added value applications involving nanoparticles. The basic applications of surface functionalization range from altering the wetting or adhesion characteristics and improving the nanoparticles dispersion in matrices to enhancing the catalytic properties and ordering the interfacial region, and such. The creation of specific surface sites on nanoparticles for selective molecular attachment is considered a promising approach for their applications in nanofabrication, nanopatterning, selfassembly, nanosensors, bioprobes, drug delivery, pigments, photocatalysis, LEDs, etc. This book presents novel and improved synthesis methods and approaches for controlling and functionalizing the nanoparticle surfaces to enhance the overall performance of the nanoparticles for targeted applications.


Functionalized Nanomaterials for Catalytic Application

Functionalized Nanomaterials for Catalytic Application
Author: Chaudhery Mustansar Hussain
Publisher: John Wiley & Sons
Total Pages: 530
Release: 2021-07-21
Genre: Technology & Engineering
ISBN: 1119808979

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Functionalized Nanomaterials for Catalytic Application


Modification of Semiconductor Surfaces Through Si-N Linkages by Wet-chemistry Approaches and Modular Functionalization of Zinc Oxide Surfaces for Chemical Protection of Material Morphology

Modification of Semiconductor Surfaces Through Si-N Linkages by Wet-chemistry Approaches and Modular Functionalization of Zinc Oxide Surfaces for Chemical Protection of Material Morphology
Author: Fei Gao
Publisher:
Total Pages: 214
Release: 2017
Genre:
ISBN: 9780355465655

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Semiconductor substrates are widely used in many applications. Multiple practical uses involving these materials require the ability to tune their physical and chemical properties to adjust those to a specific application. In recent years, surface and interface reactions have affected dramatically device fabrication and material design. Novel surface functionalization techniques with diverse chemical approaches make the desired physical, thermal, electrical, and mechanical properties attainable. ☐ Meanwhile, the modified surface can serve as one of the most important key steps for further assembly process in order to make novel devices and materials. ☐ In the following chapters, novel chemical approaches to the functionalization of silicon and zinc oxide substrates will be reviewed and discussed. The specific functionalities including amines, azides, and alkynes on surfaces of different materials will be applied to address subsequent attachment of large molecules and assembly processes. This research is aimed to develop new strategies for manipulating the surface properties of semiconductor materials in a controlled way. The findings of these investigations will be relevant for future applications in molecular and nanoelectronics, sensing, and solar energy conversion. ☐ The ultimate goals of the projects are: 1) Preparation of an oxygen-and carbon-free silicon surface based exclusively on Si-N linkages for further modification protocols. This project involves designing the surface reaction of hydrazine on chlorine-terminated silicon surface, introduction of additional functional group through dehydrohalogenation condensation reaction and direct covalent attachment of C60. 2) Demonstrating alternative method to anchor carbon nanotubes to solid substrates directly through the carbon cage. This project targets surface modification of silicon and gold substrates with amine-terminated organic monolayers and the covalent attachment of nonfunctionalized and carboxylic acid-functionalized carbon nanotubes. 3) Designing a universal method for the modular functionalization of zinc oxide surface for the chemical protection of material morphology. ☐ This project involves surface modification of zinc oxide nanopowder under vacuum condition with propiolic acid, followed by “click” reaction. ☐ A combination of spectroscopy and microscopy techniques was utilized to study the surface functionalization and assembly processes. Fourier-transform infrared spectroscopy (FT-IR), X-ray photoelectron spectroscopy (XPS) and time of fight secondary ion mass spectroscopy (ToF-SIMS) were employed to elucidate the chemical structure of the modified surface. Atomic force microscopy (AFM), transmission electron microscopy (TEM) and scanning electron microscopy (SEM) were combined to obtain the surface morphological information. Density functional theory (DFT) calculations were applied to confirm the experimental results and to suggest plausible reaction mechanisms. Other complementary techniques for these projects also include nuclear magnetic resonance (NMR) spectroscopy to identify the chemical species on the surface and charge-carrier lifetime measurements to evaluate the electronic property of C60-modified silicon surface.


Chemical Bonding at Surfaces and Interfaces

Chemical Bonding at Surfaces and Interfaces
Author: Anders Nilsson
Publisher: Elsevier
Total Pages: 533
Release: 2011-08-11
Genre: Science
ISBN: 0080551912

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Molecular surface science has made enormous progress in the past 30 years. The development can be characterized by a revolution in fundamental knowledge obtained from simple model systems and by an explosion in the number of experimental techniques. The last 10 years has seen an equally rapid development of quantum mechanical modeling of surface processes using Density Functional Theory (DFT). Chemical Bonding at Surfaces and Interfaces focuses on phenomena and concepts rather than on experimental or theoretical techniques. The aim is to provide the common basis for describing the interaction of atoms and molecules with surfaces and this to be used very broadly in science and technology. The book begins with an overview of structural information on surface adsorbates and discusses the structure of a number of important chemisorption systems. Chapter 2 describes in detail the chemical bond between atoms or molecules and a metal surface in the observed surface structures. A detailed description of experimental information on the dynamics of bond-formation and bond-breaking at surfaces make up Chapter 3. Followed by an in-depth analysis of aspects of heterogeneous catalysis based on the d-band model. In Chapter 5 adsorption and chemistry on the enormously important Si and Ge semiconductor surfaces are covered. In the remaining two Chapters the book moves on from solid-gas interfaces and looks at solid-liquid interface processes. In the final chapter an overview is given of the environmentally important chemical processes occurring on mineral and oxide surfaces in contact with water and electrolytes. Gives examples of how modern theoretical DFT techniques can be used to design heterogeneous catalysts This book suits the rapid introduction of methods and concepts from surface science into a broad range of scientific disciplines where the interaction between a solid and the surrounding gas or liquid phase is an essential component Shows how insight into chemical bonding at surfaces can be applied to a range of scientific problems in heterogeneous catalysis, electrochemistry, environmental science and semiconductor processing Provides both the fundamental perspective and an overview of chemical bonding in terms of structure, electronic structure and dynamics of bond rearrangements at surfaces