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Published by Elsevier - Health Sciences Division, 2023
ISBN 10: 0323856306 ISBN 13: 9780323856300
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Published by Elsevier Science Publishing Co Inc, US, 2020
ISBN 10: 0128223421 ISBN 13: 9780128223420
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Add to basketPaperback. Condition: New. Rising consumer demand for low power consumption electronics has generated a need for scalable and reliable memory devices with low power consumption. At present, scaling memory devices and lowering their power consumption is becoming more difficult due to unresolved challenges, such as short channel effect, Drain Induced Barrier Lowering (DIBL), and sub-surface punch-through effect, all of which cause high leakage currents. As a result, the introduction of different memory architectures or materials is crucial. Nanomaterials-based Charge Trapping Memory Devices provides a detailed explanation of memory device operation and an in-depth analysis of the requirements of future scalable and low powered memory devices in terms of new materials properties. The book presents techniques to fabricate nanomaterials with the desired properties. Finally, the book highlights the effect of incorporating such nanomaterials in memory devices. This book is an important reference for materials scientists and engineers, who are looking to develop low-powered solutions to meet the growing demand for consumer electronic products and devices.
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Published by Elsevier - Health Sciences Division, 2023
ISBN 10: 0323856306 ISBN 13: 9780323856300
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Add to basketCondition: New. Über den AutorrnrnProfessor Ammar Nayfeh was born in Urbana IL in 1979. He received his bachelor s degree from the University of Illinois Urbana Champaign in 2001 in electrical engineering and his master s degree in 2003 from Stanford Unive.
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Published by Elsevier Science Publishing Co Inc, US, 2020
ISBN 10: 0128223421 ISBN 13: 9780128223420
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Add to basketPaperback. Condition: New. Rising consumer demand for low power consumption electronics has generated a need for scalable and reliable memory devices with low power consumption. At present, scaling memory devices and lowering their power consumption is becoming more difficult due to unresolved challenges, such as short channel effect, Drain Induced Barrier Lowering (DIBL), and sub-surface punch-through effect, all of which cause high leakage currents. As a result, the introduction of different memory architectures or materials is crucial. Nanomaterials-based Charge Trapping Memory Devices provides a detailed explanation of memory device operation and an in-depth analysis of the requirements of future scalable and low powered memory devices in terms of new materials properties. The book presents techniques to fabricate nanomaterials with the desired properties. Finally, the book highlights the effect of incorporating such nanomaterials in memory devices. This book is an important reference for materials scientists and engineers, who are looking to develop low-powered solutions to meet the growing demand for consumer electronic products and devices.
Language: English
Published by Elsevier - Health Sciences Division Mär 2023, 2023
ISBN 10: 0323856306 ISBN 13: 9780323856300
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Taschenbuch. Condition: Neu. Neuware - Silicon-Germanium Alloys for Photovoltaic Applications provides a comprehensive look at the use of Silicon-Germanium alloys Si1-xGex in photovoltaics. Different methods of Si1-xGex alloy deposition are reviewed, including their optical and material properties as function of Ge% are summarized, with SiGe use in photovoltaic applications analyzed. Fabrication and characterization of single junction Si1-xGex solar cells on Si using a-Si as emitter is discussed, with a focus on the effect of different Ge%. Further, the book highlights the use Si1-xGex as a template for lattice matched deposition of III-V layers on Si, along with its challenges and benefits, including financial aspects.
Language: English
Published by Elsevier - Health Sciences Division, 2023
ISBN 10: 0443186731 ISBN 13: 9780443186738
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Add to basketCondition: New. Inhaltsverzeichnis1. Introduction to the metal-silicon binary system 2. Experimental and theoretical characterization of nanostructures 3. Synthesis of nano wires and nano particles using metal-assisted chemical etching 4. Plasma-meta.