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Stress and Strain Engineering at Nanoscale in Semiconductor Devices: Chinmay K. Maiti Stress and Strain Engineering at Nanoscale in Semiconductor Devices
Chinmay K. Maiti
R1,887 Discovery Miles 18 870 Ships in 10 - 15 working days

Anticipating a limit to the continuous miniaturization (More-Moore), intense research efforts are being made to co-integrate various functionalities (More-than-Moore) in a single chip. Currently, strain engineering is the main technique used to enhance the performance of advanced semiconductor devices. Written from an engineering applications standpoint, this book encompasses broad areas of semiconductor devices involving the design, simulation, and analysis of Si, heterostructure silicongermanium (SiGe), and III-N compound semiconductor devices. The book provides the background and physical insight needed to understand the new and future developments in the technology CAD (TCAD) design at the nanoscale. Features Covers stressstrain engineering in semiconductor devices, such as FinFETs and III-V Nitride-based devices Includes comprehensive mobility model for strained substrates in global and local strain techniques and their implementation in device simulations Explains the development of strain/stress relationships and their effects on the band structures of strained substrates Uses design of experiments to find the optimum process conditions Illustrates the use of TCAD for modeling strain-engineered FinFETs for DC and AC performance predictions This book is for graduate students and researchers studying solid-state devices and materials, microelectronics, systems and controls, power electronics, nanomaterials, and electronic materials and devices.

Fabless Semiconductor Manufacturing - In the Era of Internet of Things (Hardcover): Chinmay K. Maiti Fabless Semiconductor Manufacturing - In the Era of Internet of Things (Hardcover)
Chinmay K. Maiti
R3,624 Discovery Miles 36 240 Ships in 10 - 15 working days

First book to introduce strain engineering in the design of flexible and stretchable electronic devices Computer aided microelectronics education to enhance students learning Presents detailed examples of two- and three-dimensional process and device simulation Broad coverage spanning conventional to the state-of-the-art stress- and strain-engineered devices at 7 nm and smaller technology nodes

Stress and Strain Engineering at Nanoscale in Semiconductor Devices (Hardcover): Chinmay K. Maiti Stress and Strain Engineering at Nanoscale in Semiconductor Devices (Hardcover)
Chinmay K. Maiti
R4,936 Discovery Miles 49 360 Ships in 10 - 15 working days

Anticipating a limit to the continuous miniaturization (More-Moore), intense research efforts are being made to co-integrate various functionalities (More-than-Moore) in a single chip. Currently, strain engineering is the main technique used to enhance the performance of advanced semiconductor devices. Written from an engineering applications standpoint, this book encompasses broad areas of semiconductor devices involving the design, simulation, and analysis of Si, heterostructure silicongermanium (SiGe), and III-N compound semiconductor devices. The book provides the background and physical insight needed to understand the new and future developments in the technology CAD (TCAD) design at the nanoscale. Features Covers stressstrain engineering in semiconductor devices, such as FinFETs and III-V Nitride-based devices Includes comprehensive mobility model for strained substrates in global and local strain techniques and their implementation in device simulations Explains the development of strain/stress relationships and their effects on the band structures of strained substrates Uses design of experiments to find the optimum process conditions Illustrates the use of TCAD for modeling strain-engineered FinFETs for DC and AC performance predictions This book is for graduate students and researchers studying solid-state devices and materials, microelectronics, systems and controls, power electronics, nanomaterials, and electronic materials and devices.

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