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Multiscale Modeling in Semiconductors

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Release : 2017
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Book Synopsis Multiscale Modeling in Semiconductors by : Yu Jin

Download or read book Multiscale Modeling in Semiconductors written by Yu Jin. This book was released on 2017. Available in PDF, EPUB and Kindle. Book excerpt: This work is aimed to build a model framework to predict device performance based on the formation of defects in order to meet the demand for higher-performance integrated circuits and solar cells. We use a multiscale modeling technique to investigate the properties of some important defects. Those defects play important roles in the study of precipitation, diffusion and recombination in semiconductors. Ab initio (density functional theory, DFT) calculations are used to extract critical parameters at atomic scale and to verify key mechanisms, while continuum modeling is conducted to describe the defects’ kinetics and interactions at device scale. Combining process/device simulation and the fundamental understanding at atomic scale, we can gain insight about how process conditions can affect defect formation and therefore device performance. Thus, this multiscale modeling framework can provide useful guidance in performance optimization and cost reduction. Based on this approach, we have developed models for carbon clustering and associated metal gettering, which can be used to reduce noise in advanced silicon CMOS image sensor. We have also advanced models for oxygen precipitation in silicon by considering morphology evolution, dynamic interactions with point defects, and doping dependency. The carbon and oxygen precipitation processes are modeled using the reduced moment-based model (RKPM) with improved computation efficiency. The impact of charged grain boundaries on device performance, as well as electron beam induced current (EBIC) imaging measurement, of CdTe solar cell has been investigated in detail. Based on our simulation results, we propose that passivation with accumulated grain boundaries will be more beneficial to the performance of CdTe solar cell, while depleted grain boundaries generally degrade performance. We also conduct a series of DFT calculations to investigate the light induced degradation (LID) related defects in silicon solar cell. Based on these calculations, a comprehensive model for light induced degradation is proposed which matches experimental observation under full range of conditions.

Multiscale Modeling of Semiconductor Nanocrystal Synthesis in Templating Media

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Release : 2006
Genre : Chemical templates
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Book Synopsis Multiscale Modeling of Semiconductor Nanocrystal Synthesis in Templating Media by : Borislava Kostova

Download or read book Multiscale Modeling of Semiconductor Nanocrystal Synthesis in Templating Media written by Borislava Kostova. This book was released on 2006. Available in PDF, EPUB and Kindle. Book excerpt:

Multiscale Modeling and Simulation of Aggregation in Crystalline Semiconductor Materials

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Release : 2004
Genre :
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Book Synopsis Multiscale Modeling and Simulation of Aggregation in Crystalline Semiconductor Materials by : Manish Chand Prasad

Download or read book Multiscale Modeling and Simulation of Aggregation in Crystalline Semiconductor Materials written by Manish Chand Prasad. This book was released on 2004. Available in PDF, EPUB and Kindle. Book excerpt:

Multiscale Modeling of Structure-function Relationships of Organic Semiconductors

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Release : 2020
Genre :
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Book Synopsis Multiscale Modeling of Structure-function Relationships of Organic Semiconductors by : Shi Li

Download or read book Multiscale Modeling of Structure-function Relationships of Organic Semiconductors written by Shi Li. This book was released on 2020. Available in PDF, EPUB and Kindle. Book excerpt:

Multiscale Modeling

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Release : 2010-12-09
Genre : Science
Kind : eBook
Book Rating : 400/5 ( reviews)

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Book Synopsis Multiscale Modeling by : Pedro Derosa

Download or read book Multiscale Modeling written by Pedro Derosa. This book was released on 2010-12-09. Available in PDF, EPUB and Kindle. Book excerpt: While the relevant features and properties of nanosystems necessarily depend on nanoscopic details, their performance resides in the macroscopic world. To rationally develop and accurately predict performance of these systems we must tackle problems where multiple length and time scales are coupled. Rather than forcing a single modeling approach to

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