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A comprehensive model of PMOS NBTI degradation

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TLDR
A comprehensive model for NBTI phenomena within the framework of the standard reaction–diffusion model is constructed and it is demonstrated how to solve the reaction-diffusion equations in a way that emphasizes the physical aspects of the degradation process and allows easy generalization of the existing work.
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This article is published in Microelectronics Reliability.The article was published on 2005-01-01 and is currently open access. It has received 710 citations till now. The article focuses on the topics: Negative-bias temperature instability.

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Proceedings ArticleDOI

Impact of NBTI on SRAM Read Stability and Design for Reliability

TL;DR: A simple solution to recover the SNM of the SRAM cell using a data flipping technique is proposed and the results simulated on BPTM 70nm and 100nm technology are presented.
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Compact Modeling and Simulation of Circuit Reliability for 65-nm CMOS Technology

TL;DR: A unified approach that directly predicts the change of key transistor parameters under various process and design conditions for both NBTI and CHC effects is presented, and it is demonstrated that the proposed method very well predicts the degradation.
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Impact of NBTI on the temporal performance degradation of digital circuits

TL;DR: In this paper, a simple analytical model was proposed to predict the delay degradation of a wide class of digital logic gate based on both worst case and activity dependent threshold voltage change under NBTI.
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The Impact of NBTI Effect on Combinational Circuit: Modeling, Simulation, and Analysis

TL;DR: This paper develops a hierarchical framework for analyzing the impact of NBTI on the performance of logic circuits under various operation conditions, such as the supply voltage, temperature, and node switching activity, and proposes an efficient method to predict the degradation of circuit speed over a long period of time.
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Security of IoT systems: design challenges and opportunities

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References
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Journal ArticleDOI

Anomalous transit-time dispersion in amorphous solids

TL;DR: In this paper, the authors developed a stochastic transport model for the transient photocurrent, which describes the dynamics of a carrier packet executing a time-dependent random walk in the presence of a field-dependent spatial bias and an absorbing barrier at the sample surface.
Book

The physics of amorphous solids

TL;DR: The formation of amorphous solids Amorphous Morphology: The Geometry and Topology of Disorder Chalcogenide Glasses and Organic Polymers The Percolation Model Localization Delocalization Transitions Optical and Electrical Properties Index as discussed by the authors.
Journal ArticleDOI

Negative bias temperature instability: Road to cross in deep submicron silicon semiconductor manufacturing

TL;DR: The negative bias temperature instability (NBTI) commonly observed in p-channel metaloxide-semiconductor field effect transistors when stressed with negative gate voltages at elevated temperatures is discussed in this article.
Journal ArticleDOI

Negative bias stress of MOS devices at high electric fields and degradation of MNOS devices

TL;DR: A detailed study of the increase of the number of surface traps in MOS structures after NBS at temperatures (25-125°C) and fields (400-700 MV/m) comparable to those used in MNOS devices is presented in this article.
Journal ArticleDOI

Characteristics of the Surface‐State Charge (Qss) of Thermally Oxidized Silicon

TL;DR: In this paper, the surface state charge associated with thermally oxidized silicon has been studied experimentally using MOS structures and the results indicate that the surface-state charge can be reproducibly controlled over a range 1010-1012 cm -2, and it is an intrinsic property of the silicon dioxide-silicon system.
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Frequently Asked Questions (2)
Q1. What contributions have the authors mentioned in the paper "A comprehensive model of pmos nbti degradation" ?

In this paper, the authors construct a comprehensive model for NBTI phenomena within the framework of the standard reaction–diffusion model. The authors demonstrate how to solve the reaction–diffusion equations in a way that emphasizes the physical aspects of the degradation process and allows easy generalization of the existing work. The authors also augment this basic reaction–diffusion model by including the temperature and field-dependence of the NBTI phenomena so that reliability projections can be made under arbitrary circuit operating conditions. 

One of the key goal of their future work would be to clarify the role of such processing changes on NBTI performance.