이동우 교수
Dongwoo Lee
성균관대학교 기계공학과 · 공학
연구실 소개
이동우 교수의 연구실은 통합회로 설계 및 나노소자 기반의 저전력 시스템 기술을 핵심으로 하며, 특히 100nm 이하의 미세공정에서 발생하는 게이트 산화막 누설 전류와 서브스브리지 누설 전류의 정확한 분석 및 최적화 기법을 개발하고 있습니다. 고성능·저전력 설계를 위한 수렴형 Vt 할당과 슬립 상태 할당의 융합 기법, 그리고 실시간 시스템의 사전 검증 기법 등도 함께 연구하고 있습니다. 또한, 메조스케일 로봇 및 초고온 세라믹 코ating 등 나노재료와 응용 기술의 융합 연구도 진행 중입니다.
연구 현황
연구 성과 추이
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
주요 논문
15In this paper we address the growing issue of gate oxide leakage current (I/sub gate/) at the circuit level. Specifically, we develop a fast approach to analyze the total leakage power of a large circuit block, considering both I/sub gate/ and subthreshold leakage (I/sub sub/). The interaction between I/sub sub/ and I/sub gate/ complicates analysis in arbitrary CMOS topologies and we propose simple and accurate heuristics based on lookup tables to quickly estimate the state-dependent total leaka
In this paper we address the growing issue of gate oxide leakage current (I gate) at the circuit level. Specifically, we develop a fast approach to analyze the total leakage power of a large circuit block, considering both I gate and subthreshold leakage (I sub). The interaction between I sub and I gate complicates analysis in arbitrary CMOS topologies and we propose simple and accurate heuristics based on table look-ups to quickly estimate the state-dependent total leakage current within 1 % of
We present the design and fabrication of centimeter scale robots, which use inchworm-like motion and bidirectional claws. Two prototypes for different locomotion goals were built utilizing these two characteristics: Type I is designed particularly for horizontal surfaces utilizing two linear actuators and compliant claws. This robot is capable of steering and straight motion by utilizing directionally anisotropic friction. Type II is a variant of Type I that is designed for locomotion on ferroma
Presilicon testing and verification is a crucial step in qualifying the RTL for the subsequent implementation phases. This article presents a novel simulation-based fault injection methodology that is applied at the system description level, as opposed to the lower, flattened RT level, in order to reduce simulation time.
We demonstrate a route to synthesize ultra-high-temperature ceramic coatings of ZrB2 at temperatures below 1300 K using Zr/B reactive multilayers. Highly textured crystalline ZrB2 is formed at modest temperatures because of the absence of any oxide at the interface between Zr and B and the very short diffusion distance that is inherent to the multilayer geometry. The kinetics of the ZrB2 formation reaction is analyzed using high-temperature scanning nanocalorimetry, and the microstructural evolu
We propose a new method that uses a combined approach of sleep-state assignment and threshold voltage (Vt) assignment in a dual-Vt process. While each of these methods has previously been used individually, their combined effect has not been leveraged to date. By combining Vt and sleep-state assignment, leakage current can be dramatically reduced since the circuit is in a known state in standby-mode and only transistors that are off need to be considered for high-Vt assignment. A significant imp
In this paper we develop a fast approach to analyze the total leakage power of a large circuit block, considering both gate leakage, I/sub gate/, and subthreshold leakage, I/sub sub/. The interaction between I/sub sub/ and I/sub gate/ complicates analysis in arbitrary CMOS topologies. We propose simple and accurate heuristics to quickly estimate the state-dependent total leakage current considering the interaction between I/sub sub/ and I/sub gate/. We apply this method to ISCAS benchmark circui
The reaction of Zr/B multilayers with a 50 nm modulation period has been studied using scanning AC nanocalorimetry at a heating rate of approximately 103 K/s. We describe a data reduction algorithm to determine the rate of heat released from the multilayer. Two different exothermic peaks are identified in the nanocalorimetry signal: a shallow peak at low temperature (200–650 °C) and a sharp peak at elevated temperature (650–800 °C). TEM observation shows that the first peak corresponds to hetero
The thermodynamics and kinetics of the solid-state alloying of Zr-B, underlying a variety of synthesis processes of the ultrahigh-temperature ceramic ZrB2, are widely unknown. We investigate the energetics, diffusion kinetics, and structural evolution of this system using first-principles computational methods. We identify the diffusion pathways in the interpenetrating network of interstitial sites for a single B atom and demonstrate a dominant rate-controlling step from the octahedral to the cr
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