상세 보기
Ultrathin (<10 nm) Electrochemical Random-Access Memory that Overcomes the Tradeoff between Robust Weight Update and Speed in Neuromorphic Systems
- Jeon, Seonuk;
- Lim, Seokjae;
- Tessler, Nir;
- Woo, Jiyong
WEB OF SCIENCE
0SCOPUS
1초록
Electrochemical random-access memory (ECRAM) devices are a promising candidate for neuromorphic computing, as they mimic synaptic functions by modulating conductance through ion migration. However, the use of a thick electrolyte layer (>40 nm) in conventional ECRAMs leads to an unavoidable tradeoff between synaptic weight updates and operating speed. To address this problem, a Cu-based ultrathin ECRAM (UT-ECRAM) that uses a single 5 nm HfOx active layer and a approximate to 1.2 nm AlOx liner is designed. The highly efficient gate-tunable fast Cu-ion transport in the AlOx/HfOx UT-ECRAM enables 1) near-ideal linearity in weight updates (0.45) even achieved with a pulse width (t(w)) of 50 mu s, 2) dynamic multilevel retention of 10(4) s, and 3) reliable cycling endurance of 10(4) cycles. A numerical analysis based on device scaling quantitatively reveals that a relatively high concentration of field-driven Cu ions (approximate to 10(20) cm(-3)) contributes to each synaptic weight update per gate voltage (V-G) pulse in the UT-ECRAM without becoming deactivated by traversing thicker layers. This improved gate sensitivity can ultimately overcome the linearity and the ratio/speed tradeoff relationships, paving the way for robust neuromorphic synaptic units.
키워드
- 제목
- Ultrathin (<10 nm) Electrochemical Random-Access Memory that Overcomes the Tradeoff between Robust Weight Update and Speed in Neuromorphic Systems
- 저자
- Jeon, Seonuk; Lim, Seokjae; Tessler, Nir; Woo, Jiyong
- 발행일
- 2025-08
- 유형
- Article
- 권
- 7
- 호
- 8
- 언어
- ENG
- 출판사
- WILEY
- 발행국가
- 미국
- ISSN
- E 2640-4567
P 2640-4567