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Ionic Landscape Engineering via Perovskite Quantum Dots for Reliable and Energy-Efficient Perovskite Memristors
- Yoon, Sung Su;
- Lee, Sang Heon;
- Lee, Min Jong;
- Kim, Seon Joong;
- Ahn, Hyungju;
- ... Shim, Jae Won;
- 외 1명
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2초록
The rapid growth of data-intensive artificial intelligence workloads has exposed data movement in conventional von Neumann architectures as a critical bottleneck to both enhanced energy efficiency and reduced latency. Among the materials investigated for resistive random-access memory, halide perovskites have garnered extensive attention owing to their tunable electronic properties and low-power operation, making them suitable for high-density memory applications. Although all-inorganic CsPbI3 offers high thermal stability, its reliability is compromised by mobile iodide vacancies causing stochastic switching. To address this limitation, this paper introduces a halide exchange-driven interface engineering strategy using CsPbBr3 quantum dots (QDs). Unlike conventional passivation, this approach enables spontaneous Br- diffusion into the CsPbI3 layer, passivating interfacial defects and promoting structural reorganization at the interface. The optimized device exhibits highly uniform switching and a considerable reduction in SET power consumption from 37.57 to 2.52 mu W. Object-detection simulations demonstrate that while the control device suffers an accuracy loss of 17.9%, the QD-incorporated device maintains robust performance with only a 2.8% loss in accuracy over 2,000 cycles. These results establish QD-driven defect engineering as a robust pathway for developing reliable components for future neuromorphic systems.
키워드
- 제목
- Ionic Landscape Engineering via Perovskite Quantum Dots for Reliable and Energy-Efficient Perovskite Memristors
- 저자
- Yoon, Sung Su; Lee, Sang Heon; Lee, Min Jong; Kim, Seon Joong; Ahn, Hyungju; Park, Han Jung; Shim, Jae Won
- 발행일
- 2026-06-02
- 유형
- Article
- 저널명
- ACS Nano
- 권
- 20
- 호
- 21
- 페이지
- 15336 ~ 15346