A high-speed 2D optoelectronic in-memory computing device with 6-bit storage and pattern recognition capabilities
Jialin Meng, Tianyu Wang, Zhenyu He, Qingxuan Li, Hao Zhu, Ji Li, Lin Chen, Qingqing Sun 等 9 位
Fudan University State Key Laboratory of ASIC and System
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摘要与影响
The explosively developed era of big-data compels the increasing demand of nonvolatile memory with high efficiency and excellent storage properties. Herein, we fabricated a high-speed photoelectric multilevel memory device for neuromorphic computing. The novel two-dimensional (2D) MoSSe with a unique Janus structure was employed as the channel, and the stack of Al 2 O 3 /black phosphorus quantum dots (BPQDs)/Al 2 O 3 was adopted as the dielectric. The storage performance of the resulting memory could be verified by the endurance and retention tests, in which the device could remain stable states of programming and erasing even after 1, 000 cycles and 1, 000 s. The multibit storage could be realized through both different voltage amplitudes and pulse numbers, which could achieve 6 bits (64 distinguishable levels) under pulse width of 50 ns. Furthermore, our memory device also could realize the simulations of synapses in human brain with optical and electric modulations synergistically, such as excitatory post-synaptic current (EPSC), long-term potentiation/depression (LTP/LTD), and spike-timing-dependent plasticity (STDP). Neuromorphic computing was successfully achieved through a high recognition of handwritten digits up to 92.5% after 10 3 epochs. This research is a promising avenue for the future development of efficient memory and artificial neural network systems.
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工程Advanced Memory and Neural Computing
2D Materials and Applications · Phase-change materials and chalcogenides
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