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Engineering incremental resistive switching in TaOx based memristors for brain-inspired computing

机译:工程增量电阻切换基于TaOx brain-inspired记忆电阻器计算

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摘要

Brain-inspired neuromorphic computing is expected to revolutionize the architecture of conventional digital computers and lead to a new generation of powerful computing paradigms, where memristors with analog resistive switching are considered to be potential solutions for synapses. Here we propose and demonstrate a novel approach to engineering the analog switching linearity in TaOx based memristors, that is, by homogenizing the filament growth/dissolution rate via the introduction of an ion diffusion limiting layer (DLL) at the TiN/TaOx interface. This has effectively mitigated the commonly observed two-regime conductance modulation behavior and led to more uniform filament growth (dissolution) dynamics with time, therefore significantly improving the conductance modulation linearity that is desirable in neuromorphic systems. In addition, the introduction of the DLL also served to reduce the power consumption of the memristor, and important synaptic learning rules in biological brains such as spike timing dependent plasticity were successfully implemented using these optimized devices. This study could provide general implications for continued optimizations of memristor performance for neuromorphic applications, by carefully tuning the dynamics involved in filament growth and dissolution.
机译:Brain-inspired神经形态计算预计彻底改变传统的体系结构数字计算机,导致新一代的强大的计算范例,记忆电阻器被认为与模拟电阻切换突触是潜在的解决方案。提出并演示一种新颖的方式工程的模拟开关线性基于TaOx记忆电阻器,均质化通过灯丝增长/溶解率引入离子扩散限制层在锡/ TaOx接口(DLL)。有效地减轻通常观察到two-regime电导调制行为和导致更均匀的丝增长(解散)随时间动态,因此显著提高电导调制线性在神经系统是可取的。此外,DLL的引入也减少记忆电阻的功耗,和重要的突触学习规则高峰时间依赖等生物的大脑可塑性是成功实现使用这些优化设备。一般影响持续优化神经形态记忆电阻的性能应用程序,通过仔细调整动态参与灯丝增长和解散。

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