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Phase-change random access memory: A scalable technology

机译:相变随机存取存储器:可扩展的技术

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Nonvolatile RAM using resistance contrast in phase-change materials [or phase-change RAM (PCRAM)J is a promising technology for future storage-class memory. However, such a technology can succeed only if it can scale smaller in size, given the increasingly tiny memory cells that are projected for future technology nodes (i.e., generations). We first discuss the critical aspects that may affect the scaling of PCRAM, including materials properties, power consumption during programming and read operations, thermal cross-talk between memory cells, and failure mechanisms. We then discuss experiments that directly address the scaling properties of the phase-change materials themselves, including studies of phase transitions in both nanoparticles and ultrathin films as a function of particle size and film thickness. This work in materials directly motivated the successful creation of a series of prototype PCRAM devices, which have been fabricated and tested at phase-change material cross-sections with extremely small dimensions as low as 3 nm × 20 nm. These device measurements provide a clear demonstration of the excellent scaling potential offered by this technology, and they are also consistent with the scaling behavior predicted by extensive device simulations. Finally, we discuss issues of device integration and cell design, manufacturability, and reliability.
机译:在相变材料[或相变RAM(PCRAM)]中使用电阻对比的非易失性RAM对于未来的存储级存储器是一种很有前途的技术。但是,鉴于为将来的技术节点(即世代)投影的存储单元越来越小,这种技术只有在尺寸缩小时才能成功。我们首先讨论可能影响PCRAM缩放的关键方面,包括材料属性,编程和读取操作期间的功耗,存储单元之间的热串扰以及故障机制。然后,我们讨论直接解决相变材料本身的缩放特性的实验,包括研究纳米颗粒和超薄膜中的相变与粒径和膜厚的关系。材料方面的这项工作直接促使了一系列原型PCRAM器件的成功创建,这些PCRAM器件已经在相变材料横截面上进行了制造和测试,这些相变材料的横截面尺寸非常小,低至3 nm×20 nm。这些设备测量结果清楚地展示了此技术提供的出色缩放潜力,并且还与广泛的设备仿真所预测的缩放行为一致。最后,我们讨论了设备集成和单元设计,可制造性和可靠性问题。

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