A Rapid-prototyping CMOS-RRAM Integration Strategy
Andreas Tsiamis, Spyros Stathopoulos, Themis Prodromakis

TL;DR
This paper presents a cost-effective, rapid-prototyping CMOS-RRAM integration strategy that combines wafer-level and multi-reticle processing techniques, facilitating scalable and power-efficient beyond Moore electronics.
Contribution
It introduces a systematic, technology-agnostic CMOS-RRAM integration method using hybrid processing techniques for seamless transition from research to production.
Findings
Developed a hybrid wafer-level and multi-reticle processing approach.
Enabled in-house RRAM development with CMOS compatibility.
Facilitated transition from prototype to volume manufacturing.
Abstract
Moore's law has long served the semiconductor industry as the driving force for producing ever-advancing electronics technologies. However, given the economic implications and technological challenges associated with the present semiconductor scaling constraints, a shift from a traditional more Moore approach to a beyond Moore paradigm is desirable for sustaining the current pace of innovation beyond the established development route. Resistive random-access memories (RRAM) are one such beyond Moore technology that offers many avenues for innovation, and when integrated with mature complementary metal oxide semiconductors (CMOS), can extend CMOS capabilities in a scalable and power-efficient manner, both in terms of memory and computation. Nevertheless, as emerging and established technologies fuse, existing semiconductor-optimised manufacturing faces significant challenges, while the…
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Taxonomy
TopicsAdvanced Memory and Neural Computing · Semiconductor materials and devices · Ferroelectric and Negative Capacitance Devices
