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DOE OSTI · 3029560

Single-Cell Universal Logic-in-Memory Using 2T-nC FeRAM: An Area and Energy-Efficient Approach for Bulk Bitwise Computation

Abstract

This work presents a novel approach to configure 2T-nC ferroelectric RAM (FeRAM) for performing single cell logic-in-memory operations, highlighting its advantages in energy-efficient computation over conventional DRAM-based approaches. Unlike conventional 1T-1C dynamic RAM (DRAM), which incurs refresh overhead, 2T-nC FeRAM offers a promising alternative as a non-volatile memory solution with low energy consumption. Our key findings include the potential of quasi-nondestructive readout (QNRO) sensing in 2T-nC FeRAM for logic-in-memory (LiM) applications, demonstrating its inherent capability to perform inverting logic without requiring external modifications, a feature absent in traditional 1T-1C DRAM. We successfully implement the MINORITY function within a single cell of 2T-nC FeRAM, enabling universal NAND and NOR logic, validated through SPICE simulations and experimental data. Additionally, the research investigates the feasibility of 3D integration with 2T-nC FeRAM, showing substantial improvements in storage and computational density, facilitating bulk-bitwise computation. Our evaluation of eight real-world, data-intensive applications reveals that 2T-nC FeRAM achieves 2× higher performance and 2.5× lower energy consumption compared to DRAM. Furthermore, the thermal stability of stacked 2T-nC FeRAM is validated, confirming its reliable operation when integrated on a compute die. These findings emphasize the advantages of 2T-nC FeRAM for LiM, offering superior performance and energy efficiency over conventional DRAM.

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BibTeXRIS

Biswas, Rudra [Pennsylvania State Univ., University Park, PA (United States)], Duan, Jiahui [University of Notre Dame, IN (United States)], Deng, Shan [University of Notre Dame, IN (United States)], Niu, Xuezhong [University of Notre Dame, IN (United States)], Qin, Yixin [University of Notre Dame, IN (United States)], Panigrahi, Prapti [Pennsylvania State Univ., University Park, PA (United States)], Parekh, Varun [Pennsylvania State Univ., University Park, PA (United States)], Joshi, Rajiv [IBM, Yorktown Heights, NY (United States). Thomas J. Watson Research Center], Ni, Kai [University of Notre Dame, IN (United States)], Narayanan, Vijaykrishnan [Pennsylvania State Univ., University Park, PA (United States)]. 2025-09-29. Single-Cell Universal Logic-in-Memory Using 2T-nC FeRAM: An Area and Energy-Efficient Approach for Bulk Bitwise Computation. https://doi.org/10.1109/socc66126.2025.11235435

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