Asymmetric dual-gate-structured one-transistor dynamic random access memory cells for retention characteristics improvement
Hyungjin Kim, Jong‐Ho Lee, Byung‐Gook Park
Abstract
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Hyungjin Kim, Jong‐Ho Lee, Byung‐Gook Park
Abstract
Open-access reader
Abstract One of the major concerns of one-transistor dynamic random access memory (1T-DRAM) is poor retention time. In this letter, a 1T-DRAM cell with two separated asymmetric gates was fabricated and evaluated to improve sensing margin and retention characteristics. It was observed that significantly enhanced sensing margin and retention time over 1 s were obtained using a negatively biased second gate and trapped electrons in the nitride layer because of increased hole capacity in the floating body. These findings indicate that the proposed device could serve as a promising candidate for overcoming retention issues of 1T-DRAM cells.
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Abstract One of the major concerns of one-transistor dynamic random access memory (1T-DRAM) is poor retention time. In this letter, a 1T-DRAM cell with two separated asymmetric gates was fabricated and evaluated to improve sensing margin and retention characteristics. It was observed that significantly enhanced sensing margin and retention time over 1 s were obtained using a negatively biased second gate and trapped electrons in the nitride layer because of increased hole capacity in the floating body. These findings indicate that the proposed device could serve as a promising candidate for overcoming retention issues of 1T-DRAM cells.
Key concepts: Dram, Dynamic random-access memory, Transistor, Retention time, Data retention, Materials science, Optoelectronics, Margin (machine learning)