Hf/Zr Superlattice-Based High-κ Gate Dielectrics with Dipole Layer Engineering for Advanced CMOS.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 41502076.
- Also identified by DOI 10.1021/acsnano.5c15062 and PMC identifier 12825384.
- Licence recorded as CC BY.
- The licence permits redistribution, so the abstract is shown in full and the full text is available from the publisher.
Abstract
Advanced logic transistors require gate dielectrics that achieve subnanometer equivalent oxide thickness (EOT), suppress leakage, and satisfy three key requirements: (i) compatibility with RMG-like high-temperature processing, (ii) sufficient <i>V</i><sub>th</sub> tunability for multi-<i>V</i><sub>th</sub> design, and (iii) high device reliability. However, meeting all of these requirements at once has been difficult with conventional high-κ systems. In this work, we demonstrate that our Hf/Zr-based gate stacks quantitatively satisfy these conditions. (i) After a 700 °C N<sub>2</sub> anneal, the HZH superlattice achieves EOT = 7.3 Å, lower than conventional HfO<sub>2</sub>-only stacks (8.5 Å) while maintaining comparable leakage. (ii) Embedding a 3 Å Al<sub>2</sub>O<sub>3</sub> dipole within the HfO<sub>2</sub>/ZrO<sub>2</sub>/HfO<sub>2</sub> superlattice (HZHA) breaks the conventional dipole trade-off, achieving an 8.4 Å EOT─lower than the 9.0 Å of a standard HfO<sub>2</sub>/Al<sub>2</sub>O<sub>3</sub> stack─while providing a > 200 mV <i>V</i><sub>FB</sub> shift, thereby enabling multi-<i>V</i><sub>th</sub> tuning without compromising scaling. (iii) Furthermore, under -2 V negative-bias temperature stress at 125 °C for 100 s, HZHA and HA exhibit comparable <i>V</i><sub>FB</sub> drifts of 87 mV and 97 mV, respectively, confirming that strong <i>V</i><sub>th</sub> tunability and subnanometer EOT can be achieved without compromising stability. In addition to these quantitative advances, this study reveals previously unreported physical insights into the dipole behavior and interfacial diffusion in ultrathin Hf/Zr multilayers. These results establish HZHA as an RMG-compatible, <i>V</i><sub>th</sub>-tunable, low-EOT dielectric platform capable of supporting logic scaling beyond the 1 nm frontier.