Vertical Compressive Stress in Fab-Integrated WS2 FETs: An In Situ Electrical and Nanoindentation-Based Study

Abstract Two-dimensional (2D) semiconductors are sensitive to mechanical stress due to their atomic thickness, weak van der Waals interfaces, and ultra-high sensitivity to the surrounding dielectric environment. While the effects of in-plane strain in transition-metal dichalcogenides (TMDs) have been extensively studied, the influence of locally generated out-of-plane compressive stress—commonly introduced during fabrication, packaging, and 3D integration—remains largely unexplored. Here, we apply controlled GPa-level perpendicular stress to monolayer WS2 field-effect transistors (FETs) using a nanoindenter integrated with in situ electrical measurements. Vertical compression reduces the on-state current by up to ∼74.2%, with partial recovery after unloading. Finite element modeling and electro-mechanical TCAD simulations indicate that mobility degradation is dominated by stress-induced enhancement of WS2–oxide interfacial coupling rather than intrinsic band-structure modification. Photoluminescence and Raman spectroscopy reveal that the WS2 lattice remains intact and show ∼0.5% relaxation of intrinsic tensile strain. These results establish a quantitative framework for understanding vertical-stress-driven transport degradation and highlight out-of-plane compression as an emerging reliability challenge for 2D materials in future stacked and heterogeneous device architectures.

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Publication Details

Journal
ACS Applied Electronic Materials
Published
2026-09-18
DOI
https://doi.org/10.1021/acsaelm.6c00701
Primary Topic
2D Materials and Applications
Type
article
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article

Vertical Compressive Stress in Fab-Integrated WS2 FETs: An In Situ Electrical and Nanoindentation-Based Study

Luca Panarella, Oguzhan Orkut Okudur, Kavita Vishwakarma, Fateme Yekefalah et al.
ACS Applied Electronic Materials
2D Materials and Applications
article

Vertical Compressive Stress in Fab-Integrated WS2 FETs: An In Situ Electrical and Nanoindentation-Based Study

Luca Panarella, Oguzhan Orkut Okudur, Kavita Vishwakarma, Fateme Yekefalah, Mario Gonzalez, Quentin Smets, Ben Kaczer, Tom Schram
article en

Abstract

Abstract Two-dimensional (2D) semiconductors are sensitive to mechanical stress due to their atomic thickness, weak van der Waals interfaces, and ultra-high sensitivity to the surrounding dielectric environment. While the effects of in-plane strain in transition-metal dichalcogenides (TMDs) have been extensively studied, the influence of locally generated out-of-plane compressive stress—commonly introduced during fabrication, packaging, and 3D integration—remains largely unexplored. Here, we apply controlled GPa-level perpendicular stress to monolayer WS2 field-effect transistors (FETs) using a nanoindenter integrated with in situ electrical measurements. Vertical compression reduces the on-state current by up to ∼74.2%, with partial recovery after unloading. Finite element modeling and electro-mechanical TCAD simulations indicate that mobility degradation is dominated by stress-induced enhancement of WS2–oxide interfacial coupling rather than intrinsic band-structure modification. Photoluminescence and Raman spectroscopy reveal that the WS2 lattice remains intact and show ∼0.5% relaxation of intrinsic tensile strain. These results establish a quantitative framework for understanding vertical-stress-driven transport degradation and highlight out-of-plane compression as an emerging reliability challenge for 2D materials in future stacked and heterogeneous device architectures.

ACS Applied Electronic Materials
Imec the Netherlands (NL), IMEC (BE), International Medical Equipment Collaborative (US), KU Leuven (BE)
Openalex Percentile: Top 24%
2D Materials and Applications
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Vertical Compressive Stress in Fab-Integrated WS2 FETs: An In Situ Electrical and Nanoindentation-Based Study — Luca Panarella, Oguzhan Orkut Okudur, et al. · ACS Applied Electronic Materials (2026) | TGRS Research Map | TGRS