Thermally Tunable Fading Memory Enabled by Opto-Ionic-Electronic Coupling in AgInP2S6-Gated Two-Dimensional Field-Effect Transistors

Abstract In conventional field-effect transistors (FETs), the gate dielectric primarily provides electrostatic control of the channel and is engineered to remain chemically and electronically inert to ensure stable operation. Emerging studies, however, suggest that functional dielectrics integrated with two-dimensional (2D) semiconductors can introduce additional physical mechanisms that influence device behavior. Here, we investigate AgInP2S6 (AIPS), a high-κ van der Waals thiophosphate, as a functional top-gate dielectric in MoS2 field-effect transistors. The AIPS/MoS2 heterointerface exhibits coupled opto-ionic-electronic interactions, where defect-mediated sub-bandgap photoactivity and photon-assisted Ag+ ion migration independently occur within the dielectric yet collectively modulate the channel conductance. Optical excitation redistributes charge within the dielectric, gradually reconfiguring the ionic landscape and altering the interfacial electrostatic potential. The resulting conductance exhibits strong temperature dependence. At low temperatures (∼0 °C), reduced phonon activity suppresses Ag+ mobility, leading to persistent photoconductivity. At elevated temperatures (∼80 °C), thermally activated ion hopping accelerates relaxation of the stored state. This temperature-dependent retention behavior enables a thermally tunable fading memory response, where the persistence of the optically induced conductance state can be controlled through ionic dynamics. These results highlight how opto-ionic coupling at 2D/dielectric interfaces can introduce stimulus-responsive functionality in transistor architectures, providing a platform for devices that combine sensing and memory behavior within the gate stack.

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Publication Details

Journal
ACS Nano
Published
2026-10-05
DOI
https://doi.org/10.1021/acsnano.5c21149
Primary Topic
2D Materials and Applications
Type
article
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article

Thermally Tunable Fading Memory Enabled by Opto-Ionic-Electronic Coupling in AgInP2S6-Gated Two-Dimensional Field-Effect Transistors

Divya Somvanshi, Saptarshi Das, Anshul Rasyotra, Joan M. Redwing et al.
ACS Nano
2D Materials and Applications
article

Thermally Tunable Fading Memory Enabled by Opto-Ionic-Electronic Coupling in AgInP2S6-Gated Two-Dimensional Field-Effect Transistors

Divya Somvanshi, Saptarshi Das, Anshul Rasyotra, Joan M. Redwing, Rui Gusmão, Lei Ding, Dipanjan Sen, Zdeněk Sofer, Yang Yang, Arpan Ghosh, Subir Ghosh, Anirban Chowdhury
article en

Abstract

Abstract In conventional field-effect transistors (FETs), the gate dielectric primarily provides electrostatic control of the channel and is engineered to remain chemically and electronically inert to ensure stable operation. Emerging studies, however, suggest that functional dielectrics integrated with two-dimensional (2D) semiconductors can introduce additional physical mechanisms that influence device behavior. Here, we investigate AgInP2S6 (AIPS), a high-κ van der Waals thiophosphate, as a functional top-gate dielectric in MoS2 field-effect transistors. The AIPS/MoS2 heterointerface exhibits coupled opto-ionic-electronic interactions, where defect-mediated sub-bandgap photoactivity and photon-assisted Ag+ ion migration independently occur within the dielectric yet collectively modulate the channel conductance. Optical excitation redistributes charge within the dielectric, gradually reconfiguring the ionic landscape and altering the interfacial electrostatic potential. The resulting conductance exhibits strong temperature dependence. At low temperatures (∼0 °C), reduced phonon activity suppresses Ag+ mobility, leading to persistent photoconductivity. At elevated temperatures (∼80 °C), thermally activated ion hopping accelerates relaxation of the stored state. This temperature-dependent retention behavior enables a thermally tunable fading memory response, where the persistence of the optically induced conductance state can be controlled through ionic dynamics. These results highlight how opto-ionic coupling at 2D/dielectric interfaces can introduce stimulus-responsive functionality in transistor architectures, providing a platform for devices that combine sensing and memory behavior within the gate stack.

ACS Nano
Pennsylvania State University (US), Harcourt Butler Technical University (IN), University of Chemistry and Technology, Prague (CZ)
Openalex Percentile: Top 26%
2D Materials and Applications
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