Intrinsic Electric Field Driven High Sensitive Photodetection in Alloy TMDC MoSSe

ABSTRACT Alloying offers an effective way to improve the functionality of transition metal dichalcogenides (TMDCs) in both fundamental research and optoelectronic applications, as it allows for engineering their electronic and optical properties. This study investigates the optoelectronic properties of CVD‐synthesized alloy MoSSe, which exhibits an inherent out‐of‐plane dipole moment, arising from asymmetry in S and Se atoms on either side of the Mo layer, as confirmed by piezoelectric force microscopy, polarization‐resolved second harmonic generation studies and theoretical first‐principles calculations. Time‐resolved photoluminescence measurements reveal an extended exciton radiative recombination lifetime in MoSSe, attributed to electron‐hole wavefunction separation by the dipole moment, which improves photodetection by facilitating enhanced electron‐hole separation before recombination. The device demonstrates significant responsivity over broad spectral range. By employing the photogating effect, the device response can be switched from slow to fast modes. These findings are further supported by illumination intensity‐dependent photoluminescence and Raman measurements, underscoring the potential of polar TMDCs in future optoelectronic devices.

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Publication Details

Journal
Advanced Optical Materials
Published
2026-09-21
DOI
https://doi.org/10.1002/adom.71740
Primary Topic
2D Materials and Applications
Type
article
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article

Intrinsic Electric Field Driven High Sensitive Photodetection in Alloy TMDC MoSSe

Achintya Singha, Sukanya Ghosh, S. Rath, Shubhadip Moulick et al.
Advanced Optical Materials
2D Materials and Applications
article

Intrinsic Electric Field Driven High Sensitive Photodetection in Alloy TMDC MoSSe

Achintya Singha, Sukanya Ghosh, S. Rath, Shubhadip Moulick, Chumki Nayak, Suvadip Masanta, Atanu Kabiraj, Manotosh Pramanik, Bipul Pal, Subhajit Mahapatra, Bipul Pal
article en

Abstract

ABSTRACT Alloying offers an effective way to improve the functionality of transition metal dichalcogenides (TMDCs) in both fundamental research and optoelectronic applications, as it allows for engineering their electronic and optical properties. This study investigates the optoelectronic properties of CVD‐synthesized alloy MoSSe, which exhibits an inherent out‐of‐plane dipole moment, arising from asymmetry in S and Se atoms on either side of the Mo layer, as confirmed by piezoelectric force microscopy, polarization‐resolved second harmonic generation studies and theoretical first‐principles calculations. Time‐resolved photoluminescence measurements reveal an extended exciton radiative recombination lifetime in MoSSe, attributed to electron‐hole wavefunction separation by the dipole moment, which improves photodetection by facilitating enhanced electron‐hole separation before recombination. The device demonstrates significant responsivity over broad spectral range. By employing the photogating effect, the device response can be switched from slow to fast modes. These findings are further supported by illumination intensity‐dependent photoluminescence and Raman measurements, underscoring the potential of polar TMDCs in future optoelectronic devices.

Advanced Optical Materials
Indian Institute of Science Education and Research Kolkata (IN), Bose Institute (IN), Institute for Basic Science (KR), Indian Institute of Technology Delhi (IN), Central University of Kashmir (IN), S.N. Bose National Centre for Basic Sciences (IN), Indian Institute of Technology Bhubaneswar (IN)
Openalex Percentile: Top 89%
2D Materials and Applications
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