Osamah Kharsah, Jonah von Kuczkowski, Ahmed Shahin, Rouaa Albalkhi, Aya Al-Amwi, Ibrahim Titi, Yossarian Liebsch, Oliver Altenhoff, Ulrich Hagemann, Anke Hierzenberger, Kevin Musselman, Marika Schleberger
Practical implementation of two-dimensional (2D) transition-metal dichalcogenides (TMDCs) in novel optoelectronics requires a fundamental understanding of carrier dynamics and interfacial states at 2D/3D heterostructures. Herein, a mixed-dimensional p-n junction based on monolayer tungsten disulfide ( WS 2 ) and cuprous oxide ( Cu 2 O ) is investigated. An anomalous emission (AE) at 1.66 eV is identified at room temperature, which is in the same spectral range as oxygen-related Cu 2 O defect luminescence, but is enhanced at the heterointerface under 457 nm excitation. While this sub-bandgap feature resembles the spectral signature of an interlayer exciton (ILX), its combined excitation-wavelength, power, temperature, and bias dependence suggests that the emission is predominantly defect-mediated and modified by the WS 2 / Cu 2 O interface. External modulation of the AE intensity is demonstrated via vertical bias, yielding an approximately 45% maximum-to-minimum modulation of the normalized AE/ Cu 2 O PL area ratio over the applied bias range from - 2 V to + 2 V at 93 K. This modulation is asymmetric, showing a correlation between AE quenching and photocurrent generation under reverse bias. The spectral response peaks near the open-circuit condition, marking a regime of efficient carrier accumulation and interfacial trapping. These findings identify WS 2 / Cu 2 O as a model hybrid interface for probing electrically tunable defect-mediated recombination in mixed-dimensional heterostructures.