An n-type MoS monolayer grown by chemical vapor deposition method was partially hybridized with an organic semiconducting p-type tetracene thin film. The photoluminescence (PL) intensity in the hybrid region of the MoS/tetracene is clearly lower than that of pristine tetracene because of the charge-transfer effect, which was confirmed by the decrease in exciton lifetimes. Decrease in the temperature led to blue-shift in the PL peak position of MoS layers and, consequently, the PL intensities of both tetracene and MoS considerably increased owing to the decrease in phonon interaction. The PL spectra of bound excitons in the hybrid region were clearly observed at low temperatures, indicating the formation of trap states. The lateral-type n-p heterojunction field-effect transistors (FETs) using the MoS/tetracene hybrid as an active layer showed gate-tunable rectification I- V and anti-ambipolar field-effect characteristics with hysteresis effect. The charge transport characteristics across the n-p heterojunction of the hybrid region of the FET can be explained in terms of the Shockley-Read-Hall trap-intermediated tunneling and Langevin recombination mechanisms. To improve the performance of MoS/tetracene-based FET, a dielectric hexagonal boron nitride (h-BN) thin layer was inserted between the SiO surface and the active MoS layer. We observed the decrease in the hysteresis effect and threshold voltage of the h-BN/MoS/tetracene-based FETs due to the decrease in the number of traps at the interface. The performance of h-BN/MoS/tetracene FET device was also enhanced after the annealing process.

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http://dx.doi.org/10.1021/acsami.8b10525DOI Listing

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