Research paperExperimental GrowthExperimental CharacterizationDefect Passivation and Förster-Type Energy Exchange in H₂Pc-TMD Organic-Inorganic HeterostructuresŠ. Mandić, A. Senkić, N. Vujičić2025·10.1016/j.surfin.2026.108444·arXiv:2510.12437AbstractOrganic - inorganic heterostructures (HS) combine the strong light absorption and exciton generation capabilities of organic molecules with the unique excitonic properties of layered transition metal dichalcogenides (TMDs), where the interfacial band alignment dictates the optical response. In this work, we investigate the influence of H₂Pc molecules on CVD-grown MoS₂ and WS₂ monolayers using correlative microscopy techniques - Kelvin probe force microscopy (KPFM), photoluminescence (PL), and Raman spectroscopy. Comprehensive analysis of both electronic and optical properties provides detailed insights into the energy band alignment in these two HS. Despite their similar band alignments, the heterostructures exhibit strikingly different optical signatures. In the case of H₂Pc/MoS₂ HS, the effect of defect healing is more pronounced, while for the H₂Pc/WS₂ HS, strong indications of Förster energy transfer are observed. These findings highlight the critical role of transition dipole moment in addition to spectral overlap between donor emission and acceptor absorption in the design of optoelectronic devices.Read more
As-grown CVD monolayer MoS₂ on Si/SiO₂ substrate.1 preparation11 characterizations2 properties6 figuresExperimentalMoS₂Studied MaterialExpand
H₂Pc-functionalized MoS₂ heterostructure.1 preparation13 characterizations2 properties8 figuresExperimentalMoS₂Studied MaterialC₃₂H₁₈N₈Studied MaterialExpand
As-grown CVD monolayer WS₂ on Si/SiO₂ substrate.1 preparation11 characterizations2 properties6 figuresExperimentalWS₂Studied MaterialExpand
H₂Pc-functionalized WS₂ heterostructure.1 preparation13 characterizations2 properties8 figuresExperimentalWS₂Studied MaterialC₃₂H₁₈N₈Studied MaterialExpand
Freshly cleaved HOPG used for AFM/KPFM tip work-function calibration.1 characterization1 property2 figuresReferenceCReference MaterialExpand
Research paperExperimental GrowthExperimental CharacterizationDefect Passivation and Förster-Type Energy Exchange in H₂Pc-TMD Organic-Inorganic HeterostructuresŠ. Mandić, A. Senkić, N. Vujičić2025·10.1016/j.surfin.2026.108444·arXiv:2510.12437AbstractOrganic - inorganic heterostructures (HS) combine the strong light absorption and exciton generation capabilities of organic molecules with the unique excitonic properties of layered transition metal dichalcogenides (TMDs), where the interfacial band alignment dictates the optical response. In this work, we investigate the influence of H₂Pc molecules on CVD-grown MoS₂ and WS₂ monolayers using correlative microscopy techniques - Kelvin probe force microscopy (KPFM), photoluminescence (PL), and Raman spectroscopy. Comprehensive analysis of both electronic and optical properties provides detailed insights into the energy band alignment in these two HS. Despite their similar band alignments, the heterostructures exhibit strikingly different optical signatures. In the case of H₂Pc/MoS₂ HS, the effect of defect healing is more pronounced, while for the H₂Pc/WS₂ HS, strong indications of Förster energy transfer are observed. These findings highlight the critical role of transition dipole moment in addition to spectral overlap between donor emission and acceptor absorption in the design of optoelectronic devices.Read more
As-grown CVD monolayer MoS₂ on Si/SiO₂ substrate.1 preparation11 characterizations2 properties6 figuresExperimentalMoS₂Studied MaterialExpand
H₂Pc-functionalized MoS₂ heterostructure.1 preparation13 characterizations2 properties8 figuresExperimentalMoS₂Studied MaterialC₃₂H₁₈N₈Studied MaterialExpand
As-grown CVD monolayer WS₂ on Si/SiO₂ substrate.1 preparation11 characterizations2 properties6 figuresExperimentalWS₂Studied MaterialExpand
H₂Pc-functionalized WS₂ heterostructure.1 preparation13 characterizations2 properties8 figuresExperimentalWS₂Studied MaterialC₃₂H₁₈N₈Studied MaterialExpand
Freshly cleaved HOPG used for AFM/KPFM tip work-function calibration.1 characterization1 property2 figuresReferenceCReference MaterialExpand
Research paperExperimental GrowthExperimental CharacterizationDefect Passivation and Förster-Type Energy Exchange in H₂Pc-TMD Organic-Inorganic HeterostructuresŠ. Mandić, A. Senkić, N. Vujičić2025·10.1016/j.surfin.2026.108444·arXiv:2510.12437AbstractOrganic - inorganic heterostructures (HS) combine the strong light absorption and exciton generation capabilities of organic molecules with the unique excitonic properties of layered transition metal dichalcogenides (TMDs), where the interfacial band alignment dictates the optical response. In this work, we investigate the influence of H₂Pc molecules on CVD-grown MoS₂ and WS₂ monolayers using correlative microscopy techniques - Kelvin probe force microscopy (KPFM), photoluminescence (PL), and Raman spectroscopy. Comprehensive analysis of both electronic and optical properties provides detailed insights into the energy band alignment in these two HS. Despite their similar band alignments, the heterostructures exhibit strikingly different optical signatures. In the case of H₂Pc/MoS₂ HS, the effect of defect healing is more pronounced, while for the H₂Pc/WS₂ HS, strong indications of Förster energy transfer are observed. These findings highlight the critical role of transition dipole moment in addition to spectral overlap between donor emission and acceptor absorption in the design of optoelectronic devices.Read more
As-grown CVD monolayer MoS₂ on Si/SiO₂ substrate.1 preparation11 characterizations2 properties6 figuresExperimentalMoS₂Studied MaterialExpand
H₂Pc-functionalized MoS₂ heterostructure.1 preparation13 characterizations2 properties8 figuresExperimentalMoS₂Studied MaterialC₃₂H₁₈N₈Studied MaterialExpand
As-grown CVD monolayer WS₂ on Si/SiO₂ substrate.1 preparation11 characterizations2 properties6 figuresExperimentalWS₂Studied MaterialExpand
H₂Pc-functionalized WS₂ heterostructure.1 preparation13 characterizations2 properties8 figuresExperimentalWS₂Studied MaterialC₃₂H₁₈N₈Studied MaterialExpand
Freshly cleaved HOPG used for AFM/KPFM tip work-function calibration.1 characterization1 property2 figuresReferenceCReference MaterialExpand
Research paperExperimental GrowthExperimental CharacterizationDefect Passivation and Förster-Type Energy Exchange in H₂Pc-TMD Organic-Inorganic HeterostructuresŠ. Mandić, A. Senkić, N. Vujičić2025·10.1016/j.surfin.2026.108444·arXiv:2510.12437AbstractOrganic - inorganic heterostructures (HS) combine the strong light absorption and exciton generation capabilities of organic molecules with the unique excitonic properties of layered transition metal dichalcogenides (TMDs), where the interfacial band alignment dictates the optical response. In this work, we investigate the influence of H₂Pc molecules on CVD-grown MoS₂ and WS₂ monolayers using correlative microscopy techniques - Kelvin probe force microscopy (KPFM), photoluminescence (PL), and Raman spectroscopy. Comprehensive analysis of both electronic and optical properties provides detailed insights into the energy band alignment in these two HS. Despite their similar band alignments, the heterostructures exhibit strikingly different optical signatures. In the case of H₂Pc/MoS₂ HS, the effect of defect healing is more pronounced, while for the H₂Pc/WS₂ HS, strong indications of Förster energy transfer are observed. These findings highlight the critical role of transition dipole moment in addition to spectral overlap between donor emission and acceptor absorption in the design of optoelectronic devices.Read more
As-grown CVD monolayer MoS₂ on Si/SiO₂ substrate.1 preparation11 characterizations2 properties6 figuresExperimentalMoS₂Studied MaterialExpand
H₂Pc-functionalized MoS₂ heterostructure.1 preparation13 characterizations2 properties8 figuresExperimentalMoS₂Studied MaterialC₃₂H₁₈N₈Studied MaterialExpand
As-grown CVD monolayer WS₂ on Si/SiO₂ substrate.1 preparation11 characterizations2 properties6 figuresExperimentalWS₂Studied MaterialExpand
H₂Pc-functionalized WS₂ heterostructure.1 preparation13 characterizations2 properties8 figuresExperimentalWS₂Studied MaterialC₃₂H₁₈N₈Studied MaterialExpand
Freshly cleaved HOPG used for AFM/KPFM tip work-function calibration.1 characterization1 property2 figuresReferenceCReference MaterialExpand