Schwinn Madison C, Rafiq Shahnawaz, Lee Changmin, Bland Matthew P, Song Thomas W, Sangwan Vinod K, Hersam Mark C, Chen Lin X
Department of Chemistry, Northwestern University, Evanston, Illinois 60208, USA.
Department of Materials Science and Engineering, Northwestern University, Evanston, Illinois 60208, USA.
J Chem Phys. 2022 Nov 14;157(18):184701. doi: 10.1063/5.0107791.
Mixed-dimensional van der Waals heterojunctions involve interfacing materials with different dimensionalities, such as a 2D transition metal dichalcogenide and a 0D organic semiconductor. These heterojunctions have shown unique interfacial properties not found in either individual component. Here, we use femtosecond transient absorption to reveal photoinduced charge transfer and interlayer exciton formation in a mixed-dimensional type-II heterojunction between monolayer MoS and vanadyl phthalocyanine (VOPc). Selective excitation of the MoS exciton leads to hole transfer from the MoS valence band to VOPc highest occupied molecular orbit in ∼710 fs. On the contrary, selective photoexcitation of the VOPc layer leads to instantaneous electron transfer from its excited state to the conduction band of MoS in less than 100 fs. This light-initiated ultrafast separation of electrons and holes across the heterojunction interface leads to the formation of an interlayer exciton. These interlayer excitons formed across the interface lead to longer-lived charge-separated states of up to 2.5 ns, longer than in each individual layer of this heterojunction. Thus, the longer charge-separated state along with ultrafast charge transfer times provide promising results for photovoltaic and optoelectronic device applications.
混合维度的范德华异质结涉及将具有不同维度的材料进行界面结合,例如二维过渡金属二卤化物和零维有机半导体。这些异质结展现出了在单个组分中未发现的独特界面性质。在此,我们使用飞秒瞬态吸收光谱来揭示单层二硫化钼(MoS)和钒氧基酞菁(VOPc)之间的混合维度II型异质结中的光致电荷转移和层间激子形成。对MoS激子的选择性激发导致空穴在约710飞秒内从MoS价带转移至VOPc的最高占据分子轨道。相反,对VOPc层的选择性光激发导致电子在不到100飞秒的时间内从其激发态瞬间转移至MoS的导带。这种光引发的电子和空穴在异质结界面上的超快分离导致了层间激子的形成。这些在界面处形成的层间激子导致了长达2.5纳秒的长寿命电荷分离态,比该异质结的每个单独层中的寿命都要长。因此,较长的电荷分离态以及超快的电荷转移时间为光伏和光电器件应用提供了有前景的结果。