Sungkyunkwan University · 材料科学
Professor Ji-Hee Kim's research lab specializes in the fundamental and applied investigation of two-dimensional van der Waals heterostructures and low-dimensional nanomaterials, with a focus on their optoelectronic and photonic properties. The lab explores carrier dynamics, carrier multiplication, and interfacial charge trapping in 2D materials such as MoS₂, WSe₂, and MoTe₂, aiming to advance next-generation devices including high-efficiency photodetectors, optical memories, and neuromorphic computing components. Additionally, the lab investigates ultrafast optical phenomena in carbon nanotubes and the functional screening of natural marine biomaterials for antiviral applications.
Figures are computed from collected data and may differ slightly.
2D van der Waals (vdWs) heterostructures exhibit intriguing optoelectronic properties in photodetectors, solar cells, and light-emitting diodes. In addition, these materials have the potential to be further extended to optical memories with promising broadband applications for image sensing, logic gates, and synaptic devices for neuromorphic computing. In particular, high programming voltage, high off-power consumption, and circuital complexity in integration are primary concerns in the developm
Carrier multiplication (CM) is a process in which high-energy free carriers relax by generation of additional electron-hole pairs rather than by heat dissipation. CM is promising disruptive improvements in photovoltaic energy conversion and light detection technologies. Current state-of-the-art nanomaterials including quantum dots and carbon nanotubes have demonstrated CM, but are not satisfactory owing to high-energy-loss and inherent difficulties with carrier extraction. Here, we report CM in
Using predesigned trains of femtosecond optical pulses, we have selectively excited coherent phonons of the radial breathing mode of specific-chirality single-walled carbon nanotubes within an ensemble sample. By analyzing the initial phase of the phonon oscillations, we prove that the tube diameter initially increases in response to ultrafast photoexcitation. Furthermore, from excitation profiles, we demonstrate that an excitonic absorption peak of carbon nanotubes periodically oscillates as a
Because of strong Coulomb interaction in two-dimensional van der Waals-layered materials, the trap charges at the interface strongly influence the scattering of the majority carriers and thus often degrade their electrical properties. However, the photogenerated minority carriers can be trapped at the interface, modulate the electron-hole recombination, and eventually influence the optical properties. In this study, we report the role of the hole trap sites on the inconsistency in the electrical
We report the results of the first screening of 89 seaweeds collected from British Columbia, Canada, and Korea for antiviral activity. Various concentrations of methanol extracts of dried algae were tested against 100 plaque-forming units of herpes simplex virus type 1 and Sindbis virus in Vero cell monolayers. Eleven extracts inhibited both viruses, and 22 extracts were active against only one of the viruses. Thus, in total 37% of the species were active, and only two of these extracts also sho
We performed a band modulation of the phase-selectively disordered rutile P25 TiO<sub>2</sub> and disordered anatase P25 TiO<sub>2</sub> and their band structures were confirmed by transient absorption spectroscopy.
Graphdiyne (GDY), a new 2D material, has recently proven excellent performance in photodetector applications due to its direct bandgap and high mobility. Different from the zero-gap of graphene, these preeminent properties made GDY emerge as a rising star for solving the bottleneck of graphene-based inefficient heterojunction. Herein, a highly effective graphdiyne/molybdenum (GDY/MoS<sub>2</sub> ) type-II heterojunction in a charge separation is reported toward a high-performance photodetector.
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