Dasol Kim
Seoul National University · Engineering
About the Lab
Professor Dasol Kim's research lab specializes in advanced functional materials for next-generation electronic and energy conversion devices. The lab focuses on developing novel thermoelectric, phase-change, and 2D van der Waals semiconductors with tailored electronic and mechanical properties for flexible and wearable electronics. Key research directions include understanding and engineering metavalent bonding, defect and dopant effects in chalcogenide and perovskite materials, and designing high-performance backplane thin-film transistors for flexible displays. The lab integrates experimental and theoretical approaches to uncover fundamental bonding mechanisms and enable practical applications in energy-efficient and sustainable technologies.
Research Overview
Research Output Trend
Figures are computed from collected data and may differ slightly.
Selected Papers
15A home network message specification for white goods based on power line communication is proposed. It is designed for white goods such as air conditioners, refrigerators, washing machines etc. The proposed home network message specification is composed of a virtual device service and a device-specific attribute. For practical implementation, an application software and two types of power line modules are used.
This review aims to provide a technical roadmap and progress update for backplane thin film transistors (TFTs) used in organic light emitting diodes flat panel displays and next-generation flexible displays. In the introduction, we provide a general overview as well as trends in research on backplane TFTs. The main section describes current technical level and future prospects for amorphous metal oxide, semiconducting carbon nanotube, 2D transition metal dichalcogenide, and organic TFTs. The sum
Abstract Plastic/ductile inorganic van der Waals (vdW) thermoelectric semiconductors offer transformative advantages for high‐performance flexible thermoelectric devices, which can displace the self‐charge system of wearable electronics. However, the chemical origin of their plasticity remains unclear. Here, it is reported that the exceptionally large plastic strain of the bulk SnSe 2 crystal results from its polytype conversion under an external force. The SnSe 2 single crystal consists of a la
Although Sb<sub>2</sub>Te<sub>3</sub>, as a candidate material for next-generation memory devices, has attractive properties such as higher operation speed and lower power consumption than Ge<sub>2</sub>Sb<sub>2</sub>Te<sub>5</sub>, its poor stability prevents its application to commercial memory devices. Transition metal dopants provide enhancements in its phase change characteristics, improving both thermal stability and operation energy. However, the enhancement mechanism remains to be suffic
Engineering the electronic band structures upon doping is crucial to improve the thermoelectric performance of materials. Understanding how dopants influence the electronic states near the Fermi level is thus a prerequisite to precisely tune band structures. Here, we demonstrate that the Sn-s states in SnTe contribute to the density of states at the top of the valence band. This is a consequence of the half-filled p-p σ-bond (metavalent bonding) and its resulting symmetry of the orbital phases a
A family of solids including crystalline phase change materials such as GeTe and Sb<sub>2</sub> Te<sub>3</sub> , topological insulators like Bi<sub>2</sub> Se<sub>3,</sub> and halide perovskites such as CsPbI<sub>3</sub> possesses an unconventional property portfolio that seems incompatible with ionic, metallic, or covalent bonding. Instead, evidence is found for a bonding mechanism characterized by half-filled p-bands and a competition between electron localization and delocalization. Different
This paper describes a system to study how small physical perturbations can affect bacterial community behavior in unexpected ways through modulation of diffusion and convective transport of chemical communication molecules and resources. A culture environment that mimics the chemically open characteristic of natural bacterial habitats but with user-defined spatiotemporal control of bacteria microcolonies is realized through use of an aqueous two phase system (ATPS). The ATPS is formulated with
South Korea has an unusual history of circumcision. The mistaken and out-dated notions about circumcision and lack of knowledge of phimosis by physicians seem to be a leading contributory factor to the extraordinarily high circumcision rate.
Reversible conversion over multimillion times in bond types between metavalent and covalent bonds becomes one of the most promising bases for universal memory. As the conversions have been found in metastable states, an extended category of crystal structures from stable states via redistribution of vacancies, research on kinetic behavior of the vacancies is highly in demand. However, it remains lacking due to difficulties with experimental analysis. Herein, the direct observation of the evoluti
Research Areas
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