Seoul National University · Engineering
Professor Dong Chan Kim's research lab specializes in the development of advanced nanomaterials and flexible, stretchable, and ultrathin electronic systems for next-generation wearable and implantable devices. The lab focuses on integrating novel materials such as graphene, quantum dots, perovskites, and nanowires into high-performance optoelectronic and electronic devices with exceptional mechanical compliance and functionality. Key research directions include the design of ultrathin, skin-conformal displays, stretchable transistors, and high-sensitivity photodetectors through innovative fabrication techniques like transfer printing and spin-on-patterning. The lab emphasizes materials engineering, device integration, and scalable processing for real-world applications in healthcare, human-machine interfaces, and smart electronics.
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Abstract Recent technological advances in nanomaterials have driven the development of high‐performance light‐emitting devices with flexible and stretchable form factors. Deformability in such devices is mainly achieved by replacing the rigid materials in the device components with flexible nanomaterials and their assemblies (e.g., carbon nanotubes, silver nanowires, graphene, and quantum dots) or with intrinsically soft materials and their composites (e.g., polymers and elastomers). Downscaling
Stretchable electronics are mechanically compatible with a variety of objects, especially with the soft curvilinear contours of the human body, enabling human-friendly electronics applications that could not be achieved with conventional rigid electronics. Therefore, extensive research effort has been devoted to the development of stretchable electronics, from research on materials and unit device, to fully integrated systems. In particular, material-processing technologies that encompass the sy
An ultrathin skin-attachable display is a critical component for an information output port in next-generation wearable electronics. In this regard, quantum dot (QD) light-emitting diodes (QLEDs) offer unique and attractive characteristics for future displays, including high color purity with narrow bandwidths, high electroluminescence (EL) brightness at low operating voltages, and easy processability. Here, ultrathin QLED displays that utilize a passive matrix to address individual pixels are r
Inorganic-organic hybrid perovskite thin films have attracted significant attention as an alternative to silicon in photon-absorbing devices mainly because of their superb optoelectronic properties. However, high-definition patterning of perovskite thin films, which is important for fabrication of the image sensor array, is hardly accomplished owing to their extreme instability in general photolithographic solvents. Here, a novel patterning process for perovskite thin films is described: the hig
Graphene has been highlighted as a platform material in transparent electronics and optoelectronics, including flexible and stretchable ones, due to its unique properties such as optical transparency, mechanical softness, ultrathin thickness, and high carrier mobility. Despite huge research efforts for graphene‐based electronic/optoelectronic devices, there are remaining challenges in terms of their seamless integration, such as the high‐quality contact formation, precise alignment of micrometer
This study reports that the visible-blind ultraviolet (UV) photodetecting properties of ZnO nanowire based photodetectors were remarkably improved by introducing ultrathin insulating MgO layers between the ZnO nanowires and Si substrates. All layers were grown without pause by metal organic chemical vapor deposition and the density and vertical arrangement of the ZnO nanowires were strongly dependent on the thickness of the MgO layers. The sample in which an MgO layer with a thickness of 8 nm wa
A multidimensional ZnO light-emitting diode (LED) structure comprising film/nanorods/substrate was fabricated on a p-type Si substrate using metal organic chemical vapor deposition at relatively low growth temperature. The filmlike top layer used for the metal contact was continuously formed on the ZnO nanorods by varying the growth conditions and the resulting structure allowed us to utilize the nanorods with intense emission as an active layer. We investigated the performance of the resulting
We investigated the effect of the buffer layer thickness on the structural and optical properties of ZnO nanorods grown on Si substrates by metalorganic chemical vapour deposition. Increasing the thickness of the buffer layer significantly enhanced the vertical alignment and density of the nanorods. The ZnO nanorods grown on the buffer layer with a thickness exceeding 500 nm were inclined on the substrate surface, due to the formation of a rugged morphology with a pyramidal shape on the surface
Killian-Jamieson diverticulum is a rare diverticular disease. This disease differs from Zenker's diverticulum in its location and mechanism. Various treatment modality have been attempted, but traditional surgical treatment has been recommended for a symptomatic Killian-Jamieson diverticulum due to the concern of possible nerve injury. We performed surgical treatment by cervical incision. We report here on a case of Killian-Jamieson diverticulum and we briefly review the relevant literature.
Highly sensible ultraviolet (UV) photodetectors were fabricated using vertically aligned dense ZnO nanowires based on mechanical Schottky contact with Pt coated polyimides. The effective mechanical contact was achieved by depositing transparent Al-doped ZnO (AZO) buffer layers prior to the growth of the nanowires, resulting in highly uniform nanowires with similar lengths. The AZO buffer and ZnO nanowires were prepared by atomic layer deposition (ALD) and metalorganic chemical vapor deposition,
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