Jaeyong Song
Pohang University of Science and Technology · Materials Science
About the Lab
Professor Jaeyong Song's research lab specializes in advanced nanomaterials and thin films for next-generation energy conversion and storage applications. The lab focuses on developing flexible and thin-film thermoelectric materials, including bismuth telluride nanostructures, black phosphorus composites, and solution-processed graphene, to enhance thermoelectric performance through defect engineering and nanostructuring. A key research direction involves designing novel cell architectures—such as coplanar lithium-ion battery configurations and 3D thermoelectric heterostructures—to enable ultra-thin, flexible, and high-performance devices for wearable electronics and biomedical applications. The lab also investigates ferroelectric thin films and their size-dependent properties to push the limits of nanoscale electronic functionality.
Research Overview
Research Output Trend
Figures are computed from collected data and may differ slightly.
Selected Papers
15Most of the existing flexible lithium ion batteries (LIBs) adopt the conventional cofacial cell configuration where anode, separator, and cathode are sequentially stacked and so have difficulty in the integration with emerging thin LIB applications, such as smart cards and medical patches. In order to overcome this shortcoming, herein, we report a coplanar cell structure in which anodes and cathodes are interdigitatedly positioned on the same plane. The coplanar electrode design brings advantage
Thermoelectric figure-of-merits (ZT) are enhanced or degraded by crystal defects such as twins and excess atoms that are correlated with thermal conductivity (k) and carrier concentration (n). For Bi2Te3, it is unclear whether the crystal defects can enhance ZT without a degradation in the thermopower factor. In the present study, n-type Bi2Te3 nanowires (NWs) are electrochemically synthesized to have twin-free (TF) or twin-containing (TC) microstructures with a ZT of 0.10 and 0.08, respectively
Abstract Solution‐phase exfoliated graphene has always been an attractive material for flexible thermoelectric applications, but traditional oxidative routes suffer from poor flake quality and a lack of quality doping techniques to make complementary n‐type and p‐type films. Here, it is demonstrated that by changing the adsorbed surfactant during the intercalation‐exfoliation process (polyvinylpyrrolidone for n‐type, pyrenebutyric acid for p‐type), both extremely high electrical conductivity (30
In recent years, two-dimensional black phosphorus (BP) has seen a surge of research because of its unique optical, electronic, and chemical properties. BP has also received interest as a potential thermoelectric material because of its high Seebeck coefficient and excellent charge mobility, but further development is limited by the high cost and poor scalability of traditional BP synthesis techniques. In this work, high-quality BP is synthesized using a low-cost method and utilized in a PEDOT:PS
Research Areas
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