Yonsei University · エネルギー
Professor Xiaoyan Jin's research lab specializes in the design and synthesis of advanced two-dimensional (2D) nanomaterials for energy conversion and storage applications. The lab focuses on defect engineering, heterostructure integration, and lattice engineering to develop high-performance electrocatalysts and nanocomposites for sustainable energy technologies. Key research directions include the creation of atomically thin, holey metal phosphides, MXene-based catalyst supports, and hybrid nanomaterials combining graphene, metal oxides, and fullerene for enhanced electrochemical performance.
Figures are computed from collected data and may differ slightly.
2D nanostructured materials, including inorganic and graphene nanosheets, have evoked plenty of scientific research activity due to their intriguing properties and excellent functionalities. The complementary advantages and common 2D crystal shapes of inorganic and graphene nanosheets render their homogenous mixtures powerful building blocks for novel high-performance functional hybrid materials. The nanometer-level thickness of 2D inorganic/graphene nanosheets allows the achievement of unusuall
Efficient catalysts with minimal content of catalytically active noble metals are essential for the transition to the clean hydrogen economy. Catalyst supports that can immobilize and stabilize catalytic nanoparticles and facilitate the supply of electrons and reactants to the catalysts are needed. Being hydrophilic and more conductive compared with carbons, MXenes have shown promise as catalyst supports. However, the controlled assembly of their 2D sheets creates a challenge. This study establi
The defect engineering of low-dimensional nanostructured materials has led to increased scientific efforts owing to their high efficiency concerning high-performance electrocatalysts that play a crucial role in renewable energy technologies. Herein, we report an efficient methodology for fabricating atomically thin, holey metal-phosphide nanosheets with excellent electrocatalyst functionality. Two-dimensional, subnanometer-thick, holey Ru<sub>2</sub>P nanosheets containing crystal defects were s
The best electrode performance of metal oxide-graphene nanocomposite material for lithium secondary batteries can be achieved by using the colloidal mixture of layered CoO2 and graphene nanosheets as a precursor. The intervention of layered CoO2 nanosheets in-between graphene nanosheets is fairly effective in optimizing the pore and composite structures of the Co3O4-graphene nanocomposite and also in enhancing its electrochemical activity via the depression of interaction between graphene nanosh
The hybridization of inorganic solids with fullerene (C<sub>60</sub>) nanosheets provides an effective way to explore high-performance hybrid-type electrode materials.
The incorporation of metal oxide nanosheets into restacked metal dichalcogenide nanosheets provides an effective way to explore novel multifunctional heterostructures.
A defect engineering of inorganic solids garners great deal of research activities because of its high efficacy to optimize diverse energy-related functionalities of nanostructured materials. In this study, a novel in situ defect engineering route to maximize electrocatalytic redox activity of inorganic nanosheet is developed by using holey nanostructured substrate with strong interfacial electronic coupling. Density functional theory calculations and in situ spectroscopic analyses confirm that
An efficient way to improve the electrocatalyst and Li-O<sub>2</sub> battery performances of metal oxide is developed by an exquisite synergistic control over structural disorder and surface bonding nature. The effects of amorphous nature and surface chemical environment on the functionalities of metal oxide are systematically investigated with well-crystalline and amorphous MnO<sub>2</sub> nanocrystals with/without surface anchoring of highly oxidized iodate clusters. The amorphous MnO<sub>2</s
Exosomes, as a class of small extracellular vesicles closely related to the biological behavior of various types of tumors, are currently attracting research attention in cancer diagnosis and treatment. Regarding cancer diagnosis, the stability of their membrane structure and their wide distribution in body fluids render exosomes promising biomarkers. It is expected that exosome-based liquid biopsy will become an important tool for tumor diagnosis in the future. For cancer treatment, exosomes, a
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