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Dive into the research topics where Seo-Yoon Bae is active.

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Featured researches published by Seo-Yoon Bae.


Proceedings of the National Academy of Sciences of the United States of America | 2012

Edge-carboxylated graphene nanosheets via ball milling

In-Yup Jeon; Yeon-Ran Shin; Gyung-Joo Sohn; Hyun-Jung Choi; Seo-Yoon Bae; Javeed Mahmood; Sun-Min Jung; Jeong-Min Seo; Minjung Kim; Dong Wook Chang; Liming Dai; Jong-Beom Baek

Low-cost, high-yield production of graphene nanosheets (GNs) is essential for practical applications. We have achieved high yield of edge-selectively carboxylated graphite (ECG) by a simple ball milling of pristine graphite in the presence of dry ice. The resultant ECG is highly dispersable in various solvents to self-exfoliate into single- and few-layer (≤ 5 layers) GNs. These stable ECG (or GN) dispersions have been used for solution processing, coupled with thermal decarboxylation, to produce large-area GN films for many potential applications ranging from electronic materials to chemical catalysts. The electrical conductivity of a thermally decarboxylated ECG film was found to be as high as 1214 S/cm, which is superior to its GO counterparts. Ball milling can thus provide simple, but efficient and versatile, and eco-friendly (CO2-capturing) approaches to low-cost mass production of high-quality GNs for applications where GOs have been exploited and beyond.


Nature Communications | 2015

Nitrogenated holey two-dimensional structures

Javeed Mahmood; Eun Kwang Lee; Minbok Jung; Dongbin Shin; In-Yup Jeon; Sun-Min Jung; Hyun-Jung Choi; Jeong-Min Seo; Seo-Yoon Bae; So-Dam Sohn; Noejung Park; Joon Hak Oh; Hyung-Joon Shin; Jong-Beom Baek

Recent graphene research has triggered enormous interest in new two-dimensional ordered crystals constructed by the inclusion of elements other than carbon for bandgap opening. The design of new multifunctional two-dimensional materials with proper bandgap has become an important challenge. Here we report a layered two-dimensional network structure that possesses evenly distributed holes and nitrogen atoms and a C2N stoichiometry in its basal plane. The two-dimensional structure can be efficiently synthesized via a simple wet-chemical reaction and confirmed with various characterization techniques, including scanning tunnelling microscopy. Furthermore, a field-effect transistor device fabricated using the material exhibits an on/off ratio of 107, with calculated and experimental bandgaps of approximately 1.70 and 1.96 eV, respectively. In view of the simplicity of the production method and the advantages of the solution processability, the C2N-h2D crystal has potential for use in practical applications.


ACS Nano | 2011

Large-Area Graphene Films by Simple Solution Casting of Edge-Selectively Functionalized Graphite

Seo-Yoon Bae; In-Yup Jeon; Jieun Yang; Noejung Park; Hyeon Suk Shin; Sungjin Park; Rodney S. Ruoff; Liming Dai; Jong-Beom Baek

We report edge-selective functionalization of graphite (EFG) for the production of large-area uniform graphene films by simply solution-casting EFG dispersions in dichloromethane on silicon oxide substrates, followed by annealing. The resultant graphene films show ambipolar transport properties with sheet resistances of 0.52-3.11 kΩ/sq at 63-90% optical transmittance. EFG allows solution processing methods for the scalable production of electrically conductive, optically transparent, and mechanically robust flexible graphene films for use in practice.


Nature Communications | 2015

Antimony-doped graphene nanoplatelets.

In-Yup Jeon; Min Kyoung Choi; Hyun-Jung Choi; Sun-Min Jung; Minjung Kim; Jeong-Min Seo; Seo-Yoon Bae; Seonyoung Yoo; Guntae Kim; Hu Young Jeong; Noejung Park; Jong-Beom Baek

Heteroatom doping into the graphitic frameworks have been intensively studied for the development of metal-free electrocatalysts. However, the choice of heteroatoms is limited to non-metallic elements and heteroatom-doped graphitic materials do not satisfy commercial demands in terms of cost and stability. Here we realize doping semimetal antimony (Sb) at the edges of graphene nanoplatelets (GnPs) via a simple mechanochemical reaction between pristine graphite and solid Sb. The covalent bonding of the metalloid Sb with the graphitic carbon is visualized using atomic-resolution transmission electron microscopy. The Sb-doped GnPs display zero loss of electrocatalytic activity for oxygen reduction reaction even after 100,000 cycles. Density functional theory calculations indicate that the multiple oxidation states (Sb3+ and Sb5+) of Sb are responsible for the unusual electrochemical stability. Sb-doped GnPs may provide new insights and practical methods for designing stable carbon-based electrocatalysts.


Journal of Materials Chemistry | 2011

Wedging graphite into graphene and graphene-like platelets by dendritic macromolecules

In-Yup Jeon; Hyun-Jung Choi; Seo-Yoon Bae; Dong Wook Chang; Jong-Beom Baek

We report in situ ‘direct’ grafting of dendritic macromolecular wedges to the edges of ‘pristine’ graphite. Because of the three-dimensional molecular architectures, the solubility of dendritic macromolecules is profoundly improved compared with that of their linear analogues. As a result, the resultant macromolecular wedge grafted graphite disperses well in common solvents. On the basis of results from wide-angle X-ray diffraction (WAXD), scanning electron microscopy (SEM), transmission electron microscopy (TEM) and atomic force microscopy (AFM), HPEK is selectively grafted at the edges of graphite. For the efficient delamination of graphite into graphene and graphene-like platelets, the dendritic macromolecules with numerous polar periphery groups not only acts as macromolecular wedges but provides chemical affinity to solvents.


Nanoscale Research Letters | 2010

Edge-Functionalization of Pyrene as a Miniature Graphene via Friedel–Crafts Acylation Reaction in Poly(Phosphoric Acid)

In-Yup Jeon; Eun-Kyoung Choi; Seo-Yoon Bae; Jong-Beom Baek

The feasibility of edge-functionalization of graphite was tested via the model reaction between pyrene and 4-(2,4,6-trimethylphenyloxy)benzamide (TMPBA) in poly(phosphoric acid) (PPA)/phosphorous pentoxide (P2O5) medium. The functionalization was confirmed by various characterization techniques. On the basis of the model study, the reaction condition could be extended to the edge-functionalization of graphite with TMPBA. Preliminary results showed that the resultant TMPBA-grafted graphite (graphite-g-TMPBA) was found to be readily dispersible in N-methyl-2-pyrrolidone (NMP) and can be used as a precursor for edge-functionalized graphene (EFG).


Nature Communications | 2017

Forming a three-dimensional porous organic network via solid-state explosion of organic single crystals

Seo-Yoon Bae; Dongwook Kim; Dongbin Shin; Javeed Mahmood; In-Yup Jeon; Sun-Min Jung; Sun-Hee Shin; Seok-Jin Kim; Noejung Park; Myoung Soo Lah; Jong-Beom Baek

Solid-state reaction of organic molecules holds a considerable advantage over liquid-phase processes in the manufacturing industry. However, the research progress in exploring this benefit is largely staggering, which leaves few liquid-phase systems to work with. Here, we show a synthetic protocol for the formation of a three-dimensional porous organic network via solid-state explosion of organic single crystals. The explosive reaction is realized by the Bergman reaction (cycloaromatization) of three enediyne groups on 2,3,6,7,14,15-hexaethynyl-9,10-dihydro-9,10-[1,2]benzenoanthracene. The origin of the explosion is systematically studied using single-crystal X-ray diffraction and differential scanning calorimetry, along with high-speed camera and density functional theory calculations. The results suggest that the solid-state explosion is triggered by an abrupt change in lattice energy induced by release of primer molecules in the 2,3,6,7,14,15-hexaethynyl-9,10-dihydro-9,10-[1,2]benzenoanthracene crystal lattice.Porous organic networks are of great fundamental and technological interest. Here, the authors synthesize a three-dimensional porous organic network with high specific surface area via a solid-state explosive reaction of hexaethynyl triptycene single crystals containing primer molecules.


Chemistry of Materials | 2011

Formation of Large-Area Nitrogen-Doped Graphene Film Prepared from Simple Solution Casting of Edge-Selectively Functionalized Graphite and Its Electrocatalytic Activity

In-Yup Jeon; Dingshan Yu; Seo-Yoon Bae; Hyun-Jung Choi; Dong Wook Chang; Liming Dai; Jong-Beom Baek


Chemical Communications | 2010

High-yield exfoliation of three-dimensional graphite into two-dimensional graphene-like sheets

Eun-Kyoung Choi; In-Yup Jeon; Seo-Yoon Bae; Hwa-Jung Lee; Hyeon Suk Shin; Liming Dai; Jong-Beom Baek


Advanced Functional Materials | 2015

Scalable Production of Edge-Functionalized Graphene Nanoplatelets via Mechanochemical Ball-Milling

In-Yup Jeon; Seo-Yoon Bae; Jeong-Min Seo; Jong-Beom Baek

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Jong-Beom Baek

Ulsan National Institute of Science and Technology

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In-Yup Jeon

Ulsan National Institute of Science and Technology

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Liming Dai

Case Western Reserve University

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Dong Wook Chang

Pukyong National University

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Hyun-Jung Choi

Ulsan National Institute of Science and Technology

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Sun-Min Jung

Ulsan National Institute of Science and Technology

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Javeed Mahmood

Ulsan National Institute of Science and Technology

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Jeong-Min Seo

Ulsan National Institute of Science and Technology

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Noejung Park

Ulsan National Institute of Science and Technology

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