Dong-Mok Hwang
Sungkyunkwan University · Materials Science
About the Lab
Professor Dong-Mok Hwang's research lab specializes in advanced 2D materials and their applications in next-generation electronics and energy technologies. The lab focuses on developing novel heterostructures and interfaces—particularly involving transition metal dichalcogenides (TMDCs), graphene, and tin-based anodes—to overcome critical challenges such as high contact resistance, limited pH sensitivity, and volume expansion in batteries. By employing innovative strategies like ultrathin interlayers, defect-engineered graphene, optical gating, and advanced transfer techniques, the lab aims to enhance device performance and scalability. Their work bridges fundamental materials science with practical device integration, targeting applications in flexible electronics, biosensors, and high-performance batteries.
Research Overview
Research Output Trend
Figures are computed from collected data and may differ slightly.
Selected Papers
15Two-dimensional transition metal dichalcogenides (TMDCs) have emerged as promising materials for next-generation electronics due to their excellent semiconducting properties. However, high contact resistance at the metal-TMDC interface plagues the realization of high-performance devices. Here, an effective metal-interlayer-semiconductor (MIS) contact is demonstrated, wherein an ultrathin ZnO interlayer is inserted between the metal electrode and MoS<sub>2</sub>, providing damage-free and clean i
The conventional pH sensor based on the graphene ion-sensitive field-effect transistor (Gr-ISFET), which operates with an electrostatic gating at the solution-graphene interface, cannot have a pH sensitivity above the Nernst limit (∼59 mV/pH). However, for accurate detection of the pH levels of an aqueous solution, an ultrasensitive pH sensor that can exceed the theoretical limit is required. In this study, a novel Gr-ISFET-based pH sensor is fabricated using proton-permeable defect-engineered g
We investigate the electric transport in a graphene-organic dye hybrid and the formation of p-n junctions. In the conventional approach, graphene p-n junctions are produced by using multiple electrostatic gates or local chemical doping, which produce different types of carriers in graphene. Instead of using multiple gates or typical chemical doping, a different approach to fabricate p-n junctions is proposed. The approach is based on optical gating of photosensitive dye molecules; this method ca
Molybdenum disulfide (MoS<sub>2</sub>) presents fascinating properties for next-generation applications in diverse fields. However, fully exploiting the best properties of MoS<sub>2</sub> in largescale practical applications still remains a challenge due to lack of proper processing methods. Solution-based processing can be a promising route for scalable production of MoS<sub>2</sub> nanosheets, but the resulting assembled film possesses an enormous number of interfaces that significantly compro
Sn-based materials have been highlighted as promising anodes for next-generation batteries; however, such alloying-based anodes suffer from gradual cell degradation caused by the associated large volume changes, leading to particle pulverization and an unstable solid electrolyte interphase (SEI). A key to constructing a stable SEI as well as effectively buffering the large volume expansion is to establish appropriate electrolyte conditions. In this work, to induce the formation of a favorable SE
The synthesis of uniform low-defect graphene on a catalytic metal substrate is getting closer to the industrial level. However, its practical application is still challenging due to the lack of an appropriate method for its scalable damage-free transfer to a device substrate. Here, an efficient approach for a defect-free, etchant-free, wrinkle-free, and large-area graphene transfer is demonstrated by exploiting a multifunctional viscoelastic polymer gel as a simultaneous shock-free adhesive and
In this work, we developed an atomically thin (∼2.5 nm) heterostructure consisting of a monolayer rhodamine 6G (R6G) film as a photoactive layer that was sandwiched between graphene films functioning as channels (graphene-R6G-graphene, G-R-G). Through a comparison of results of both photocurrent measurements and chemically enhanced Raman scattering (CERS) experiments, we found that our G-R-G heterostructure exhibited ∼7 and ∼30 times better performance than R6G-attached single-graphene (R6G-grap
In MoS<sub>2</sub>-carbon composite catalysts for hydrogen evolution reaction (HER), the carbon materials generally act as supports to enhance the catalytic activity of MoS<sub>2</sub> nanosheets. The carbon support provides a large surface area for increasing the MoS<sub>2</sub> edge site density, and its physical structure can affect the electron transport rate in the composite catalysts. However, despite the importance of the carbon materials, direct observation of the effects of the physical
Research Areas
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