신승재 교수
Seung-Jae Shin
UNIST 에너지화학공학과 · 에너지
연구실 소개
신승재 교수의 연구실은 전기화학적 에너지 변환 및 저장 시스템의 핵심 메커니즘을 원자 척도에서 규명하는 데 초점을 맞추고 있습니다. 전기이중층 구조와 이온의 표면 정착 행동이 전기화학 반응 속도에 미치는 영향을 분자역학적 시뮬레이션을 통해 해석하며, 특히 CO₂ 환원, 아연 이온 배터리, 리튬 산소 배터리, 슈퍼커패시터 등 다양한 에너지 장치의 효율성 향상을 위한 나노구조 전극 재료 설계를 지속적으로 연구하고 있습니다. 특히 전기화학적 반응의 전이 상태와 이온-표면 상호작용의 분자적 기반을 규명함으로써, 실질적인 에너지 기술 혁신을 이끌고자 합니다.
연구 현황
연구 성과 추이
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주요 논문
15In real-time measurements, CO dimerization occurred concurrently with CO adsorption (∼5 s), while proton-coupled reduction toward *CHO has slower kinetics (∼30 s).
To design electrochemical interfaces for efficient electric-chemical energy interconversion, it is critical to reveal the electric double layer (EDL) structure and relate it with electrochemical activity; nonetheless, this has been a long-standing challenge. Of particular, no molecular-level theories have fully explained the characteristic two peaks arising in the potential-dependence of the EDL capacitance, which is sensitively dependent on the EDL structure. We herein demonstrate that our firs
Abstract Supercapacitors offer superior energy storage capabilities than traditional capacitors, making them useful for applications such as electric vehicles and rapid large‐scale energy storage. The energy storage performance of these devices relies on electrical double‐layer capacitance and/or pseudocapacitance from rapid reversible redox reactions. Metal–organic frameworks (MOFs) have recently emerged as a new class of electrode materials with promising supercapacitor performances and capaci
Abstract Electrocatalysis, whose reaction venue locates at the catalyst–electrolyte interface, is controlled by the electron transfer across the electric double layer, envisaging a mechanistic link between the electron transfer rate and the electric double layer structure. A fine example is in the CO 2 reduction reaction, of which rate shows a strong dependence on the alkali metal cation (M + ) identity, but there is yet to be a unified molecular picture for that. Using quantum-mechanics-based a
Abstract Despite substantial progresses, in aqueous zinc ion batteries (AZIBs), developing zinc metal anodes with long‐term reliable cycling capabilities is nontrivial because of dendritic growth and related parasitic reactions on the zinc surface. Here, we exploit the tip‐blocking effect of a scandium (Sc 3+ ) additive in the electrolyte to induce uniform zinc deposition. Additional to the tri‐valency of Sc 3+ , the rigidity of its hydration shell effectively prevents zinc ions from concentrati
Abstract An effective chemical way to optimize the oxygen electrocatalyst and Li‐O 2 electrode functionalities of metal oxide can be developed by the control of chemical bond nature with the surface anchoring of highly oxidized selenate (SeO 4 2− ) clusters. The bond competition between (Se 6+ −O) and (Mn−O) bonds is quite effective in stabilizing Jahn–Teller‐active Mn 3+ state and in increasing oxygen electron density of α‐MnO 2 nanowire (NW). The selenate‐anchored α‐MnO 2 NW shows excellent ox
Metal–oxide interfaces provide a new opportunity to improve catalytic activity based on electronic and chemical interactions at the interface. Constructing a high density of interfaces is essential in maximizing synergistic interactions. Here, we demonstrate that Cu–ceria interfaces made by sintering nanocrystals facilitate C–C coupling reactions in electrochemical reduction of CO2. The Cu/ceria catalyst enhances the selectivity of ethylene and ethanol production with the suppression of H2 evolu
activation only in the presence of acetylene that has a strong binding affinity to Pd and thus can disturb the Pd-PPS interface. Once acetylene is hydrogenated to weakly binding ethylene, re-adsorption of PPS on the Pd surface repels ethylene before it is further hydrogenated to ethane. The Pd-PPS interaction enables selective partial hydrogenation of acetylene to ethylene even in an ethylene-rich stream and suppresses catalyst deactivation due to coke formation. The results manifest the unique
High Resolution Image Download MS PowerPoint Slide Electroconductive metal–organic frameworks (MOFs) have emerged as high-performance electrode materials for supercapacitors, but the fundamental understanding of the underlying chemical processes is limited. Here, the electrochemical interface of Cu 3 (HHTP) 2 (HHTP = 2,3,6,7,10,11-hexahydroxytriphenylene) with an organic electrolyte is investigated using a multiscale quantum-mechanics/molecular-mechanics (QM/MM) procedure and experimental electr
Supercapacitors offer superior energy storage capabilities than traditional capacitors, making them useful for applications such as electric vehicles and rapid large-scale energy storage. The energy storage performance of these devices relies on electrical double-layer capacitance and/or pseudo-capacitance from rapid reversible redox reactions. Metal-organic frameworks (MOFs) have recently emerged as a new class of electrode materials with promising supercapacitor performances and capacitances t
Supercapacitors offer superior energy storage capabilities than traditional capacitors, making them useful for applications such as electric vehicles and rapid large-scale energy storage. The energy storage performance of these devices relies on electrical double-layer capacitance and/or pseudo-capacitance from rapid reversible redox reactions. Metal-organic frameworks (MOFs) have recently emerged as a new class of electrode materials with promising supercapacitor performances and capacitances t
The advancement of net-zero emissions technologies requires an in-depth understanding of electrochemical reactions at electrified interfaces. Essential processes such as green hydrogen production and CO 2 reduction require sustainable electrocatalysts tailored for varied operational conditions. Computational techniques in electrocatalysis serve as crucial tools for providing microscopic insights and guiding towards higher-performing materials. Traditional modelling frameworks require approximati
Abstract To design electrochemical interfaces for efficient electric-chemical energy interconversion, it is critical to reveal the electric double layer (EDL) structure and relate it with electrochemical activity; nonetheless, this has been a long-standing challenge. Of particular, no molecular-level theories have fully explained the characteristic two peaks arising in the potential-dependence of the EDL capacitance, which is sensitively dependent on the EDL structure. We herein demonstrate that
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