Ulsan National Institute of Science and Technology · Engineering
Sang Kyu Kwak 교수의 연구실은 리튬이온 배터리의 핵심 소재인 고에너지 밀도 양극재, 고체 전도성 고분자, 나노구조 촉매 등에서의 이온 이동 메커니즘과 표면 반응 메커니즘을 중심으로 연구를 진행하고 있습니다. 특히, 고체 전해질의 단일 리튬 이온 전도성 향상, 산화환원 반응 촉매의 고감도·고선택성 설계, 전해질 첨가제에 의한 안정성 향상 등 실용적 응용에 초점을 맞춘 나노소재 개발에 기여하고 있습니다. 또한, 전자구조 계산과 실험을 융합한 다학제적 접근을 통해 물질의 미세 구조적 특성과 거시적 전기화학적 성능 간의 상관관계를 규명하고 있습니다.
Figures are computed from collected data and may differ slightly.
Porous crystalline materials such as covalent organic frameworks and metal-organic frameworks have garnered considerable attention as promising ion conducting media. However, most of them additionally incorporate lithium salts and/or solvents inside the pores of frameworks, thus failing to realize solid-state single lithium-ion conduction behavior. Herein, we demonstrate a lithium sulfonated covalent organic framework (denoted as TpPa-SO<sub>3</sub>Li) as a new class of solvent-free, single lith
The work describes a carbon-based peroxidase mimic, N- and B-codoped reduced graphene oxide (NB-rGO), which shows high peroxidase-like activity without oxidase-like activity and has a catalytic efficiency nearly 1000-fold higher than that of undoped rGO. The high catalytic activity of NB-rGO is explained by density functional theory by calculating Gibbs free energy change during the peroxide decomposition reaction. Acetylcholine and C-reactive protein are successfully quantified with high sensit
Abstract Ni‐rich cathodes are considered feasible candidates for high‐energy‐density Li‐ion batteries (LIBs). However, the structural degradation of Ni‐rich cathodes on the micro‐ and nanoscale leads to severe capacity fading, thereby impeding their practical use in LIBs. Here, it is reported that 3‐(trimethylsilyl)‐2‐oxazolidinone (TMS‐ON) as a multifunctional additive promotes the dissociation of LiPF 6 , prevents the hydrolysis of ion‐paired LiPF 6 (which produces undesired acidic compounds i
Oxygen vacancies (OV) are native defects in transition metal (TM) oxides and their presence has a critical effect on the physicochemical properties of the oxide. Metal oxides are commonly used in lithium-ion battery (LIB) cathodes and there is still a lack of understanding of the role of OVs in LIB research field. Here, we report on the behavior of OVs in a single-crystal LIB cathode during the non-equilibrium states of charge and discharge. We found that microcrack evolution in a single crystal
Formation of a glue-nanofiller layer between grains, consisting of a middle-temperature spinel-like Lix CoO2 phase, reinforces the strength of the incoherent interfacial binding between anisotropically oriented grains by enhancing the face-to-face adhesion strength. The cathode treated with the glue-layer exhibits steady cycling performance at both room-temperature and 60 °C. These results represent a step forward in advanced lithium-ion batteries via simple cathode coating.
Abstract The sluggish reaction kinetics of the alkaline hydrogen evolution reaction (HER) remains an important challenge for water–alkali electrolyzers, which originates predominantly from the additional water dissociation step required for the alkaline HER. In this work, it is demonstrated theoretically and experimentally that metastable, face‐centered‐cubic α‐MoC 1− x phase shows superior water dissociation capability and alkaline HER activity than stable, hexagonal‐close‐packed Mo 2 C phase.
Binder-free and bifunctional electrocatalysts have vital roles in the development of high-performance metal–air batteries.
Covalent organic frameworks have recently shown high potential for photocatalytic hydrogen production. However, their structure-property-activity relationship has not been sufficiently explored to identify a research direction for structural design. Herein, we report the design and synthesis of four benzotrithiophene (BTT)-based covalent organic frameworks (COFs) with different conjugations of building units, and their photocatalytic activity for hydrogen production. All four BTT-COFs had slippe
Replacing noble-metal-based oxygen reduction reaction (ORR) and oxygen evolution reaction (OER) electrocatalysts is the key to developing efficient Zn-air batteries (ZABs). Here, a homogeneous ternary Ni<sub>46</sub> Co<sub>40</sub> Fe<sub>14</sub> nanoalloy with a size distribution of 30-60 nm dispersed in a carbon matrix (denoted as C@NCF-900) as a highly efficient bifunctional electrocatalyst produced via supercritical reaction and subsequent heat treatment at 900 °C is reported. Among all th
Open papers in the app to read, cite, and organize with AI.