Jinho Chang
한양대학교 신소재공학부 · 공학
Jinho Chang 교수의 연구실은 전기화학적 반응 메커니즘과 에너지 저장 소재의 기초 연구에 중점을 두고 있습니다. 특히 리튬 및 마그네슘 등의 금속 전착/해리 거동, 산화환원 반응의 다단계 경로 분석, 그리고 전기화학적 스펙트로스코피와 스캐닝 전기화학적 마이크로스코피를 활용한 나노구조 전극의 거동 규명을 주요 연구 주제로 다룹니다. 또한, 이온 액체 및 고체 폴리브로마이드를 활용한 에너지 저장 시스템의 자기 방전 억제 메커니즘 연구를 통해 고성능 배터리 및 유기 전기화학 커패시터의 실현 가능성을 탐색하고 있습니다.
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
We describe a voltammetric and spectroscopic study of Mg electrodeposition/dissolution (MgDep/Dis) in borohydride diglyme electrolyte solution containing Li(+) carried out on a Pt ultramicroelectrode (UME, r = 5 μm). The data reveal Li(+) cation facilitation that has not been previously recognized in studies made using macroelectrodes. While a single broad, asymmetric stripping peak is expected following MgDep on a Pt macroelectrode in 0.1 M Mg(BH4)2 + 1.5 M LiBH4 diglyme solution on a Pt UME, t
Fast-scan cyclic voltammetry (CV) and scanning electrochemical microscopy (SECM) were used to investigate the reduction of Sn(IV) as the hexabromo complex ion in a 2 M HBr-4 M NaBr medium. CV at scan rates to 100 V/s and SECM indicated the reaction pathway involves ligand-coupled electron transfer via an ECEC-DISP process: (1) one-electron reduction of Sn(IV)Br6(2-) to Sn(III)Br6(3-); (2) bromide dissociation of the reduced Sn(III)Br6(3-) to Sn(III)Br5(2-); (3) disproportionation of the reduced
Electrodes of different morphology, i.e., nanospheres (NSs) and nanorods (NRs), made by chemically depositing indium oxide on indium-tin oxide substrates were investigated for their electrochemical supercapacitive properties. The presence of nanosized pores and voids in electrode of NRs caused increase in redox reaction active sites, and ultimately, inner and outer charges than that of NSs electrode. Due to the combined effect of double-layer and pseudocapacitance, the specific capacitance of el
In this paper, we investigate the behavior of bipartite entanglement of fermionic systems when one of the parties is traveling with a uniform acceleration. For the ordering problem in fermionic systems, we apply the recent result of Montero and Mart\'{\i}n-Mart\'{\i}nez [Phys. Rev. A 83, 052306 (2011)]. Based on the approach, we consider both pure and mixed entangled states, and we show that the behavior in terms of the entanglement measure (negativity) allows one to obtain physical results, i.e
We present a mechanistic understanding of the full redox electrochemistry of V(V)-V(IV)-V(III)-V(II) and the origin of the parasitic hydrogen evolution reaction (HER) during electroreduction of either V<sup>3+</sup> or VO<sup>2+</sup> in a highly concentrated mixed acidic solution based on both electroanalytical and computational approaches. First, we found that the VO<sup>2+</sup>/VO<sub>2</sub><sup>+</sup> redox reaction is well explained by the EC/EC square scheme. We also found that V<sup>3+
Energy storage systems (ESSs) using a Br<sup>-</sup>/Br<sub>2</sub> redox reaction such as a Zn/Br redox flow battery (RFB) or a redox-enhanced electrochemical capacitor (Redox-EC) suffer from self-discharge reactions resulting in significant Coulombic loss. To inhibit the self-discharge, quaternary ammonium (Q<sup>+</sup>) and tetraalkylammonium (T<sup>+</sup>) bromide are added to form ionic liquid (QBr<sub>2 n+1</sub>) and solid (TBr<sub>3</sub>) polybromides during the ESS charging process.
A unique surface-enhanced Raman scattering (SERS) measurement scheme to discriminate gall bladder (GB) polyp and GB cancer by analysis of bile juice is proposed. Along with the high sensitivity of SERS, external voltage application during SERS measurement was incorporated to improve sample discriminability. For this purpose, Au nanodendrites were constructed on a screen-printed electrode (referred to as AuND@SPE), and Raman spectra of extracted aqueous phases from raw bile juice samples were acq
The electrochemical nitrate reduction reaction (NO<sub>3</sub><sup>-</sup>RR) involves multiple hydrogenation and deoxygenation steps, which compete with the hydrogen evolution reaction (HER). Therefore, NO<sub>3</sub><sup>-</sup>RR driven in acidic media is challenging in spite of advantageous fast hydrogen transfers in its elementary steps. The findings presented in this article first demonstrate that the NO<sub>3</sub><sup>-</sup>RR is significantly activated even in acidic lithium nitrate so