Ym Lee
Ulsan National Institute of Science and Technology
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Publication
Featured researches published by Ym Lee.
ACS Applied Materials & Interfaces | 2014
Se-Young Ha; Ym Lee; Sang Won Woo; Bonjae Koo; Jeom-Soo Kim; Jaephil Cho; Kyu Tae Lee; Nam-Soon Choi
We present a promising electrolyte candidate, Mg(TFSI)2 dissolved in glyme/diglyme, for future design of advanced magnesium (Mg) batteries. This electrolyte shows high anodic stability on an aluminum current collector and allows Mg stripping at the Mg electrode and Mg deposition on the stainless steel or the copper electrode. It is clearly shown that nondendritic and agglomerated Mg secondary particles composed of ca. 50 nm primary particles alleviating safety concern are formed in glyme/diglyme with 0.3 M Mg(TFSI)2 at a high rate of 1C. Moreover, a Mg(TFSI)2-based electrolyte presents the compatibility toward a Chevrel phase Mo6S8, a radical polymer charged up to a high voltage of 3.4 V versus Mg/Mg(2+) and a carbon-sulfur composite as cathodes.
Journal of Materials Chemistry | 2015
Jun Yeong Jang; Ym Lee; Young Jin Kim; Jeongmin Lee; Sang-Min Lee; Kyu Tae Lee; Nam-Soon Choi
We demonstrate the important strategy to design suitable electrolyte systems that make the desirable interfacial structure to allow the reversible sodiation/desodiation of Sn4P3 anodes. Our investigation reveals that the remarkable improvement in the electrochemical performance of Sn4P3 anodes for NIBs is achieved by the combination of fluoroethylene carbonate (FEC) with tris(trimethylsilyl)phosphite (TMSP). We clearly present the unique functions of this binary additive combination to build up a protective surface film on the Sn4P3 anode against unwanted electrolyte decomposition and to prevent the formation of the Na15Sn4 phase, which is accompanied by a large volume expansion during the Na insertion (sodiation) process.
ACS Applied Materials & Interfaces | 2017
Jaegi Lee; Ym Lee; Jeongmin Lee; Sang-Min Lee; Jeong-Hee Choi; Hyungsub Kim; Mi-Sook Kwon; Kisuk Kang; Kyu Tae Lee; Nam-Soon Choi
We present an ultraconcentrated electrolyte composed of 5 M sodium bis(fluorosulfonyl)imide in 1,2-dimethoxyethane for Na metal anodes coupled with high-voltage cathodes. Using this electrolyte, a very high Coulombic efficiency of 99.3% at the 120th cycle for Na plating/stripping is obtained in Na/stainless steel (SS) cells with highly reduced corrosivity toward Na metal and high oxidation durability (over 4.9 V versus Na/Na+) without corrosion of the aluminum cathode current collector. Importantly, the use of this ultraconcentrated electrolyte results in substantially improved rate capability in Na/SS cells and excellent cycling performance in Na/Na symmetric cells without the increase of polarization. Moreover, this ultraconcentrated electrolyte exhibits good compatibility with high-voltage Na4Fe3(PO4)2(P2O7) and Na0.7(Fe0.5Mn0.5)O2 cathodes charged to high voltages (>4.2 V versus Na/Na+), resulting in outstanding cycling stability (high reversible capacity of 109 mAh g-1 over 300 cycles for the Na/Na4Fe3(PO4)2(P2O7) cell) compared with the conventional dilute electrolyte, 1 M NaPF6 in ethylene carbonate/propylene carbonate (5/5, v/v).
Journal of electrochemical science and technology | 2015
Nam-Soon Choi; Se-Young Ha; Ym Lee; Jun Yeong Jang; Myung-Hwan Jeong; Woo Cheol Shin; Makoto Ue
Advanced polymeric binders with unique functions such as improvements in the electronic conduction network, mechanical adhesion, and mechanical durability during cycling have recently gained an increasing amount of attention as a promising means of creating high-performance silicon (Si) anodes in lithium-ion batteries with high energy density levels. In this review, we describe the key challenges of Si anodes, particularly highlighting the recent progress in the area of polymeric binders for Si anodes in cells.
ACS Applied Materials & Interfaces | 2018
Ym Lee; Jaegi Lee; Jeongmin Lee; Koeun Kim; Aming Cha; Sujin Kang; Taeung Wi; Seok Ju Kang; Hyun-Wook Lee; Nam-Soon Choi
Sodium (Na) metal anodes with stable electrochemical cycling have attracted widespread attention because of their highest specific capacity and lowest potential among anode materials for Na batteries. The main challenges associated with Na metal anodes are dendritic formation and the low density of deposited Na during electrochemical plating. Here, we demonstrate a fluoroethylene carbonate (FEC)-based electrolyte with 1 M sodium bis(fluorosulfonyl)imide (NaFSI) salt for the stable and dense deposition of the Na metal during electrochemical cycling. The novel electrolyte combination developed here circumvents the dendritic Na deposition that is one of the primary concerns for battery safety and constructs the uniform ionic interlayer achieving highly reversible Na plating/stripping reactions. The FEC-NaFSI constructs the mechanically strong and ion-permeable interlayer containing NaF and ionic compounds such as Na2CO3 and sodium alkylcarbonates.
Electrochimica Acta | 2014
Sung Jun Lee; Jung-Gu Han; Ym Lee; Myung-Hwan Jeong; Woo Cheol Shin; Makoto Ue; Nam-Soon Choi
Electrochemistry Communications | 2014
Jun Yeong Jang; Hyungsub Kim; Ym Lee; Kyu Tae Lee; Kisuk Kang; Nam-Soon Choi
Solid State Ionics | 2012
Nam-Soon Choi; Jin-Tak Yeon; Ym Lee; Jung-Gu Han; Kyu Tae Lee; Sung-Soo Kim
Journal of Power Sources | 2013
Nam-Soon Choi; Goojin Jeong; Bonjae Koo; Ym Lee; Kyu Tae Lee
Journal of Power Sources | 2016
Ym Lee; Jaegi Lee; Hyungsub Kim; Kisuk Kang; Nam-Soon Choi