Jihyun Jang
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Explore the profile of Jihyun Jang including associated specialties, affiliations and a list of published articles.
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21
Citations
40
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Recent Articles
11.
Deysher G, Chen Y, Sayahpour B, Lin S, Ham S, Ridley P, et al.
ACS Appl Mater Interfaces
. 2022 Oct;
14(42):47706-47715.
PMID: 36239697
All-solid-state batteries have recently gained considerable attention due to their potential improvements in safety, energy density, and cycle-life compared to conventional liquid electrolyte batteries. Sodium all-solid-state batteries also offer the...
12.
Jang J, Song G, Pettit S, Li Q, Song X, Cai C, et al.
Circ Res
. 2022 Jun;
131(2):151-164.
PMID: 35722872
Background: Establishment of the myocardial wall requires proper growth cues from nonmyocardial tissues. During heart development, the epicardium and epicardium-derived cells instruct myocardial growth by secreting essential factors including FGF...
13.
Park K, Ham D, Park S, Jang J, Yeon D, Moon S, et al.
RSC Adv
. 2022 May;
10(45):26756-26764.
PMID: 35515763
The Zr solvent solution method, which allows primary and secondary particles of LiNiCoMnO (NCM) to be uniformly doped with Zr and simultaneously to be coated with an LiZrO layer, is...
14.
Xu Y, Jang J, Gye M
Environ Pollut
. 2022 Feb;
300:118985.
PMID: 35167930
Contamination of phthalate ester plasticizers threatens the wildlife as well as human health. To evaluate the developmental toxicity of commonly used phthalate esters and emerging alternatives, the frog embryo teratogenesis...
15.
Jeon Y, Kwon J, Jang J, Choi S, Woo J, Cho S, et al.
J Gen Physiol
. 2022 Jan;
154(3).
PMID: 35099502
Despite distinctive functional and anatomic differences, a precise understanding of the cardiac interventricular differences in excitation-contraction (E-C) coupling mechanisms is still lacking. Here, we directly compared rat right and left...
16.
Jang J, Kim H, Moon S, Chae O, Ahn S, Jung H, et al.
Nano Lett
. 2022 Jan;
22(2):761-767.
PMID: 35029396
Electric vehicle manufacturers worldwide are demanding superior lithium-ion batteries, with high energy and power densities, compared to gasoline engines. Although conversion-type metal oxides are promising candidates for high-capacity anodes, low...
17.
Kim J, Kwon J, Kim M, O M, Jung D, Roh K, et al.
Nanomaterials (Basel)
. 2021 Dec;
11(12).
PMID: 34947597
Silicon, as a promising next-generation anode material, has drawn special attention from industries due to its high theoretical capacity (around 3600 mAh g) in comparison with conventional electrodes, e.g., graphite....
18.
Jang J, Kim T, Ryu J
Sci Rep
. 2021 Jun;
11(1):13095.
PMID: 34158587
As the application of lithium-ion batteries in electric vehicles increases, the demand for improved charging characteristics of batteries is also increasing. Lithium titanium oxide (LiTiO, LTO) is a negative electrode...
19.
Jang J, Ku J, Oh S, Yoon T
ACS Appl Mater Interfaces
. 2021 Feb;
13(8):9814-9819.
PMID: 33587598
Extensive studies to develop high-capacity electrodes have been conducted worldwide to meet the urgent demand for next-generation lithium-ion batteries. In this work, we demonstrated a novel strategy to alter the...
20.
Jang J, Engleka K, Liu F, Li L, Song G, Epstein J, et al.
Front Cell Dev Biol
. 2020 Jun;
8:388.
PMID: 32523954
Background: Cell proliferation is a fundamental event during development, disease, and regeneration. Effectively tracking and quantifying proliferating cells and their derivatives is critical for addressing many research questions. Cell cycle...