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Young Ki Kim

Pohang University of Science and Technology · Materials Science

About the Lab

Professor Young Ki Kim's research lab specializes in the design and application of functional soft matter systems, with a focus on liquid crystals (LCs) and optical metasurfaces. The lab explores dynamic, stimuli-responsive materials that integrate LCs with nanostructured photonic platforms to enable real-time, visual, and compact sensing and display technologies. Key research directions include the development of ultracompact holographic sensors, active flat optics, and self-organizing nanofiber arrays using liquid crystal templates. The lab also investigates fundamental phenomena in phase transitions and topological defects in lyotropic chromonic liquid crystals.

liquid crystalsholographic metasurfacesstimuli-responsive materialsnanofiber arraysoptical sensing

Research Overview

Papers
125
Total Citations
6,285
Papers (5y)
28
Primary Field
Materials Science

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
28total
2022
2023
2024
2025
2026
Citations per year (5y)
559total
20222023202420252026

Selected Papers

15
1
Article|269 citations·2021
Holographic metasurface gas sensors for instantaneous visual alarms
Inki Kim, Won-Sik Kim, Kwan Kim, Muhammad Afnan Ansari, Muhammad Qasim Mehmood, Trevon Badloe, Yeseul Kim, Yeseul Kim, Junho Gwak, Heon Lee, Young‐Ki Kim, Young‐Ki Kim
SJR Q1Science AdvancesOA

The rapid detection of biological and chemical substances in real time is particularly important for public health and environmental monitoring and in the military sector. If the process of substance detection to visual reporting can be implemented into a single miniaturized sensor, there could be a profound impact on practical applications. Here, we propose a compact sensor platform that integrates liquid crystals (LCs) and holographic metasurfaces to autonomously sense the existence of a volat

Electronic, Optical and Magnetic MaterialsMaterials Science
2
Article|181 citations·2020
Stimuli‐Responsive Dynamic Metaholographic Displays with Designer Liquid Crystal Modulators
Inki Kim, Muhammad Afnan Ansari, Muhammad Qasim Mehmood, Won‐Sik Kim, Jaehyuck Jang, Muhammad Zubair, Young‐Ki Kim, Junsuk Rho
SJR Q1Advanced Materials

Flat optics, realized by the artificially created 2D material platform called optical metasurfaces, is currently undergoing a science-to-technology transition. However, "real-time" active operations of such flat optical devices remain yet unresolved. Here, liquid crystals (LCs)-integrated metaholograms for ultracompact dynamic holographic displays are proposed. The anisotropic nature of the LCs allows facile and repeatable manipulation of the polarization of light. Specifically designed ("design

Electronic, Optical and Magnetic MaterialsMaterials Science
3
Article|178 citations·2022
Liquid crystal-powered Mie resonators for electrically tunable photorealistic color gradients and dark blacks
Trevon Badloe, Joohoon Kim, Inki Kim, Wonsik Kim, Wook Sung Kim, Young‐Ki Kim, Junsuk Rho
SJR Q1Light Science & ApplicationsOA

Taking inspiration from beautiful colors in nature, structural colors produced from nanostructured metasurfaces have shown great promise as a platform for bright, highly saturated, and high-resolution colors. Both plasmonic and dielectric materials have been employed to produce static colors that fulfil the required criteria for high-performance color printing, however, for practical applications in dynamic situations, a form of tunability is desirable. Combinations of the additive color palette

Electronic, Optical and Magnetic MaterialsMaterials Science
4
Article|148 citations·2018
Self-reporting and self-regulating liquid crystals
Young‐Ki Kim, Xiaoguang Wang, Pranati Mondkar, Emre Büküşoğlu, Nicholas L. Abbott
SJR Q1NatureOA
Electronic, Optical and Magnetic MaterialsMaterials Science
5
Article|127 citations·2013
Morphogenesis of defects and tactoids during isotropic–nematic phase transition in self-assembled lyotropic chromonic liquid crystals
Young‐Ki Kim, Sergij V. Shiyanovskii, Oleg D. Lavrentovich
SJR Q2Journal of Physics Condensed MatterOA

We explore the structure of nuclei and topological defects in the first-order phase transition between the nematic (N) and isotropic (I) phases in lyotropic chromonic liquid crystals (LCLCs). The LCLCs are formed by self-assembled molecular aggregates of various lengths and show a broad biphasic region. The defects emerge as a result of two mechanisms: (1) surface-anisotropy that endows each N nucleus ('tactoid') with topological defects thanks to preferential (tangential) orientation of the dir

Electronic, Optical and Magnetic MaterialsMaterials Science
6
Article|104 citations·2018
Templated nanofiber synthesis via chemical vapor polymerization into liquid crystalline films
K. Cheng, Marco A. Bedolla Pantoja, Young‐Ki Kim, Jason V. Gregory, Fan Xie, Alexander de France, Christoph Hussal, Kai Sun, Nicholas L. Abbott, Joerg Lahann
SJR Q1ScienceOA

Extrusion, electrospinning, and microdrawing are widely used to create fibrous polymer mats, but these approaches offer limited access to oriented arrays of nanometer-scale fibers with controlled size, shape, and lateral organization. We show that chemical vapor polymerization can be performed on surfaces coated with thin films of liquid crystals to synthesize organized assemblies of end-attached polymer nanofibers. The process uses low concentrations of radical monomers formed initially in the

Mechanical EngineeringEngineering
7
Article|93 citations·2012
Molecular reorientation of a nematic liquid crystal by thermal expansion
Young‐Ki Kim, Bohdan Senyuk, Oleg D. Lavrentovich
SJR Q1Nature CommunicationsOA

A unique feature of nematic liquid crystals is orientational order of molecules that can be controlled by electromagnetic fields, surface modifications and pressure gradients. Here we demonstrate a new effect in which the orientation of nematic liquid crystal molecules is altered by thermal expansion. Thermal expansion (or contraction) causes the nematic liquid crystal to flow; the flow imposes a realigning torque on the nematic liquid crystal molecules and the optic axis. The optical and mechan

Electronic, Optical and Magnetic MaterialsMaterials Science
8
Article|87 citations·2019
Soft matter from liquid crystals
Young‐Ki Kim, JungHyun Noh, Karthik Nayani, Nicholas L. Abbott
SJR Q2Soft MatterOA

Liquid crystals (LCs) are fluids within which molecules exhibit long-range orientational order, leading to anisotropic properties such as optical birefringence and curvature elasticity. Because the ordering of molecules within LCs can be altered by weak external stimuli, LCs have been widely used to create soft matter systems that respond optically to electric fields (LC display), temperature (LC thermometer) or molecular adsorbates (LC chemical sensor). More recent studies, however, have moved

Electronic, Optical and Magnetic MaterialsMaterials Science
9
Article|76 citations·2024
Dynamic Hyperspectral Holography Enabled by Inverse‐Designed Metasurfaces with Oblique Helicoidal Cholesterics
Joohoon Kim, Jun‐Hyung Im, Sunae So, Yeongseon Choi, Hyunjung Kang, Bogyu Lim, Minjae Lee, Young‐Ki Kim, Junsuk Rho
SJR Q1Advanced MaterialsOA

Abstract Metasurfaces are flat arrays of nanostructures that allow exquisite control of phase and amplitude of incident light. Although metasurfaces offer new active element for both fundamental science and applications, the challenge still remains to overcome their low information capacity and passive nature. Here, by integrating an inverse‐designed‐metasurface with oblique helicoidal cholesteric liquid crystal (Ch OH ), simultaneous spatial and spectral tunable metasurfaces with a high informa

Electronic, Optical and Magnetic MaterialsMaterials Science
10
Article|59 citations·2012
Search for biaxiality in a shape-persistent bent-core nematic liquid crystal
Young‐Ki Kim, Madhabi Majumdar, Bohdan Senyuk, Luana Tortora, Jens Seltmann, Matthias Lehmann, Antal Jákli, Jim T. Gleeson, Oleg D. Lavrentovich, Samuel Sprunt
SJR Q2Soft Matter

Using a range of optical techniques, we have probed the nature of orientational order in a thermotropic bent-core liquid crystal, which features a shape-persistent molecular architecture designed to promote a biaxial nematic phase. In the upper range of the nematic phase (enantiotropic regime), dynamic light scattering reveals strong fluctuations attributable to the biaxial order parameter, in addition to the usual uniaxial director modes. Assuming a Landau-type expansion of the orientational fr

Electronic, Optical and Magnetic MaterialsMaterials Science
11
Article|39 citations·2016
Search for microscopic and macroscopic biaxiality in the cybotactic nematic phase of new oxadiazole bent-core mesogens
Young‐Ki Kim, Greta Cukrov, Francesco Vita, Eric A. Scharrer, Edward T. Samulski, Oriano Francescangeli, Oleg D. Lavrentovich
SJR Q2Physical review. EOA

The possibility of biaxial orientational order in nematic liquid crystals is a subject of intense current interest. We explore the tendencies toward local and global biaxial ordering in the recently synthesized trimethylated oxadiazole-based bent-core mesogens with a pronounced asymmetric (bow-type) shape of molecules. The combination of x-ray diffraction and optical studies suggests that the biaxial order is expressed differently at the short- and long-range scales. Locally, at the scale of a f

Electronic, Optical and Magnetic MaterialsMaterials Science
12
Article|34 citations·2013
Surface alignment, anchoring transitions, optical properties, and topological defects in the thermotropic nematic phase of organo-siloxane tetrapodes
Young‐Ki Kim, Bohdan Senyuk, Sung-Tae Shin, Alexandra Kohlmeier, Georg H. Mehl, Oleg D. Lavrentovich
SJR Q2Soft MatterOA

We perform optical, surface anchoring, and textural studies of an organo-siloxane "tetrapode" material in the broad temperature range of the nematic phase. The optical, structural, and topological features are compatible with the uniaxial nematic order rather than with the biaxial nematic order, in the entire nematic temperature range -25 °C < T < 46 °C studied. For homeotropic alignment, the material experiences surface anchoring transition, but the director can be realigned into an optically u

Electronic, Optical and Magnetic MaterialsMaterials Science
13
Review|29 citations·2022
Liquid Crystalline Systems from Nature and Interaction of Living Organisms with Liquid Crystals
Won‐Sik Kim, Jun‐Hyung Im, Hyein Kim, Jin‐Kang Choi, Yena Choi, Young‐Ki Kim
SJR Q1Advanced MaterialsOA

Biomaterials, which are substances interacting with biological systems, have been extensively explored to understand living organisms and obtain scientific inspiration (such as biomimetics). However, many aspects of biomaterials have yet to be fully understood. Because liquid crystalline phases are ubiquitously found in biomaterials (e.g., cholesterol, amphiphile, DNA, cellulose, bacteria), therefore, a wide range of research has made attempts to approach unresolved issues with the concept of li

Electronic, Optical and Magnetic MaterialsMaterials Science
14
Article|23 citations·2018
Oligomers as Triggers for Responsive Liquid Crystals
Young‐Ki Kim, Krishna R. Raghupathi, Joel Pendery, Piyachai Khomein, Uma Sridhar, Juan Pablo, S. Thayumanavan, Nicholas L. Abbott
SJR Q1LangmuirOA

We report an investigation of the influence of aqueous solutions of amphiphilic oligomers on the ordering of micrometer-thick films of thermotropic liquid crystals (LCs), thus addressing the gap in knowledge arising from previous studies of the interactions of monomeric and polymeric amphiphiles with LCs. Specifically, we synthesized amphiphilic oligomers (with decyl hydrophobic and pentaethylene glycol hydrophilic domains) in monomer, dimer, and trimer forms, and incubated aqueous solutions of

Electronic, Optical and Magnetic MaterialsMaterials Science
15
Article|23 citations·2023
Stimuli-Responsive Materials from Liquid Crystals
Yena Choi, Daeseop Choi, Jin‐Kang Choi, Kwang‐Suk Oh, Eunsu Cho, Jun‐Hyung Im, Dharmendra Pratap Singh, Young‐Ki Kim
SJR Q2ACS Applied Optical Materials

The capability of liquid crystals (LCs), that instantaneously modulate their physical and chemical properties in response to a target stimulus, found a killer application of liquid crystal displays (LCDs) and has made LCs one of the most widely used materials. The use of LCs, however, is not restricted to LCDs. Over decades, a range of characteristic features of LCs has been unveiled and opened access not only to the fundamental knowledge gap but also to a rich variety of applications beyond LCD

Electronic, Optical and Magnetic MaterialsMaterials Science

Research Areas

Electronic, Optical and Magnetic MaterialsElectrical and Electronic EngineeringMechanical EngineeringMaterials ChemistryOrganic ChemistryAerospace Engineering

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