2024 (Works at CBE, Rensselaer Polytechnic Institute)

  • Chiroptical detection and mutation analysis of cancer-associated extracellular vesicles using microfluidics with oriented chiral nanoparticles

    Matter 7, 1–17, December 4, 2024

  • Direct-write 3D printing of plasmonic nanohelicoids by circularly polarized light

    Proceedings of the National Academy of Sciences. 121: e2312082121 (2024)

  • Graph‐theoretical chirality measure and chirality–property relations for chemical structures with multiscale mirror asymmetries

    Chirality. 36: e23678 (2024)

2019-2023 (Works at ChE, University of Michigan)

  • Photonically active bowtie nanoassemblies with chirality continuum

    Front Cover Article

    Nature. 615: 418-424 (2023)

  • Chiral assemblies of pinwheel superlattices on substrates

    Nature. 612: 259-265 (2022)

  • Chiral phonons in microcrystals and nanofibrils of biomolecules

    Front Cover Article

    Nature Photonics. 16: 366-373 (2022)

  • Unifying structural descriptors for biological and bioinspired nanoscale complexes

    Nature Computational Science. 2: 243-252 (2022)

  • Electrostatic Asymmetry of Wurtzite Nanocrystals and Resulting Photocatalytic Properties

    The Journal of Physical Chemistry C. 126: 4751-4761 (2022)

  • Third-harmonic Mie scattering from semiconductor nanohelices

    Front Cover Article

    Nature Photonics. 16: 126-133 (2022)

  • Multifactorial engineering of biomimetic membranes for batteries with multiple high-performance parameters

    Nature Communications. 13: 1-12 (2022)

  • Enantiomer-dependent immunological response to chiral nanoparticles

    Nature. 601: 366-373 (2022)

  • Broad Chiroptical Activity from Ultraviolet to Short-Wave Infrared by Chirality Transfer from Molecular to Micrometer Scale

    ACS Nano. 15: 15229-15237 (2021)

  • Broadband Circular Polarizers via Coupling in 3D Plasmonic Meta-Atom Arrays

    ACS Photonics. 8: 1286-1292 (2021)

  • Stimulation of neural stem cell differentiation by circularly polarized light transduced by chiral nanoassemblies

    Nature Biomedical Engineering. 5: 103-113 (2021)

  • Chiral 2D Organic Inorganic Hybrid Perovskite with Circular Dichroism Tunable Over Wide Wavelength Range

    Journal of the American Chemical Society. 142: 4206-4212 (2020)

  • Chemo- and Thermomechanically Configurable 3D Optical Metamaterials Constructed from Colloidal Nanocrystal Assemblies

    ACS Nano. 14: 1427-1435 (2019)

  • Self-Assembly of Chiral Nanoparticles into Semiconductor Helices with Tunable near-Infrared Optical Activity

    Chemistry of Materials. 32: 476-488 (2019)

  • Origin of chiroptical activity in nanorod assemblies

    Science. 365: 1378-1379 (2019)

  • Assembly of Gold Nanoparticles into Chiral Superstructures Driven by Circularly Polarized Light

    Journal of the American Chemical Society. 141: 11739-11744 (2019)

2009 - 2018 (Works at MSE, University of Michigan/Korea University)

  • Dipole-like electrostatic asymmetry of gold nanorods

    Science Advances. 4: e1700682 (2018)

  • Optical Asymmetry and Nonlinear Light Scattering from Colloidal Gold Nanorods

    ACS Nano. 11: 5925-5932 (2017)

  • Assembly of mesoscale helices with near-unity enantiomeric excess and light-matter interactions for chiral semiconductors

    Science Advances. 3: e1601159 (2017)

  • Controlling Chemical Equilibrium for Efficient Nanoparticle Conjugation and Release of DNA.

    Bulletin of the Korean Chemical Society. 36: 2962-2965 (2015)

  • Charge Transport Dilemma of Solution-Processed Nanomaterials

    Chemistry of Materials. 26: 134-152 (2014)

  • Multiplexed DNA Detection with DNA-Functionalized Silver and Silver/Gold Nanoparticle Superstructure Probes

    Bulletin of the Korean Chemical Society. 33: 221-226 (2012)

  • Synthesis and Thermodynamically Controlled Anisotropic Assembly of DNA−Silver Nanoprism Conjugates for Diagnostic Applications

    Chemistry of Materials. 22: 6684-6691 (2010)

  • Synthesis and Thermally Reversible Assembly of DNA−Gold Nanoparticle Cluster Conjugates

    Nano Letters. 9: 4564-4569 (2009)