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Jah Min Nam

Seoul National University · Materials Science

About the Lab

Professor Jah Min Nam's research lab specializes in the design and application of plasmonic and multifunctional nanomaterials for advanced biomedical and analytical technologies. The lab focuses on developing ultrasensitive biosensors using DNA-barcode encoded nanoparticles and magnetic microparticles for early disease detection, particularly in cancer biomarkers like PSA. A key research direction involves exploiting the unique photothermal and electromagnetic properties of plasmonic nanostructures—especially those with nanogap architectures—for signal enhancement in techniques like SERS and for next-generation theranostic applications. The lab also pioneers the use of nonnoble metal nanomaterials to enable cost-effective, scalable, and tunable plasmonic systems for sensing, catalysis, and energy applications.

plasmonic nanostructuresbiosensingnanoparticle probesDNA barcodingnonnoble metal nanomaterials

Research Overview

Papers
212
Total Citations
21,507
Papers (5y)
44
Primary Field
Materials Science

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
44total
2022
2023
2024
2025
2026
Citations per year (5y)
1,062total
20222023202420252026

Selected Papers

15
1
Book Chapter|2,039 citations·2020
Nanoparticle-Based Bio-Barcodes for the Ultrasensitive Detection of Proteins*
Jwa‐Min Nam, C. Shad Thaxton, Chad A. Mirkin
Spherical Nucleic Acids

An ultrasensitive method for detecting protein analytes has been developed. The system relies on magnetic microparticle probes with antibodies that specifically bind a target of interest [prostate-specific antigen (PSA) in this case] and nanoparticle probes that are encoded with DNA that is unique to the protein target of interest and antibodies that can sandwich the target captured by the microparticle probes. 1480Magnetic separation of the complexed probes and target followed by dehybridizatio

Molecular BiologyBiochemistry, Genetics and Molecular Biology
2
Article|1,184 citations·2009
Nanogap-engineerable Raman-active nanodumbbells for single-molecule detection
Dong‐Kwon Lim, Ki Seok Jeon, Hyung Min Kim, Jwa‐Min Nam, Yung Doug Suh
SJR Q1Nature Materials
Electronic, Optical and Magnetic MaterialsMaterials Science
3
Article|1,137 citations·2011
Highly uniform and reproducible surface-enhanced Raman scattering from DNA-tailorable nanoparticles with 1-nm interior gap
Dong‐Kwon Lim, Ki Seok Jeon, Jae-Ho Hwang, Hyoki Kim, Sunghoon Kwon, Yung Doug Suh, Jwa‐Min Nam
SJR Q1Nature Nanotechnology
Electronic, Optical and Magnetic MaterialsMaterials Science
4
Article|743 citations·2004
Bio-Bar-Code-Based DNA Detection with PCR-like Sensitivity
Jwa‐Min Nam, Savka I. Stoeva, Chad A. Mirkin
SJR Q1Journal of the American Chemical Society

Novel two-component oligonucleotide-modified nanoparticle probes have been designed and used in a bio-bar-code assay with a 500 zeptomolar target DNA sensitivity limit.

Molecular BiologyBiochemistry, Genetics and Molecular Biology
5
Review|721 citations·2019
Plasmonic Photothermal Nanoparticles for Biomedical Applications
Minho Kim, Jung‐Hoon Lee, Jwa‐Min Nam
SJR Q1Advanced ScienceOA

Recent advances of plasmonic nanoparticles include fascinating developments in the fields of energy, catalyst chemistry, optics, biotechnology, and medicine. The plasmonic photothermal properties of metallic nanoparticles are of enormous interest in biomedical fields because of their strong and tunable optical response and the capability to manipulate the photothermal effect by an external light source. To date, most biomedical applications using photothermal nanoparticles have focused on photot

Electronic, Optical and Magnetic MaterialsMaterials Science
6
Article|453 citations·2016
Plasmonic Nanogap-Enhanced Raman Scattering with Nanoparticles
Jwa‐Min Nam, Jeong‐Wook Oh, Haemi Lee, Yung Doug Suh
SJR Q1Accounts of Chemical Research

Plasmonic coupling-based electromagnetic field localization and enhancement are becoming increasingly important in chemistry, nanoscience, materials science, physics, and engineering over the past decade, generating a number of new concepts and applications. Among the plasmonically coupled nanostructures, metal nanostructures with nanogaps have been of special interest due to their ultrastrong electromagnetic fields and controllable optical properties that can be useful for a variety of signal e

Electronic, Optical and Magnetic MaterialsMaterials Science
7
Review|440 citations·2019
Multicomponent Plasmonic Nanoparticles: From Heterostructured Nanoparticles to Colloidal Composite Nanostructures
Min‐Ji Ha, Jae-Ho Kim, Myung-Hwa You, Qian Li, Chunhai Fan, Jwa‐Min Nam
SJR Q1Chemical Reviews

Plasmonic nanostructures possessing unique and versatile optoelectronic properties have been vastly investigated over the past decade. However, the full potential of plasmonic nanostructure has not yet been fully exploited, particularly with single-component homogeneous structures with monotonic properties, and the addition of new components for making multicomponent nanoparticles may lead to new-yet-unexpected or improved properties. Here we define the term "multi-component nanoparticles" as hy

Electronic, Optical and Magnetic MaterialsMaterials Science
8
Article|381 citations·2011
UV/Ozone-Oxidized Large-Scale Graphene Platform with Large Chemical Enhancement in Surface-Enhanced Raman Scattering
Sung Huh, Jaesung Park, Young Soo Kim, Kwang S. Kim, Byung Hee Hong, Jwa‐Min Nam
SJR Q1ACS Nano

We fabricated a highly oxidized large-scale graphene platform using chemical vapor deposition (CVD) and UV/ozone-based oxidation methods. This platform offers a large-scale surface-enhanced Raman scattering (SERS) substrate with large chemical enhancement in SERS and reproducible SERS signals over a centimeter-scale graphene surface. After UV-induced ozone generation, ozone molecules were reacted with graphene to produce oxygen-containing groups on graphene and induced the p-type doping of the g

Materials ChemistryMaterials Science
9
Review|268 citations·2018
Nonnoble‐Metal‐Based Plasmonic Nanomaterials: Recent Advances and Future Perspectives
Sungi Kim, Jae‐Myoung Kim, Jeong‐Eun Park, Jwa‐Min Nam
SJR Q1Advanced Materials

The application scope of plasmonic nanostructures is rapidly expanding to keep pace with the ongoing development of various scientific findings and emerging technologies. However, most plasmonic nanostructures heavily depend on rare, expensive, and extensively studied noble metals such as Au and Ag, with the limited choice of elements hindering their broad and practical applications in a wide spectral range. Therefore, abundant and inexpensive nonnoble metals have attracted attention as new plas

Electronic, Optical and Magnetic MaterialsMaterials Science
10
Article|244 citations·2002
Bio-Barcodes Based on Oligonucleotide-Modified Nanoparticles
Jwa‐Min Nam, So‐Jung Park, Chad A. Mirkin
SJR Q1Journal of the American Chemical Society

By utilizing oligonucleotide-modified Au nanoparticles encoded with sequences that act as biobarcodes, one can screen for multiple target polyvalent proteins simultaneously in one solution. This novel concept was demonstrated with two types of detection formats, a homogeneous assay and one based on oligonucleotide microarrays. With such an approach, one can prepare an extraordinarily large number of barcodes from synthetically accessible oligonucleotides (e.g., a 12-mer sequence offers 4(12) pos

Molecular BiologyBiochemistry, Genetics and Molecular Biology
11
Article|218 citations·2018
Precisely Shaped, Uniformly Formed Gold Nanocubes with Ultrahigh Reproducibility in Single-Particle Scattering and Surface-Enhanced Raman Scattering
Jeong‐Eun Park, Yeonhee Lee, Jwa‐Min Nam
SJR Q1Nano Letters

Synthesizing plasmonic nanostructures in an ultraprecise manner is of paramount importance because the nanometer-scale structural details can significantly affect their plasmonic properties. Au nanocubes (AuNCs) have been a highly promising, heavily studied nanostructure with high potential in various fields, but an ultraprecise synthesis from 10 to 100 nm in size over a large number of AuNCs has not been well established. Precisely structured AuNC-based studies for a highly reproducible, quanti

Electronic, Optical and Magnetic MaterialsMaterials Science
12
Article|215 citations·2016
Plasmonically Engineered Nanoprobes for Biomedical Applications
Amit Kumar, Sungi Kim, Jwa‐Min Nam
SJR Q1Journal of the American Chemical Society

The localized surface plasmon resonance of metal nanoparticles is the collective oscillation of electrons on particle surface, induced by incident light, and is a particle composition-, morphology-, and coupling-dependent property. Plasmonic engineering deals with highly precise formation of the targeted nanostructures with targeted plasmonic properties (e.g., electromagnetic field distribution and enhancement) via controlled synthetic, assembling, and atomic/molecular tuning strategies. These p

Electronic, Optical and Magnetic MaterialsMaterials Science
13
Article|197 citations·2017
Hot‐Electron‐Mediated Photochemical Reactions: Principles, Recent Advances, and Challenges
Minho Kim, Mouhong Lin, Jiwoong Son, Hongxing Xu, Jwa‐Min Nam
SJR Q1Advanced Optical MaterialsOA

Hot electron chemistry has drawn tremendous attention from applications related to materials, energy, sensing, and catalysis. The plasmon‐induced generation of hot electrons and their transfer behavior are very important for understanding plasmonic‐enhanced applications and for achieving practically useful efficiency. From a plasmonic perspective, well‐designed plasmonic structures that can manipulate surface plasmons are able to enhance the efficiencies of hot electron‐based processes. This pro

Electronic, Optical and Magnetic MaterialsMaterials Science
14
Article|191 citations·2011
Tumor Targeting and Imaging Using Cyclic RGD‐PEGylated Gold Nanoparticle Probes with Directly Conjugated Iodine‐125
Young‐Hwa Kim, Jongho Jeon, Su Hyun Hong, Won‐Kyu Rhim, Yun‐Sang Lee, Hyewon Youn, June‐Key Chung, Myung Chul Lee, Dong Soo Lee, Keon Wook Kang, Jwa‐Min Nam
SJR Q1Small

Radioactive iodine-labeled, cyclic RGD-PEGylated gold nanoparticle (AuNP) probes are designed and synthesized for targeting cancer cells and imaging tumor sites. These iodine-125-labeled cRGD-PEG-AuNP probes are stable in various conditions including a range of pHs and high salt and temperature conditions. These probes can target selectively and be taken up by tumor cells via integrin αvβ3-receptor-mediated endocytosis with no cytotoxicity. The probes show a significant increase in the avidity o

Biomedical EngineeringEngineering
15
Article|168 citations·2014
Oxidative Nanopeeling Chemistry-Based Synthesis and Photodynamic and Photothermal Therapeutic Applications of Plasmonic Core-Petal Nanostructures
Amit Kumar, Sumit Kumar, Won‐Kyu Rhim, Gyeong‐Hwan Kim, Jwa‐Min Nam
SJR Q1Journal of the American Chemical Society

The precise control of plasmonic nanostructures and their use for less invasive apoptotic pathway-based therapeutics are important but challenging. Here, we introduce a highly controlled synthetic strategy for plasmonic core-petal nanoparticles (CPNs) with massively branched and plasmonically coupled nanostructures. The formation of CPNs was facilitated by the gold chloride-induced oxidative disassembly and rupture of the polydopamine corona around Au nanoparticles and subsequent growth of Au na

Electronic, Optical and Magnetic MaterialsMaterials Science

Research Areas

Electronic, Optical and Magnetic MaterialsMolecular BiologyBiomedical EngineeringMaterials ChemistryBiomaterialsPhysiology

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