• 제목/요약/키워드: Surface-enhanced Raman scattering

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전기화학 반응용 표면증강라만산란 활성 실리카@금 마이크로쉘의 제작 (Preparation of Electrochemically Stable and SERS Active Silica@Gold Microshell)

  • 박려림;이지혜;정택동
    • 전기화학회지
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    • 제16권1호
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    • pp.46-51
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    • 2013
  • 전극과 용액 사이 계면에서 일어나는 전기화학 반응 현상을 보다 정확하게 이해하기 위하여 전기화학 반응과정을 분광학적 방법으로 실시간으로 모니터링 할 수 있는 전극으로도 작동할 뿐만 아니라 표면증강라만산란(SERS) 활성도 강한 금 마이크로쉘을 제조하였다. 기존에 보고된 금 마이크로쉘에서 핵으로 사용한 폴리스티렌의 경우 균일성이 떨어지고 유기용매에 약하며 독성이 있다. 이에 본 연구에서는 폴리스티렌 보다 균일한 구조를 가지고, 유기 용매에서도 사용 가능하며 무독한 실리카 비드를 이용하여 금 마이크로쉘을 만들고 높은 SERS 신호를 낼 수 있도록 최적화시켰다. $2{\mu}m$ 실리카 비드 표면에 서로 다른 양의 3-aminopropyl triethoxysilane (APTES)를 반응시켜 얻은 금 마이크로쉘에서 SERS 신호가 가장 월등히 증폭되는 조건을 비교한 결과 1% (v/v) APTES 조건에서 SERS 신호의 증폭이 가장 컸다. 표면증강라만산란 스펙트럼 및 전계방출형 주사전자현미경(FE-SEM) 이미지를 통해 금 마이크로쉘을 분석하였다.

Preparation and Characterization of Silica-coated Gold Nanoflowers (AuNFs) with Raman Dye Encoding

  • Yoo, Jihye;Lee, Sang-Wha
    • Bulletin of the Korean Chemical Society
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    • 제35권9호
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    • pp.2765-2768
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    • 2014
  • Flower-like Au nanoparticles, so-called Au nanoflowers (AuNFs), were synthesized by simply adding ascorbic acid to a gold acid solution in the presence of a chitosan biopolymer. The chitosan-entangled AuNFs exhibited strong plasmon absorption in the near-infrared (NIR) wavelength due to the aggregation of primary Au nanoparticles. The chitosan-entangled AuNFs were preferentially adsorbed by Raman-active 2-chlorothiophenol (CTP) molecules, and the CTP-encoded AuNFs (AuNF-CTPs) were subsequently coated with a thin silica layer by a sol-gel reaction with Si alkoxides. The silica-coated AuNFs (AuNF-CTPs@silica) exhibited the distinct Raman signals of adsorbed CTP molecules, as a potential nanoprobe with surface-enhanced Raman scattering (SERS).

SERS Immunoassay Using Microcontact Printing for Application of Sensitive Biosensors

  • Hong, Won-Jin;Seo, Hyeong-Kuyn;Jung, Young-Mee
    • Bulletin of the Korean Chemical Society
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    • 제32권12호
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    • pp.4281-4285
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    • 2011
  • We introduced a promising patterned substrate by using a microcontact printing method that can be used for SERS immunoassays based on antigen-antibody binding. SERS spectrum of the Raman reporter with antibody, which is rhodamine 6G (R6G) adsorbed on colloidal gold nanoparticles, was observed only for the surfaces in which prostate-specific antigen (PSA) is present on the substrate that is attached to an immobilized layer of antibody on the gold nanoparticles layer of the patterned substrate. Raman mapping images clearly showed that the antibodies on the Raman reporter were successfully and selectively conjugated with the antigen on the patterned substrate. This method could be potentially extended to multi-protein detections and ultrasensitive biosensors.

Nano-Optical Investigation of Enhanced Field at Gold Nanosphere-Gold Plane Junctions

  • Ahn, Sung-Hyun;Park, Won-Hwa;Kim, Zee-Hwan
    • Bulletin of the Korean Chemical Society
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    • 제28권12호
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    • pp.2200-2202
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    • 2007
  • The local field distribution around gold nanosphere-gold plane junction has been studied using the finitedifference time-domain (FDTD) electrodynamics calculation procedure. We find that both the in-plane and out-of-plane polarized excitation produce enhanced field strong enough to explain the observed SERS activities of the junctions. Comparison with a simple dipole-image dipole model shows that the enhanced field primarily originates from the multipole-image multipole interaction, which indicates that the detailed fine-structures of the nanoparticles also play a significant role in the SERS activities as well.

Strongly Enhanced Electric Field Outside a Pit from Combined Nanostructure of Inverted Pyramidal Pits and Nanoparticles

  • Meng Wang;Wudeng Wang
    • Current Optics and Photonics
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    • 제7권5호
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    • pp.562-568
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    • 2023
  • We designed a combined nanostructure of inverted pyramidal pits and nanoparticles, which can obtain much stronger field enhancement than traditional periodic pits or nanoparticles. The field enhancement |E|/|E0| is greater than 10 in a large area at 750-820 nm in incident wavelength. |Emax|/|E0| is greater than 60. Moreover, the hot spot is obtained outside the pits instead of localized inside them, which is beneficial for experiments such as surface-enhanced Raman scattering. The relations between resonant wavelength and structural parameters are investigated. The resonant wavelength shows a linear dependence on the structure's period, which provides a direct way to tune the resonant wavelength. The excitation of a propagating surface plasmon on the periodic structure's surface, a localized surface plasmon of nanoparticles, and a standing-wave effect contribute to the enhancement.

CuO Nanograss as a Substrate for Surface Enhanced Raman Spectroscopy

  • Lee, Jun-Young;Park, Jiyun;Kim, Jeong-Hyun;Yeo, Jong-Souk
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2013년도 제45회 하계 정기학술대회 초록집
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    • pp.249-249
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    • 2013
  • Surface-enhanced Raman spectroscopy (SERS) is a sensitive approach to detect and to identify a variety of molecules. To enhance the Raman signal, optimization of the gap between nanostructures is quite important. One-dimensional materials such as nanowires, nanotubes, and nanograsses have great potential to be used in SERS due to their unique sizes and shape dependent characteristics. In this study we investigate a simple way to fabricate SERS substrates based on randomly grown copper oxide (CuO) nanowires. CuO nanograss is fabricated on pre-cleaned Cu foils. Cu oxidized in an ammonium ambient solution of 2.5 M NaOH and 0.1 M $(NH_4)_2S_2O_8$ at $4^{\circ}C$ for 10, 30, and 60 minutes. Then, Cu(OH)2 nanostructures are formed and dried at $180^{\circ}C$ for 2 h. With the drying process, the Cu(OH)2 nanostructure is transformed to CuO nanograss by dehydration reaction. CuO nanograss are grown randomly on Cu foil with the average length of 10 ${\mu}m$ and the average diameter of a 100 nm. CuO nanograsses are covered by Ag with various thicknesses from 10 to 30 nm using a thermal evaporator. Then, we immerse uncoated and Ag coated CuO nanowire samples of various oxidation times in a 0.001M methanol-based 4-mercaptopyridine (4-Mpy) in order to evaluate SERS enhancement. Raman shift and SERS enhancement are measured using a Raman spectrometer (Horiba, LabRAM ARAMIS Spectrometer) with the laser wavelength of 532 nm. Raman scattering is believed to be enhanced by the interaction between CuO nanograss and Ag island film. The gaps between Ag covered CuO nanograsses are diverse from <10 nm at the bottom to ~200 nm at the top of nanograsses. SERS signal are improved where the gaps are minimized to near 10s of nanometers. There are many spots that provide sufficiently narrow gap between the structures on randomly grown CuO nanograss surface. Then we may find optimal enhancement of Raman signal using the mapping data of average results. Fabrication of CuO nanograss based on a solution method is relatively simple and fast so this result can potentially provide a path toward cost effective fabrication of SERS substrate for sensing applications.

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In Situ Single Cell Monitoring by Isocyanide-Functionalized Ag and Au Nanoprobe-Based Raman Spectroscopy

  • Lee, So-Yeong;Jang, Soo-Hwa;Cho, Myung-Haing;Kim, Young-Min;Cho, Keun-Chang;Ryu, Pan Dong;Gong, Myoung-Seon;Joo, Sang-Woo
    • Journal of Microbiology and Biotechnology
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    • 제19권9호
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    • pp.904-910
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    • 2009
  • The development of effective cellular imaging requires a specific labeling method for targeting, tracking, and monitoring cellular/molecular events in the living organism. For this purpose, we studied the cellular uptake of isocyanide-functionalized silver and gold nanoparticles by surface-enhanced Raman scattering (SERS). Inside a single mammalian cell, we could monitor the intracellular behavior of such nanoparticles by measuring the SERS spectra. The NC stretching band appeared clearly at ${\sim}2,100cm^{-1}$ in the well-isolated spectral region from many organic constituents between 300 and 1,700 or 2,800 and $3,600cm^{-1}$. The SERS marker band at ${\sim}2,100cm^{-1}$ could be used to judge the location of the isocyanide-functionalized nanoparticles inside the cell without much spectral interference from other cellular constituents. Our results demonstrate that isocyanide-modified silver or gold nanoparticle-based SERS may have high potential for monitoring and imaging the biological processes at the single cell level.

Silver Surface를 이용한 Quinoline의 SERS 연구 (SERS Study of Quinoline Using the Silver Surface)

  • 이철재;정맹준;김동엽
    • 한국산업융합학회 논문집
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    • 제14권3호
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    • pp.101-104
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    • 2011
  • In this study, the experiments for surface enhancement of silver surfaces were done, where we checked the characteristics of silver surfaces made by Tollen's method. The surface enhancement of Quinoline was analyzed by three kind of silver mirror substrates. The assignments of the vibrational bands shown in SERS spectra are given based on both literature and the semi-empirical calculations at the PM3 methods. Finally, we deduced that the adsorption orientation of quinoline was little tilted flat to the silver mirror surfaces by using of the surface selection rules.

바이오 물질 분석을 위한 금속 나노입자를 이용한 SERS 분석 연구동향 (A Review of SERS for Biomaterials Analysis Using Metal Nanoparticles)

  • 장의순
    • 세라미스트
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    • 제22권3호
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    • pp.281-300
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    • 2019
  • Surface enhanced Raman scattering (SERS) was first discovered in 1974 by an unexpected Raman signal increase from Pyridine adsorbed on rough Ag electrode surfaces by the M. Fleishmann group. M. Moskovits group suggested that this phenomenon could be caused by surface plasmon resonance (SPR), which is a collective oscillation of free electrons at the surface of metal nanostructures by an external light source. After about 40 years, the SERS study has attracted great attention as a biomolecule analysis technology, and more than 2500 new papers and 500 review papers related to SERS topic have been published each year in recently. The advantages of biomaterials analysis using SERS are as follows; ① Molecular level analysis is possible based on unique fingerprint information of biomolecule, ② There is no photo-bleaching effect of the Raman reporters, allowing long-term monitoring of biomaterials compared to fluorescence microscopy, ③ SERS peak bandwidth is approximately 10 to 100 times narrower than fluorescence emission from organic phosphor or quantum dot, resulting in higher analysis accuracy, ④ Single excitation wavelength allows analysis of various biomaterials, ⑤ By utilizing near-infrared (NIR) SERS-activated nanostructures and NIR excitation lasers, auto-fluorescence noise in the visible wavelength range can be avoided from in vivo experiment and light damage in living cells can be minimized compared to visible lasers, ⑥ The weak Raman signal of the water molecule makes it easy to analyze biomaterials in aqueous solutions. For this reason, SERS is attracting attention as a next-generation non-invasive medical diagnostic device as well as substance analysis. In this review, the principles of SERS and various biomaterial analysis principles using SERS analysis will be introduced through recent research papers.