Publications

Detailed Information

Fabrication and Characterization of Three-Dimensional Plasmonic Devices Utilizing Aerosol-Derived Nanoparticles : 에어로졸 나노입자를 적용한 3 차원 플라즈모닉 소자의 제조와 특성 분석

DC Field Value Language
dc.contributor.advisor최만수-
dc.contributor.authorKinam Jung-
dc.date.accessioned2017-07-13T06:17:12Z-
dc.date.available2017-07-13T06:17:12Z-
dc.date.issued2014-08-
dc.identifier.other000000022256-
dc.identifier.urihttps://hdl.handle.net/10371/118419-
dc.description학위논문 (박사)-- 서울대학교 대학원 : 기계항공공학부, 2014. 8. 최만수.-
dc.description.abstractIn this study I applied bottom-up type dry aerosol technology to fabricate plasmonic devices such as organic solar cells and surface-enhance Raman scattering (SERS) by constructing nanoparticle-assembled three-dimensional nanoarchitecture platform.

Firstly, I have demonstrated a considerable enhancement both in JSC and PCE of the plasmonic PCDTBT : PC70BM solar cells employing the NBA composed of MoO3 layer and Ag NPs under the active layer, compared to the reference devices including MoO3 hole extraction layer(HEL) without nanoparticles (NPs). Here, the NPs with different diameters (Ag 20, 40, and 60 nm) have been generated by the evaporation and condensation method using the aerosol process in dry environment without aggregation, impurity, and contamination issues that can usually happen in the wet synthesis. Finite-difference time domain (FDTD) calculation results on scattering cross-sections and near field profiles inside the active materials show higher intensities with a strong forward scattering effect in the devices with the nanobump assembly (NBA) than those with the flat PEDOT:PSS. J-V characteristics show that JSC increases continuously as the size of NPs increases and the best performance is achieved at the device embedding NBA-40. The improved performance depending on the size of NPs is explained by the strong forward light scattering effect coming from near-field enhancement in the vicinity of Ag NP in the visible region, as well as the multi-reflection between the cathode and the nanobump anode in the near IR region. Therefore, this approach can be a promising platform for efficient light harnessing in a broad spectral range for use in diverse OPV devices.

Secondly, I studied 3D mesoscopic multipetal flowers assembled by metallic nanoparticles as a SERS substrate. Seven orders of SERS enhancement, sufficiency for single molecule detection, and multiresonance features in whole visible frequency range were achieved by plasmonic hot-spot engineering through increasing the number of petals from four to eight. By performing DF imaging, spectrum measurements, and FEM analysis I addressed that hot-spots and multipole resonance modes are responsible for peculiar optical properties of multipetal flower structures. Because the nanofabrication technique based on atmospheric spark discharge and electrostatic parallel focusing has capability to construct well-defined, uniform, and reproducible 3D nanostructures in wafer scales, it can not only open the way for manufacturing a reliable 3D SERS substrate sufficient for single molecule detection, but apply to a broad range of novel plasmonic devices.
To conclude, novel 3D plasmonic devices utilizing aerosol-derived metal nanoparticles were demonstrated, which would pave the way for the future development of diverse nanoscale optoelectric devices with maneuvering their surface plasmon traits in a broad spectral range.
-
dc.description.tableofcontentsi introduction 1
1 introduction 3
1.1 Objective and Outline of the Research 3
1.2 Aerosol Synthesis for Plasmonic Devices 5
1.2.1 Spark Discharge Method 5
1.2.2 Evaporation and Condensation Method 6
1.3 Plasmonics 8
1.3.1 Basic Concept and Applications 8

ii aerosol-derived nanoparticle based plasmonic devices:
plasmonic organic solar cells 9
2 plasmonic oraganic solar cells 11
2.1 Introduction 12
2.1.1 Metal Nanoparticles 12
2.1.2 PEDOT : PSS vs. MoO3 12
2.1.3 Nanobump architecture via Aerosol Process 13
2.1.4 Outline of the Research 14
2.2 Results and discussion 15
2.2.1 The Fabrication Process of the Plasmonic OPV Employing
Nanobump Assembly 15
2.2.2 Evaporation and Condensation Method 17
2.2.3 FDTD Simulation : Cross-sections and E-field distributions
of NBA OPV 17
2.2.4 FDTD Simulation : Near Field Radiation Patterns
of NBA OPV 20
2.2.5 J-V and IPCEs characteristics of NBA OPV 24
2.2.6 J-V, IPCE, and PL characteristics of devices with
different HEL layers 26
2.2.7 TEM analysis and EDS mapping data for the NBA
with different sizes of Ag NP 32
2.2.8 Steady-state and time resolved PL of PCDTBT layer
on the NBA structure 32
2.2.9 Exciton generation rate of the OPVs with and without
Ag NPs 34
2.2.10 Absorption enhancement of PCDTBT : PC70BM
with and without the NBA 36
2.2.11 J-V characteristics of the OPVs with different concentrations
and sizes 37
2.2.12 Device parameters of OPV embedding the NBA
with different volume concentrations 37
2.2.13 Multi-reflection effect with and without Al cathode
within plasmonic OPV cells 40
2.3 Experiment and Method 40
2.3.1 3D FDTD simulation for CS and IPCE enhancement
40
2.3.2 Device fabrication and electro-optical measurement
41
2.4 Conclusions 42
Bibliography 42

iii aerosol-derived nanoparticle based plasmonic devices:
sers 49
3 sers (surface-enhanced raman scattering) 51
3.1 Introduction 52
3.1.1 Surface plasmon 52
3.1.2 SERS Substrate 52
3.1.3 Outline 53
3.2 Result and Discussion 54
3.2.1 IAAL(ion-assisted aerolsol lithography) for Nanoflower
Arrays 54
3.2.2 Fabrication of Multipetal Nanoflower Arrays using
IAAL Method 55
3.2.3 SERS Experiments 57
3.2.4 Electromagnetic Simulations for Four and Eight
Petal Nanostructures 60
3.2.5 Dark field(DF) microscopy : DF Spectra and DF
Images 61
3.2.6 Reproducible and Uniform SERS Substrate of m-
PF Arrays 61
3.3 Experiment 72
3.3.1 SERS Enhancement Factor Calculation 72
3.3.2 Penetration Depth 74
3.3.3 SERS Experiment 75
3.3.4 Dark field (DF) Microscopy 76
3.3.5 Method for SERS experiment 76
3.3.6 Method for DF experiment 80
3.4 Conclusions 83
Bibliography 83
-
dc.formatapplication/pdf-
dc.format.extent62083652 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjectaerosol-derived nanoparticle-
dc.subjectspark discharge method-
dc.subjectevaporation and condensation method-
dc.subjectorganic solar cells-
dc.subjectsurface-enhanced Raman scattering (SERS)-
dc.subjectsurface plasmon-
dc.subject.ddc621-
dc.titleFabrication and Characterization of Three-Dimensional Plasmonic Devices Utilizing Aerosol-Derived Nanoparticles-
dc.title.alternative에어로졸 나노입자를 적용한 3 차원 플라즈모닉 소자의 제조와 특성 분석-
dc.typeThesis-
dc.contributor.AlternativeAuthor정기남-
dc.description.degreeDoctor-
dc.citation.pagesxxiv, 96-
dc.contributor.affiliation공과대학 기계항공공학부-
dc.date.awarded2014-08-
Appears in Collections:
Files in This Item:

Altmetrics

Item View & Download Count

  • mendeley

Items in S-Space are protected by copyright, with all rights reserved, unless otherwise indicated.

Share