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Fabrication of Shape-Controlled Inorganic Nanomaterials for Enhanced Light Absorption in Solar Cells : 형태가 제어된 무기 나노소재 제조 및 태양전지 내 광흡수 향상

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dc.contributor.advisor장정식-
dc.contributor.authorRoh, Jongmin-
dc.date.accessioned2017-07-13T08:48:55Z-
dc.date.available2017-07-13T08:48:55Z-
dc.date.issued2016-08-
dc.identifier.other000000135936-
dc.identifier.urihttps://hdl.handle.net/10371/119863-
dc.description학위논문 (박사)-- 서울대학교 대학원 : 화학융합기술전공), 2016. 8. 장정식.-
dc.description.abstractPhotovoltaic (PV) devices can effectively convert sunlight into clean electrical power and provide a virtually unlimited supply of usable energy that is sustainable and environmentally benign in operation. Nanomaterials open up new possibilities to achieve higher solar energy conversion efficiencies at lower fabrication costs, as they allow the use of inexpensive materials and processing technologies to harvest sunlight by efficiently capturing photon energy over a broad spectral range, and then quickly separating and collecting photo-generated charge carriers. However, the bandgap energy of the semiconductors places a fundamental upper limit on solar energy conversion efficiency for solar cells, known as Shockley-Queisser limit which restricts the efficiency to a maximum of about 31% for unconcentrated sunlight irradiation, using a semiconductor material with an optimized band-gap of around 1.35 eV.
This dissertation describes the fabrication of shape-controlled inorganic nanomaterials for effective light harvesting in solar cells. CeO2:Eu3+ nano-octahedra were prepared using a simple hydrothermal method and introduced to the TiO2 layer of the photoanode in a dye-sensitized solar cell (DSSC) device. The as-synthesized CeO2:Eu3+ nano-octahedra possess the dual functionality of light scattering and downconversion luminescent properties, leading to increased photocurrent in DSSCs. NaYF4:Yb3+, Er3+ hexagonal nanoprisms were fabricated via a simple hydrothermal process. NaYF4:Yb3+, Er3+ hexagonal nanoprisms were introduced to the TiO2 mesoporous layer in a perovskite solar cell (PSC) device as upconverting centers. Size-controlled Ag@SiO2 nanoplates were synthesized by seed-mediated growth method and sol-gel reaction. After introduction of Ag@SiO2 nanoplates in PSC, photocurrent was considerably increased by localized surface plasmon resonance (LSPR) effect of Ag@SiO2 nanoplates.
The nanomaterials presented in this dissertation could be applied to various photovoltaic fields such as DSSC, PSC, and organic photovoltaic (OPV). In addition, this dissertation might not only provide a facile synthetic route for shape-controlled inorganic nanomaterials but also offer an understanding of efficient light harvesting for high-performance PV devices.
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dc.description.tableofcontents1. INTRODUCTION 1
1.1. Background 1
1.1.1. Light absorption 1
1.1.1.1. Light scattering 1
1.1.1.2. Downconversion 4
1.1.1.3. Upconversion 6
1.1.1.4. Localized surface plasmon resonance 9
1.1.2. Application fields 14
1.1.2.1. Dye-sensitized solar cell 14
1.1.2.2. Perovskite solar cell 17
1.2. Objectives and Outlines 19
1.2.1. Objectives 19
1.2.2. Outlines 19

2. EXPERIMENTAL DETAILS 22
2.1. CeO2:Eu3+ nano-octahedra for dye-sensitized solar cells 22
2.1.1. Fabrication of CeO2:Eu3+ nano-octahedra 22
2.1.2. Characterization of CeO2:Eu3+ nano-octahedra 22
2.1.3. Application to dye-sensitized solar cell 23
2.2. β-NaYF4:Yb3+, Er3+ hexagonal nanoprisms for perovskite solar cells 25
2.2.1. Fabrication of β-NaYF4:Yb3+, Er3+ hexagonal nanoprisms 25
2.2.2. Characterization of β-NaYF4:Yb3+, Er3+ hexagonal nanoprisms 26
2.2.3. Application to perovskite solar cell 27
2.3. Size-controlled Ag@SiO2 nanoplates for perovskite solar cells 29
2.3.1. Fabrication of size-controlled Ag@SiO2 nanoplates 29
2.3.2. Characterization of size-controlled Ag@SiO2 nanoplates 31
2.3.3. Application to perovskite solar cell 31

3. RESULTS AND DISCUSSION 34
3.1. CeO2:Eu3+ nano-octahedra for dye-sensitized solar cells 34
3.1.1. Fabrication of CeO2:Eu3+ nano-octahedra 34
3.1.2. Characterization of CeO2:Eu3+ nano-octahedra 42
3.1.3. Application to dye-sensitized solar cell 54
3.2. β-NaYF4:Yb3+, Er3+ hexagonal nanoprisms for perovskite solar cells 67
3.2.1. Fabrication of β-NaYF4:Yb3+, Er3+ hexagonal nanoprisms 67
3.2.2. Characterization of β-NaYF4:Yb3+, Er3+ hexagonal nanoprisms 69
3.2.3. Application to perovskite solar cell 75
3.3. Size-controlled Ag@SiO2 nanoplates for perovskite solar cells 93
3.3.1. Fabrication of size-controlled Ag@SiO2 nanoplates 93
3.3.2. Characterization of size-controlled Ag@SiO2 nanoplates 98
3.3.3. Application to perovskite solar cell 101

4. CONCLUSIONS 112

REFERENCES 115

국문초록 123
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dc.formatapplication/pdf-
dc.format.extent3689783 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjectLight absorption-
dc.subjectinorganic nanomaterials-
dc.subjectshape-control-
dc.subjectphotovoltaic-
dc.subjectdye-sensitized solar cell-
dc.subjectperovskite solar cell-
dc.subject.ddc660-
dc.titleFabrication of Shape-Controlled Inorganic Nanomaterials for Enhanced Light Absorption in Solar Cells-
dc.title.alternative형태가 제어된 무기 나노소재 제조 및 태양전지 내 광흡수 향상-
dc.typeThesis-
dc.contributor.AlternativeAuthor노종민-
dc.description.degreeDoctor-
dc.citation.pages124-
dc.contributor.affiliation공과대학 화학생물공학부(에너지환경 화학융합기술전공)-
dc.date.awarded2016-08-
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