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Fully vacuum–processed perovskite solar cells with high open circuit voltage using MoO3/NPB layer

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dc.contributor.advisor김장주-
dc.contributor.author김범수-
dc.date.accessioned2017-07-14T03:10:51Z-
dc.date.available2017-07-14T03:10:51Z-
dc.date.issued2015-02-
dc.identifier.other000000025890-
dc.identifier.urihttps://hdl.handle.net/10371/123343-
dc.description학위논문 (석사)-- 서울대학교 대학원 : 재료공학부, 2015. 2. 김장주.-
dc.description.abstractRecently, organic/inorganic hybrid (e.g. CH3NH3PbI3, CH3NH3PbI3-xClx) perovskite based solar cells attract large attention because of the remarkably high power conversion efficiencies. Most of the devices reported up to now have been fabricated using solution processes. One of the critical issues of the solution processed perovskite solar cells is the reproducibility coming from the difficulties in controlling the uniformity, pin-hole formation, sensitivity to moisture and air of the perovskite film. Vacuum evaporation has a potential for high reproducibility and controllability due to solvent free processes combined with controllable growth parameters in a clean and inert environment. Nevertheless, the fully vacuumprocessed perovskite solar cells have been rarely reported up to now. The other crucial issue is the charge transport materials, mainly hole transport materials(HTMs), to enhance the device performance. The widely used HTM, 2,2,7,7-Tetrakis(N,N-di-p-methoxyphenylamine)-9,9-spirobifluorene (spiro-OMeTAD) is not an optimized HTM for the CH3NH3PbI3 based solar cells, since spiro-OMeTAD possesses a few hundred meV higher HOMO level than valance band (VB) edge of CH3NH3PbI3.
This thesis presents high efficiency perovskite solar cells with high open circuit voltage using full vacuum process employing molybdenum oxide (MoO3) and N,N′-Di(1-naphthyl)-N,N′-diphenyl-(1,1′-biphenyl)-4,4′-diamine (NPB) as a new hole extraction layer. All the layers in the solar cells including the perovskite active layer, hole extraction layers and electron extraction layers were deposited in the vacuum process. Uniform crystalline perovskite layers were able to be grown on the NPB layer under optimized conditions. The grain size of the films were about 100 nm with the root mean square roughness of 9.7 nm. The solar cells employing the MoO3/NPB as the hole extraction layer resulted in a high open circuit voltage (VOC) of 1.12 V, which is one of the highest values reported up to now in perovskite solar cells. Due to the effective hole extraction and high VOC, the devices showed a maximum power conversion efficiency (PCE) of 13.7% with JSC of 18.1 mA/cm2, VOC of 1.12 V and FF of 0.68. It turned out missing one of the MoO3 or NPB layers resulted in much poor solar cell performance due to either the failure of the formation of ohmic contact with the ITO electrode (missing the MoO3 layer) or due to the lack of the electron blocking layer or poor crystallinity of the perovskite layer (missing the NPB layer). The vacuum processed perovskite solar cells showed relatively high reproducibility showing the average value of PCE of 11.1%. The JSC and VOC are distributed within 17.2 mA/cm2 ~ 19.5 mA/cm2 and 0.98 V ~ 1.12 V respectively, exhibiting small deviation within approximately 7% from the average values. The FF values show a relatively wide distribution, 0.39~0.68, hence causing the similar distribution of PCE values, 7.1%~13.7%. Still the variation of the performance of the solar cells fabricated using the vacuum process is fairly narrow compared to the normal solution processed perovskite solar cells. Further study is required to find out the origin of the variation of FF, thereby to enhance the better reproducibility. The vacuum processed perovskite solar cells showed hysteresis depending on sweep direction. The device with MoO3/NPB layer showed PCE of 12.1% with JSC of 18.1 mA/cm2, VOC of 1.09 V and FF of 0.62 in the forward scan direction whereas overall solar cell parameter decreased in the reverse scan direction showing PCE of 10.3% with JSC of 17.1 mA/cm2, VOC of 1.07 V and FF of 0.56. The origin of the hysteresis is important issue, however it has not been clearly figured out yet.
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dc.description.tableofcontentsAbstract i
Contents ii
List of Tables vi
List of Figures vii
Chapter 1. Introduction 1
1.1 Motivation and outline of thesis 1
1.1.1 Motivation 1
1.1.2 Outline of thesis 2
1.2 Perovskite solar cells 4
1.2.1 Material properties of the perovskite 4
1.2.2 Working principles of the perovskite solar cells 7
1.2.3 Charge extractions in perovskite solar cells 7
1.2.4 Methodes to fabricate the perovskite thin films 9
Chapter 2. Vacuum deposition of CH3NH3PbI3 12
2.1 Introduction 12
2.2 Behavior of CH3NH3I3 in the vacuum deposition 13
2.3 Co-deposition with PbCl2(CH3NH3PbI3-xClx) 16
2.4 Co-deposition with PbI2(CH3NH3PbI3) 19
2.5 Film characterizations 22
2.5.1 Absorbance & XRD patterns 22
2.5.2 Surface analyzes 26
Chapter 3. Hole extraction layers in the vacuum processed peorvskite solar cells 29
3.1 Introduction 29
3.2 Experiments 32
3.3 Function of the MoO3 layer 33
3.4 Function of the NPB layer 38
3.5 Device with MoO3/NPB layer 45
3.6 Conclusion 51
Chapter 4. Reproducibility of the vacuum processed peorvskite solar cells 52
4.1 Introduction 52
4.2 Histograms 53
4.3 Reproducibility analysis 55
4.4 Conclusion 62
Chapter 5. Hysteresis behavior of the vacuum processed perovskite solar cells 63
5.1 Introduction 63
5.2 J–V characteristics with the different scan directions 64
5.3 Plausible origins 69
5.4 Conclusion 70
Chapter 5. Summary and out look 71
Bibliography 75
초록 81
List of Awards 84
List of Publications 85
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dc.formatapplication/pdf-
dc.format.extent2781274 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjectOrganic/inorganic hybrid perovskite solar cell-
dc.subjectfull vacuum-process-
dc.subjectreproducibility-
dc.subjectMoO3-
dc.subjectNPB-
dc.subject.ddc620-
dc.titleFully vacuum–processed perovskite solar cells with high open circuit voltage using MoO3/NPB layer-
dc.typeThesis-
dc.description.degreeMaster-
dc.citation.pagesxiii, 85-
dc.contributor.affiliation공과대학 재료공학부-
dc.date.awarded2015-02-
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