Novel inorganic material and film formation process for high performance organic solar cells

Organic solar cell (OSC) is a highly promising research field with a strong potential to realize low cost solar cells with flexibility and light weight. Although OSC power conversion efficiency (PCE) exceeding 9% has been achieved recently, great efforts are still needed to strive a PCE over 10% mak...

Full description

Bibliographic Details
Main Authors: Xie, Fengxian, 解凤贤
Language:English
Published: The University of Hong Kong (Pokfulam, Hong Kong) 2014
Subjects:
Online Access:http://hdl.handle.net/10722/199892
id ndltd-HKU-oai-hub.hku.hk-10722-199892
record_format oai_dc
spelling ndltd-HKU-oai-hub.hku.hk-10722-1998922015-07-29T04:02:39Z Novel inorganic material and film formation process for high performance organic solar cells Xie, Fengxian 解凤贤 Solar cells - Materials Organic solar cell (OSC) is a highly promising research field with a strong potential to realize low cost solar cells with flexibility and light weight. Although OSC power conversion efficiency (PCE) exceeding 9% has been achieved recently, great efforts are still needed to strive a PCE over 10% making OSC ready for commercialization. Besides the demand of high PCE, other considerations, such as easy solution process, stability and large area processing, are also required for mass production in future. With the understanding of key technical issues that still challenge OSC towards widely spread applications, our worksarefocusingon1) applying the solution processed inorganic materials to ameliorate the intrinsic drawback in OSCs; and 2)proposing novel and simple solution process to improve electrical properties of OSCs by controlling the film quality thus the electrical properties during the film formation process. Detailed work is listed below: 1. Incorporating of metal nanoparticles (NPs) for improving OSC efficiency Metal NPs are selected as the candidate for improving OSC efficiency through their unique optical and electrical properties. Our results show that (1a) When meal NPs are incorporated in the hole transport layer (HTL) poly-(3, 4-ethylenedioxythiophene):poly(styrenesulfonate) (PEDOT:PSS), the PCE of OSCs are improved due to enhanced conductivity and rough surface. (1b) When metal NPs are embedded in the active layer, OSC performance can be further enhanced due to improvement in light absorption and electrical properties. When we incorporate Au NPs in all organic layers of OSCs, accumulation improvements in OSC performances can be achieved. (1c) When metal NPs are incorporated in electron transport layer of TiO2, the experimental results show that the enhanced charge extraction under solar illumination can be attributing to the UV-excited electrons transfer from TiO2electron transport layer and storage by Au NPs. 2. Solution processed metal oxide thin film for high efficient hole transporting layer (HTL) The solution-processed transition metal oxides (TMOs) have attracted great attention due to their superior air-stability properties and universal energy level alignment with organic materials. In this thesis, we propose a one-step method to synthesize low-temperature solution-processed TMOs such as molybdenum oxide and vanadium oxide, with good film quality, desirable electrical properties, and improved device stability, for HTLs applications. 3. Self-assemble metal oxide for high efficient electron transporting layer (ETL) We propose a self-assemble and solution-processed method in fabricating ETLs composed of TiO2 NPs that can simultaneously achieve good film uniformity and homogeneity, and electron transport properties. We believe this new method will be capable for large-area applications in future. 4. Vertical morphology control for active layer. Besides carrier transport layers, the morphology of the active layer will significantly affect its electrical and optical properties and thus device performance. We propose up-side-down method to modify the nano-morphology blend along vertical direction, which is beneficial to vertical charge transport and thus producing higher OSC performances. The film-growth dynamics of polymer blends is studied, which has been neglected in most study of OSC morphology by others. published_or_final_version Electrical and Electronic Engineering Doctoral Doctor of Philosophy 2014-07-25T23:12:12Z 2014-07-25T23:12:12Z 2013 2013 PG_Thesis 10.5353/th_b5066201 b5066201 http://hdl.handle.net/10722/199892 eng HKU Theses Online (HKUTO) Creative Commons: Attribution 3.0 Hong Kong License The author retains all proprietary rights, (such as patent rights) and the right to use in future works. The University of Hong Kong (Pokfulam, Hong Kong)
collection NDLTD
language English
sources NDLTD
topic Solar cells - Materials
spellingShingle Solar cells - Materials
Xie, Fengxian
解凤贤
Novel inorganic material and film formation process for high performance organic solar cells
description Organic solar cell (OSC) is a highly promising research field with a strong potential to realize low cost solar cells with flexibility and light weight. Although OSC power conversion efficiency (PCE) exceeding 9% has been achieved recently, great efforts are still needed to strive a PCE over 10% making OSC ready for commercialization. Besides the demand of high PCE, other considerations, such as easy solution process, stability and large area processing, are also required for mass production in future. With the understanding of key technical issues that still challenge OSC towards widely spread applications, our worksarefocusingon1) applying the solution processed inorganic materials to ameliorate the intrinsic drawback in OSCs; and 2)proposing novel and simple solution process to improve electrical properties of OSCs by controlling the film quality thus the electrical properties during the film formation process. Detailed work is listed below: 1. Incorporating of metal nanoparticles (NPs) for improving OSC efficiency Metal NPs are selected as the candidate for improving OSC efficiency through their unique optical and electrical properties. Our results show that (1a) When meal NPs are incorporated in the hole transport layer (HTL) poly-(3, 4-ethylenedioxythiophene):poly(styrenesulfonate) (PEDOT:PSS), the PCE of OSCs are improved due to enhanced conductivity and rough surface. (1b) When metal NPs are embedded in the active layer, OSC performance can be further enhanced due to improvement in light absorption and electrical properties. When we incorporate Au NPs in all organic layers of OSCs, accumulation improvements in OSC performances can be achieved. (1c) When metal NPs are incorporated in electron transport layer of TiO2, the experimental results show that the enhanced charge extraction under solar illumination can be attributing to the UV-excited electrons transfer from TiO2electron transport layer and storage by Au NPs. 2. Solution processed metal oxide thin film for high efficient hole transporting layer (HTL) The solution-processed transition metal oxides (TMOs) have attracted great attention due to their superior air-stability properties and universal energy level alignment with organic materials. In this thesis, we propose a one-step method to synthesize low-temperature solution-processed TMOs such as molybdenum oxide and vanadium oxide, with good film quality, desirable electrical properties, and improved device stability, for HTLs applications. 3. Self-assemble metal oxide for high efficient electron transporting layer (ETL) We propose a self-assemble and solution-processed method in fabricating ETLs composed of TiO2 NPs that can simultaneously achieve good film uniformity and homogeneity, and electron transport properties. We believe this new method will be capable for large-area applications in future. 4. Vertical morphology control for active layer. Besides carrier transport layers, the morphology of the active layer will significantly affect its electrical and optical properties and thus device performance. We propose up-side-down method to modify the nano-morphology blend along vertical direction, which is beneficial to vertical charge transport and thus producing higher OSC performances. The film-growth dynamics of polymer blends is studied, which has been neglected in most study of OSC morphology by others. === published_or_final_version === Electrical and Electronic Engineering === Doctoral === Doctor of Philosophy
author Xie, Fengxian
解凤贤
author_facet Xie, Fengxian
解凤贤
author_sort Xie, Fengxian
title Novel inorganic material and film formation process for high performance organic solar cells
title_short Novel inorganic material and film formation process for high performance organic solar cells
title_full Novel inorganic material and film formation process for high performance organic solar cells
title_fullStr Novel inorganic material and film formation process for high performance organic solar cells
title_full_unstemmed Novel inorganic material and film formation process for high performance organic solar cells
title_sort novel inorganic material and film formation process for high performance organic solar cells
publisher The University of Hong Kong (Pokfulam, Hong Kong)
publishDate 2014
url http://hdl.handle.net/10722/199892
work_keys_str_mv AT xiefengxian novelinorganicmaterialandfilmformationprocessforhighperformanceorganicsolarcells
AT jiěfèngxián novelinorganicmaterialandfilmformationprocessforhighperformanceorganicsolarcells
_version_ 1716814327770513408