共查询到20条相似文献,搜索用时 15 毫秒
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A New Fullerene‐Free Bulk‐Heterojunction System for Efficient High‐Voltage and High‐Fill Factor Solution‐Processed Organic Photovoltaics 下载免费PDF全文
Zheng Tang Bo Liu Armantas Melianas Jonas Bergqvist Wolfgang Tress Qinye Bao Deping Qian Olle Inganäs Fengling Zhang 《Advanced materials (Deerfield Beach, Fla.)》2015,27(11):1900-1907
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A Thieno[3,2‐b][1]benzothiophene Isoindigo Building Block for Additive‐ and Annealing‐Free High‐Performance Polymer Solar Cells 下载免费PDF全文
Wan Yue Raja Shahid Ashraf Christian B. Nielsen Elisa Collado‐Fregoso Muhammad R. Niazi Syeda Amber Yousaf Mindaugas Kirkus Hung‐Yang Chen Aram Amassian James R. Durrant Iain McCulloch 《Advanced materials (Deerfield Beach, Fla.)》2015,27(32):4702-4707
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Toward Additive‐Free Small‐Molecule Organic Solar Cells: Roles of the Donor Crystallization Pathway and Dynamics 下载免费PDF全文
Maged Abdelsamie Neil D. Treat Kui Zhao Caitlin McDowell Mark A. Burgers Ruipeng Li Detlef‐M. Smilgies Natalie Stingelin Guillermo C. Bazan Aram Amassian 《Advanced materials (Deerfield Beach, Fla.)》2015,27(45):7285-7292
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Yuze Lin Fuwen Zhao Yang Wu Kai Chen Yuxin Xia Guangwu Li Shyamal K. K. Prasad Jingshuai Zhu Lijun Huo Haijun Bin Zhi‐Guo Zhang Xia Guo Maojie Zhang Yanming Sun Feng Gao Zhixiang Wei Wei Ma Chunru Wang Justin Hodgkiss Zhishan Bo Olle Inganäs Yongfang Li Xiaowei Zhan 《Advanced materials (Deerfield Beach, Fla.)》2017,29(3)
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Bulk‐Heterojunction Organic Solar Cells: Five Core Technologies for Their Commercialization 下载免费PDF全文
Hongkyu Kang Geunjin Kim Junghwan Kim Sooncheol Kwon Heejoo Kim Kwanghee Lee 《Advanced materials (Deerfield Beach, Fla.)》2016,28(36):7821-7861
The past two decades of vigorous interdisciplinary approaches has seen tremendous breakthroughs in both scientific and technological developments of bulk‐heterojunction organic solar cells (OSCs) based on nanocomposites of π‐conjugated organic semiconductors. Because of their unique functionalities, the OSC field is expected to enable innovative photovoltaic applications that can be difficult to achieve using traditional inorganic solar cells: OSCs are printable, portable, wearable, disposable, biocompatible, and attachable to curved surfaces. The ultimate objective of this field is to develop cost‐effective, stable, and high‐performance photovoltaic modules fabricated on large‐area flexible plastic substrates via high‐volume/throughput roll‐to‐roll printing processing and thus achieve the practical implementation of OSCs. Recently, intensive research efforts into the development of organic materials, processing techniques, interface engineering, and device architectures have led to a remarkable improvement in power conversion efficiencies, exceeding 11%, which has finally brought OSCs close to commercialization. Current research interests are expanding from academic to industrial viewpoints to improve device stability and compatibility with large‐scale printing processes, which must be addressed to realize viable applications. Here, both academic and industrial issues are reviewed by highlighting historically monumental research results and recent state‐of‐the‐art progress in OSCs. Moreover, perspectives on five core technologies that affect the realization of the practical use of OSCs are presented, including device efficiency, device stability, flexible and transparent electrodes, module designs, and printing techniques. 相似文献