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| 1 | Synergistic improvement of perovskite film quality for efficient solar cells via multiple chloride salt additives显示文摘Perovskite crystal film quality is critical for obtaining efficient perovskite solar cells. Anti-solvent processing was used for fast crystallization of perovskite precursor film, which can form dense perovskite film.However, the crystals from this method are usually small due to the fast crystal growth process, which could lead to grain boundary recombination. Here, element chloride is introduced to enhance the perovskite layer crystallinity via slowing down the perovskite crystallization process by simultaneous introduction of methylammounium chloride(MACl) and cesium chloride(CsCl) into precursor solution.As a result, we achieve high quality of pin-hole free perovskite film with large crystal size. A power conversion efficiency of 21.55% with free of hysteresis of the device is obtained, which is among the highest efficiency of planar structure perovskite solar cells. | Pengyang Wang Qi Jiang Yang Zhao Yong Chen Zema Chu Xingwang Zhang Yuqin Zhou Jingbi You | 2018 | Science Bulletin2018,63,11: | 6 |
| 2 | Recent progress in stability of perovskite solar cells显示文摘Perovskite solar cells have attracted significant attention in just the past few years in solar cell research fields,where the power conversion efficiency was beyond 22.1%.Now,the most important challenge for perovskite solar cells in practical applications is the stability issue.In this mini-review,we will summarize the degradation mechanism of perovskite solar cells,including the perovskite material itself and also the interfaces.While we also provide our opinion on improving the stability of perovskite solar cells. | Xiaojun Qin Zhiguo Zhao Yidan Wang Junbo Wu Qi Jiang Jingbi You | 2017 | Journal of Semiconductors2017,38,1: | 4 |
| 3 | Research progress in large-area perovskite solar cells显示文摘The record power conversion efficiency of small-area perovskite solar cells has impressively exceeded 25%.For commercial application,a large-area device is the necessary next step.Recently,significant progress has been achieved in fabricating efficient large-area perovskite solar cells.In this review,we will summarize recent achievements in large-area perovskite solar cells including the deposition methods as well as growth control of the large-area,high-quality perovskite layer and also the charge transport layer.Finally,we will give our insight into large-area perovskite solar cells. | Yang Zhao Fei Ma Feng Gao Zhigang Yin Xingwang Zhang Jingbi You | 2020 | Photonics Research2020,8,7: | 3 |
| 4 | Nickel oxide for inverted structure perovskite solar cells显示文摘The emergence of inverted perovskite solar cells(PSCs) has attached great attention derived from the potential in improving stability. Charge transporting layer, especially hole transporting layer is crucial for efficient inverted PSCs. Organic materials were used as hole transporting layer previously. Recently, more and more inorganic hole transporting materials have been deployed for further improving the device stability. Nickel oxide(NiOx) as p-type metal oxide, owning high charge mobility and intrinsic stability,has been widely adopted in inverted PSCs. High performance over 20% efficiency has been achieved on NiOx base inverted PSCs. Herein, we have summarized recent progresses and strategies on the NiOx based PSCs, including the synthesis or deposition methods of NiOx, doping and surface modification of NiOx for efficient and stable PSCs. Finally, we will discuss current challenges of utilizing NiOx HTLs in PSCs and attempt to give probable solutions to make further development in efficient as well as stable NiOx based PSCs. | Fei Ma Yang Zhao Jinhua Li Xingwang Zhang Haoshuang Gu Jingbi You | 2021 | Journal of Energy Chemistry2021,30,1: | 3 |
| 5 | Recent progress in perovskite solar cells:material science显示文摘Perovskite solar cells represent a promising third-generation photovoltaic technology with low fabrication cost and high power conversion efficiency.In light of the rapid development of perovskite materials and devices,a systematic survey on the latest advancements covering a broad range of related work is urgently needed.This review summarizes the recent major advances in the research of perovskite solar cells from a material science perspective.The discussed topics include the devices based on different type of perovskites(organic-inorganic hybrid,all-inorganic,and lead-free perovskite and perovskite quantum dots),the properties of perovskite defects,different type of charge transport materials(organic,polymeric,and inorganic hole transport materials and inorganic and organic electron transport materials),counter electrodes,and interfacial materials used to improve the efficiency and stability of devices.Most discussions focus on the key progresses reported within the recent five years.Meanwhile,the major issues limiting the production of perovskite solar cells and the prospects for the future development of related materials are discussed. | Jiang-Yang Shao Dongmei Li Jiangjian Shi Chuang Ma Yousheng Wang Xiaomin Liu Xianyuan Jiang Mengmeng Hao Luozheng Zhang Chang Liu Yiting Jiang Zhenhan Wang Yu-Wu Zhong Shengzhong(Frank)Liu Yaohua Mai Yongsheng Liu Yixin Zhao Zhijun Ning Lianzhou Wang Baomin Xu Lei Meng Zuqiang Bian Ziyi Ge Xiaowei Zhan Jingbi You Yongfang Li Qingbo Meng | 2023 | Science China Chemistry2023,66,1: | 3 |
| 6 | Stabilizing the black phase of cesium lead halide inorganic perovskite for efficient solar cells显示文摘Inorganic perovskite cesium lead halide is extensively studied because of its potential in improving the thermal stability of perovskite materials. However, the tolerance factor of this type of perovskite is near the critical value, which leads to phase instability. The optoelectronic active black phases(α,β, and γ phases of CsPbI3) are metastable at room temperature, which can be easily transferred into an optoelectronic inactive yellow phase(δ-CsPbI3). This review highlights recent progress in stabilizing the black phase for efficient and stable perovskite solar cells. | Qiufeng Ye Yang Zhao Shaiqiang Mu Pingqi Gao Xingwang Zhang Jingbi You | 2019 | Science China Chemistry2019,62,7: | 2 |
| 7 | Tandem Polymer Solar Cells Featuring a Spectrally Matched Low- bandgap Polymer 显示文摘 | Letian Dou Jingbi You Jun Yang | 2012 | Nature Photonics2012,,6: | 1 |
| 8 | 查看详情显示文摘 | You Jingbi Dou Letian Yoshimura Ken | | 0,,: | 1 |
| 9 | Tandem polymer solar cells featuring a spectrally matched low-bandgap polymer显示文摘 | Dou Letian You Jingbi Yang Jun | 2012 | Nature Photonics2012,6,3: | 1 |
| 10 | Tandem polymer solar cells featuring a spectrally matched low-bandga polymer显示文摘 | Letian Dou Jingbi You Jun Yang | 2012 | Na- ture Photonics2012,6,3: | 1 |
| 11 | Recent progress in perovskite solar cells:from device to commercialization显示文摘Perovskite solar cells(PSCs) are undergoing rapid development and the power conversion efficiency reaches 25.7% which attracts increasing attention on their commercialization recently.In this review,we summarized the recent progress of PSCs based on device structures,perovskite-based tandem cells,large-area modules,stability,applications and industrialization.Last,the challenges and perspectives are discussed,aiming at providing a thrust for the commercialization of PSCs in the near future. | Xinhui Luo Xuesong Lin Feng Gao Yang Zhao Xiaodong Li Liqing Zhan Zexiong Qiu Jin Wang Cong Chen Lei Meng Xiaofeng Gao Yu Zhang Zijian Huang Rundong Fan Huifen Liu Yanrun Chen Xiaoxue Ren Jiahong Tang Chun-Hao Chen Dong Yang Yongguang Tu Xiao Liu Dongxue Liu Qing Zhao Jingbi You Junfeng Fang Yongzhen Wu Hongwei Han Xiaodan Zhang Dewei Zhao Fuzhi Huang Huanping Zhou Yongbo Yuan Qi Chen Zhaokui Wang Shengzhong(Frank)Liu Rui Zhu Jotaro Nakazaki Yongfang Li Liyuan Han | 2022 | Science China Chemistry2022,65,12: | 1 |
| 12 | Low-Temperature Solution-Processed Perovskite Solar Cells with High Efficiency and Flexibility显示文摘 | Jingbi You Ziruo Hong Yang Yang | 2014 | ACSnano2014,8,2: | 1 |
| 13 | Metal oxide nanoparticles as an electron-transport layer in high-performance and stable inverted polymer solar cells 显示文摘 | You Jingbi Chen Chunchao Dou Letian | 2012 | Advanced Materials2012,24,38: | 1 |
| 14 | Plasmonic polymer tandem solar cell显示文摘 | Jun Yang Jingbi You Chan-Chao Chen | 2011 | ACS Nano2011,5,8: | 1 |
| 15 | Recent trends in polymer tandem solar cells research显示文摘 | Jingbi You Letian Dou Ziruo Hong Gang Li Yang Yang | 2013 | Progress in Polymer Science2013,,: | 1 |
| 16 | Polymer hole-transport material improving thermal stability of inorganic perovskite solar cells显示文摘Cesium-based inorganic perovskite solar cells(PSCs)are paid more attention because of their potential thermal stability.However,prevalent salt-doped 2,2',7,7'-tetrakis(N,N-dipmethoxyphenylamine)9,9z-spirobifluorene(Spiro-OMeTAD)as hole-transport materials(HTMs)for a high-efficiency inorganic device has an unfortunate defective thermal stability.In this study,we apply poly(3-hexylthiophene-2,5-diyl)(P3HT)as the HTM and design all-inorganic PSCs with an indium tin oxide(ITO)/SnO2/LiF/CsPbI3-xBrx/P3HT/Au structure.As a result,the CsPbb-xBrx PSCs achieve an excellent performance of 15.84%.The P3HT HTM-based device exhibits good photo-stability,maintaining〜80%of their initial power conversion efficiency over 280 h under one Sun irradiation.In addition,they also show better thermal stability compared with the traditional HTM Spiro-OMeTAD. | Shaiqiang MU Qiufeng YE Xingwang ZHANG Shihua HUANG Jingbi YOU | 2020 | Frontiers of Optoelectronics2020,13,3: | 1 |
| 17 | 25th Anniversary Article: A Decade of Organic/Polymeric Photovoltaic Research显示文摘 | Letian Dou Jingbi You Ziruo Hong Zheng Xu Gang Li Robert A. Street Yang Yang | 2013 | Adv Mater2013,,46: | 1 |
| 18 | A Selenium‐Substituted Low‐Bandgap Polymer with Versatile Photovoltaic Applications显示文摘 | Letian Dou Wei‐Hsuan Chang Jing Gao Chun‐Chao Chen Jingbi You Yang Yang | 2012 | Adv Mater2012,,6: | 1 |
| 19 | Tandem polymer solar cells featuring a spectrally matched low-bandgap polymer 显示文摘 | Dou Letian You Jingbi Yang Jun | 2012 | Nature Photonics2012,6,3: | 1 |
| 20 | PEROVSKITE SEMICONDUCTOR OPTOELECTRONIC DEVICES Rational molecular passivation for high-performance perovskite light-emitting diodes显示文摘Solution-processed metal halide perovskites (MHPs) have received significant interest for cost-effective, high-performance optoelectronic devices. In addition to the great successes in photovoltaics, their excellent luminescence and charge transport properties also make them promising for light emitting diodes (LEDs). To achieve high-efficiency perovskite LEDs (PeLEDs), extensive efforts have been carried out to enhance radiative recombination rates by confining the electrons and holes. In addition to enhancing radiative recombination rates, it is equally important to decrease the non-radiative recombination for improving the device performance. Passivation of the defects could be an efficient way for reducing the non-radiative recombination. | Jingbi You | 2019 | Journal of Semiconductors2019,40,4: | 0 |