Yanhui Lou
Soochow University (Suzhou)
Network
Latest external collaboration on country level. Dive into details by clicking on the dots.
Publication
Featured researches published by Yanhui Lou.
Journal of Materials Chemistry | 2016
Lu-Lu Jiang; Shan Cong; Yanhui Lou; Qinghua Yi; Juntong Zhu; Heng Ma; Guifu Zou
Interface engineering is an efficient method for improving the performance of planar perovskite solar cells (PSCs). In this paper, the performance of PSCs was improved significantly by introducing 4,7-diphenyl-1,10-phenanthroline (Bphen) doped with bis(2-methyldibenzo-[f,h]quinoxaline) (Ir(MDQ)2(acac)) to modify the interface between perovskite (CH3NH3PbI3−xClx)/PCBM (phenyl-C61-butyric acid methyl ester) and an Ag electrode. The power conversion efficiency (PCE) was enhanced up to 15.87%, compared with 10.77% for the reference device without interlayer modification. It was found that the enhanced PCE was attributed to the better interface contact between the perovskite and Ag cathode. A suitable interface roughness is beneficial for reducing the leakage current and the probability of carrier recombination, resulting in an enhanced fill factor and thus improved device efficiency.
ACS Applied Materials & Interfaces | 2017
Shan Cong; Hao Yang; Yanhui Lou; Liang Han; Qinghua Yi; Haibo Wang; Yinghui Sun; Guifu Zou
The underlayer plays an important role for organic-inorganic hybrid perovskite formation and charge transport in perovskite solar cells (PSCs). Here, we employ a classical organic small molecule, 5,6,11,12-tetraphenyltetracene (rubrene), as the underlayer of perovskite films to achieve 15.83% of power conversion efficiency with remarkable moisture tolerance exposed to the atmosphere. Experiments demonstrate rubrene hydrophobic underlayer not only drives the crystalline grain growth of high quality perovskite, but also contributes to the moisture tolerance of PSCs. Moreover, the matching energy level of the desirable underlayer is conductive to extracting holes and blocking electrons at anode in PSCs. This introduction of organic small molecule into PSCs provides alternative materials for interface optimization, as well as platform for flexible and wearable solar cells.
Nanoscale Research Letters | 2016
Qinghua Yi; Hao Wang; Shan Cong; Yingjie Cao; Yun Wang; Yinghui Sun; Yanhui Lou; Jie Zhao; Jiang Wu; Guifu Zou
Due to the good photocatalytic activity, the TiO2@CNTs thin film is highly desirable to apply to the self-cleaning glass for green intelligent building. Here, the TiO2@CNTs thin film has been successfully achieved by polymer-assisted approach of an aqueous chemical solution method. The polymer, polyethylenimine, aims to combine the Ti4+ with CNTs for film formation of TiO2@CNTs. The resultant thin film was uniform, highly transparent, and super-hydrophilic. Owing to fast electron transport and effectively hindering electron-hole recombination, the TiO2@CNTs thin film has nearly twofold photocatalytic performance than pure TiO2. The TiO2@CNTs thin films show a good application for self-cleaning glasses.
ACS Applied Materials & Interfaces | 2017
Hao Yang; Shan Cong; Yanhui Lou; Liang Han; Jie Zhao; Yinghui Sun; Guifu Zou
4,7-Diphenyl-1,10-phenanthroline (Bphen) is an efficient electron transport and hole blocking material in organic photoelectric devices. Here, we report cesium carbonate (Cs2CO3) doped Bphen as cathode interfacial layer in CH3NH3PbI3-xClx based planar perovskite solar cells (PSCs). Investigation finds that introducing Cs2CO3 suppresses the crystallization of Bphen and benefits a smooth interface contact between the perovskite and electrode, resulting in the decrease in carrier recombination and the perovskite degradation. In addition, the matching energy level of Bphen film in the PSCs effectively blocks the holes diffusion to cathode. The resultant power conversion efficiency (PCE) achieves as high as 17.03% in comparison with 12.67% of reference device without doping. Besides, experiments also demonstrate the stability of PSCs have large improvement because the suppressed crystallization of Bphen by doping Cs2CO3 as a superior barrier layer blocks the Ag atom and surrounding moisture access to the vulnerable perovskite layer.
Chemical Communications | 2014
Pengfei Zhai; Qinghua Yi; Jie Jian; Haiyan Wang; Pingyuan Song; Chao Dong; Xin Lu; Yinghui Sun; Jie Zhao; Xiao Dai; Yanhui Lou; Hao Yang; Guifu Zou
ACS Applied Materials & Interfaces | 2015
Qinghua Yi; Pengfei Zhai; Yinghui Sun; Yanhui Lou; Jie Zhao; Baoquan Sun; Brian Patterson; Hongmei Luo; Wenrui Zhang; Liang Jiao; Haiyan Wang; Guifu Zou
Nanoscale | 2017
Yanhui Lou; Zhao-Kui Wang
Materials Chemistry and Physics | 2015
Fengfeng Cao; Hao Wang; Zhouhui Xia; Xiao Dai; Shan Cong; Chao Dong; Baoquan Sun; Yanhui Lou; Yinghui Sun; Jie Zhao; Guifu Zou
Nanoscale | 2013
Qinghua Yi; Xiao Dai; Jie Zhao; Yinghui Sun; Yanhui Lou; Xiaodong Su; Qingwen Li; Baoquan Sun; Honghe Zheng; Mingrong Shen; Qinghua Wang; Guifu Zou
Applied Surface Science | 2015
Qinghua Yi; Shan Cong; Hao Wang; Yun Wang; Xiao Dai; Jie Zhao; Yinghui Sun; Yanhui Lou; Guifu Zou