Research progress of hybrid organic-inorganic perovskite solar cells

被引:0
|
作者
Chen C. [1 ]
Yang X. [1 ,2 ]
Liu W. [1 ]
机构
[1] School of Materials Science and Engineering, Tongji University, Shanghai
[2] Key Laboratory of Advanced Civil Engineering Materials for Ministry of Education(Tongji University), Shanghai
来源
Huagong Xuebao/CIESC Journal | 2017年 / 68卷 / 03期
关键词
Composites; Mesoscopic structure; Organic-inorganic perovskite; Planar heterojunction; Solar energy;
D O I
10.11949/j.issn.0438-1157.20160996
中图分类号
学科分类号
摘要
Hybrid organic-inorganic perovskite materials have received much attention in recent years because of their super light absorption coefficient, high charge carrier mobility, ambipolar property, and simple preparation procedure. Photon conversion efficiency of perovskite solar cells was raised from around 3.8% to over 20.4% in past 7 years and had potentials to be continuously enhanced. With a brief introduction of structures and optoelectronic properties of perovskite materials, development and device structures of perovskite solar cells were summarized. Further, challenging issues with current devices were explored and future development directions of perovskite solar cells were proposed. © All Right Reserved.
引用
收藏
页码:811 / 820
页数:9
相关论文
共 76 条
  • [1] Li G., Shrotriya V., Huang J.S., Et al., High-efficiency solution processable polymer photovoltaic cells by self-organization of polymer blends, Nat. Mater., 4, 11, pp. 864-868, (2005)
  • [2] Hagfeldt A., Boschloo G., Sun L., Et al., Dye-sensitized solar cells, Chem. Rev., 110, 11, pp. 6595-6663, (2010)
  • [3] Bhuwalka A., Mike J.F., He M., Et al., Quaterthiophene- benzobisazole copolymers for photovoltaic cells: effect of heteroatom placement and substitution on the optical and electronic properties, Macromolecules, 44, 24, pp. 9611-9617, (2011)
  • [4] He M., Qiu F., Lin Z.Q., Toward high-performance organic-inorganic hybrid solar cells: bringing conjugated polymers and inorganic nanocrystals in close contact, Phys. Chem. Lett., 4, 11, pp. 1788-1796, (2013)
  • [5] Kakiage K., Aoyama Y., Yano T., Et al., Highly-efficient dye-sensitized solar cells with collaborative sensitization by silyl-anchor and carboxy-anchor dyes, Chemical Communications, 51, 88, pp. 15894-15897, (2015)
  • [6] Green M.A., Emery K., Hishikawa Y., Et al., Solar cell efficiency tables (version 36), Prog. Photovoltaics, 18, 5, pp. 346-352, (2010)
  • [7] Xie Y.S., Tang Y.Y., Wu W.J., Et al., Porphyrin cosensitization for a photovoltaic efficiency of 11.5%: a record for non-ruthenium solar cells based on iodine electrolyte, Journal of the American Chemical Society, 137, 44, pp. 14055-14058, (2015)
  • [8] Wang Y.Q., Chen B., Wu W.J., Et al., Efficient solar cells sensitized by porphyrins with an extended conjugation framework and a carbazole donor: from molecular design to cosensitization, Angewandte Chemie International Edition, 53, 40, pp. 10779-10783, (2014)
  • [9] Sun X., Wang Y.Q., Li X., Et al., Cosensitizers for simultaneous filling up of both absorption valleys of porphyrins: a novel approach for developing efficient panchromatic dye-sensitized solar cells, Chemical Communications, 50, 98, pp. 15609-15612, (2014)
  • [10] Park N.G., Perovskite solar cells: an emerging photovoltaic technology, Materials Today, 18, 2, pp. 65-72, (2015)