Topics

No keywords indexed for this article. Browse by subject →

References
25
[1]
Kim, H.-S. et al. Lead iodide perovskite sensitized all-solid-state submicron thin film mesoscopic solar cell with efficiency exceeding 9%. Sci. Rep. 2, 591 (2012). 10.1038/srep00591
[2]
Burschka, J. et al. Sequential deposition route to high performance perovskite-sensitized solar cells. Nature 499, 316–320 (2013). 10.1038/nature12340
[3]
Organometal Halide Perovskites as Visible-Light Sensitizers for Photovoltaic Cells

Akihiro Kojima, Kenjiro Teshima, Yasuo Shirai et al.

Journal of the American Chemical Society 2009 10.1021/ja809598r
[4]
Heo, J. H. et al. Efficient inorganic-organic hybrid heterojunction solar cells containing perovskite compound and polymeric hole conductors. Nat. Photon. 7, 487 (2013). 10.1038/nphoton.2013.80
[5]
Efficient Hybrid Solar Cells Based on Meso-Superstructured Organometal Halide Perovskites

Michael M. Lee, Joël Teuscher, Tsutomu Miyasaka et al.

Science 2012 10.1126/science.1228604
[6]
Liu, M., Johnston, B. M. & Snaith, J. H. Efficient planar heterojunction perovskite solar cells by vapour deposition. Nature 501, 395–398 (2013). 10.1038/nature12509
[7]
Ball, J. M., Lee, M. M., Hey, A. & Snaith, H. J. Low-temperature processed mesosuperstructured to thin-film perovskite solar cells. Energy Environ. Sci. 6, 1739–1743 (2013). 10.1039/c3ee40810h
[8]
Chopra, K. L., Paulson, P. D. & Dutta, V. Thin-film solar cells: an overview. Prog. Photovolt. Res. Appl 12, 69–92 (2004). 10.1002/pip.541
[9]
Loi, M. A. & Hummelen, J. C. Hybrid solar cells: perovskites under the sun. Nat. Mater. 12, 1087–1089 (2013).
[10]
Malinkiewicz, O. et al. Perovskite solar cells employing organic charge-transport layers. Nat. Photon. 8, 128–132 (2014). 10.1038/nphoton.2013.341
[11]
Liu, D. & Kelly, T. L. Perovskite solar cells with a planar heterojunction structure prepared using room-temperature solution processing techniques. Nat. Photon. 8, 133–138 (2014). 10.1038/nphoton.2013.342
[12]
Yang-Yang et al. Low-temperature solution-processed perovskite solar cells with high efficiency and flexibility. ACS Nano 8, 1674–1680 (2014). 10.1021/nn406020d
[13]
Cingolani, R. et al. Radiative recombination processes in wide-band-gap II–VI quantum wells: the interplay between excitons and free carriers. J. Opt. Soc. Am B 13, 1268 (1996). 10.1364/josab.13.001268
[14]
Saha, M. N. On a physical theory of stellar spectra. Proc. R. Soc. Lond. A 99, 135–153 (1921). 10.1098/rspa.1921.0029
[15]
Baikie, T. et al. Synthesis and crystal chemistry of the hybrid perovskite (CH3NH3)PbI3 for solid-state sensitised solar cell applications. J. Mater. Chem. A 1, 5628 (2013). 10.1039/c3ta10518k
[16]
Ishiara, T., Takahashi, J. & Goto, T. Optical properties due to electronic transition in two-dimensional semiconductors (CnH2n+1NH3)PbI4 . Phys. Rev. B 42, 17 (1990).
[17]
Hirasawa, M., Ishihara, T. & Goto, T. Exciton features in 0-, 2-, and 3-dimensional networks of [PbI6]4--octahedra. J. Phys. Soc. Jpn 63, 3870–3879 (1994). 10.1143/jpsj.63.3870
[18]
Tanaka, K. et al. Comparative study on the excitons in lead-halide-based perovskite-type crystals CH3NH3PbBr3 CH3NH3PbI3. Solid State Commun. 127, 619–623 (2003). 10.1016/s0038-1098(03)00566-0
[19]
Varshni, Y. P. Temperature dependence of the energy gap in semiconductors. Physica 34, 149–154 (1967). 10.1016/0031-8914(67)90062-6
[20]
Ashcroft, N. W. & Mermin, N. D. Solid State Physics Holt Rinehart & Winston (1976).
[21]
Wang, Y. et al. Optical transient bleaching of quantum-confined CdS clusters: the effects of surface-trapped electron-hole pairs. J. Chem. Phys. 92, 6927 (1990). 10.1063/1.458280
[22]
Lanzani, G. The Photophysics Behind Photovoltaics and Photonics Wiley-VCH: Weinheim, (2012). 10.1002/9783527645138
[23]
Viswanath, A. K., Lee, J. I., Kim, D., Lee, C. R. & Leem, J. Y. Exciton-phonon interactions, exciton binding energy, and their importance in the realization of room-temperature semiconductor lasers based on GaN. Phys. Rev. B 58, 16333 (1998). 10.1103/physrevb.58.16333
[24]
Electron-Hole Diffusion Lengths Exceeding 1 Micrometer in an Organometal Trihalide Perovskite Absorber

Samuel D. Stranks, Giles E. Eperon, Giulia Grancini et al.

Science 2013 10.1126/science.1243982
[25]
Hendry, E., Koeberg, M. & Bonn, M. Exciton and electron-hole plasma formation dynamics in ZnO. Phys. Rev. B 76, 045214 (2007). 10.1103/physrevb.76.045214
Cited By
1,605
Chemical Society Reviews
ACS Applied Materials & Interfa...
Wearable Electronics
Materials Chemistry Frontiers
Related

You May Also Like

Inferring tumour purity and stromal and immune cell admixture from expression data

Kosuke Yoshihara, Maria Shahmoradgoli · 2013

7,687 citations

Inference and analysis of cell-cell communication using CellChat

Suoqin Jin, Christian F. Guerrero-Juarez · 2021

6,760 citations

In situ click chemistry generation of cyclooxygenase-2 inhibitors

Atul Bhardwaj, Jatinder Kaur · 2017

6,689 citations