Long-Range Balanced Electron- and Hole-Transport Lengths in Organic-Inorganic CH <sub>3</sub> NH <sub>3</sub> PbI <sub>3</sub>

Guichuan Xing(Nanyang Technological University), Nripan Mathews(Nanyang Technological University), Shuangyong Sun(Nanyang Technological University), Swee Sien Lim(Nanyang Technological University), Yeng Ming Lam(Nanyang Technological University), Michaël Grätzel(École Polytechnique Fédérale de Lausanne), Subodh G. Mhaisalkar(Nanyang Technological University), Tze Chien Sum(Nanyang Technological University)
Science
October 17, 2013
Cited by 6,747Open Access
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Abstract

Low-temperature solution-processed photovoltaics suffer from low efficiencies because of poor exciton or electron-hole diffusion lengths (typically about 10 nanometers). Recent reports of highly efficient CH3NH3PbI3-based solar cells in a broad range of configurations raise a compelling case for understanding the fundamental photophysical mechanisms in these materials. By applying femtosecond transient optical spectroscopy to bilayers that interface this perovskite with either selective-electron or selective-hole extraction materials, we have uncovered concrete evidence of balanced long-range electron-hole diffusion lengths of at least 100 nanometers in solution-processed CH3NH3PbI3. The high photoconversion efficiencies of these systems stem from the comparable optical absorption length and charge-carrier diffusion lengths, transcending the traditional constraints of solution-processed semiconductors.


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