4.6 Article

Exploring the Way To Approach the Efficiency Limit of Perovskite Solar Cells by Drift-Diffusion Model

Journal

ACS PHOTONICS
Volume 4, Issue 4, Pages 934-942

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsphotonics.6b01043

Keywords

drift-diffusion; intrinsic radiative recombination; detailed balance; perovskite solar cell; photovoltaics

Funding

  1. General Research Fund [HKU711813, 17211916]
  2. Collaborative Research Fund from the Research Grants Council of Hong Kong Special Administrative Region, China [Grants C7045-14E]
  3. ECF Project from Environment and Conservation Fund [33/2015]
  4. CAS-Croucher Funding Scheme for Joint Laboratories [CAS14601]

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Drift-diffusion model is an indispensable modeling tool to understand the carrier dynamics (transport, recombination, and collection) and simulate practical-efficiency of solar cells (SCs) through taking into account various carrier recombination losses existing in multilayered device structures. Exploring the way to predict and approach the SC efficiency limit by using the drift-diffusion model will enable us to gain more physical insights and design guidelines for emerging photovoltaics, particularly perovskite solar cells. Our work finds out that two procedures are the prerequisites for predicting and approaching the SC efficiency limit. First, the intrinsic radiative recombination needs to be corrected after adopting optical designs which will significantly affect the open-circuit voltage at its Shockley-Queisser limit. Through considering a detailed balance between emission and absorption of semiconductor materials at the thermal equilibrium and the Boltzmann statistics at the nonequilibrium, we offer a different approach to derive the accurate expression of intrinsic radiative recombination with the optical corrections expression captures light trapping of the absorbed photons and angular restriction of the emitted photons are ignored in the traditional Roosbroeck-Shockley expression. Second, the contact characteristics of the carefully engineered to eliminate the charge accumulation and surface recombination at the electrodes. The selective contact or blocking layer incorporated nonselective contact that inhibits the surface recombination at the electrode is another important prerequisite. With the two procedures, the accurate prediction of efficiency limit and precise evaluation of efficiency degradation for perovskite solar cells are attainable by the drift-diffusion model. Our work is fundamentally and practically important to mathematical modeling and physical understanding of solar cells.

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