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Overcoming Shockley-Queisser limit using halide perovskite platform?

期刊

JOULE
卷 6, 期 4, 页码 756-771

出版社

CELL PRESS
DOI: 10.1016/j.joule.2022.01.009

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资金

  1. U.S. Department of Energy's Office of Energy Efficiency and Renewable Energy (EERE) under the Solar Energy Technologies Office [DE-EE0009364]
  2. NSF/IUCRC: Center for Energy Harvesting Materials and Systems (CEHMS) [IIP-1916707]
  3. National Science Foundation [DMR-1936432]
  4. Office of Naval Research (ONR) [N00014-20-1-2602]
  5. Army Research Office [W911NF1620010]
  6. ARMY RIF Program [W911W6-19-C-0083]
  7. NSF CREST Center for Renewable Energy and Advanced Materials (CREAM)
  8. ONR [N00014-21-1-2539]
  9. Department of Energy [DE-SC0012375]

向作者/读者索取更多资源

Single-junction photovoltaics have a limited efficiency due to energy losses, but these losses can be overcome by using halide perovskite materials, which have various advantages that can boost the photovoltage and photocurrent.
Single-junction photovoltaics have a theoretical efficiency limit of 33.7%, with over 50% energy losses in thermalization and in-band transparency. Prior engineering at system levels has been developed to reduce these losses and break the Shockley-Queisser (SQ) limit; many require high-standard manufacturing but deliver mild efficiency enhancement. A breakthrough can be found from the materials perspective. Halide perovskites with various physical merits may provide the platform to overcome both thermalization and in-band transparency losses and thus elevate efficiency by two factors. For example, long-lived hot carriers in perovskite could boost the photovoltage to exceed its band gap or to execute a multi-exciton generation process to double the photocurrent. A delicately designed quantum structure could overcome the in-band losses by mechanisms such as intermediate band, multiple quantum well cascade, and photoferroic effect. Here, we discuss the opportunity, feasibility, and challenges of overcoming the SQ limit by designing upon a perovskite platform.

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