4.8 Article

Chirality-Dependent Circular Photogalvanic Effect in Enantiomorphic 2D Organic-Inorganic Hybrid Perovskites

Journal

ADVANCED MATERIALS
Volume 33, Issue 17, Pages -

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adma.202008611

Keywords

chirality; circular photogalvanic effect; optoelectronics; perovskites; spintronics

Funding

  1. PRESTO JST [JPMJPR19L4]
  2. CREST JST [JPMJCR16F2]
  3. JSPS [20H01829, 20H00381, 18K19050, 18H05208]
  4. SEI group CSR foundation
  5. E-IMR project
  6. JSPS Research Fellowship [18J20896]
  7. Grants-in-Aid for Scientific Research [18J20896, 18K19050, 20H01829, 20H00381, 18H05208] Funding Source: KAKEN

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The observation of the circular photogalvanic effect (CPGE) in new enantiomorphic 2D-OIHP lead iodides synthesized with organic chiral cations is reported, indicating the potential for engineering opto-spintronic functionalities. The CPGE photocurrents show light-helicity-dependent behavior and sign reversal based on the chirality of the designed 2D-OIHP lead iodides, suggesting the formation of a radial spin-polarized texture in k-space of chiral systems due to spin-momentum locking.
The control of the optoelectronic properties of 2D organic-inorganic hybrid perovskite (2D-OIHP) lead halides is an increasingly prevalent topic. Herein, the observation of the circular photogalvanic effect (CPGE) in new enantiomorphic 2D-OIHP lead iodides is reported, which are synthesized as a first OIHP-related system belonging to a chiral space group by incorporating organic chiral cations into the inorganic layers of lead iodides. The CPGE is an optoelectronic phenomenon associated with the spin-orbit coupling of heavy atoms in noncentrosymmetric systems. Owing to the CPGE, light-helicity-dependent steady photocurrents are generated without an external bias voltage under the irradiation of circularly polarized light. Furthermore, the sign reversal of the CPGE photocurrent depending on the chirality of the designed 2D-OIHP lead iodides is observed. This result indicates formation of the theoretically predicted radial spin-polarized texture in k-space of chiral systems owing to spin-momentum locking. Hence, chiral 2D-OIHP lead halides can be a promising platform for engineering opto-spintronic functionalities.

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