| Literature DB >> 33241679 |
Jingying Wang1, Haipeng Lu2, Xin Pan1, Junwei Xu3, Haoliang Liu1, Xiaojie Liu1, Dipak R Khanal1, Michael F Toney3, Matthew C Beard2, Z Valy Vardeny1.
Abstract
Two-dimensional hybrid organic-inorganic perovskites (2D-HOIPs) that form natural multiple quantum wells have attracted increased research interest due to their interesting physics and potential applications in optoelectronic devices. Recent studies have shown that spintronics applications can also be introduced to 2D-HOIPs upon integrating chiral organic ligands into the organic layers. Here we report spin-dependent photovoltaic and photogalvanic responses of optoelectronic devices based on chiral 2D-HOIPs, namely, (R-MBA)2PbI4 and (S-MBA)2PbI4. The out-of-plane photocurrent response in vertical photovoltaic devices exhibits ∼10% difference upon right and left circularly polarized light (CPL) excitation, which originates from selective spin transport through the chiral multilayers. In contrast, the in-plane photocurrent response generated by CPL excitation of planar photoconductive devices shows a typical response of chirality-induced circular photogalvanic effect that originates from the Rashba splitting in the electronic bands of these compounds. Our studies may lead to potential applications of chiral 2D-HOIPs in optoelectronic devices that are sensitive to the light helicity.Entities:
Keywords: chirality; circular photogalvanic effect; hybrid organic−inorganic perovskites; photovoltaic effect; spin transport
Year: 2020 PMID: 33241679 DOI: 10.1021/acsnano.0c05980
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881