Strong Rashba-Dresselhaus Effect in Non-chiral 2D Ruddlesden-Popper Perovskites
POSTER
Abstract
Chirality transfer from organic chiral molecules to lead halides has been theorized as the origin of the strong Rashba-Dresselhaus effect causing large circular dichroism (CD) and circularly polarized luminescence (CPL) in metal halide perovskites (MHPs). Here, we provide a concrete empirical evidence that such strong CD and CPL can occur even in non-chiral 2D Ruddlesden-Popper perovskites (RPPs) such as in (BA)2(MA)n-1PbnI3n+1 (where MA = CH3NH3 and BA = CH3(CH2)3NH3). The CD and CPL responses occuring at the excitonic transition of the MHPs are strongest (~100 mdeg and 4.8%, respectively) when a single lead halide octahedral [PbI6]4- layer is repeatedly stacked between two non-chiral molecules BA+ (n = 1). However, they are rapidly quenched as n increases. We hypothesize that strong Rashba-Dresselhaus splitting in the 2D RPPs originates the strong CD and CPL signatures. Density functional theory (DFT) calculations reveal that the large inter-layer distortions in the inorganic layers at the organic/inorganic interface gives raise to the strong Rashba-Dresselhaus splitting. A Rashba-Dresselhaus field of 600 mT and 50 mT for n = 1 and 2, respectively, are estimated by magnetic circular dichroism (MCD) spectroscopy. Our studies may have significant impact on designing 2D RPPs with large Rashba-Dresselhaus effects at room temperature for spintronic applications.
Publication: Strong Rashba-Dresselhaus Effect in Nonchiral 2D Ruddlesden-Popper Perovskites <br>Minh T. Pham,Eric Amerling,Tu Anh Ngo,Hoang M. Luong,Kameron Hansen,Huy T. Pham,Tuoc N. Vu,Huan Tran,Luisa Whittaker-Brooks,Tho D. Nguyen, https://doi.org/10.1002/adom.202101232
Presenters
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Tho Nguyen
University of Georgia
Authors
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Tho Nguyen
University of Georgia