Dan Soirik, Paramanik Subham, Pal Amlan J
School of Physical Sciences, Indian Association for the Cultivation of Science, Jadavpur, Kolkata 700032, India.
UGC-DAE Consortium for Scientific Research, University Campus, Khandwa Road, Indore 452001, India.
ACS Nano. 2024 Dec 31;18(52):35644-35653. doi: 10.1021/acsnano.4c14328. Epub 2024 Dec 18.
2D Ruddlesden-Popper (RP) perovskites, upon inclusion of a chiral amine, exhibit chirality-induced spin selectivity (CISS). Although alloying at the halogen site in MBA-based RPs (MBA: methylbenzylammonium) is one of the suitable routes to tune the CISS effect, the mixed-halide RP perovskites exhibited complete suppression of chirality when probed through circular dichroism (CD). Here, we present the CISS effect in a series of mixed-halide RP perovskites. We show that photoinduced halide segregation is the origin for the apparent chirality suppression. The spin-dependent charge transport was evidenced through magnetic-conducting atomic force microscopy (mc-AFM) studies and magnetoresistance (MR) measurements. The mc-AFM results show that in (/-MBA)PbIBr, the CISS effect decreases with bromide inclusion, nonmonotonically; the microstrain developed in the lattice and the spin-polarized charge transport are found to be correlated. Such a behavior has been explained through an inhomogeneity in the strength of the hydrogen bond between the organic moieties and halogens in the inorganic framework of the compounds. Our results further inferred that the hydrogen-bond-induced coupling transfers the chirality from the amine to the inorganic sublattice. The work explains the weakened CISS effect in mixed-halide chiral RP perovskites and provides a strategy to tune the spin-polarized charge transport as well.
二维Ruddlesden-Popper(RP)钙钛矿在加入手性胺后会表现出手性诱导自旋选择性(CISS)。尽管在基于甲基苄基铵(MBA)的RP钙钛矿的卤素位点进行合金化是调节CISS效应的合适途径之一,但通过圆二色性(CD)探测时,混合卤化物RP钙钛矿表现出完全的手性抑制。在此,我们展示了一系列混合卤化物RP钙钛矿中的CISS效应。我们表明,光诱导卤化物偏析是明显的手性抑制的根源。通过磁导原子力显微镜(mc-AFM)研究和磁电阻(MR)测量证明了自旋相关的电荷传输。mc-AFM结果表明,在(/-MBA)PbIBr中,CISS效应随着溴化物的加入而非单调地降低;发现晶格中产生的微应变与自旋极化电荷传输相关。这种行为已通过化合物无机框架中有机部分与卤素之间氢键强度的不均匀性得到解释。我们的结果进一步推断,氢键诱导的耦合将手性从胺转移到无机亚晶格。这项工作解释了混合卤化物手性RP钙钛矿中减弱的CISS效应,并提供了一种调节自旋极化电荷传输的策略。