Aug 2026· Journal of Physical Chemistry C· 0 citations· 45 references
Abstract
While organic–inorganic hybrid perovskites are widely recognized for exceptional photovoltaic performance, their inherent spin–orbit coupling and polarizability also render them compelling candidates for ferroelectrics and spintronics. In this work, we establish a structure–property relationship across the homologous series (CxH2x+1NH3)2CsPb2Br7 (x = 1–5) by integrating density functional theory calculations with symmetry analysis, revealing how progressive alkyl chain growth drives correlated evolution of crystal symmetry, electronic structure, ferroelectric polarization, and spin properties. The chemically distinct sublattices in hybrid perovskites naturally form dual structural-functional zones quantitatively distinguished by the packing factor (PF), in which the inorganic framework with its consistently higher PF acts as a transport zone, while the lower PF organic sublattice serves as an active zone whose conformational degrees of freedom modulate the ferroelectric response. With increasing chain length, bulk hybrid perovskites undergo a progressive transition from quasi-two-dimensional (2D) to intrinsically confined 2D electronic behavior accompanied by symmetry restoration, enabling a robust momentum-independent persistent spin texture protected by C2v symmetry. Our results demonstrate that the organic spacer acts as an active functional component rather than a passive barrier, offering a precise chemical handle for molecular engineering of 2D hybrid perovskites with tunable electronic properties.
Two-dimensional (2D) chiral hybrid organic–inorganic perovskites (HOIPs) have emerged as promising materials for optoelectronic and spintronic applications owing to their tunable electronic structures and chiroptical properties. Here, we investigate the effects of organic spacer and halide composition on chiroptical...
Soubhik Ghosh, Tanu Choudhary, S. Kundu et al.· Journal of Physical Chemistr...· 0 citations
Uncontrolled crystal growth and structural heterogeneity in solution-processed self-assembled molecules (SAMs) remain major limitations for efficient interfacial charge transport. Herein, we report a dipole-engineered molecular strategy to regulate SAMs crystallization through the rational design of fluorinated benzimi...
Qian-Nan Li, Fei Wang, Bao-Lei Tang et al.· Advances in Materials· 0 citations
Solution‐based self‐assembled perovskite heterojunction single crystals enable precise modulation of the physical and chemical properties of materials, demonstrating significant potential for optoelectronic applications. However, the directed synthesis of these heterostructures and the underlying mechanism for the...
Hang Li, Ji Qi, Qian-Wen Guan et al.· InfoMat· 0 citations