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Nonleaded Perovskite-Related Ferroelectric Semiconductor (IYA)SbBr5: High Thermal Stability, Narrow Bandgap, and
Peng Chen1, Zilong Zhou1, Xiaolei Li1
1National Laboratory of Solid State Microstructures, Collaborative Innovation Center of Advanced Microstructures, School of Physics, Nanjing University, Nanjing 210093, China.
Abstract:
Molecular-based ferroelectrics refer to materials composed of organic molecules that form ordered structures through intermolecular interactions (such as hydrogen bonding and π-π interactions) and exhibit ferroelectricity under certain conditions. Molecular-based ferroelectrics are pivotal for next-generation flexible and sustainable devices, yet the lack of eco-friendly lead-free alternatives with robust thermal stability remains a critical bottleneck. Here, we present the synthesis of a novel one-dimensional perovskite-related ferroelectric semiconductor material of (1-(2-aminoethyl) imidazole)SbBr5 ((IYA)SbBr5), which uniquely integrates high thermal resilience, strong polarization, and a narrow bandgap. Unlike conventional toxic lead-based systems, this Sb3+-Br- hybrid features a zigzag [SbBr5]2- chain and disordered organic cations, enabling a record-high phase transition temperature of 392 K (surpassing most molecular ferroelectrics) with symmetry-breaking (nonpolar Pnma → polar Cc) and thermal stability up to 500 K. Remarkably, the material exhibits a spontaneous polarization of 2.3 μC/cm2 and a relatively low indirect bandgap of 2.41 eV, attributed to synergistic order-disorder transitions and Sb-Br framework distortion. These properties position (IYA)SbBr5 as a promising candidate for energy-efficient solar cells, photodetectors, and multifunctional optoelectronic devices. Our work pioneers a sustainable design strategy for high-performance ferroelectrics, addressing both environmental concerns and industrial scalability.
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